Article(id=1297571091506028725, tenantId=1146029695717560320, journalId=1192105938417971205, issueId=1297570992835023717, articleNumber=null, orderNo=null, doi=10.13343/j.cnki.wsxb.20260134, pmid=null, cstr=null, oa=null, hot=null, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=research-article, receivedDate=1770912000000, receivedDateStr=2026-02-13, revisedDate=null, revisedDateStr=null, acceptedDate=1775664000000, acceptedDateStr=2026-04-09, onlineDate=1787294655920, onlineDateStr=2026-08-21, pubDate=1785772800000, pubDateStr=2026-08-04, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1787294655920, onlineIssueDateStr=2026-08-21, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1787294655920, creator=13701087609, updateTime=1787294655920, updator=13701087609, issue=Issue{id=1297570992835023717, tenantId=1146029695717560320, journalId=1192105938417971205, year='2026', volume='66', issue='8', pageStart='3681', pageEnd='4288', issueExtLink='null', onlineDate='null', pubDate='1785772800000', pubDateStr='2026-08-04', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=-1, specialIssue=null, createTime=1787294632395, creator='13701087609', updateTime=1787294931551, updator='13701087609', preIssue=null, nextIssue=null, articleTotal=null, ext={EN=IssueExt(id=1297572247670124783, tenantId=1146029695717560320, journalId=1192105938417971205, issueId=1297570992835023717, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1297572247670124784, tenantId=1146029695717560320, journalId=1192105938417971205, issueId=1297570992835023717, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null, downloadFileDto=null}, startPage=4097, endPage=4118, ext={EN=ArticleExt(id=1297571092818845888, articleId=1297571091506028725, tenantId=1146029695717560320, journalId=1192105938417971205, language=EN, title=Metabolic engineering of
Saccharomyces cerevisiae for the production of ergothioneine, columnId=1192149554062569603, journalTitle=Acta Microbiologica Sinica, columnName=研究报告, runingTitle=null, highlight=null, articleAbstract=
[Objective] Ergothioneine (EGT), a sulfur-rich derivative of histidine, is utilized in the food, pharmaceutical, and cosmetic industries. However, large-scale production of EGT faces challenges due to the high costs and inefficiency of conventional chemical synthesis and extraction techniques. This study aims to engineer Saccharomyces cerevisiae to provide a microbial platform for EGT biosynthesis. [Methods] The biosynthetic pathway for EGT was reconstructed in S. cerevisiae by heterologously expressing Egt1 from Neurospora crassa and Egt2 from Claviceps purpurea. To overcome the metabolic bottlenecks related to precursor supply, we optimized the upstream pathways for histidine, cysteine, methionine, and S-adenosylmethionine to enhance the flux toward EGT synthesis. Fermentation performance of the engineered strain was assessed in both shake flasks and a 5-L bioreactor. [Results] The engineered S. cerevisiae strain produced 312.8 mg/L of EGT in shake flask fermentation. In a 5-L bioreactor, the strain achieved the EGT titer of 1 312.2 mg/L after 168 h, with the productivity of 7.8 mg/(L·h). [Conclusion] This study presents a metabolic engineering strategy for producing EGT in S. cerevisiae. The approach not only significantly improves EGT biosynthesis but also serves as a reference for microbial production of other compounds.
, authors=Khan Salman, Xiaoxiao LI, Qun YANG, Yunying ZHAO, Yu DENG, authorsList=Khan Salman, Xiaoxiao LI, Qun YANG, Yunying ZHAO, Yu DENG, authorCompany=null, correspAuthors=Yunying ZHAO, Yu DENG, authorNote=
Credit authorship contribution statement
Salman Khan: Designed the study, drafted the manuscript, and performed the majority of the experiments; LI Xiaoxiao: Conducted data analysis; YANG Qun: Conducted data analysis; ZHAO Yunying: Supervised the project, revised the manuscript, and provided funding; DENG Yu: Supervised the project, revised the manuscript, and provided funding.
