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Enzyme Catalyzed Formation of CoA Adducts of Fluorinated Hexanoic Acid Analogues using a Long-Chain acyl-CoA Synthetase from Gordonia sp. Strain NB4-1Y
Per and polyfluoroalkyl substances (PFAS) are a large family of anthropogenic fluorinated chemicals of increasing environmental concern. Over recent years, numerous microbial communities have been found to be capable of metabolizing some polyfluoroalkyl substances, generating a range of low-molecula...
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Published in: | Biochemistry (Easton) 2024-09, Vol.63 (17), p.2153-2165 |
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description | Per and polyfluoroalkyl substances (PFAS) are a large family of anthropogenic fluorinated chemicals of increasing environmental concern. Over recent years, numerous microbial communities have been found to be capable of metabolizing some polyfluoroalkyl substances, generating a range of low-molecular-weight PFAS metabolites. One proposed pathway for the microbial breakdown of fluorinated carboxylates includes β-oxidation, this pathway is initiated by the formation of a CoA adduct. However, until recently no PFAS-CoA adducts had been reported. In a previous study, we were able to use a bacterial medium-chain acyl-CoA synthetase (mACS) to form CoA adducts of fluorinated adducts of propanoic acid and pentanoic acid but were not able to detect any products of fluorinated hexanoic acid analogues. Herein, we expressed and purified a long-chain acyl-CoA synthetase (lACS) and a A461K variant of mACS from the soil bacterium Gordonia sp. strain NB4–1Y and performed an analysis of substrate scope and enzyme kinetics using fluorinated and nonfluorinated carboxylates. We determined that lACS can catalyze the formation of CoA adducts of 1:5 fluorotelomer carboxylic acid (FTCA), 2:4 FTCA and 3:3 FTCA, albeit with generally low turnover rates ( |
doi_str_mv | 10.1021/acs.biochem.4c00336 |
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Strain NB4-1Y</title><source>American Chemical Society:Jisc Collections:American Chemical Society Read & Publish Agreement 2022-2024 (Reading list)</source><creator>Mothersole, Robert G. ; Mothersole, Mina K. ; Goddard, Hannah G. ; Liu, Jinxia ; Van Hamme, Jonathan D.</creator><creatorcontrib>Mothersole, Robert G. ; Mothersole, Mina K. ; Goddard, Hannah G. ; Liu, Jinxia ; Van Hamme, Jonathan D.</creatorcontrib><description>Per and polyfluoroalkyl substances (PFAS) are a large family of anthropogenic fluorinated chemicals of increasing environmental concern. Over recent years, numerous microbial communities have been found to be capable of metabolizing some polyfluoroalkyl substances, generating a range of low-molecular-weight PFAS metabolites. One proposed pathway for the microbial breakdown of fluorinated carboxylates includes β-oxidation, this pathway is initiated by the formation of a CoA adduct. However, until recently no PFAS-CoA adducts had been reported. In a previous study, we were able to use a bacterial medium-chain acyl-CoA synthetase (mACS) to form CoA adducts of fluorinated adducts of propanoic acid and pentanoic acid but were not able to detect any products of fluorinated hexanoic acid analogues. Herein, we expressed and purified a long-chain acyl-CoA synthetase (lACS) and a A461K variant of mACS from the soil bacterium Gordonia sp. strain NB4–1Y and performed an analysis of substrate scope and enzyme kinetics using fluorinated and nonfluorinated carboxylates. We determined that lACS can catalyze the formation of CoA adducts of 1:5 fluorotelomer carboxylic acid (FTCA), 2:4 FTCA and 3:3 FTCA, albeit with generally low turnover rates (<0.02 s–1) compared with the nonfluorinated hexanoic acid (5.39 s–1). In addition, the A461K variant was found to have an 8-fold increase in selectivity toward hexanoic acid compared with wild-type mACS, suggesting that Ala-461 has a mechanistic role in selectivity toward substrate chain length. This provides further evidence to validate the proposed activation step involving the formation of CoA adducts in the enzymatic breakdown of PFAS.