0000000000128973

AUTHOR

Meik Neufurth

0000-0002-2383-6412

showing 53 related works from this author

Polyphosphate, the physiological metabolic fuel for corneal cells: a potential biomaterial for ocular surface repair

2019

The regeneration of the epithelium, covering the avascular cornea, involves the processes of differentiation, proliferation and migration of cells originating from the corneal epithelial stem cells. We ask the question if these energy-consuming processes can be fueled by the physiological, inorganic polyphosphate (polyP), the main energy storage/donor molecule in the extracellular space. The ex vivo results reveal that addition of polyP, in the form of soluble Na-polyP, to the culture medium elicits a strong stimulatory effect on cell viability/growth and migration of corneal epithelial cells. Microscopic analyses of partially denuded cornea specimens show that in the presence of polyP, but…

Cell SurvivalCell Culture TechniquesBiomedical Engineering02 engineering and technology010402 general chemistry01 natural sciencesCorneaCorneal limbusCell MovementPolyphosphatesCorneaotorhinolaryngologic diseasesmedicineHumansRegenerationGeneral Materials ScienceViability assayCells CulturedCell ProliferationCorneal epitheliumTissue ScaffoldsChemistryRegeneration (biology)Mucin-1Epithelial Cells021001 nanoscience & nanotechnologyeye diseasesdigestive system diseasesEpitheliumCulture Media0104 chemical sciencesCell biologysurgical procedures operativemedicine.anatomical_structureSolubilityCell cultureCalciumsense organsStem cell0210 nano-technologyBiomaterials Science
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Bifunctional dentifrice: Amorphous polyphosphate a regeneratively active sealant with potent anti- Streptococcus mutans activity

2017

Abstract Objective In this study we demonstrate that inorganic polyphosphate (polyP) exhibits a dual protective effect on teeth: it elicits a strong antibacterial effect against the cariogenic bacterium Streptococcus mutans and, in form of amorphous calcium polyP microparticles (size of 100–400 nm), it efficiently reseals cracks/fissures in the tooth enamel and dentin. Methods Three different formulations of amorphous polyP microparticles (Ca-polyP, Zn-polyP and Sr-polyP) were prepared. Results Among the different polyP microparticles tested, the Ca-polyP microparticles, as a component of a newly developed formulation of a dentifrice, turned out to be most effective in inhibiting growth of …

Pit and Fissure SealantsMaterials sciencebusiness.product_category02 engineering and technologyDental CariesMicrobiologyStreptococcus mutans03 medical and health scienceschemistry.chemical_compound0302 clinical medicinePolyphosphatesotorhinolaryngologic diseasesDentinmedicineDentifriceGeneral Materials ScienceDental EnamelneoplasmsGeneral DentistryDentifricesToothpastebiologyPolyphosphateBiofilmpathological conditions signs and symptoms030206 dentistry021001 nanoscience & nanotechnologybiology.organism_classificationTooth enamelStreptococcus mutansdigestive system diseasessurgical procedures operativemedicine.anatomical_structurechemistryMechanics of MaterialsBiofilms0210 nano-technologybusinessAntibacterial activityNuclear chemistryDental Materials
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High biocompatibility and improved osteogenic potential of amorphous calcium carbonate/vaterite.

2020

In human bone, amorphous calcium carbonate (ACC) is formed as a precursor of the crystalline carbonated apatite/hydroxyapatite (HA). Here we describe that the metastable ACC phase can be stabilized by inorganic polyphosphate (polyP) that is also used as a phosphate source for the non-enzymatic carbonate/phosphate exchange during HA formation. This polymer was found to suppress the transformation of ACC into crystalline CaCO3 at a percentage of 5% [w/w] ("CCP5") with respect to CaCO3 and almost completely at 10% [w/w] ("CCP10"). Both preparations (CaCO3/polyP) are amorphous, but also contain small amounts of vaterite, as revealed by XRD, FTIR and SEM analyses. They did not affect the growth/…

CalciteMaterials scienceBiocompatibilityPolyphosphateBiomedical EngineeringMineralogy02 engineering and technologyGeneral ChemistryGeneral Medicine010402 general chemistry021001 nanoscience & nanotechnologyPhosphate01 natural sciencesApatiteAmorphous calcium carbonate0104 chemical scienceschemistry.chemical_compoundchemistryvisual_artVateritevisual_art.visual_art_mediumAlkaline phosphataseGeneral Materials Science0210 nano-technologyNuclear chemistryJournal of materials chemistry. B
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The sponge silicatein-interacting protein silintaphin-2 blocks calcite formation of calcareous sponge spicules at the vaterite stage

2013

Ca-carbonate, the inorganic matrix of the spicules from the calcareous sponges, is formed as the result of an enzyme-catalyzed reaction with the carbonic anhydrase [CA] as a decisive component. The growth and the morphology of the spicules are genetically controlled, and are taxon-specific. In the present study it is shown that the silicatein-interacting protein silintaphin-2 is present at the surface of the siliceous spicules of the demosponge Suberites domuncula and prevents the association of calcareous crystals synthesized in vitro to these skeletal elements. Silintaphin-2 comprises a Ca2+-binding domain that is formed by a 22 amino acid-long peptide, N-DDDSQGEIQSDMAEEEDDDNVD-C. This ve…

CalcitebiologyCalcareous spongeChemistryGeneral Chemical EngineeringGeneral Chemistrybiology.organism_classificationSuberites domunculaSpongechemistry.chemical_compoundCrystallographySponge spiculeDemospongeVateriteCalcareousRSC Adv.
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Fabrication of amorphous strontium polyphosphate microparticles that induce mineralization of bone cells in vitro and in vivo.

2017

Abstract Here we describe the fabrication process of amorphous strontium-polyphosphate microparticles (“Sr-a-polyP-MP”). The effects of these particles on growth and gene expression were investigated with SaOS-2 cells as well as with human mesenchymal stem cells (MSC) and compared with those particles prepared of amorphous calcium-polyphosphate (“Ca-a-polyP-MP”) and of strontium salt. The results revealed a markedly higher stimulation of growth of MSC by “Sr-a-polyP-MP” compared to “Ca-a-polyP-MP” and a significant increase in mineralization of SaOS-2 cells, as well as an enhanced upregulation of the expression of the genes encoding for alkaline phosphatase and the bone morphogenetic protei…

0301 basic medicineMaterials scienceBiomedical Engineering02 engineering and technologyBone healingBiochemistryBone morphogenetic protein 2OsteocytesBiomaterials03 medical and health scienceschemistry.chemical_compoundCalcification PhysiologicIn vivoPolyphosphatesCell Line TumorBone cellAnimalsHumansMolecular BiologyWnt Signaling PathwayBone mineralMesenchymal Stem CellsGeneral Medicine021001 nanoscience & nanotechnologyAntigens Differentiationdigestive system diseasesMicrospheresCell biologyRatsPLGA030104 developmental biologychemistryGene Expression RegulationStrontiumSclerostinAlkaline phosphatase0210 nano-technologyBiotechnologyBiomedical engineeringActa biomaterialia
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Amorphous polyphosphate/amorphous calcium carbonate implant material with enhanced bone healing efficacy in a critical-size defect in rats

2016

In this study the effect of amorphous calcium carbonate (ACC) microparticles and amorphous calcium polyphosphate (polyP) microparticles (termed aCa-polyP-MP) on bone mineral forming cells/tissue was investigated in vitro and in vivo. The ACC particles (termed ACC-P10-MP) were prepared in the presence of Na-polyP. Only the combinations of polyP and ACC microparticles enhanced the proliferation rate of human mesenchymal stem cells (MSCs). Gene expression studies revealed that ACC causes an upregulation of the expression of the cell membrane-associated carbonic anhydrase IX (CA IX; formation of ACC), while the transcript level of the alkaline phosphatase (ALP; liberation of orthophosphate from…

Calcium PhosphatesMale0301 basic medicineBone RegenerationMaterials scienceBiomedical Engineeringchemistry.chemical_elementBioengineering02 engineering and technologyBone healingCalciumRats Sprague-DawleyBiomaterials03 medical and health scienceschemistry.chemical_compoundPolylactic Acid-Polyglycolic Acid CopolymerOsteogenesisPolyphosphatesIn vivoElastic ModulusPressureAnimalsHumansLactic AcidBone regenerationOsteoblastsTissue ScaffoldsMesenchymal Stem CellsAlkaline Phosphatase021001 nanoscience & nanotechnologyMolecular biologyMicrospheresdigestive system diseasesAmorphous calcium carbonateRatsstomatognathic diseasesPLGA030104 developmental biologychemistryAlkaline phosphataseLiberationStress Mechanical0210 nano-technologyPolyglycolic AcidBiomedical engineeringBiomedical Materials
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Morphogenetically-Active Barrier Membrane for Guided Bone Regeneration, Based on Amorphous Polyphosphate

2017

We describe a novel regeneratively-active barrier membrane which consists of a durable electrospun poly(ε-caprolactone) (PCL) net covered with a morphogenetically-active biohybrid material composed of collagen and inorganic polyphosphate (polyP). The patch-like fibrous collagen structures are decorated with small amorphous polyP nanoparticles (50 nm) formed by precipitation of this energy-rich and enzyme-degradable (alkaline phosphatase) polymer in the presence of calcium ions. The fabricated PCL-polyP/collagen hybrid mats are characterized by advantageous biomechanical properties, such as enhanced flexibility and stretchability with almost unaltered tensile strength of the PCL net. The pol…