, correspAuthorsNote=
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【目的】 麦角硫因(ergothioneine, EGT)是一种含硫组氨酸衍生物,被广泛应用于食品、制药及化妆品领域。然而,由于传统化学合成法和提取法成本高昂且效率低下,EGT的工业化生产受到严重制约。本研究旨在以酿酒酵母为底盘细胞构建生物合成EGT的微生物细胞工厂。 【方法】 通过在酿酒酵母中异源表达来自粗糙脉孢菌(Neurospora crassa)的Egt1基因和麦角菌(Claviceps purpurea)的Egt2基因用于构建EGT的生物合成途径。为解除前体供应不足所导致的代谢瓶颈,分别对组氨酸、半胱氨酸、甲硫氨酸及S-腺苷甲硫氨酸的上游生物合成途径进行优化,以增强流向EGT合成的代谢通量。分别在摇瓶和5 L发酵罐中评价工程菌株的发酵性能。 【结果】 所构建的酿酒酵母工程菌株在摇瓶发酵条件下EGT产量为312.8 mg/L。在5 L发酵罐中发酵168 h后EGT产量达1 312.2 mg/L,生产强度为7.8 mg/(L·h)。 【结论】 本研究提出了一种合成EGT的酿酒酵母代谢工程策略。该策略不仅显著提升了EGT的生物合成水平,也为其他化合物的微生物法生产提供了可借鉴的思路。
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21: 76., articleTitle=Toward more efficient ergothioneine production using the fungal ergothioneine biosynthetic pathway, refAbstract=null)], funds=[Fund(id=1297571099722670330, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, awardId=2022YFA0911800, language=EN, fundingSource=国家重点研发计划(2022YFA0911800), fundOrder=null, country=null), Fund(id=1297571099789779195, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, awardId=BF2025080, language=EN, fundingSource=江苏省前沿技术研发计划(BF2025080), fundOrder=null, country=null), Fund(id=1297571099861082364, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, awardId=254Z2601G, language=EN, fundingSource=中央引导地方科技发展资金(254Z2601G), fundOrder=null, country=null)], companyList=[AuthorCompany(id=1297571094765002946, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, xref=null, ext=[AuthorCompanyExt(id=1297571094773391555, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, companyId=1297571094765002946, language=EN, country=null, province=null, city=null, postcode=null, companyName=null, departmentName=null, remark=Key Laboratory of Industrial Biotechnology of the Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, Jiangsu, China), AuthorCompanyExt(id=1297571094777585860, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, companyId=1297571094765002946, language=CN, country=null, province=null, city=null, postcode=null, companyName=null, departmentName=null, remark=江南大学 生物工程学院,工业生物技术教育部重点实验室,江苏 无锡)])], figs=[ArticleFig(id=1297571096782463208, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=EN, label=Figure 1, caption=
Biosynthetic pathways of EGT in both prokaryotic and eukaryotic systems. Enzymes highlighted in blue are those found in prokaryotes. EgtA: γ-glutamylcysteine synthetase; EgtB: Non-heme iron-dependent mononuclear oxidase; EgtC: Amidotransferase; EgtD: S-adenosylmethionine-dependent histidine methyltransferase; EgtE: PLP-dependent C-S lyase. Enzymes depicted in red indicate their eukaryotic counterparts; Egt1: A bifunctional enzyme with SAM-dependent histidine methyltransferase and non-heme iron-dependent oxidase activities; Egt2: A PLP-dependent C-S lyase. The light blue dashed lines denote amino acids that serve as essential precursors., figureFileSmall=gVaiFOeFLcs7ztMkN3BbmA==, figureFileBig=YJxwdKZlwV4tIwcZlJyOrQ==, tableContent=null), ArticleFig(id=1297571096996372713, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=CN, label=null, caption=null, figureFileSmall=gVaiFOeFLcs7ztMkN3BbmA==, figureFileBig=YJxwdKZlwV4tIwcZlJyOrQ==, tableContent=null), ArticleFig(id=1297571097067675883, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=EN, label=Figure 2, caption=