</description><identifier>ISSN: 0006-2960</identifier><identifier>ISSN: 1520-4995</identifier><identifier>EISSN: 1520-4995</identifier><identifier>DOI: 10.1021/acs.biochem.4c00336</identifier><identifier>PMID: 39152907</identifier><language>eng</language><publisher>United States: American Chemical Society</publisher><subject>Acyl Coenzyme A - chemistry ; Acyl Coenzyme A - metabolism ; Bacterial Proteins - chemistry ; Bacterial Proteins - genetics ; Bacterial Proteins - metabolism ; Caproates - chemistry ; Caproates - metabolism ; Coenzyme A - chemistry ; Coenzyme A - metabolism ; Coenzyme A Ligases - chemistry ; Coenzyme A Ligases - genetics ; Coenzyme A Ligases - metabolism ; enzyme kinetics ; family ; Gordonia Bacterium - enzymology ; Gordonia Bacterium - genetics ; Gordonia Bacterium - metabolism ; Halogenation ; hexanoic acid ; Kinetics ; long-chain-fatty-acid-CoA ligase ; metabolites ; propionic acid ; soil bacteria ; Substrate Specificity</subject><ispartof>Biochemistry (Easton), 2024-09, Vol.63 (17), p.2153-2165</ispartof><rights>2024 The Authors. Published by American Chemical Society</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><cites>FETCH-LOGICAL-a258t-7a67c91940ca7b2727ae7a7910076f3204f42c90d99596e1fefe0d92197339343</cites><orcidid>0000-0001-7889-0988 ; 0000-0002-2929-7296 ; 0000-0003-2505-9642</orcidid></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>314,776,780,27901,27902</link.rule.ids><backlink>$$Uhttps://www.ncbi.nlm.nih.gov/pubmed/39152907$$D View this record in MEDLINE/PubMed$$Hfree_for_read</backlink></links><search><creatorcontrib>Mothersole, Robert G.</creatorcontrib><creatorcontrib>Mothersole, Mina K.</creatorcontrib><creatorcontrib>Goddard, Hannah G.</creatorcontrib><creatorcontrib>Liu, Jinxia</creatorcontrib><creatorcontrib>Van Hamme, Jonathan D.</creatorcontrib><title>Enzyme Catalyzed Formation of CoA Adducts of Fluorinated Hexanoic Acid Analogues using a Long-Chain acyl-CoA Synthetase from Gordonia sp. Strain NB4-1Y</title><title>Biochemistry (Easton)</title><addtitle>Biochemistry</addtitle><description>Per and polyfluoroalkyl substances (PFAS) are a large family of anthropogenic fluorinated chemicals of increasing environmental concern. Over recent years, numerous microbial communities have been found to be capable of metabolizing some polyfluoroalkyl substances, generating a range of low-molecular-weight PFAS metabolites. One proposed pathway for the microbial breakdown of fluorinated carboxylates includes β-oxidation, this pathway is initiated by the formation of a CoA adduct. However, until recently no PFAS-CoA adducts had been reported. In a previous study, we were able to use a bacterial medium-chain acyl-CoA synthetase (mACS) to form CoA adducts of fluorinated adducts of propanoic acid and pentanoic acid but were not able to detect any products of fluorinated hexanoic acid analogues. Herein, we expressed and purified a long-chain acyl-CoA synthetase (lACS) and a A461K variant of mACS from the soil bacterium Gordonia sp. strain NB4–1Y and performed an analysis of substrate scope and enzyme kinetics using fluorinated and nonfluorinated carboxylates. We determined that lACS can catalyze the formation of CoA adducts of 1:5 fluorotelomer carboxylic acid (FTCA), 2:4 FTCA and 3:3 FTCA, albeit with generally low turnover rates (<0.02 s–1) compared with the nonfluorinated hexanoic acid (5.39 s–1). In addition, the A461K variant was found to have an 8-fold increase in selectivity toward hexanoic acid compared with wild-type mACS, suggesting that Ala-461 has a mechanistic role in selectivity toward substrate chain length. This provides further evidence to validate the proposed activation step involving the formation of CoA adducts in the enzymatic breakdown of PFAS.