0301 basic medicineBone Regenerationcollagen-inducingBarrier membranePolymersPharmaceutical Science02 engineering and technologyMatrix (biology)chemistry.chemical_compoundMiceOsteogenesisPolyphosphatesDrug Discoverystromal cell-derived factor-1Pharmacology Toxicology and Pharmaceutics (miscellaneous)MC3T3-E1 cellsChemistrybiologizationAnatomy3T3 Cells021001 nanoscience & nanotechnology3. Good healthMembranetensile strength/resistanceAlkaline phosphataseCollagen0210 nano-technologyinorganic polyphosphateSurface PropertiesPolyestersArticleAngiopoietin-203 medical and health sciencesCalcification PhysiologicAnimalsHumansBone regenerationTissue EngineeringPolyphosphateMesenchymal stem cellMembrane ProteinsMembranes ArtificialMesenchymal Stem Cellspolypropylene mesh030104 developmental biologyGene Expression RegulationBiophysicsbiologization; hernia repair; inorganic polyphosphate; collagen-inducing; polypropylene mesh; tensile strength/resistance; stromal cell-derived factor-1; MC3T3-E1 cellsNanoparticlesWound healinghernia repairMarine Drugs
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Morphogenetically active scaffold for osteochondral repair (Polyphosphate/alginate/N,O-carboxymethyl chitosan)

2016

Here we describe a novel bioinspired hydrogel material that can be hardened with calcium ions to yield a scaffold material with viscoelastic properties matching those of cartilage. This material consists of a negatively charged biopolymer triplet, composed of morphogenetically active natural inorganic polyphosphate (polyP), along with the likewise biocompatible natural polymers N,O-carboxymethyl chitosan (N,O-CMC) and alginate. The porosity of the hardened scaffold material obtained after calcium exposure can be adjusted by varying the pre-processing conditions. Various compression tests were applied to determine the local (nanoindentation) and bulk mechanical properties (tensile/compressio…

Cartilage ArticularScaffoldlcsh:Diseases of the musculoskeletal systemO-Carboxymethyl chitosanBiocompatible Materials02 engineering and technology01 natural sciencesHydrogel Polyethylene Glycol DimethacrylateChitosanchemistry.chemical_compoundGlucuronic AcidTissue engineeringPolyphosphatesAggrecansTissue ScaffoldsHexuronic AcidsN021001 nanoscience & nanotechnologymedicine.anatomical_structuretissue engineering0210 nano-technologyPorosityAlginatesEpiphyseal platelcsh:Surgeryregenerative medicineengineering.material010402 general chemistryOsteocytesChondrocytesUltimate tensile strengthmedicineHumansRegenerationCollagen Type IIAggrecanCell ProliferationChitosanWound HealingCartilagepolyphosphatelcsh:RD1-811Alkaline Phosphatase0104 chemical sciencesCartilagechemistryengineeringCalciumBiopolymerlcsh:RC925-935Biomedical engineering
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Enzyme-accelerated and structure-guided crystallization of calcium carbonate: Role of the carbonic anhydrase in the homologous system

2014

Abstract The calcareous spicules from sponges, e.g. from Sycon raphanus, are composed of almost pure calcium carbonate. In order to elucidate the formation of those structural skeletal elements, the function of the enzyme carbonic anhydrase (CA), isolated from this species, during the in vitro calcium carbonate-based spicule formation, was investigated. It is shown that the recombinant sponge CA substantially accelerates calcium carbonate formation in the in vitro diffusion assay. A stoichiometric calculation revealed that the turnover rate of the sponge CA during the calcification process amounts to 25 CO2 s−1 × molecule CA−1. During this enzymatically driven process, initially pat-like pa…

Molecular Sequence DataInorganic chemistryBiomedical Engineeringchemistry.chemical_elementCalciumBiochemistryCalcium Carbonatelaw.inventionBiomaterialschemistry.chemical_compoundSponge spiculelawSpectroscopy Fourier Transform InfraredAnimalsAmino Acid SequenceSycon raphanusCrystallizationMolecular BiologyCarbonic AnhydrasesMineralsbiologyGeneral MedicineElementsbiology.organism_classificationPoriferaCrystallographySpongeCalcium carbonatechemistryCrystallizationCalcareousBiotechnologyBiomineralizationActa Biomaterialia
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A bio-imitating approach to fabricate an artificial matrix for cartilage tissue engineering using magnesium-polyphosphate and hyaluronic acid

2016

Here we describe an artificial cartilage-like material based on a hyaluronic acid-Mg/Ca-polyphosphate paste (HA-aMg/Ca-polyP-p) that is fabricated from a water-soluble Na-salt of energy-rich inorganic polyphosphate (polyP) and soluble hyaluronic acid in the presence of water-insoluble CaCO3. The resulting material, after conversion of Na-polyP into the less soluble Mg/Ca-salt consisting of amorphous Mg/Ca-polyP microparticles, was found to mimic the physiological cartilage tissue and to bind Ca2+ ions present in the synovial fluid. After the Mg2+/Ca2+ exchange and water extrusion, the polyP becomes more stable, but is still susceptible to hydrolytic cleavage by the alkaline phosphatase (ALP…

General Chemical EngineeringPolyphosphateCartilage0206 medical engineering02 engineering and technologyGeneral ChemistryOsteoarthritisMatrix (biology)021001 nanoscience & nanotechnologymedicine.disease020601 biomedical engineeringchemistry.chemical_compoundmedicine.anatomical_structurechemistryHyaluronic acidmedicineBiophysicsSynovial fluidAlkaline phosphatase0210 nano-technologyAggrecanRSC Advances
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Enhancement of Wound Healing in Normal and Diabetic Mice by Topical Application of Amorphous Polyphosphate. Superior Effect of a Host⁻Guest Composite…

2017

The effect of polyphosphate (polyP) microparticles on wound healing was tested both in vitro and in a mice model in vivo. Two approaches were used: pure salts of polyphosphate, fabricated as amorphous microparticles (MPs, consisting of calcium and magnesium salts of polyP, “Ca–polyp-MPs” and “Mg–polyp-MPs”), and host–guest composite particles, prepared from amorphous collagen (host) and polyphosphate (guest), termed “col/polyp-MPs”. Animal experiments with polyP on healing of excisional wounds were performed using both normal mice and diabetic mice. After a healing period of 7 days “Ca–polyp-MP” significantly improved re-epithelialization in normal mice from 31% (control) to 72% (polyP micr…

0301 basic medicinecollagenMaterials sciencePolymers and PlasticsPAI-1chemistry.chemical_elementpolyphosphate; microparticles; delayed wound healing; collagen; PAI-1; re-epithelialization; diabetic mice02 engineering and technologymacromolecular substancesCalciumdiabetic miceArticlelcsh:QD241-44103 medical and health scienceschemistry.chemical_compoundlcsh:Organic chemistryIn vivootorhinolaryngologic diseasesre-epithelializationneoplasmsmicroparticlesPolyphosphateDiabetic mousepolyphosphateGeneral Chemistry021001 nanoscience & nanotechnologyMolecular biologyIn vitrodigestive system diseases3. Good healthAmorphous solid030104 developmental biologysurgical procedures operativechemistry0210 nano-technologyWound healingPlasminogen activatordelayed wound healingPolymers
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Nonenzymatic Transformation of Amorphous CaCO3 into Calcium Phosphate Mineral after Exposure to Sodium Phosphate in Vitro: Implications for in Vivo H…

2015

Studies indicate that mammalian bone formation is initiated at calcium carbonate bioseeds, a process that is driven enzymatically by carbonic anhydrase (CA). We show that amorphous calcium carbonate (ACC) and bicarbonate (HCO3 (-) ) cause induction of expression of the CA in human osteogenic SaOS-2 cells. The mineral deposits formed on the surface of the cells are rich in C, Ca and P. FTIR analysis revealed that ACC, vaterite, and aragonite, after exposure to phosphate, undergo transformation into calcium phosphate. This exchange was not seen for calcite. The changes to ACC, vaterite, and aragonite depended on the concentration of phosphate. The rate of incorporation of phosphate into ACC, …

Calcium PhosphatesSepiaInorganic chemistrychemistry.chemical_elementCalciumengineering.materialBiochemistryCalcium CarbonateCell LinePhosphateschemistry.chemical_compoundOsteogenesisVateriteAnimalsHumansMolecular BiologyCarbonic AnhydrasesCalciteChemistryAragoniteOrganic ChemistryPhosphateAmorphous calcium carbonateBivalviaBicarbonatesCalcium carbonateDurapatiteGene Expression RegulationengineeringMolecular MedicineCarbonatePeptidesNuclear chemistryChembiochem : a European journal of chemical biology
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Biomimetic transformation of polyphosphate microparticles during restoration of damaged teeth.

