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Widespread Family of NAD+-Dependent Sulfoquinovosidases at the Gateway to Sulfoquinovose Catabolism.


ABSTRACT: The sulfosugar sulfoquinovose (SQ) is produced by photosynthetic plants, algae, and cyanobacteria on a scale of 10 billion tons per annum. Its degradation, which is essential to allow cycling of its constituent carbon and sulfur, involves specialized glycosidases termed sulfoquinovosidases (SQases), which release SQ from sulfolipid glycoconjugates, so SQ can enter catabolism pathways. However, many SQ catabolic gene clusters lack a gene encoding a classical SQase. Here, we report the discovery of a new family of SQases that use an atypical oxidoreductive mechanism involving NAD+ as a catalytic cofactor. Three-dimensional X-ray structures of complexes with SQ and NAD+ provide insight into the catalytic mechanism, which involves transient oxidation at C3. Bioinformatic survey reveals this new family of NAD+-dependent SQases occurs within sulfoglycolytic and sulfolytic gene clusters that lack classical SQases and is distributed widely including within Roseobacter clade bacteria, suggesting an important contribution to marine sulfur cycling.

SUBMITTER: Kaur A 

PROVIDER: S-EPMC10755693 | biostudies-literature | 2023 Dec

REPOSITORIES: biostudies-literature

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Widespread Family of NAD<sup>+</sup>-Dependent Sulfoquinovosidases at the Gateway to Sulfoquinovose Catabolism.

Kaur Arashdeep A   Pickles Isabelle B IB   Sharma Mahima M   Madeido Soler Niccolay N   Scott Nichollas E NE   Pidot Sacha J SJ   Goddard-Borger Ethan D ED   Davies Gideon J GJ   Williams Spencer J SJ  

Journal of the American Chemical Society 20231215 51


The sulfosugar sulfoquinovose (SQ) is produced by photosynthetic plants, algae, and cyanobacteria on a scale of 10 billion tons per annum. Its degradation, which is essential to allow cycling of its constituent carbon and sulfur, involves specialized glycosidases termed sulfoquinovosidases (SQases), which release SQ from sulfolipid glycoconjugates, so SQ can enter catabolism pathways. However, many SQ catabolic gene clusters lack a gene encoding a classical SQase. Here, we report the discovery o  ...[more]

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