</description><subject>Acyl Coenzyme A - chemistry</subject><subject>Acyl Coenzyme A - metabolism</subject><subject>Bacterial Proteins - chemistry</subject><subject>Bacterial Proteins - genetics</subject><subject>Bacterial Proteins - metabolism</subject><subject>Caproates - chemistry</subject><subject>Caproates - metabolism</subject><subject>Coenzyme A - chemistry</subject><subject>Coenzyme A - metabolism</subject><subject>Coenzyme A Ligases - chemistry</subject><subject>Coenzyme A Ligases - genetics</subject><subject>Coenzyme A Ligases - metabolism</subject><subject>enzyme kinetics</subject><subject>family</subject><subject>Gordonia Bacterium - enzymology</subject><subject>Gordonia Bacterium - genetics</subject><subject>Gordonia Bacterium - metabolism</subject><subject>Halogenation</subject><subject>hexanoic acid</subject><subject>Kinetics</subject><subject>long-chain-fatty-acid-CoA ligase</subject><subject>metabolites</subject><subject>propionic acid</subject><subject>soil bacteria</subject><subject>Substrate Specificity</subject><issn>0006-2960</issn><issn>1520-4995</issn><issn>1520-4995</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2024</creationdate><recordtype>article</recordtype><recordid>eNqFkc1u1DAUhS0EotPCEyAhL9lk6r_EeBmiTos0gkXpoqvojuPMuErswXYk0hfhdetoBpawujrSd869ugehD5SsKWH0GnRc76zXBzOuhSaE8-oVWtGSkUIoVb5GK0JIVTBVkQt0GeNTloJI8RZdcJUxReQK_b5xz_NocAMJhvnZdHjjwwjJeod9jxtf47rrJp3iIjfD5IN1kDJ3Z36B81bjWtsO1w4Gv59MxFO0bo8Bb73bF80BrMOg56FYou5nlw4mQTS4D37Etz503lnA8bjG9yks8LcvoqCP79CbHoZo3p_nFXrY3Pxo7ort99uvTb0tgJWfUyGhklpRJYgGuWOSSTASpKKEyKrnjIheMK1Ilx-iKkN705ssGFWSc8UFv0KfTrnH4H_m81M72qjNMIAzfootpyWXslRc_h8l-QwhOOMZ5SdUBx9jMH17DHaEMLeUtEt5bS6vPZfXnsvLro_nBdNuNN1fz5-2MnB9Ahb3k59Cfnr8Z-QLZ8mm0Q</recordid><startdate>20240903</startdate><enddate>20240903</enddate><creator>Mothersole, Robert G.</creator><creator>Mothersole, Mina K.</creator><creator>Goddard, Hannah G.</creator><creator>Liu, Jinxia</creator><creator>Van Hamme, Jonathan D.</creator><general>American Chemical Society</general><scope>CGR</scope><scope>CUY</scope><scope>CVF</scope><scope>ECM</scope><scope>EIF</scope><scope>NPM</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7X8</scope><scope>7S9</scope><scope>L.6</scope><orcidid>https://orcid.org/0000-0001-7889-0988</orcidid><orcidid>https://orcid.org/0000-0002-2929-7296</orcidid><orcidid>https://orcid.org/0000-0003-2505-9642</orcidid></search><sort><creationdate>20240903</creationdate><title>Enzyme Catalyzed Formation of CoA Adducts of Fluorinated Hexanoic Acid Analogues using a Long-Chain acyl-CoA Synthetase from Gordonia sp. Strain NB4-1Y</title><author>Mothersole, Robert G. ; Mothersole, Mina K. ; Goddard, Hannah G. ; Liu, Jinxia ; Van Hamme, Jonathan D.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-a258t-7a67c91940ca7b2727ae7a7910076f3204f42c90d99596e1fefe0d92197339343</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2024</creationdate><topic>Acyl Coenzyme A - chemistry</topic><topic>Acyl Coenzyme A - metabolism</topic><topic>Bacterial Proteins - chemistry</topic><topic>Bacterial Proteins - genetics</topic><topic>Bacterial Proteins - metabolism</topic><topic>Caproates - chemistry</topic><topic>Caproates - metabolism</topic><topic>Coenzyme A - chemistry</topic><topic>Coenzyme A - metabolism</topic><topic>Coenzyme A Ligases - chemistry</topic><topic>Coenzyme A Ligases - genetics</topic><topic>Coenzyme A Ligases - metabolism</topic><topic>enzyme kinetics</topic><topic>family</topic><topic>Gordonia Bacterium - enzymology</topic><topic>Gordonia Bacterium - genetics</topic><topic>Gordonia Bacterium - metabolism</topic><topic>Halogenation</topic><topic>hexanoic acid</topic><topic>Kinetics</topic><topic>long-chain-fatty-acid-CoA ligase</topic><topic>metabolites</topic><topic>propionic acid</topic><topic>soil bacteria</topic><topic>Substrate Specificity</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Mothersole, Robert G.</creatorcontrib><creatorcontrib>Mothersole, Mina K.</creatorcontrib><creatorcontrib>Goddard, Hannah G.</creatorcontrib><creatorcontrib>Liu, Jinxia</creatorcontrib><creatorcontrib>Van Hamme, Jonathan D.