2019

Abstract Objective In the present study, we investigated the fusion process between amorphous microparticles of the calcium salt of the physiological polymer comprising orthophosphate units, of inorganic polyphosphate (polyP), and enamel. Methods This polymer was incorporated as an ingredient into toothpaste and the fusion process was studied by electron microscopy and by synchrotron-based X-ray tomography microscopy (SRXTM) techniques. Results The data showed that toothpaste, supplemented with the amorphous Ca-polyP microparticles (aCa-polyP-MP), not only reseals tooth defects on enamel, like carious lesions, and dentin, including exposed dentinal tubules, but also has the potential to ind…

Materials sciencebusiness.product_categorychemistry.chemical_element02 engineering and technologyCalcium03 medical and health scienceschemistry.chemical_compound0302 clinical medicinestomatognathic systemBiomimeticsPolyphosphatesDentinmedicineDentifriceGeneral Materials ScienceDental EnamelGeneral DentistryToothpasteEnamel paintPolyphosphateTooth surface030206 dentistry021001 nanoscience & nanotechnologystomatognathic diseasesDentinal Tubulemedicine.anatomical_structurechemistryMechanics of Materialsvisual_artDentinBiophysicsvisual_art.visual_art_medium0210 nano-technologybusinessToothpastesDental materials : official publication of the Academy of Dental Materials
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Fabrication of a new physiological macroporous hybrid biomaterial/bioscaffold material based on polyphosphate and collagen by freeze-extraction

2020

We describe the fabrication of a new scaffold, an inorganic–organic hybrid biomaterial, consisting of the physiological polymers: the inorganic polymer polyphosphate (polyP), as well as the organic macromolecules collagen and chondroitin sulfate. The polyP polymer is composed of multiple phosphate orthophosphate units linked together by high-energy phosphoanhydride bonds. Chondroitin sulfate has been included due to its hydrogel-forming properties. In the presence of Ca2+ ions, the randomly coiled polyP reorganizes together with collagen and chondroitin sulfate to linear molecules which undergo hardening. This scaffold is deposited as amorphous Ca–polyP nanoparticles (size ≈20–40 nm large) …

0301 basic medicinechemistry.chemical_classificationInorganic polymerScaffoldMaterials sciencePolyphosphateBiomedical EngineeringNanoparticleBiomaterial02 engineering and technologyGeneral ChemistryGeneral MedicinePolymer021001 nanoscience & nanotechnology03 medical and health scienceschemistry.chemical_compound030104 developmental biologyBiochemistrychemistryBiophysicsGeneral Materials ScienceChondroitin sulfate0210 nano-technologyMacromoleculeJournal of Materials Chemistry B
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Polyphosphate Reverses the Toxicity of the Quasi-Enzyme Bleomycin on Alveolar Endothelial Lung Cells In Vitro

2021

Simple Summary Bleomycin (BLM) is a medication introduced used to treat various types of cancer, including testicular cancer, ovarian cancer, and Hodgkin’s disease. Its most serious side effect is pulmonary fibrosis and impaired lung function. Using A549 human lung cells it is shown that, in parallel to an increased cell toxicity and DNA damage, BLM causes a marked enlargement of the cell nucleus. This effect is abolished by inorganic polyphosphate (polyP), if this physiological polymer is administered together with BLM. The detoxification of BLM is–most likely–caused by the upregulation of the gene encoding the BLM hydrolase which inactivates BLM in vitro and in vivo. This study contribute…

0301 basic medicinecongenital hereditary and neonatal diseases and abnormalitiesCancer ResearchDNA damageBleomycinlcsh:RC254-282Article03 medical and health scienceschemistry.chemical_compound0302 clinical medicineanti-SARS-CoV-2 activityDownregulation and upregulationprevention of fibrosischemistry.chemical_classificationbleomycinpulmonary fibrosisurogenital systemChemistryCell growthCOVID-19nutritional and metabolic diseasespolyphosphatelcsh:Neoplasms. Tumors. Oncology. Including cancer and carcinogensMolecular biologyIn vitroChromatin030104 developmental biologyEnzymeOncology030220 oncology & carcinogenesisToxicityCancers
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The inorganic polymer, polyphosphate, blocks binding of SARS-CoV-2 spike protein to ACE2 receptor at physiological concentrations

2020

Graphical abstract The inorganic physiological polymer, polyphosphate, blocks binding of SARS-CoV-2 spike protein to ACE2 receptor at physiological concentrations. This discovery proposes polyphosphate as a new member of the host's antiviral innate immune defense.

Models Molecular0301 basic medicineAntiviral AgentsBiochemistryArticle03 medical and health scienceschemistry.chemical_compound0302 clinical medicinePolyphosphatesPolyphosphateHuman Umbilical Vein Endothelial Cellsotorhinolaryngologic diseasesHumansPlateletReceptorneoplasmsPharmacologychemistry.chemical_classificationBinding assayInnate immune systemSARS-CoV-2 spike S-proteinLigand binding assayPolyphosphateCOVID-19pathological conditions signs and symptomsdigestive system diseasesCOVID-19 Drug TreatmentAmino acidsurgical procedures operative030104 developmental biologyEnzymechemistryBiochemistry030220 oncology & carcinogenesisSpike Glycoprotein CoronavirusNanoparticlesAlkaline phosphataseAngiotensin-Converting Enzyme 2Protein BindingReceptors CoronavirusBiochemical Pharmacology
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Dissection of the structure-forming activity from the structure-guiding activity of silicatein: a biomimetic molecular approach to print optical fibe…

2020

Silicateins, a group of proteins forming the proteinaceous axial filaments of the inorganic biosilica spicules of the siliceous sponges, are unique in their dual function to exhibit both structure-guiding (providing the structural platform for the biosilica product) and structure-forming activities (enzymatic function: biosilica synthesis from ortho-silicate). The primary translation product of the silicatein gene comprises a signal peptide, a pro-peptide and, separated by an autocatalytic cleavage site glutamine/aspartic acid [Q/D], the sequence of the mature silicatein protein. In order to dissect the biocatalytic, structure-forming activity of silicatein from its structure-guiding functi…

Signal peptidechemistry.chemical_classificationbiologyBiomedical EngineeringWild typeSubstrate (chemistry)Sequence (biology)General ChemistryGeneral MedicineCleavage (embryo)biology.organism_classificationSuberites domunculaEnzymeBiochemistrychemistryAspartic acidGeneral Materials ScienceJournal of Materials Chemistry B
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Uptake of polyphosphate microparticles in vitro (SaOS-2 and HUVEC cells) followed by an increase of the intracellular ATP pool size

2017

Recently two approaches were reported that addressed a vitally important problem in regenerative medicine, i. e. the successful treatment of wounds even under diabetic conditions. Accordingly, these studies with diabetic rabbits [Sarojini et al. PLoS One 2017, 12(4):e0174899] and diabetic mice [Müller et al. Polymers 2017, 9, 300] identified a novel (potential) target for the acceleration of wound healing in diabetes. Both studies propose a raise of the intracellular metabolic energy status via exogenous administration either of ATP, encapsulated into lipid vesicles, or of polyphosphate (polyP) micro-/nanoparticles. Recently this physiological polymer, polyP, was found to release metabolic …

0301 basic medicineConfocal MicroscopyBioenergeticsPhysiologyPolymerslcsh:Medicine02 engineering and technologyTrifluoperazineBiochemistryAdenosine TriphosphateEndocrinologyPolyphosphatesSpectroscopy Fourier Transform InfraredMedicine and Health Scienceslcsh:ScienceStainingMicroscopySecretory PathwayMultidisciplinaryChemistryLight MicroscopyCell Staining021001 nanoscience & nanotechnologyEndocytosisMicrospheres3. Good healthCell biologyChemistryMacromoleculesCell ProcessesPhysical SciencesRabbits0210 nano-technologyIntracellularResearch Articlemedicine.drugEndocrine DisordersMaterials by StructureMaterials ScienceBioenergeticsResearch and Analysis MethodsEndocytosisCell Line03 medical and health sciencesTissue RepairDiabetes Mellitusotorhinolaryngologic diseasesmedicineAnimalsHumansCalcium metabolismWound Healinglcsh:RSpectrometry X-Ray EmissionBiology and Life SciencesCell BiologyPolymer Chemistrydigestive system diseasesIn vitroMetabolism030104 developmental biologySpecimen Preparation and TreatmentCell cultureMetabolic DisordersMicroscopy Electron ScanningCalciumlcsh:QEnergy MetabolismPhysiological ProcessesWound healingConfocal Laser MicroscopyPowder DiffractionPLOS ONE
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The biomaterial polyphosphate blocks stoichiometric binding of the SARS-CoV-2 S-protein to the cellular ACE2 receptor

2020

The effect of the polyanionic polymer of inorganic polyphosphate (polyP) involved in innate immunity on the binding of the receptor-binding domain (RBD) of the SARS-CoV-2 spike protein to the cellular ACE2 receptor was studied. The RBD surface comprises a basic amino acid stretch of four arginine residues which interact with the physiological polyP (polyP40) and polyP3. Subsequently, the interaction of RBD with ACE2 is sensitively inhibited. After the chemical modification of arginine, an increased inhibition by polyP, at a 1 : 1 molar ratio (polyP : RBP), is measured already at 0.1 μg mL−1. Heparin was ineffective. The results suggest a potential therapeutic benefit of polyP against SARS-C…

ArgininePolymersBiomedical EngineeringAntiviral Agents03 medical and health scienceschemistry.chemical_compound0302 clinical medicinePolyphosphatesotorhinolaryngologic diseasesmedicineHumansGeneral Materials ScienceReceptor030304 developmental biologychemistry.chemical_classification0303 health sciencesInnate immune systemBinding SitesChemistryPolyphosphateBiomaterialChemical modificationHeparinPolyelectrolytesdigestive system diseases3. Good healthAmino acidMolecular Docking SimulationBiochemistry030220 oncology & carcinogenesisSpike Glycoprotein CoronavirusAngiotensin-Converting Enzyme 2medicine.drugProtein BindingBiomaterials Science
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In Situ Polyphosphate Nanoparticle Formation in Hybrid Poly(vinyl alcohol)/Karaya Gum Hydrogels: A Porous Scaffold Inducing Infiltration of Mesenchym…

2018

Abstract The preparation and characterization of a porous hybrid cryogel based on the two organic polymers, poly(vinyl alcohol) (PVA) and karaya gum (KG), into which polyphosphate (polyP) nanoparticles have been incorporated, are described. The PVA/KG cryogel is prepared by intermolecular cross‐linking of PVA via freeze‐thawing and Ca2+‐mediated ionic gelation of KG to form stable salt bridges. The incorporation of polyP as amorphous nanoparticles with Ca2+ ions (Ca‐polyP‐NP) is achieved using an in situ approach. The polyP constituent does not significantly affect the viscoelastic properties of the PVA/KG cryogel that are comparable to natural soft tissue. The exposure of the Ca‐polyP‐NP w…

