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Biology subjects

Yin, M. D.

Publications and source records attributed to Yin, M. D..

2 recordsLinked to original sources

Structural basis of sulfide production in dissimilatory sulfur metabolism

The membrane-bound DsrMK(JOP) complex is central to dissimilatory sulfur metabolism, including in sulfate-reducing microbes (SRM), a group that plays important roles in shaping planetary and human health. Despite this global importance, the mechanism of sulfide production and its links to energy conservation remain unclear. Here, we present high-resolution cryo-EM structures of DsrMKJOP from Archaeoglobus fulgidus, alone, with menadiol and with the sulfur-carrying substrate DsrC-trisulfide, complemented by physiological and biochemical studies. The results clarify how SRM control the reactivity of sulfur to selectively achieve sulfide production. While DsrC-trisulfide is highly stable in isolation, interaction with the DsrK subunit facilitates its hydrolytic activation, triggering a conformational change. This brings a perthiosulfenate sulfur intermediate into the catalytic pocket of DsrK for reduction at a single non-cubane [4Fe-4S] cluster, likely supported by a conserved non-ligating cysteine. DsrM harbors a structural quinone-binding site, but seems not to catalyze menaquinol oxidation, although this likely occurs in DsrMK complexes from different sulfur-metabolizing organisms. In DsrMKJOP, trisulfide reduction by DsrK is linked to quinol oxidation at DsrP, releasing protons to the periplasm to generate a proton-motive force.

microbiology↗

Snapshots of acetyl-CoA synthesis, the final step of CO2 fixation in the Wood-Ljungdahl pathway

In the ancient microbial Wood-Ljungdahl pathway, CO2 is fixed in a multi-step process ending with acetyl-CoA synthesis at the bifunctional carbon monoxide dehydrogenase/acetyl-CoA synthase complex (CODH/ACS). Here, we present catalytic snapshots of the CODH/ACS from the gas-converting acetogen Clostridium autoethanogenum, characterizing the molecular choreography of the overall reaction including electron transfer to the CODH for CO2 reduction, methyl transfer from the corrinoid iron-sulfur protein (CoFeSP) partner to the ACS active site and acetyl-CoA production. Unlike CODH, the multidomain ACS undergoes large conformational changes to form an internal connection to the CODH active site, accommodate the CoFeSP for methyl transfer and protect the reaction intermediates. Altogether, the structures allow us to draw a detailed reaction mechanism of this enzyme crucial for CO2 fixation in anaerobic organisms. One-Sentence Summary: Structural description of key states of CO2 fixation by the carbon monoxide dehydrogenase/acetyl-CoA synthase complex.

biophysics↗