Exopolysaccharide Biosynthesis in Rhizobium leguminosarum bv. trifolii Requires a Complementary Function of Two Homologous Glycosyltransferases PssG and PssI
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Published:2023-02-20
Issue:4
Volume:24
Page:4248
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ISSN:1422-0067
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Container-title:International Journal of Molecular Sciences
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language:en
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Short-container-title:IJMS
Author:
Żebracki Kamil1ORCID, Horbowicz Aleksandra1ORCID, Marczak Małgorzata1ORCID, Turska-Szewczuk Anna1ORCID, Koper Piotr1ORCID, Wójcik Klaudia1ORCID, Romańczuk Marceli1, Wójcik Magdalena1ORCID, Mazur Andrzej1ORCID
Affiliation:
1. Department of Genetics and Microbiology, Institute of Biological Sciences, Maria Curie-Skłodowska University, Akademicka 19 St., 20-033 Lublin, Poland
Abstract
The Pss-I region of Rhizobium leguminosarum bv. trifolii TA1 comprises more than 20 genes coding for glycosyltransferases, modifying enzymes, and polymerization/export proteins, altogether determining the biosynthesis of symbiotically relevant exopolysaccharides. In this study, the role of homologous PssG and PssI glycosyltransferases in exopolysaccharide subunit synthesis were analyzed. It was shown that the glycosyltransferase-encoding genes of the Pss-I region were part of a single large transcriptional unit with potential downstream promoters activated in specific conditions. The ΔpssG and ΔpssI mutants produced significantly lower amounts of the exopolysaccharide, while the double deletion mutant ΔpssIΔpssG produced no exopolysaccharide. Complementation of double mutation with individual genes restored exopolysaccharide synthesis, but only to the level similar to that observed for the single ΔpssI or ΔpssG mutants, indicating that PssG and PssI serve complementary functions in the process. PssG and PssI interacted with each other in vivo and in vitro. Moreover, PssI displayed an expanded in vivo interaction network comprising other GTs involved in subunit assembly and polymerization/export proteins. PssG and PssI proteins were shown to interact with the inner membrane through amphipathic helices at their C-termini, and PssG also required other proteins involved in exopolysaccharide synthesis to localize in the membrane protein fraction.
Funder
NCN OPUS NCN MINIATURA scientific activity
Subject
Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis
Reference83 articles.
1. Mestrom, L., Przypis, M., Kowalczykiewicz, D., Pollender, A., Kumpf, A., Marsden, S.R., Bento, I., Jarzębski, A.B., Szymańska, K., and Chruściel, A. (2019). Leloir Glycosyltransferases in Applied Biocatalysis: A Multidisciplinary Approach. Int. J. Mol. Sci., 20. 2. Advances in understanding glycosyltransferases from a structural perspective;Gloster;Curr. Opin. Struct. Biol.,2014 3. Glycosyltransferases: Structures, functions, and mechanisms;Lairson;Annu. Rev. Biochem.,2008 4. Glycosyltransferases: Mechanisms and applications in natural product development;Liang;Chem. Soc. Rev.,2015 5. Structure-function relationships of membrane-associated GT-B glycosyltransferases;Giganti;Glycobiology,2014
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