Vinyl alcoholGeneral Chemical EngineeringGeneral Physics and AstronomyMedicine (miscellaneous)Nanoparticle02 engineering and technologykaraya gum010402 general chemistry01 natural sciencesBiochemistry Genetics and Molecular Biology (miscellaneous)chemistry.chemical_compoundhuman mesenchymal stem cellsotorhinolaryngologic diseasesKaraya GumGeneral Materials Sciencechemistry.chemical_classificationcoacervateCoacervateintegumentary systemFull PaperChemistryPolyphosphateMesenchymal stem cellGeneral EngineeringPolymerFull Papers021001 nanoscience & nanotechnologydigestive system diseases0104 chemical sciencesChemical engineeringSelf-healing hydrogelsnanoparticles0210 nano-technologyinorganic polyphosphateAdvanced Science
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Role of ATP during the initiation of microvascularization: acceleration of an autocrine sensing mechanism facilitating chemotaxis by inorganic polyph…

2018

The in vitro tube formation assay with human umbilical vein endothelial cells (HUVEC) was applied to identify the extra- and intracellular sources of metabolic energy/ATP required for cell migration during the initial stage of microvascularization. Extracellularly, the physiological energy-rich polymer, inorganic polyphosphate (polyP), applied as biomimetic amorphous calcium polyP microparticles (Ca-polyP-MP), is functioning as a substrate for ATP generation most likely via the combined action of the alkaline phosphatase (ALP) and the adenylate kinase (AK). The linear Ca-polyP-MP with a size of 40 phosphate units, close to the polyP in the acidocalcisomes in the blood platelets, were found …

0301 basic medicineOligomycinAdenylate kinaseNeovascularization PhysiologicBiochemistry03 medical and health scienceschemistry.chemical_compound0302 clinical medicineAdenosine TriphosphateX-Ray DiffractionPolyphosphatesSpectroscopy Fourier Transform InfraredExtracellularHuman Umbilical Vein Endothelial CellsHumansGlycolysisMolecular BiologyTube formationATP synthasebiologyChemistryApyraseAdenylate Kinase (AK) ; Alkaline Phosphatase (ALP) ; ATP ; F0F1-ATP synthase ; inorganic polyphosphate ; microvascularization ; tube formation ; Human Umbilical Vein Endothelial Cells (HUVEC) ; nano/microparticles ; chemotaxis ; autocrine sensing.ChemotaxisCell BiologyCell biologyAutocrine Communication030104 developmental biology030220 oncology & carcinogenesisMicrovesselsbiology.proteinIntracellular
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Amplified morphogenetic and bone forming activity of amorphous versus crystalline calcium phosphate/polyphosphate.

2020

Amorphous Ca-phosphate (ACP) particles stabilized by inorganic polyphosphate (polyP) were prepared by co-precipitation of calcium and phosphate in the presence of polyP (15% [w/w]). These hybrid nanoparticles showed no signs of crystallinity according to X-ray diffraction analysis, in contrast to the particles obtained at a lower (5% [w/w]) polyP concentration or to hydroxyapatite. The ACP/15% polyP particles proved to be a suitable matrix for cell growth and attachment and showed pronounced osteoblastic and vasculogenic activity in vitro. They strongly stimulated mineralization of the human osteosarcoma cell line SaOS-2, as well as cell migration/microvascularization, as demonstrated in th…

Calcium PhosphatesBone Regeneration0206 medical engineeringBiomedical Engineeringchemistry.chemical_element02 engineering and technologyMatrix (biology)CalciumBone tissueBiochemistryBone and BonesBiomaterialschemistry.chemical_compoundPolyphosphatesmedicineAnimalsBone regenerationMolecular BiologyTube formationPolyphosphateGeneral Medicine021001 nanoscience & nanotechnologyPhosphate020601 biomedical engineeringAmorphous calcium carbonatemedicine.anatomical_structureDurapatitechemistryBiophysicsRabbits0210 nano-technologyBiotechnologyActa biomaterialia
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Modular Small Diameter Vascular Grafts with Bioactive Functionalities.

2015

We report the fabrication of a novel type of artificial small diameter blood vessels, termed biomimetic tissue-engineered blood vessels (bTEBV), with a modular composition. They are composed of a hydrogel scaffold consisting of two negatively charged natural polymers, alginate and a modified chitosan, N,O-carboxymethyl chitosan (N,O-CMC). Into this biologically inert scaffold two biofunctionally active biopolymers are embedded, inorganic polyphosphate (polyP) and silica, as well as gelatin which exposes the cell recognition signal, Arg-Gly-Asp (RGD). These materials can be hardened by exposure to Ca(2+) through formation of Ca(2+) bridges between the polyanions, alginate, N,O-CMC, and polyP…

food.ingredientAlginateslcsh:MedicineBiocompatible Materialsmacromolecular substancesengineering.materialGelatinChitosanchemistry.chemical_compoundCalcium ChloridefoodTissue engineeringGlucuronic AcidBlood vessel prosthesisPolyphosphatesElastic ModulusTensile StrengthAbsorbable ImplantsMaterials TestingHuman Umbilical Vein Endothelial CellsHumanslcsh:ScienceBlood CoagulationCell Line Transformedchemistry.chemical_classificationChitosanMultidisciplinaryTissue EngineeringTissue ScaffoldsHexuronic Acidslcsh:Rtechnology industry and agricultureBiomaterialEndothelial CellsHydrogelsPolymerSilicon DioxideBlood Vessel ProsthesischemistrySelf-healing hydrogelsengineeringlcsh:QVascular GraftingBiopolymerOligopeptidesBiomedical engineeringResearch ArticlePloS one
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Biocalcite and Carbonic Acid Activators

2017

Based on evolution of biomineralizing systems and energetic considerations, there is now compelling evidence that enzymes play a driving role in the formation of the inorganic skeletons from the simplest animals, the sponges, up to humans. Focusing on skeletons based on calcium minerals, the principle enzymes involved are the carbonic anhydrase (formation of the calcium carbonate-based skeletons of many invertebrates like the calcareous sponges, as well as deposition of the calcium carbonate bioseeds during human bone formation) and the alkaline phosphatase (providing the phosphate for bone calcium phosphate-hydroxyapatite formation). These two enzymes, both being involved in human bone for…

0301 basic medicineCarbonic acidchemistry.chemical_classificationchemistry.chemical_elementCalciumBiologyPhosphateAmorphous calcium carbonate03 medical and health scienceschemistry.chemical_compound030104 developmental biologyEnzymeCalcium carbonatechemistryBiochemistryCarbonic anhydrasebiology.proteinCalcareous
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Rebalancing β-Amyloid-Induced Decrease of ATP Level by Amorphous Nano/Micro Polyphosphate: Suppression of the Neurotoxic Effect of Amyloid β-Protein …

2017

Morbus Alzheimer neuropathology is characterized by an impaired energy homeostasis of brain tissue. We present an approach towards a potential therapy of Alzheimer disease based on the high-energy polymer inorganic polyphosphate (polyP), which physiologically occurs both in the extracellular and in the intracellular space. Rat pheochromocytoma (PC) 12 cells, as well as rat primary cortical neurons were exposed to the Alzheimer peptide Aβ25-35. They were incubated in vitro with polyphosphate (polyP); ortho-phosphate was used as a control. The polymer remained as Na+ salt; or complexed in a stoichiometric ratio to Ca2+ (Na-polyP[Ca2+]); or was processed as amorphous Ca-polyP microparticles (C…

Calcium Phosphates0301 basic medicineIntracellular SpacePeptidelcsh:Chemistrychemistry.chemical_compoundAdenosine TriphosphateX-Ray DiffractionPolyphosphatesSpectroscopy Fourier Transform Infraredprimary rat cortex neuronslcsh:QH301-705.5SpectroscopyCerebral CortexNeuronschemistry.chemical_classificationmicroparticlesChemistryβ-amyloidGeneral Medicinepathological conditions signs and symptomsComputer Science Applicationsneurotoxic effectsurgical procedures operativeBiochemistryAlzheimer's diseaseIntracellularCell Survivalβ-amyloid; calcium polyphosphate; microparticles; neurotoxic effect; adenosine triphosphate level; PC12 cells; primary rat cortex neuronsArticleCatalysisInorganic Chemistry03 medical and health sciencesmedicineExtracellularotorhinolaryngologic diseasesAnimalsPhysical and Theoretical ChemistryMolecular BiologyneoplasmsAmyloid beta-PeptidesPolyphosphateOrganic ChemistryNeurotoxicityPC12 cellsmedicine.diseaseIn vitrodigestive system diseasesRats030104 developmental biologylcsh:Biology (General)lcsh:QD1-999BiophysicsNanoparticlesAdenosine triphosphatecalcium polyphosphateadenosine triphosphate levelInternational Journal of Molecular Sciences
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An unexpected biomaterial against SARS-CoV-2: Bio-polyphosphate blocks binding of the viral spike to the cell receptor.

2021

Graphical abstract

PopulationSpike proteinmedicine.disease_causeVirusInorganic polyphosphate03 medical and health scienceschemistry.chemical_compoundResearch (Mid Blue)0302 clinical medicineNanoparticleViral envelopemedicineGeneral Materials ScienceReceptoreducation030304 developmental biologyCoronavirusComputingMethodologies_COMPUTERGRAPHICSHost cell surfacechemistry.chemical_classification0303 health scienceseducation.field_of_studySARS-CoV-2Mechanical EngineeringPolyphosphateCondensed Matter Physics3. Good healthCell biologyAmino acidchemistryMechanics of Materials030220 oncology & carcinogenesisPolyanionMaterials today (Kidlington, England)
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Engineering a morphogenetically active hydrogel for bioprinting of bioartificial tissue derived from human osteoblast-like SaOS-2 cells.