Construction of the EGT synthesis pathway in Saccharomyces cerevisiae. A: Evaluation of Tregt1 and five Egt2 variants in EGT production; B: Evaluation of Cpegt2 and three Egt1 variants in EGT biosynthesis., figureFileSmall=7HBCe0kAiG2qZber5tkA2Q==, figureFileBig=wl1FWkENXaA0iQSVN+lMFw==, tableContent=null), ArticleFig(id=1297571097138979052, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=CN, label=null, caption=null, figureFileSmall=7HBCe0kAiG2qZber5tkA2Q==, figureFileBig=wl1FWkENXaA0iQSVN+lMFw==, tableContent=null), ArticleFig(id=1297571097231253741, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=EN, label=Figure 3, caption=
Metabolic engineering to improve the supply of essential amino acid precursors. A: Schematic overview of the engineered metabolic strategies; B: Metabolic engineering of key genes in the EGT pathway to increase its titer. SAM2 gene was overexpressed in strain ST4009, three genes of SAM2, CYS3, and HIS1 were overexpressed in strain ST4011, three genes of SAM2, STR2, and MET6 were overexpressed in strain ST4013, six genes of SAM2, CYS3, HIS1 STR2, MET6, and ADK1 were overexpressed in strain ST4016, six genes of SAM2, CYS3, HIS1, STR2, MET6, and ADK1 were overexpressed and three genes of ERG6, ERG4, and SPE2 were downregulated in strain ST4021, and Ncegt1 and Cpegt2 were integrated with multiple copies; C: Relative expression levels of Egt1 and Egt2 in ST4016 and ST4021 compared to the single-copy strain; D: The flask fermentation process of strain ST4021., figureFileSmall=khIU5eX3gC7/MP2Wi1wxXg==, figureFileBig=OzVJGB7Ks/vbzrc2P+k4fQ==, tableContent=null), ArticleFig(id=1297571097302556910, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=CN, label=null, caption=null, figureFileSmall=khIU5eX3gC7/MP2Wi1wxXg==, figureFileBig=OzVJGB7Ks/vbzrc2P+k4fQ==, tableContent=null), ArticleFig(id=1297571097365471471, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=EN, label=Figure 4, caption=
Medium optimization with different precursor amino acids concentration. A: The effects of different concentrations of Met, His, Cys, and Arg on EGT production; B: The flask fermentation process of Group D., figureFileSmall=YP89VweohZITo9V1T29rRA==, figureFileBig=pcsf649o04iHAEEqKEiA1A==, tableContent=null), ArticleFig(id=1297571099022221553, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=CN, label=null, caption=null, figureFileSmall=YP89VweohZITo9V1T29rRA==, figureFileBig=pcsf649o04iHAEEqKEiA1A==, tableContent=null), ArticleFig(id=1297571099093524722, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=EN, label=Figure 5, caption=
Fed-batch fermentation for EGT production by strain ST4021 using a 5-L bioreactor. A: The process of fed-batch fermentation; B: The accumulation of extracellular and intracellular EGT during fed-batch fermentation., figureFileSmall=GSOEAQEEusNCzbgoQWWwAw==, figureFileBig=GS1peut6OOzcINODZ5puoA==, tableContent=null), ArticleFig(id=1297571099156439283, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=CN, label=null, caption=null, figureFileSmall=GSOEAQEEusNCzbgoQWWwAw==, figureFileBig=GS1peut6OOzcINODZ5puoA==, tableContent=null), ArticleFig(id=1297571099223548148, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=EN, label=Table 1, caption=
Strains used in this study
, figureFileSmall=null, figureFileBig=null, tableContent=
| Strain name | Genotype/Modifications | Construction details | Sources |
|---|
