AI Article Synopsis

  • * The study unveils a new enzymatic pathway in the marine bacterium Formosa agariphila that breaks down ulvan oligosaccharides, revealing a novel dehydratase enzyme (P29_PDnc) that modifies these sugars.
  • * This research contributes to our understanding of how complex polysaccharides are degraded into simpler sugars, involving multiple enzymes and highlighting the importance of the newly identified dehydratase in this process.

Article Abstract

Marine algae catalyze half of all global photosynthetic production of carbohydrates. Owing to their fast growth rates, Ulva spp. rapidly produce substantial amounts of carbohydrate-rich biomass and represent an emerging renewable energy and carbon resource. Their major cell wall polysaccharide is the anionic carbohydrate ulvan. Here, we describe a new enzymatic degradation pathway of the marine bacterium Formosa agariphila for ulvan oligosaccharides involving unsaturated uronic acid at the nonreducing end linked to rhamnose-3-sulfate and glucuronic or iduronic acid (Δ-Rha3S-GlcA/IdoA-Rha3S). Notably, we discovered a new dehydratase (P29_PDnc) acting on the nonreducing end of ulvan oligosaccharides, i.e., GlcA/IdoA-Rha3S, forming the aforementioned unsaturated uronic acid residue. This residue represents the substrate for GH105 glycoside hydrolases, which complements the enzymatic degradation pathway including one ulvan lyase, one multimodular sulfatase, three glycoside hydrolases, and the dehydratase P29_PDnc, the latter being described for the first time. Our research thus shows that the oligosaccharide dehydratase is involved in the degradation of carboxylated polysaccharides into monosaccharides.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8511951PMC
http://dx.doi.org/10.1016/j.jbc.2021.101210DOI Listing

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