2014

Abstract Sodium alginate hydrogel, stabilized with gelatin, is a suitable, biologically inert matrix that can be used for encapsulating and 3D bioprinting of bone-related SaOS-2 cells. However, the cells, embedded in this matrix, remain in a non-proliferating state. Here we show that addition of an overlay onto the bioprinted alginate/gelatine/SaOS-2 cell scaffold, consisting of agarose and the calcium salt of polyphosphate [polyP·Ca 2+ -complex], resulted in a marked increase in cell proliferation . In the presence of 100 μ m polyP·Ca2+ -complex, the cells proliferate with a generation time of approximately 47–55 h. In addition, the hardness of the alginate/gelatin hydrogel substantially i…

food.ingredientMaterials scienceAlginatesBiophysicschemistry.chemical_elementBioengineeringBiocompatible MaterialsCalciumGelatinHydrogel Polyethylene Glycol Dimethacrylatelaw.inventionCell LineBiomaterialschemistry.chemical_compoundfoodTissue engineeringGlucuronic AcidlawHardnessPolyphosphatesElastic ModulusmedicineHumansSaos-2 cellsCell Proliferation3D bioprintingOsteoblastsTissue EngineeringTissue ScaffoldsPolyphosphateHexuronic AcidsBioprintingOsteoblastmedicine.anatomical_structurechemistryMechanics of MaterialsCeramics and CompositesBiophysicsAgaroseGelatinBiomedical engineeringBiomaterials
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Biologization of Allogeneic Bone Grafts with Polyphosphate: A Route to a Biomimetic Periosteum

2019

PeriosteumPathologymedicine.medical_specialtyMaterials sciencePolyphosphate610 MedizinBone healingCondensed Matter PhysicsElectronic Optical and Magnetic MaterialsBiomaterialschemistry.chemical_compoundmedicine.anatomical_structurechemistry610 Medical sciencesElectrochemistrymedicineAutogenous boneAdvanced Functional Materials
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Biomimetic Alginate/Gelatin Cross-Linked Hydrogels Supplemented with Polyphosphate for Wound Healing Applications

2020

In the present study, the fabrication of a biomimetic wound dressing that mimics the extracellular matrix, consisting of a hydrogel matrix composed of non-oxidized and periodate-oxidized marine alginate, was prepared to which gelatin was bound via Schiff base formation. Into this alginate/oxidized-alginate-gelatin hydrogel, polyP was stably but reversibly integrated by ionic cross-linking with Zn2+ ions. Thereby, a soft hybrid material is obtained, consisting of a more rigid alginate scaffold and porous structures formed by the oxidized-alginate-gelatin hydrogel with ionically cross-linked polyP. Two forms of the Zn-polyP-containing matrices were obtained based on the property of polyP to f…

Keratinocyteszinc ionscell migrationMetal NanoparticlesPharmaceutical ScienceBiocompatible Materials02 engineering and technologyGelatinAnalytical ChemistryExtracellular matrixchemistry.chemical_compoundBiomimeticsCell MovementPolyphosphatesSpectroscopy Fourier Transform InfraredDrug DiscoveryalginateSkinchemistry.chemical_classificationcoacervate0303 health sciencesCoacervateTissue ScaffoldsHydrogelsPolymerHydrogen-Ion Concentration021001 nanoscience & nanotechnologyExtracellular MatrixZincChemistry (miscellaneous)Self-healing hydrogelsMolecular Medicine0210 nano-technologyHybrid materialPorosityinorganic polyphosphatefood.ingredientionic cross-linkingAlginatesCell Survivalperiodate oxidationArticlegelatinlcsh:QD241-44103 medical and health sciencesfoodlcsh:Organic chemistryHumansPhysical and Theoretical Chemistry030304 developmental biologyIonsWound HealingTissue EngineeringPolyphosphateOrganic Chemistryhuman epidermal keratinocytestechnology industry and agricultureChemical engineeringchemistrynanoparticlesEpidermisWound healingMolecules
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Utilization of metabolic energy in treatment of ocular surface disorders: polyphosphate as an energy source for corneal epithelial cell proliferation.

2019

Impaired regeneration of the corneal epithelium, as found in many ocular surface diseases, is a major clinical problem in ophthalmology. We hypothesized that corneal epithelial regeneration can be promoted by the physiological, energy-delivering as well as “morphogenetically active” polymer, inorganic polyphosphate (polyP). Corneal limbal explants (diameter, 4 mm) were cultivated on collagen-coated well plates in the absence or presence of polyP (chain length, ∼40 Pi units; 50 μg ml−1) or human platelet lysate (hp-lysate; 5% v/v). Cell outgrowth and differentiation were analyzed after staining with DRAQ5 (nuclei) and rhodamine phalloidin (cytoskeleton), as well as by environmental scanning …

Cell growthChemistryGeneral Chemical EngineeringRegeneration (biology)CellCell migration02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnologyMast cell01 natural sciencesCell junctiondigestive system diseases0104 chemical sciencesCell biologymedicine.anatomical_structuremedicine0210 nano-technologyEnergy sourceCorneal epitheliumRSC advances
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A Novel Biomimetic Approach to Repair Enamel Cracks/Carious Damages and to Reseal Dentinal Tubules by Amorphous Polyphosphate.

2017

Based on natural principles, we developed a novel toothpaste, containing morphogenetically active amorphous calcium polyphosphate (polyP) microparticles which are enriched with retinyl acetate (“a-polyP/RA-MP”). The spherical microparticles (average size, 550 ± 120 nm), prepared by co-precipitating soluble Na-polyP with calcium chloride and supplemented with retinyl acetate, were incorporated into a base toothpaste at a final concentration of 1% or 10%. The “a-polyP/RA-MP” ingredient significantly enhanced the stimulatory effect of the toothpaste on the growth of human mesenchymal stem cells (MSC). This increase was paralleled by an upregulation of the MSC marker genes for osteoblast differ…

0301 basic medicineMaterials sciencebusiness.product_categoryPolymers and Plasticsenamel cracks/fissuresamorphous polyphosphate microparticles; retinyl acetate; enamel cracks/fissures; Streptococcus mutans; human mesenchymal stem cells; collagen type I; alkaline phosphatasecollagen type IRetinyl acetateArticleStreptococcus mutans03 medical and health scienceschemistry.chemical_compoundhuman mesenchymal stem cells0302 clinical medicinestomatognathic systemDentinmedicineToothpasteretinyl acetateEnamel paintbiologyamorphous polyphosphate microparticles030206 dentistryGeneral ChemistryPeriodontiumTooth enamelbiology.organism_classificationMolecular biologyStreptococcus mutansstomatognathic diseases030104 developmental biologymedicine.anatomical_structureDentinal Tubulechemistryvisual_artvisual_art.visual_art_mediumbusinessalkaline phosphatasebiomaterialsPolymers
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Polyphosphate as a donor of high-energy phosphate for the synthesis of ADP and ATP.

2017

Here, we studied the potential role of inorganic polyphosphate (polyP) as an energy source for ADP and ATP formation in the extracellular space. In SaOS-2 cells, we show that matrix vesicles are released into the extracellular space after incubation with polyP. These vesicles contain both alkaline phosphatase (ALP) and adenylate kinase (AK) activities (mediated by ALPL and AK1 enzymes). Both enzymes translocate to the cell membrane in response to polyP. To distinguish the process(es) of AMP and ADP formation during ALP hydrolysis from the ATP generated via the AK reaction, inhibition studies with the AK inhibitor A(5')P5(5')A were performed. We found that ADP formation in the extracellular …

0301 basic medicineAdenylate kinaseBiologydigestive systemExocytosisCatalysisCell membrane03 medical and health scienceschemistry.chemical_compound0302 clinical medicineAdenosine TriphosphatePolyphosphatesExtracellularmedicineTumor Cells CulturedHumansPhosphorylationchemistry.chemical_classificationATP synthasePolyphosphateAdenylate KinaseCell BiologyAlkaline PhosphataseAdenosine DiphosphateKinetics030104 developmental biologyEnzymemedicine.anatomical_structurechemistryBiochemistry030220 oncology & carcinogenesisbiology.proteinEnergy sourceEnergy MetabolismExtracellular SpaceJournal of cell science
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Morphogenetic (Mucin Expression) as Well as Potential Anti-Corona Viral Activity of the Marine Secondary Metabolite Polyphosphate on A549 Cells

2020

The mucus layer of the nasopharynx and bronchial epithelium has a barrier function against inhaled pathogens such as the coronavirus SARS-CoV-2. We recently found that inorganic polyphosphate (polyP), a physiological, metabolic energy (ATP)-providing polymer released from blood platelets, blocks the binding of the receptor binding domain (RBD) to the cellular ACE2 receptor in vitro. PolyP is a marine natural product and is abundantly present in marine bacteria. Now, we have approached the in vivo situation by studying the effect of polyP on the human alveolar basal epithelial A549 cells in a mucus-like mucin environment. These cells express mucins as well as the ectoenzymes alkaline phospha…

Aquatic OrganismsSecondary MetabolismVirus AttachmentPharmaceutical ScienceAdenylate kinaseRespiratory MucosaMucin 5ACdigestive systemArticle03 medical and health sciences0302 clinical medicinemucinPolyphosphatesDrug Discoveryotorhinolaryngologic diseasesExtracellularHumansReceptorlcsh:QH301-705.5neoplasmsinnate immunityPharmacology Toxicology and Pharmaceutics (miscellaneous)MUC1030304 developmental biologyA549 cellBiological Products0303 health sciencesBacteriaSARS-CoV-2ChemistryCell growthMucin-1MucinCOVID-19polyphosphaterespiratory systemImmunity Innatedigestive system diseasesSARS-CoV-2 spike proteinADKCell biologyATPlcsh:Biology (General)A549 Cells030220 oncology & carcinogenesishydrogelhuman alveolar cellsMarine Drugs
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Transformation of Amorphous Polyphosphate Nanoparticles into Coacervate Complexes: An Approach for the Encapsulation of Mesenchymal Stem Cells.