| CEN-PK2 | CEN.PK113-7D Mata MAL2-8c SUC2 URA3 HIS3 LEU2 TRP1 | Parent strain | Lab store |
| JM109 | Wild type, for plasmid construction | | Lab store |
| ST4001 | CEN-PK2 expressing pRS423-Tregt1 and pHAC181-Cpegt2 | Overexpressing Tregt1 and Cpegt2 in CEN-PK2 | This study |
| ST4002 | CEN-PK2 expressing pRS423-Tregt1 and pHAC181-Rtegt2 | Overexpressing Tregt1 and Rtegt2 in CEN-PK2 | This study |
| ST4003 | CEN-PK2 expressing pRS423-Tregt1 and pHAC181-Spegt2 | Overexpressing Tregt1 and Spegt2 in CEN-PK2 | This study |
| ST4004 | CEN-PK2 expressing pRS423-Tregt1 and pHAC181-MsegtE | Overexpressing Tregt1 and MsegtE in CEN-PK2 | This study |
| ST4005 | CEN-PK2 expressing pRS423-Tregt1 and pHAC181-Tregt2 | Overexpressing Tregt1 and Tregt2 in CEN-PK2 | This study |
| ST4006 | CEN-PK2 expressing pRS423-Ncegt1 and pHAC181-Cpegt2 | Overexpressing Ncegt1 and Cpegt2 in CEN-PK2 | This study |
| ST4007 | CEN-PK2 expressing pRS423-Rtegt1 and pHAC181-Cpegt2 | Overexpressing Rtegt1 and Cpegt2 in CEN-PK2 | This study |
| ST4008 | CEN-PK2 expressing pRS423-Spegt1 and pHAC181-Cpegt2 | Overexpressing Spegt1 and Cpegt2 in CEN-PK2 | This study |
| ST4009 | ST4006 ΔHO::P TDH3 -SAM2-T CYC1 | Overexpressing SAM2 in T4006 | This study |
| ST4010 | ST4009 ΔGAL80::P TDH3 -CYS3-T CYC1 | Overexpressing CYS3 in T4009 | This study |
| ST4011 | ST4010 ΔYGR250::P TDH3 -HIS1-T CYC1 | Overexpressing HIS1 in T4010 | This study |
| ST4012 | ST4010 ΔDIT1::P TDH3 -STR2-T CYC1 | Overexpressing STR2 in T4010 | This study |
| ST4013 | ST4012 NDT80::P TEF1 -MET6-T CYC1 | Overexpressing MET6 in T4012 | This study |
| ST4014 | ST4011 ΔDIT1::P TDH3 -STR2-T CYC1 | Overexpressing STR2 in T4011 | This study |
| ST4015 | ST4014 NDT80::P TEF1 -MET6-T CYC1 | Overexpressing MET6 in T4014 | This study |
| ST4016 | ST4015 GAL2::P TEF1 -ADK1-T CYC1 | Overexpressing ADK1 in T4015 | This study |
| ST4017 | ST4016 P HXT1 -ERG6-T CYC1 | Downregulation of the ERG6 gene in ST4016 | This study |
| ST4018 | ST4017 P HXT1 -ERG4-T CYC1 | Downregulation of the ERG4 gene in ST4017 | This study |
| ST4019 | ST4018 P HXT1 -SPE2-T CYC1 | Downregulation of the SPE2 gene in ST4018 | This study |
| ST4020 | ST4019 rDNA::P TDH3 -Ncegt1-T CYC1 | Multicopy integration of Ncegt1 in ST4019 | This study |
| ST4021 | ST4020 delta::P TDH3 -Cpegt2-T CYC1 | Multicopy integration of Cpegt2 in ST4020 | This study |
| ST4022 | CEN-PK2 ΔGAL80::T CYC1 -Ncegt1-P TDH3 -P TDH3 -Cpegt2-T CYC1 | Single copy integration of Ncegt1 and Cpegt2 in CEN-PK2 | This study |
), ArticleFig(id=1297571099307434229, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=CN, label=null, caption=null, figureFileSmall=null, figureFileBig=null, tableContent=
| Strain name | Genotype/Modifications | Construction details | Sources |
|---|
| CEN-PK2 | CEN.PK113-7D Mata MAL2-8c SUC2 URA3 HIS3 LEU2 TRP1 | Parent strain | Lab store |
| JM109 | Wild type, for plasmid construction | | Lab store |
| ST4001 | CEN-PK2 expressing pRS423-Tregt1 and pHAC181-Cpegt2 | Overexpressing Tregt1 and Cpegt2 in CEN-PK2 | This study |
| ST4002 | CEN-PK2 expressing pRS423-Tregt1 and pHAC181-Rtegt2 | Overexpressing Tregt1 and Rtegt2 in CEN-PK2 | This study |
| ST4003 | CEN-PK2 expressing pRS423-Tregt1 and pHAC181-Spegt2 | Overexpressing Tregt1 and Spegt2 in CEN-PK2 | This study |
| ST4004 | CEN-PK2 expressing pRS423-Tregt1 and pHAC181-MsegtE | Overexpressing Tregt1 and MsegtE in CEN-PK2 | This study |
