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RESEARCH PRODUCT
Stimulation of protein (collagen) synthesis in sponge cells by a cardiac myotrophin‐related molecule from Suberites domuncula
Renato BatelHeinz C. SchröderIsabel M. MüllerWerner E.g. MüllerMichael KruseAnatoli KraskoAlexander SkorokhodSabine Pahlersubject
Repetitive Sequences Amino AcidMolecular Sequence DataLysinePolymerase Chain ReactionBiochemistryMyotrophinComplementary DNAGeneticsProtein biosynthesisAnimalsAmino Acid SequenceCloning MolecularGrowth SubstanceseducationMolecular BiologyPhylogenyCell Sizeeducation.field_of_studyDose-Response Relationship DrugSequence Homology Amino AcidbiologySequence Analysis DNAbiology.organism_classificationRecombinant ProteinsIn vitroPoriferaUp-RegulationCell biologySuberites domunculaOpen reading frameSpongeIntercellular Signaling Peptides and ProteinsCollagenBiotechnologydescription
The body wall of sponges (Porifera), the lowest metazoan phylum, is formed by two epithelial cell layers of exopinacocytes and endopinacocytes, both of which are associated with collagen fibrils. Here we show that a myotrophin-like polypeptide from the sponge Suberites domuncula causes the expression of collagen in cells from the same sponge in vitro. The cDNA of the sponge myotrophin was isolated; the potential open reading frame of 360 nt encodes a 120 aa long protein (Mr of 12,837). The sequence SUBDOMYOL shares high similarity with the known metazoan myotrophin sequences. The expression of SUBDOMYOL is low in single cells but high after formation of primmorph aggregates as well as in intact animals. Recombinant myotrophin was found to stimulate protein synthesis by fivefold, as analyzed by incorporation studies using [3H] lysine. In addition, it is shown that after incubation of single cells with myotrophin, the primmorphs show an unusual elongated, oval-shaped appearance. It is demonstrated that in the presence of recombinant myotrophin, the cells up-regulate the expression of the collagen gene. The cDNA for S. domuncula collagen was isolated; the deduced aa sequence shows that the collagenous internal domain is rather short, with only 24 G-x-y collagen triplets. We conclude that the sponge myotrophin causes in homologous cells the same/similar effect as the cardiac myotrophin in mammalian cells, where it is involved in initiation of cardial ventricular hypertrophy. We assume that an understanding of sponge molecular cell biology will also contribute to a further elucidation of human diseases, here of the cardiovascular system.
year | journal | country | edition | language |
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2000-10-12 | The FASEB Journal |