Bridging a Gap in Marine Sulfur Cycling: Discovery of a d-Cysteinolic Acid Degradation Pathway.

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Autores principales: Burchill, Laura, Stewart, Adam W E, Pallasdies, Luise, Lee, Mihwa, Coe, Lisa S Y, Zudich, Luca, Jebeli, Leila, Sharma, Mahima, Hofferek, Vinzenz, McConville, Malcolm J, Davies, Gideon J, Scott, Nichollas E, Durham, Bryndan P, Williams, Spencer J
Formato: Artículo científico
Lenguaje:en
Publicado: Journal of the American Chemical Society 2025
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author Burchill, Laura
Stewart, Adam W E
Pallasdies, Luise
Lee, Mihwa
Coe, Lisa S Y
Zudich, Luca
Jebeli, Leila
Sharma, Mahima
Hofferek, Vinzenz
McConville, Malcolm J
Davies, Gideon J
Scott, Nichollas E
Durham, Bryndan P
Williams, Spencer J
author_facet Burchill, Laura
Stewart, Adam W E
Pallasdies, Luise
Lee, Mihwa
Coe, Lisa S Y
Zudich, Luca
Jebeli, Leila
Sharma, Mahima
Hofferek, Vinzenz
McConville, Malcolm J
Davies, Gideon J
Scott, Nichollas E
Durham, Bryndan P
Williams, Spencer J
Burchill, Laura
Stewart, Adam W E
Pallasdies, Luise
Lee, Mihwa
Coe, Lisa S Y
Zudich, Luca
Jebeli, Leila
Sharma, Mahima
Hofferek, Vinzenz
McConville, Malcolm J
Davies, Gideon J
Scott, Nichollas E
Durham, Bryndan P
Williams, Spencer J
collection PubMed - marine biology
contents Bridging a Gap in Marine Sulfur Cycling: Discovery of a d-Cysteinolic Acid Degradation Pathway. Burchill, Laura Stewart, Adam W E Pallasdies, Luise Lee, Mihwa Coe, Lisa S Y Zudich, Luca Jebeli, Leila Sharma, Mahima Hofferek, Vinzenz McConville, Malcolm J Davies, Gideon J Scott, Nichollas E Durham, Bryndan P Williams, Spencer J Sulfur Rhodobacteraceae d-Cysteinolic acid is a prominent sulfur-containing compound in marine and freshwater ecosystems, yet its metabolic fate has remained largely uncharacterized. Here, we describe a newly identified d-cysteinolic acid degradation pathway in a marine model bacterium DSS-3. This pathway involves a PLP-dependent cysteinolic acid racemase (ClaA) that interconverts d- and l-cysteinolic acids, followed by a NAD-dependent l-cysteinolic acid dehydrogenase (ClaB) that oxidizes l-cysteinolic acid to l-cysteate. A cysteate racemase (CuyB) then converts l-cysteate to d-cysteate, the preferred substrate for the sulfolyase CuyA. Bioinformatic analysis of the Tara Oceans gene atlas reveals that ClaA and CuyA homologues are widespread in marine bacterial populations, particularly within the alphaproteobacterial Roseobacter and SAR116 groups and the gammaproteobacterial SUP05 clade. Relative abundance of gene homologues correlates with surface water chlorophyll levels, linking d-cysteinolic acid degradation to photosynthetic primary production. This discovery advances our understanding of marine sulfur cycling and highlights d-cysteinolic acid as an important metabolic currency in microbial networks.
format Artículo científico
id pubmed_41404639
institution PubMed
language en
publishDate 2025
publisher Journal of the American Chemical Society
record_format pubmed
spellingShingle Bridging a Gap in Marine Sulfur Cycling: Discovery of a d-Cysteinolic Acid Degradation Pathway.
Burchill, Laura
Stewart, Adam W E
Pallasdies, Luise
Lee, Mihwa
Coe, Lisa S Y
Zudich, Luca
Jebeli, Leila
Sharma, Mahima
Hofferek, Vinzenz
McConville, Malcolm J
Davies, Gideon J
Scott, Nichollas E
Durham, Bryndan P
Williams, Spencer J
Sulfur
Rhodobacteraceae
Bridging a Gap in Marine Sulfur Cycling: Discovery of a d-Cysteinolic Acid Degradation Pathway. Burchill, Laura Stewart, Adam W E Pallasdies, Luise Lee, Mihwa Coe, Lisa S Y Zudich, Luca Jebeli, Leila Sharma, Mahima Hofferek, Vinzenz McConville, Malcolm J Davies, Gideon J Scott, Nichollas E Durham, Bryndan P Williams, Spencer J Sulfur Rhodobacteraceae d-Cysteinolic acid is a prominent sulfur-containing compound in marine and freshwater ecosystems, yet its metabolic fate has remained largely uncharacterized. Here, we describe a newly identified d-cysteinolic acid degradation pathway in a marine model bacterium DSS-3. This pathway involves a PLP-dependent cysteinolic acid racemase (ClaA) that interconverts d- and l-cysteinolic acids, followed by a NAD-dependent l-cysteinolic acid dehydrogenase (ClaB) that oxidizes l-cysteinolic acid to l-cysteate. A cysteate racemase (CuyB) then converts l-cysteate to d-cysteate, the preferred substrate for the sulfolyase CuyA. Bioinformatic analysis of the Tara Oceans gene atlas reveals that ClaA and CuyA homologues are widespread in marine bacterial populations, particularly within the alphaproteobacterial Roseobacter and SAR116 groups and the gammaproteobacterial SUP05 clade. Relative abundance of gene homologues correlates with surface water chlorophyll levels, linking d-cysteinolic acid degradation to photosynthetic primary production. This discovery advances our understanding of marine sulfur cycling and highlights d-cysteinolic acid as an important metabolic currency in microbial networks.
title Bridging a Gap in Marine Sulfur Cycling: Discovery of a d-Cysteinolic Acid Degradation Pathway.
topic Sulfur
Rhodobacteraceae
url https://pubmed.ncbi.nlm.nih.gov/41404639/