| ST4005 | CEN-PK2 expressing pRS423-Tregt1 and pHAC181-Tregt2 | Overexpressing Tregt1 and Tregt2 in CEN-PK2 | This study |
| ST4006 | CEN-PK2 expressing pRS423-Ncegt1 and pHAC181-Cpegt2 | Overexpressing Ncegt1 and Cpegt2 in CEN-PK2 | This study |
| ST4007 | CEN-PK2 expressing pRS423-Rtegt1 and pHAC181-Cpegt2 | Overexpressing Rtegt1 and Cpegt2 in CEN-PK2 | This study |
| ST4008 | CEN-PK2 expressing pRS423-Spegt1 and pHAC181-Cpegt2 | Overexpressing Spegt1 and Cpegt2 in CEN-PK2 | This study |
| ST4009 | ST4006 ΔHO::P TDH3 -SAM2-T CYC1 | Overexpressing SAM2 in T4006 | This study |
| ST4010 | ST4009 ΔGAL80::P TDH3 -CYS3-T CYC1 | Overexpressing CYS3 in T4009 | This study |
| ST4011 | ST4010 ΔYGR250::P TDH3 -HIS1-T CYC1 | Overexpressing HIS1 in T4010 | This study |
| ST4012 | ST4010 ΔDIT1::P TDH3 -STR2-T CYC1 | Overexpressing STR2 in T4010 | This study |
| ST4013 | ST4012 NDT80::P TEF1 -MET6-T CYC1 | Overexpressing MET6 in T4012 | This study |
| ST4014 | ST4011 ΔDIT1::P TDH3 -STR2-T CYC1 | Overexpressing STR2 in T4011 | This study |
| ST4015 | ST4014 NDT80::P TEF1 -MET6-T CYC1 | Overexpressing MET6 in T4014 | This study |
| ST4016 | ST4015 GAL2::P TEF1 -ADK1-T CYC1 | Overexpressing ADK1 in T4015 | This study |
| ST4017 | ST4016 P HXT1 -ERG6-T CYC1 | Downregulation of the ERG6 gene in ST4016 | This study |
| ST4018 | ST4017 P HXT1 -ERG4-T CYC1 | Downregulation of the ERG4 gene in ST4017 | This study |
| ST4019 | ST4018 P HXT1 -SPE2-T CYC1 | Downregulation of the SPE2 gene in ST4018 | This study |
| ST4020 | ST4019 rDNA::P TDH3 -Ncegt1-T CYC1 | Multicopy integration of Ncegt1 in ST4019 | This study |
| ST4021 | ST4020 delta::P TDH3 -Cpegt2-T CYC1 | Multicopy integration of Cpegt2 in ST4020 | This study |
| ST4022 | CEN-PK2 ΔGAL80::T CYC1 -Ncegt1-P TDH3 -P TDH3 -Cpegt2-T CYC1 | Single copy integration of Ncegt1 and Cpegt2 in CEN-PK2 | This study |
), ArticleFig(id=1297571099395514614, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=EN, label=Table 2, caption=
Plasmids used in this study
, figureFileSmall=null, figureFileBig=null, tableContent=
| Plasmids | Description | Sources |
|---|
| pRS423 | High-copy 2µ yeast expression plasmid | Lab store |
| p HAC181 | High-copy 2µ yeast expression plasmid | Lab store |
| pRS423-Ncegt1 | pRS423 plasmid carrying Ncegt1 | This study |
| pRS423-Rtegt1 | pRS423 plasmid carrying Rtegt1 | This study |
| pRS423-Spegt1 | pRS423 plasmid carrying Spegt1 | This study |
| pRS423-Tregt1 | pRS423 plasmid carrying Tregt1 | This study |
| pHAC181-Cpegt2 | pHAC181 plasmid carrying Cpegt2 | This study |
| pHAC181-MsegtE | pHAC181 plasmid carrying MsegtE | This study |
| pHAC181-Rtegt2 | pHAC181 plasmid carrying Rtegt2 | This study |
| pHAC181-Spegt2 | pHAC181 plasmid carrying Spegt2 | This study |
| pHAC181-Tregt2 | pHAC181 plasmid carrying Tregt2 | This study |
| pRS42H_gRNA-GAL2 | CRISPR guide RNA expression plasmid | This study |
| pRS42H_gRNA-GAL80 | CRISPR guide RNA expression plasmid | This study |
| pRS42H_gRNA-YGR250 | CRISPR guide RNA expression plasmid | This study |
| pRS42H_gRNA-NDT80 | CRISPR guide RNA expression plasmid | This study |
| pRS42H_gRNA-HO | CRISPR guide RNA expression plasmid | This study |
| pRS42H_gRNA-DIT1 | CRISPR guide RNA expression plasmid | This study |
| p414-P TEF1 -Cas9-T CYC1 | Cas9 expression plasmid | Lab store |