</creatorcontrib><collection>Medline</collection><collection>MEDLINE</collection><collection>MEDLINE (Ovid)</collection><collection>MEDLINE</collection><collection>MEDLINE</collection><collection>PubMed</collection><collection>CrossRef</collection><collection>MEDLINE - Academic</collection><collection>AGRICOLA</collection><collection>AGRICOLA - Academic</collection><jtitle>Biochemistry (Easton)</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Mothersole, Robert G.</au><au>Mothersole, Mina K.</au><au>Goddard, Hannah G.</au><au>Liu, Jinxia</au><au>Van Hamme, Jonathan D.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Enzyme Catalyzed Formation of CoA Adducts of Fluorinated Hexanoic Acid Analogues using a Long-Chain acyl-CoA Synthetase from Gordonia sp. Strain NB4-1Y</atitle><jtitle>Biochemistry (Easton)</jtitle><addtitle>Biochemistry</addtitle><date>2024-09-03</date><risdate>2024</risdate><volume>63</volume><issue>17</issue><spage>2153</spage><epage>2165</epage><pages>2153-2165</pages><issn>0006-2960</issn><issn>1520-4995</issn><eissn>1520-4995</eissn><abstract>Per and polyfluoroalkyl substances (PFAS) are a large family of anthropogenic fluorinated chemicals of increasing environmental concern. Over recent years, numerous microbial communities have been found to be capable of metabolizing some polyfluoroalkyl substances, generating a range of low-molecular-weight PFAS metabolites. One proposed pathway for the microbial breakdown of fluorinated carboxylates includes β-oxidation, this pathway is initiated by the formation of a CoA adduct. However, until recently no PFAS-CoA adducts had been reported. In a previous study, we were able to use a bacterial medium-chain acyl-CoA synthetase (mACS) to form CoA adducts of fluorinated adducts of propanoic acid and pentanoic acid but were not able to detect any products of fluorinated hexanoic acid analogues. Herein, we expressed and purified a long-chain acyl-CoA synthetase (lACS) and a A461K variant of mACS from the soil bacterium Gordonia sp. strain NB4–1Y and performed an analysis of substrate scope and enzyme kinetics using fluorinated and nonfluorinated carboxylates. We determined that lACS can catalyze the formation of CoA adducts of 1:5 fluorotelomer carboxylic acid (FTCA), 2:4 FTCA and 3:3 FTCA, albeit with generally low turnover rates (<0.02 s–1) compared with the nonfluorinated hexanoic acid (5.39 s–1). In addition, the A461K variant was found to have an 8-fold increase in selectivity toward hexanoic acid compared with wild-type mACS, suggesting that Ala-461 has a mechanistic role in selectivity toward substrate chain length. This provides further evidence to validate the proposed activation step involving the formation of CoA adducts in the enzymatic breakdown of PFAS.</abstract><cop>United States</cop><pub>American Chemical Society</pub><pmid>39152907</pmid><doi>10.1021/acs.biochem.4c00336</doi><tpages>13</tpages><orcidid>https://orcid.org/0000-0001-7889-0988</orcidid><orcidid>https://orcid.org/0000-0002-2929-7296</orcidid><orcidid>https://orcid.org/0000-0003-2505-9642</orcidid></addata></record> |
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subjects | Acyl Coenzyme A - chemistry Acyl Coenzyme A - metabolism Bacterial Proteins - chemistry Bacterial Proteins - genetics Bacterial Proteins - metabolism Caproates - chemistry Caproates - metabolism Coenzyme A - chemistry Coenzyme A - metabolism Coenzyme A Ligases - chemistry Coenzyme A Ligases - genetics Coenzyme A Ligases - metabolism enzyme kinetics family Gordonia Bacterium - enzymology Gordonia Bacterium - genetics Gordonia Bacterium - metabolism Halogenation hexanoic acid Kinetics long-chain-fatty-acid-CoA ligase metabolites propionic acid soil bacteria Substrate Specificity |
title | Enzyme Catalyzed Formation of CoA Adducts of Fluorinated Hexanoic Acid Analogues using a Long-Chain acyl-CoA Synthetase from Gordonia sp. Strain NB4-1Y |
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