6533b854fe1ef96bd12aea4d
RESEARCH PRODUCT
Alkaline phosphatase dual-binding sites for collagen dictate cell migration and microvessel assembly in vitro
Raquel SoaresNuno M. F. S. A. CerqueiraPedro L. GranjaRonald E. UngerSusana G. GuerreiroCharles James KirkpatrickMário A. BarbosaAnne SartorisMaria João Martinssubject
0301 basic medicineCell typeAngiogenesisProtein ConformationBasic fibroblast growth factorNeovascularization PhysiologicIn Vitro TechniquesBiochemistryExtracellular matrix03 medical and health scienceschemistry.chemical_compound0302 clinical medicineCell MovementmedicineHumansFibroblastMolecular BiologyMicrovesselCells CulturedCell ProliferationBinding SitesChemistryHealth sciences Medical and Health sciencesCiências médicas e da saúdeCell migrationCell DifferentiationCell BiologyFibroblastsAlkaline PhosphataseCell biology030104 developmental biologymedicine.anatomical_structure030220 oncology & carcinogenesisMicrovesselsMedical and Health sciencesAlkaline phosphataseCollagenEndothelium VascularCiências da Saúde Ciências médicas e da saúdedescription
Interactions between cell types, growth factors, and extracellular matrix components involved in angiogenesis are crucial for new vessel formation leading to tissue regeneration. This study investigated whether cocultures of fibroblasts and endothelial cells (ECs; from macro- or microvasculature) play a role in the formation of microvessel-like structures by ECs, as well as modulate fibroblast differentiation and growth factors production (vascular endothelial cell growth factor, basic fibroblast growth factor, active transforming growth factor-beta 1, and interleukin-8), which are important for vessel sprouting and maturation. Data obtained revealed that in vitro coculture systems of fibroblasts and human ECs stimulate collagen synthesis and growth factors production by fibroblasts that ultimately affect the formation and distribution of microvessel-like structures in cell cultures. In this study, areas with activated fibroblasts and high alkaline phosphatase (ALP) activity were also observed in cocultures. Molecular docking assays revealed that ALP has two binding positions for collagen, suggesting its impact in collagen proteins' aggregation, cell migration, and microvessel assembly. These findings indicate that bioinformatics and coculture systems are complementary tools for investigating the participation of proteins, like collagen and ALP in angiogenesis.
year | journal | country | edition | language |
---|---|---|---|---|
2020-08-03 |