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Proc Natl Acad Sci U S A
1996 May 14;9310:4548-53. doi: 10.1073/pnas.93.10.4548.
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Homologs of the Xenopus developmental gene DG42 are present in zebrafish and mouse and are involved in the synthesis of Nod-like chitin oligosaccharides during early embryogenesis.
Semino CE, Specht CA, Raimondi A, Robbins PW.
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The Xenopus developmental gene DG42 is expressed during early embryonic development, between the midblastula and neurulation stages. The deduced protein sequence of Xenopus DG42 shows similarity to Rhizobium Nod C, Streptococcus Has A, and fungal chitin synthases. Previously, we found that the DG42 protein made in an in vitro transcription/translation system catalyzed synthesis of an array of chitin oligosaccharides. Here we show that cell extracts from early Xenopus and zebrafish embryos also synthesize chitooligosaccharides. cDNA fragments homologous to DG42 from zebrafish and mouse were also cloned and sequenced. Expression of these homologs was similar to that described for Xenopus based on Northern and Western blot analysis. The Xenopus anti-DG42 antibody recognized a 63-kDa protein in extracts from zebrafish embryos that followed a similar developmental expression pattern to that previously described for Xenopus. The chitin oligosaccharide synthase activity found in extracts was inactivated by a specific DG42 antibody; synthesis of hyaluronic acid (HA) was not affected under the conditions tested. Other experiments demonstrate that expression of DG42 under plasmid control in mouse 3T3 cells gives rise to chitooligosaccharide synthase activity without an increase in HA synthase level. A possible relationship between our results and those of other investigators, which show stimulation of HA synthesis by DG42 in mammalian cell culture systems, is provided by structural analyses to be published elsewhere that suggest that chitin oligosaccharides are present at the reducing ends of HA chains. Since in at least one vertebrate system hyaluronic acid formation can be inhibited by a pure chitinase, it seems possible that chitin oligosaccharides serve as primers for hyaluronic acid synthesis.
Bulawa,
Chitin and nodulation.
1991,
Pubmed Bulawa,
CSD2, CSD3, and CSD4, genes required for chitin synthesis in Saccharomyces cerevisiae: the CSD2 gene product is related to chitin synthases and to developmentally regulated proteins in Rhizobium species and Xenopus laevis.
1992,
Pubmed
,
Xenbase Chomczynski,
Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction.
1987,
Pubmed Collins-Emerson,
Nucleotide sequence of Rhizobium loti nodC.
1990,
Pubmed DeAngelis,
The Streptococcus pyogenes hyaluronan synthase: sequence comparison and conservation among various group A strains.
1994,
Pubmed
,
Xenbase DeAngelis,
Immunochemical confirmation of the primary structure of streptococcal hyaluronan synthase and synthesis of high molecular weight product by the recombinant enzyme.
1994,
Pubmed
,
Xenbase Dénarié,
Lipo-oligosaccharide nodulation factors: a minireview new class of signaling molecules mediating recognition and morphogenesis.
1993,
Pubmed Downie,
Signalling strategies for nodulation of legumes by rhizobia.
1994,
Pubmed Fisher,
Rhizobium--plant signal exchange.
1992,
Pubmed Geremia,
The NodC protein of Azorhizobium caulinodans is an N-acetylglucosaminyltransferase.
1994,
Pubmed Kang,
Isolation of chitin synthetase from Saccharomyces cerevisiae. Purification of an enzyme by entrapment in the reaction product.
1984,
Pubmed Klewes,
The hyaluronate synthase from a eukaryotic cell line.
1993,
Pubmed
,
Xenbase Lerouge,
Symbiotic host-specificity of Rhizobium meliloti is determined by a sulphated and acylated glucosamine oligosaccharide signal.
1990,
Pubmed Long,
Rhizobium-legume nodulation: life together in the underground.
1989,
Pubmed Marcantonio,
Mapping of the functional determinants of the integrin beta 1 cytoplasmic domain by site-directed mutagenesis.
1990,
Pubmed Meyer,
Cells expressing the DG42 gene from early Xenopus embryos synthesize hyaluronan.
1996,
Pubmed
,
Xenbase Mian,
Characterization of a high-Mr plasma-membrane-bound protein and assessment of its role as a constituent of hyaluronate synthase complex.
1986,
Pubmed
,
Xenbase Ng,
Solubilization and partial purification of hyaluronate synthetase from oligodendroglioma cells.
1989,
Pubmed
,
Xenbase Peters,
A plant flavone, luteolin, induces expression of Rhizobium meliloti nodulation genes.
1986,
Pubmed Robbins,
Cloning and expression of a Streptomyces plicatus chitinase (chitinase-63) in Escherichia coli.
1988,
Pubmed Roche,
Molecular basis of symbiotic host specificity in Rhizobium meliloti: nodH and nodPQ genes encode the sulfation of lipo-oligosaccharide signals.
1991,
Pubmed Rosa,
Accumulation and decay of DG42 gene products follow a gradient pattern during Xenopus embryogenesis.
1988,
Pubmed
,
Xenbase Sargent,
Differential gene expression in the gastrula of Xenopus laevis.
1983,
Pubmed
,
Xenbase Semino,
Synthesis of "Nod"-like chitin oligosaccharides by the Xenopus developmental protein DG42.
1995,
Pubmed
,
Xenbase Semino,
The in vitro biosynthesis of functional nodulation factors (Nod Rm) produced by Rhizobium meliloti 1021.
1994,
Pubmed Sive,
Progressive determination during formation of the anteroposterior axis in Xenopus laevis.
1989,
Pubmed
,
Xenbase Spaink,
Rhizobial lipo-oligosaccharides: answers and questions.
1992,
Pubmed Spaink,
Structural identification of metabolites produced by the NodB and NodC proteins of Rhizobium leguminosarum.
1994,
Pubmed Vijn,
Nod factors and nodulation in plants.
1993,
Pubmed