2018

Inorganic polyphosphate [polyP] has proven to be a promising physiological biopolymer for potential use in regenerative medicine because of its morphogenetic activity and function as an extracellular energy-donating system. Amorphous Ca2+ -polyP nanoparticles [Ca-polyP-NPs] are characterized by a high zeta potential with -34 mV (at pH 7.4). This should contribute to the stability of suspensions of the spherical nanoparticles (radius 94 nm), but make them less biocompatible. The zeta potential decreases to near zero after exposure of the Ca-polyP-NPs to protein/peptide-containing serum or medium plus serum. Electron microscopy analysis reveals that the particles rapidly change into a coacerv…

0301 basic medicineNanoparticle02 engineering and technologyengineering.materialRegenerative Medicinelaw.inventionBiomaterials03 medical and health scienceschemistry.chemical_compoundlawPolyphosphatesotorhinolaryngologic diseasesZeta potentialAnimalsHumansGeneral Materials ScienceCoacervatePolyphosphateMesenchymal stem cellMesenchymal Stem CellsGeneral Chemistry021001 nanoscience & nanotechnologydigestive system diseases3. Good healthAmorphous solidInorganic PyrophosphataseMicroscopy Electronsurgical procedures operative030104 developmental biologychemistryengineeringBiophysicsNanoparticlesBiopolymerElectron microscope0210 nano-technologyBiotechnologySmall (Weinheim an der Bergstrasse, Germany)
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Collagen-inducing biologization of prosthetic material for hernia repair: Polypropylene meshes coated with polyP/collagen

2017

Prostethic mesh material such as nonabsorbable polypropylene used in open and laparoscopic hernia repair are characterized by controllable mechanical properties but may elicit undesirable physiological reactions due to the nonphysiological inert polymer material. We succeeded in developing a biocompatible coating for these meshes, based on a physiological inorganic polymer, polyphosphate (polyP) that is morphogenetically active and used as a metabolic energy source, and a collagen matrix. The polyP/collagen hydrogel material was prepared by a freeze-extraction method, with amorphous Ca-polyP microparticles. Electron microscopy (SEM and REM) studies revealed that the polyP/collagen coats are…

0301 basic medicineMaterials scienceBiomedical Engineering02 engineering and technologyMatrix (biology)engineering.materiallaw.inventionBiomaterials03 medical and health scienceschemistry.chemical_compoundCoatinglawchemistry.chemical_classificationPolypropyleneInorganic polymerMesenchymal stem cellPolymerAnatomy021001 nanoscience & nanotechnology030104 developmental biologychemistryengineeringElectron microscope0210 nano-technologyLayer (electronics)Biomedical engineeringJournal of Biomedical Materials Research Part B: Applied Biomaterials
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The enzyme carbonic anhydrase as an integral component of biogenic Ca-carbonate formation in sponge spicules

2013

The inorganic scaffold of the spicules, the skeletal elements of the calcareous sponges, is formed of calcium carbonate (CaCO3). The growth of the approximately 300-μm large spicules, such as those of the calcareous sponge Sycon raphanus used in the present study, is a rapid process with a rate of about 65 μm/h. The formation of CaCO3 is predominantly carried out by the enzyme carbonic anhydrase (CA). The enzyme from the sponge S. raphanus was isolated and prepared by recombination. The CA-driven deposition of CaCO3 crystallites is dependent on temperature (optimal at 52 °C), the pH value of the reaction assay (7.5/8.0), and the substrate concentration (CO2 and Ca2+). During the initial pha…

Mineralogy010402 general chemistry01 natural sciencesArticleGeneral Biochemistry Genetics and Molecular Biology03 medical and health scienceschemistry.chemical_compoundSponge spiculeSpongeSycon raphanus030304 developmental biologyCalcite0303 health sciencesCarbonic anhydrasebiologyCalcareous spongebiology.organism_classification0104 chemical sciencesSpongeCalcium carbonatechemistryChemical engineeringSycon raphanusCarbonateCalcareous spiculesCrystal formationCalcareousFEBS Open Bio
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Triple-target stimuli-responsive anti-COVID-19 face mask with physiological virus-inactivating agents

2021

Conventional face masks to prevent SARS-CoV-2 transmission are mostly based on a passive filtration principle. Ideally, anti-COVID-19 masks should protect the carrier not only by size exclusion of virus aerosol particles, but also be able to capture and destroy or inactivate the virus. Here we present the proof-of-concept of a filter mat for such a mask, which actively attracts aerosol droplets and kills the virus. The electrospun mats are made of polycaprolactone (PCL) a hydrophilic, functionalizable and biodegradable polyester, into which inorganic polyphosphate (polyP) a physiological biocompatible, biodegradable and antivirally active polymer (chain length, ∼40 Pi units) has been integr…

Size-exclusion chromatographyBiomedical EngineeringNanoparticle02 engineering and technologyDivalent03 medical and health scienceschemistry.chemical_compoundPolyphosphatesHumansGeneral Materials ScienceIon channel030304 developmental biologychemistry.chemical_classification0303 health sciencesLiposomeCoacervateSARS-CoV-2PolyphosphateMasksCOVID-19021001 nanoscience & nanotechnology3. Good healthChemistrychemistryPolycaprolactoneBiophysicsNanoparticles0210 nano-technology
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Amorphous, Smart, and Bioinspired Polyphosphate Nano/Microparticles: A Biomaterial for Regeneration and Repair of Osteo-Articular Impairments In-Situ

2018

Using femur explants from mice as an in vitro model, we investigated the effect of the physiological polymer, inorganic polyphosphate (polyP), on differentiation of the cells of the bone marrow in their natural microenvironment into the osteogenic and chondrogenic lineages. In the form of amorphous Ca-polyP nano/microparticles, polyP retains its function to act as both an intra- and extracellular metabolic fuel and a stimulus eliciting morphogenetic signals. The method for synthesis of the nano/microparticles with the polyanionic polyP also allowed the fabrication of hybrid particles with the bisphosphonate zoledronic acid, a drug used in therapy of bone metastases in cancer patients. The r…

0301 basic medicineBone Regenerationlong bone defects; bone marrow cells; inorganic polyphosphate; microparticles; bisphosphonates; <i>Runx2</i>; <i>Sox9</i>; cathepsin-K; tumor metastases; human mesenchymal stem cellsmedicine.medical_treatmentBiocompatible MaterialsCore Binding Factor Alpha 1 SubunitZoledronic Acidlcsh:ChemistryMiceRunx2OsteogenesisPolyphosphatesFemurlcsh:QH301-705.5tumor metastasesSpectroscopymicroparticlescathepsin-KDiphosphonatesTissue ScaffoldsChemistryImidazolesBiomaterialSOX9 Transcription FactorGeneral MedicineUp-RegulationComputer Science ApplicationsCell biologyRUNX2medicine.anatomical_structureinorganic polyphosphateChondrogenesisSox9medicine.drugArticleCatalysisChondrocyteInorganic Chemistryhuman mesenchymal stem cells03 medical and health sciencesOsteoclastmedicineAnimalsHumansPhysical and Theoretical Chemistrybone marrow cellsbisphosphonatesMolecular BiologyOrganic ChemistryMesenchymal stem cellMesenchymal Stem CellsBisphosphonateRatslong bone defects030104 developmental biologyZoledronic acidlcsh:Biology (General)lcsh:QD1-999Gene Expression RegulationNanoparticlesBone marrowInternational Journal of Molecular Sciences
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Self-Healing Properties of Bioinspired Amorphous CaCO3/Polyphosphate-Supplemented Cement

2020

There is a strong interest in cement additives that are able to prevent or mitigate the adverse effects of cracks in concrete that cause corrosion of the reinforcement. Inorganic polyphosphate (polyP), a natural polymer that is synthesized by bacteria, even those on cement/concrete, can increase the resistance of concrete to progressive damage from micro-cracking. Here we use a novel bioinspired strategy based on polyP-stabilized amorphous calcium carbonate (ACC) to give this material self-healing properties. Portland cement was supplemented with ACC nanoparticles which were stabilized with 10% (w/w) Na&ndash

Materials sciencePortland cementnanoindentationPharmaceutical Science02 engineering and technology010402 general chemistry01 natural sciencesAnalytical ChemistryCorrosionlaw.invention3-point bendinglcsh:QD241-441chemistry.chemical_compoundlcsh:Organic chemistrylawDrug Discoveryself-healingPhysical and Theoretical ChemistryComposite materialCementCalcitePolyphosphateOrganic ChemistrypolyphosphateNanoindentation021001 nanoscience & nanotechnologyAmorphous calcium carbonate0104 chemical sciencesPortland cementsurgical procedures operativechemistryChemistry (miscellaneous)amorphous calcium carbonateHardening (metallurgy)Molecular Medicinemicrocrack formation0210 nano-technologycalciteMolecules
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Effect of bioglass on growth and biomineralization of SaOS-2 cells in hydrogel after 3D cell bioprinting.

2014

We investigated the effect of bioglass (bioactive glass) on growth and mineralization of bone-related SaOS-2 cells, encapsulated into a printable and biodegradable alginate/gelatine hydrogel. The hydrogel was supplemented either with polyphosphate (polyP), administered as polyP • Ca2+-complex, or silica, or as biosilica that had been enzymatically prepared from ortho-silicate by silicatein. These hydrogels, together with SaOS-2 cells, were bioprinted to computer-designed scaffolds. The results revealed that bioglass (nano)particles, with a size of 55 nm and a molar ratio of SiO2 : CaO : P2O5 of 55 : 40 : 5, did not affect the growth of the encapsulated cells. If silica, biosilica, or polyP …

Ceramicsfood.ingredientAlginateslcsh:MedicineSurgical and Invasive Medical ProceduresBiocompatible MaterialsGelatinMineralization (biology)BiochemistryHydrogel Polyethylene Glycol Dimethacrylatelaw.inventionCell Linechemistry.chemical_compoundfoodCalcification PhysiologicTissue engineeringlawMedicine and Health SciencesHumansBiomechanicsParticle Sizelcsh:ScienceSaos-2 cellsCell ProliferationMultidisciplinaryBone DevelopmentTissue EngineeringTissue ScaffoldsChemistryPolyphosphatelcsh:RBioprintingBiology and Life SciencesChemical engineeringBioactive glassSelf-healing hydrogelsGelatinNanoparticleslcsh:QBiomineralizationResearch ArticlePLoS ONE
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3D printing of hybrid biomaterials for bone tissue engineering: Calcium-polyphosphate microparticles encapsulated by polycaprolactone.

2017

Abstract Here we describe the formulation of a morphogenetically active bio-ink consisting of amorphous microparticles (MP) prepared from Ca 2+ and the physiological inorganic polymer, polyphosphate (polyP). Those MP had been fortified by mixing with poly-e-caprolactone (PCL) to allow 3D-bioprinting. The resulting granular PCL/Ca-polyP-MP hybrid material, liquefied by short-time heating to 100 °C, was used for the 3D-printing of tissue-like scaffolds formed by strands with a thickness of 400 µm and a stacked architecture leaving ≈0.5 mm 2 -sized open holes enabling cell migration. The printed composite scaffold turned out to combine suitable biomechanical properties (Young’s modulus of 1.60…

0301 basic medicineScaffoldMaterials sciencePolyestersBiomedical EngineeringNanoparticle02 engineering and technologyBiochemistryBone and BonesBiomaterials03 medical and health scienceschemistry.chemical_compoundCell Line TumorHumansMolecular BiologySaos-2 cellsInorganic polymerTissue EngineeringTissue ScaffoldsRegeneration (biology)BiomaterialGeneral Medicine021001 nanoscience & nanotechnology030104 developmental biologyDurapatitechemistryPolycaprolactonePrinting Three-Dimensional0210 nano-technologyHybrid materialBiotechnologyBiomedical engineeringActa biomaterialia
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Caged Dexamethasone/Quercetin Nanoparticles, Formed of the Morphogenetic Active Inorganic Polyphosphate, are Strong Inducers of MUC5AC

2021

Inorganic polyphosphate (polyP) is a widely distributed polymer found from bacteria to animals, including marine species. This polymer exhibits morphogenetic as well as antiviral activity and releases metabolic energy after enzymatic hydrolysis also in human cells. In the pathogenesis of the coronavirus disease 2019 (COVID-19), the platelets are at the frontline of this syndrome. Platelets release a set of molecules, among them polyP. In addition, the production of airway mucus, the first line of body defense, is impaired in those patients. Therefore, in this study, amorphous nanoparticles of the magnesium salt of polyP (Mg-polyP-NP), matching the size of the coronavirus SARS-CoV-2, were pr…

MetaboliteAnti-Inflammatory AgentsPharmaceutical SciencedexamethasoneMucin 5ACArticleAntioxidantsquercetin03 medical and health scienceschemistry.chemical_compound0302 clinical medicinemucinPolyphosphateshuman alveolar basal epithelial A549 cellsDrug DiscoveryHumansMagnesiumParticle Sizelcsh:QH301-705.5Pharmacology Toxicology and Pharmaceutics (miscellaneous)030304 developmental biologychemistry.chemical_classificationA549 cell0303 health sciencesReactive oxygen speciesSARS-CoV-2PolyphosphateMucinMucinsCOVID-19polyphosphateFree Radical ScavengersPlantsMucusATPlcsh:Biology (General)Gene Expression RegulationchemistryBiochemistryA549 Cells030220 oncology & carcinogenesisRespiratory epitheliumnanoparticlesReactive Oxygen SpeciesQuercetinMarine Drugs
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A new printable and durable N,O-carboxymethyl chitosan–Ca2+–polyphosphate complex with morphogenetic activity

2015

Biomimetic materials have been gaining increasing importance in tissue engineering since they may provide regenerative alternatives to the use of autologous tissues for transplantation. In the present study, we applied for bioprinting of a functionalized three-dimensional template, N,O-carboxymethyl chitosan (N,O-CMC), mimicking the physiological extracellular matrix. This polymer, widely used in tissue engineering, has been provided with functional activity by integration of polyphosphate (polyP), an osteogenically acting natural polymer. The two polymers, N,O-CMC and polyP, are linked together via Ca2+ bridges. This N,O-CMC + polyP material was proven to be printable and durable. The N,O-…

ScaffoldMaterials sciencePolyphosphatetechnology industry and agricultureBiomedical Engineeringmacromolecular substancesGeneral ChemistryGeneral MedicineAnatomyTransplantationExtracellular matrixChitosanchemistry.chemical_compoundchemistryTissue engineeringBiophysicsGeneral Materials ScienceHybrid materialBiomineralizationJournal of Materials Chemistry B
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3D bioprinting of tissue units with mesenchymal stem cells, retaining their proliferative and differentiating potential, in polyphosphate-containing …

2021

Abstract The three-dimensional (3D)-printing processes reach increasing recognition as important fabrication techniques to meet the growing demands in tissue engineering. However, it is imperative to fabricate 3D tissue units, which contain cells that have the property to be regeneratively active. In most bio-inks, a metabolic energy-providing component is missing. Here a formulation of a bio-ink is described, which is enriched with polyphosphate (polyP), a metabolic energy providing physiological polymer. The bio-ink composed of a scaffold (N,O-carboxymethyl chitosan), a hydrogel (alginate) and a cell adhesion matrix (gelatin) as well as polyP substantially increases the viability and the …

Biomedical EngineeringBioengineeringMatrix (biology)Biochemistrylaw.inventionBiomaterialsSOX2Tissue engineeringPolyphosphateslawCell adhesion3D bioprintingTissue EngineeringTissue ScaffoldsChemistryMesenchymal stem cellBioprintingMesenchymal Stem CellsGeneral MedicineCell biologybody regionsRUNX2Printing Three-DimensionalAlkaline phosphataseInkcirculatory and respiratory physiologyBiotechnologyBiofabrication
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Multicolor 3D Printing of Complex Intracranial Tumors in Neurosurgery.

2020

Three-dimensional (3D) printing technologies offer the possibility of visualizing patient-specific pathologies in a physical model of correct dimensions. The model can be used for planning and simulating critical steps of a surgical approach. Therefore, it is important that anatomical structures such as blood vessels inside a tumor can be printed to be colored not only on their surface, but throughout their whole volume. During simulation this allows for the removal of certain parts (e.g., with a high-speed drill) and revealing internally located structures of a different color. Thus, diagnostic information from various imaging modalities (e.g., CT, MRI) can be combined in a single compact …

Models AnatomicSurgical approachGeneral Immunology and Microbiologybusiness.industryComputer sciencePetrous ApexBrain NeoplasmsGeneral Chemical EngineeringGeneral NeuroscienceAnatomical structures3D printingColorImaging dataGeneral Biochemistry Genetics and Molecular BiologyNeurosurgical ProceduresImaging Three-DimensionalColoredPrinting Three-DimensionalHumansSegmentationComputer visionArtificial intelligencebusinessVolume (compression)Journal of visualized experiments : JoVE
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The morphogenetically active polymer, inorganic polyphosphate complexed with GdCl 3 , as an inducer of hydroxyapatite formation in vitro

2015

Inorganic polyphosphate (polyP) is a physiological polymer composed of tens to hundreds of phosphate units linked together via phosphoanhydride bonds. Here we compared the biological activity of polyP (chain length of 40 phosphate units), complexed with Gd(3+) (polyP·Gd), with the one caused by polyP (as calcium salt) and by GdCl3 alone, regarding their potencies to induce hydroxyapatite (HA) formation in SaOS-2 cells in vitro. The three compounds, GdCl3, polyP and polyP·Gd were found to be non-toxic at concentrations up to at least 30μM. Selecting a low, 5μM, concentration it was found that polyP·Gd significantly induced HA formation, as determined by Alizarin Red S staining and by quantit…

0301 basic medicinePolymerschemistry.chemical_elementGadolinium02 engineering and technologyCalciumBiochemistry03 medical and health scienceschemistry.chemical_compoundPolyphosphatesCell Line Tumorotorhinolaryngologic diseasesHumansneoplasmsSaos-2 cellsPharmacologychemistry.chemical_classificationDose-Response Relationship DrugChemistryPolyphosphateBiological activitypathological conditions signs and symptoms021001 nanoscience & nanotechnologyPhosphatedigestive system diseasesIn vitroDurapatitesurgical procedures operative030104 developmental biologyEnzymeBiochemistryAlkaline phosphatase0210 nano-technologyBiochemical Pharmacology
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A biomimetic approach to ameliorate dental hypersensitivity by amorphous polyphosphate microparticles.

2016

Abstract Objective Dental hypersensitivity has become one of the most common and most costly diseases in the world, even though those maladies are very rarely life threatening. Using amorphous microparticles, fabricated from the natural polymer (polyphosphate), we intend to reseal the dentinal tubules exposed and reduce by that the hypersensitivity. Methods Amorphous microparticles (termed aCa-polyP-MP) were prepared from Na-polyphosphate (polyP) and CaCl 2 , then incubated with human teeth. The potential of the microparticles to plug the dentinal tubules was determined by microscopic and spectroscopic techniques. Results We demonstrate that, in contrast to polyP, the aCa-polyP-MP efficient…

Materials scienceScanning electron microscopeDentistry02 engineering and technology03 medical and health scienceschemistry.chemical_compound0302 clinical medicinestomatognathic systemBiomimeticsPolyphosphatesotorhinolaryngologic diseasesDentinmedicineHumansGeneral Materials ScienceGeneral DentistryDentin SensitivityEnamel paintbusiness.industryPolyphosphateTooth surface030206 dentistryDentin Sensitivity021001 nanoscience & nanotechnologydigestive system diseasesstomatognathic diseasessurgical procedures operativeOdontoblastmedicine.anatomical_structureDentinal TubulechemistryMechanics of Materialsvisual_artDentinvisual_art.visual_art_mediumBiophysicsMicroscopy Electron Scanning0210 nano-technologybusinessDental materials : official publication of the Academy of Dental Materials
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Artificial cartilage bio-matrix formed of hyaluronic acid and Mg2+-polyphosphate.

2016

Here we show that inorganic polyphosphate (polyP), a polyanionic metabolic regulator consisting of multiple phosphate residues linked by energy-rich phosphoanhydride bonds, is present in the synovial fluid. In a biomimetic approach, to enhance cartilage synthesis and regeneration, we prepared amorphous polyP microparticles with Mg2+ as counterions. The particles were characterised by X-ray diffraction (XRD), energy-dispersive X-ray (EDX) and Fourier transformed infrared spectroscopic (FTIR) analyses. Similar particles were obtained after addition of Mg2+ ions to a solution containing hyaluronic acid, as a major component of the synovial fluid, and soluble Na-polyP. The viscous paste-like ma…

magnesium polyphosphatelcsh:Diseases of the musculoskeletal systemlcsh:Surgeryregenerative medicine02 engineering and technologyCartilage metabolism01 natural sciencesChondrocyteExtracellular matrixchemistry.chemical_compoundCollagen Type IIIChondrocytesX-Ray DiffractionPolyphosphatesHyaluronic acidSpectroscopy Fourier Transform InfraredSynovial FluidmedicineCell AdhesionSynovial fluidHumansMagnesiumRNA MessengerHyaluronic Acidmicroparticles010405 organic chemistryCartilagePolyphosphateSpectrometry X-Ray EmissionSOX9 Transcription Factorlcsh:RD1-811021001 nanoscience & nanotechnology0104 chemical sciencesExtracellular MatrixUp-Regulationosteoarthritismedicine.anatomical_structureCartilageCollagen Type IIIchemistrytissue engineeringBiophysicsMicroscopy Electron Scanninglcsh:RC925-9350210 nano-technologyBiomedical engineering
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Restoration of Impaired Metabolic Energy Balance (ATP Pool) and Tube Formation Potential of Endothelial Cells under “high glucose”, Diabetic Conditio…

2017

Micro-vascularization is a fast, energy-dependent process that is compromised by elevated glucose concentrations such as in diabetes mellitus disease. Here, we studied the effect of the physiological bioinorganic polymer, polyphosphate (polyP), on the reduced ATP content and impaired function of endothelial cells cultivated under "high glucose" (35 mM diabetes mellitus conditions) concentrations. This high-energy biopolymer has been shown to provide a source of metabolic energy, stored in its phosphoanhydride bonds. We show that exposure of human umbilical vein endothelial cells (HUVEC cells) to "high glucose" levels results in reduced cell viability, increased apoptotic cell death, and a d…

0301 basic medicinemedicine.medical_specialtyPolymers and PlasticsCelltube formationATP poolUmbilical veinArticlelcsh:QD241-44103 medical and health sciencesHUVEClcsh:Organic chemistryDiabetes mellitusInternal medicinemedicineViability assayglucoseTube formationdiabetesChemistryapoptosispolyphosphateGeneral Chemistrymedicine.diseaseIn vitroendothelial cellsATP pool; diabetes; tube formation; apoptosis; glucose; polyphosphate; endothelial cells; HUVEC030104 developmental biologyEndocrinologymedicine.anatomical_structureBiochemistryApoptosisIntracellularPolymers; Volume 9; Issue 11; Pages: 575
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A physiologically active interpenetrating collagen network that supports growth and migration of epidermal keratinocytes: zinc-polyP nanoparticles in…

2020

The distinguished property of the physiological polymer, inorganic polyphosphate (polyP), is to act as a bio-intelligent material which releases stimulus-dependent metabolic energy to accelerate wound healing. This characteristic is based on the bio-imitating feature of polyP to be converted, upon exposure to peptide-containing body fluids, from stable amorphous nanoparticles to a physiologically active and energy-delivering coacervate phase. This property of polyP has been utilized to fabricate a wound mat consisting of compressed collagen supplemented with amorphous polyP particles, formed from the inorganic polyanion with an over-stoichiometric ratio of zinc ions. The proliferation and t…

KeratinocytesBiomedical EngineeringNanoparticleMotilityHuman skin03 medical and health scienceschemistry.chemical_compound0302 clinical medicineCell MovementPolyphosphatesCompression BandagesCollagen networkotorhinolaryngologic diseasesHumansGeneral Materials Science030304 developmental biologyCell Proliferation0303 health sciencesWound HealingCoacervateCell growthChemistryPolyphosphateGeneral ChemistryGeneral MedicinePolyelectrolytesdigestive system diseasesZinc030220 oncology & carcinogenesisBiophysicsNanoparticlesCollagenEpidermisWound healingJournal of materials chemistry. B
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The therapeutic potential of inorganic polyphosphate: A versatile physiological polymer to control coronavirus disease (COVID-19).

2021

Rationale: The pandemic caused by the novel coronavirus SARS-CoV-2 is advancing rapidly. In particular, the number of severe courses of the disease is still dramatically high. An efficient drug therapy that helps to improve significantly the fatal combination of damages in the airway epithelia, in the extensive pulmonary microvascularization and finally multiorgan failure, is missing. The physiological, inorganic polymer, polyphosphate (polyP) is a molecule which could prevent the initial phase of the virus life cycle, the attachment of the virus to the target cells, and improve the epithelial integrity as well as the mucus barrier. Results: Surprisingly, polyP matches perfectly with the ca…

0301 basic medicineDrug Evaluation PreclinicalMedicine (miscellaneous)Virus AttachmentRespiratory MucosaReviewmedicine.disease_causeAntiviral Agents03 medical and health sciencesMice0302 clinical medicinePolyphosphatesmedicineAnimalsHumansMode of actionReceptorPharmacology Toxicology and Pharmaceutics (miscellaneous)PandemicsMUC1Coronaviruschemistry.chemical_classificationChemistrySARS-CoV-2MucinMucinsCOVID-19Epithelial CellspolyphosphateMucusdigestive system diseasesCell biologyCOVID-19 Drug TreatmentDisease Models Animal030104 developmental biology030220 oncology & carcinogenesisAlkaline phosphataseNanoparticlesGlycoproteinviral receptor-binding domainTheranostics
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Transformation of Construction Cement to a Self-Healing Hybrid Binder

2019

A new biomimetic strategy to im prove the self-healing properties of Portland cement is presented that is based on the application of the biogenic inorganic polymer polyphosphate (polyP), which is used as a cement admixture. The data show that synthetic linear polyp, with an average chain length of 40, as well as natural long-chain polyP isolated from soil bacteria, has the ability to support self-healing of this construction material. Furthermore, polyP, used as a water-soluble Na-salt, is subject to Na+/Ca2+ exchange by the Ca2+ from the cement, resulting in the formation of a water-rich coacervate when added to the cement surface, especially to the surface of bacteria-containing cement/c…

0211 other engineering and technologies02 engineering and technologylaw.inventionlcsh:Chemistrychemistry.chemical_compoundBiomimetic MaterialsPolyphosphateslaw021105 building & constructionComposite materiallcsh:QH301-705.5SpectroscopycoacervateCoacervatesoil bacteriaGeneral Medicine021001 nanoscience & nanotechnology6. Clean waterComputer Science Applicationsmicrocapsulessurgical procedures operative0210 nano-technologyinorganic polyphosphateManufactured MaterialsPortland cementMaterials scienceArticleCatalysisInorganic Chemistryotorhinolaryngologic diseasesself-healingPhysical and Theoretical ChemistryMolecular BiologyCementSoil bacteriaInorganic polymerConstruction MaterialsSpectrum AnalysisPolyphosphateOrganic ChemistryWaterModels Theoreticaldigestive system diseasesPortland cementlcsh:Biology (General)lcsh:QD1-999chemistrySelf-healingMicroscopy Electron ScanningHardening (metallurgy)concretemicrocracksInternational Journal of Molecular Sciences
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Amorphous Polyphosphate and Ca‐Carbonate Nanoparticles Improve the Self‐Healing Properties of both Technical and Medical Cements

2020

Cement is used both as a construction material and for medical applications. Previously, it has been shown that the physiological polymer inorganic polyphosphate (polyP) is morphogenetically active in regeneration of skin, bone, and cartilage. The present study investigates the question if this polymer is also a suitable additive to improve the self-healing capacity not only of construction cement but also of inorganic bone void fillers. For the application in the cement, two different polyP-based amorphous nanoparticles (NP) are prepared, amorphous Ca-polyP NP and amorphous Ca-carbonate (ACC) NP. The particles are integrated into poly(methyl methacrylate) in a concentration ratio of 1:10. …

musculoskeletal diseases0106 biological sciencesMaterials sciencePolymersCarbonatesNanoparticle01 natural sciencesApplied Microbiology and BiotechnologyBone and Boneslaw.inventionchemistry.chemical_compoundlawPolyphosphates010608 biotechnologyCementchemistry.chemical_classificationConstruction MaterialsPolyphosphate010401 analytical chemistrytechnology industry and agricultureGeneral MedicinePolymerBone cementAmorphous calcium carbonate0104 chemical sciences3. Good healthAmorphous solidPortland cementsurgical procedures operativechemistryChemical engineeringMolecular MedicineNanoparticlesCalciumBiotechnology Journal
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