), ArticleFig(id=1297571099458429175, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=CN, label=null, caption=null, figureFileSmall=null, figureFileBig=null, tableContent=
| Plasmids | Description | Sources |
|---|
| pRS423 | High-copy 2µ yeast expression plasmid | Lab store |
| p HAC181 | High-copy 2µ yeast expression plasmid | Lab store |
| pRS423-Ncegt1 | pRS423 plasmid carrying Ncegt1 | This study |
| pRS423-Rtegt1 | pRS423 plasmid carrying Rtegt1 | This study |
| pRS423-Spegt1 | pRS423 plasmid carrying Spegt1 | This study |
| pRS423-Tregt1 | pRS423 plasmid carrying Tregt1 | This study |
| pHAC181-Cpegt2 | pHAC181 plasmid carrying Cpegt2 | This study |
| pHAC181-MsegtE | pHAC181 plasmid carrying MsegtE | This study |
| pHAC181-Rtegt2 | pHAC181 plasmid carrying Rtegt2 | This study |
| pHAC181-Spegt2 | pHAC181 plasmid carrying Spegt2 | This study |
| pHAC181-Tregt2 | pHAC181 plasmid carrying Tregt2 | This study |
| pRS42H_gRNA-GAL2 | CRISPR guide RNA expression plasmid | This study |
| pRS42H_gRNA-GAL80 | CRISPR guide RNA expression plasmid | This study |
| pRS42H_gRNA-YGR250 | CRISPR guide RNA expression plasmid | This study |
| pRS42H_gRNA-NDT80 | CRISPR guide RNA expression plasmid | This study |
| pRS42H_gRNA-HO | CRISPR guide RNA expression plasmid | This study |
| pRS42H_gRNA-DIT1 | CRISPR guide RNA expression plasmid | This study |
| p414-P TEF1 -Cas9-T CYC1 | Cas9 expression plasmid | Lab store |
), ArticleFig(id=1297571099550703864, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1297571091506028725, language=EN, label=Table 3, caption=
Summary of EGT bioproduction in various microbial hosts (Continued Table 3)
, figureFileSmall=null, figureFileBig=null, tableContent=
| Hosts | Key metabolic engineering features | EGT titer (shake flask) | EGT titer (bioreactor) | Fermentation time | Feeding strategy | References |
|---|
| E. coli | Construction of a combined fungal-bacterial pathway (TrEgt1/TrEgt2+MsEgtD/MsEgtE); enhancement of Cys biosynthesis (cysE); introduction of a methyl donor regeneration system | 141.3 mg/L | 2.5 g/L | 134 h | Fed-batch with glucose and low-dose amino acid feeding (1 g/L each of His, Met, Cys) | [30] |
| E. coli | Heterologous expression of egtBCDE from M. smegmatis; reinforcement of γ-GC supply by thiosulfate feeding | 24.0 mg/L | - | 72 h | Batch with His, Met, and thiosulfate supplementation | [31] |
| S. cerevisiae | Screening of fungal/bacterial EGT pathway combinations; expression of NcEgt1 and CpEgt2; medium optimization; nitrogen metabolism engineering | 80.0 mg/L | 598.0 mg/L | 84 h | Fed-batch with glucose, and supplementation of Arg, His, Met, and pyridoxine | [33] |
| S. cerevisiae | Heterologous expression of Gfegt1 and Gfegt2 from G. frondosa; optimization of carbon source (glycerol) | 20.6 mg/L | - | 168 h | Daily addition of 1% glycerol to the culture medium | [34] |
| E. coli | Heterologous expression of Mp_egtB from M. pseudosasicola with egtDE from M. smegmatis in a high Cys-producing, SAM-reinforced strain (CHΔmetJ) | 657.0 mg/L | 598.0 mg/L | 192 h | Batch culture in Erlenmeyer flasks with His, Met, and Cys supplementation; no feeding. | [37] |
| E. coli | High Cys-producing strain; expression of egtABCDE from M. smegmatis; disruption of metJ; supplementation of precursors | 275.0 mg/L | 1.3 g/L | 216 h | Fed-batch with glucose, Met, His, and thiosulfate feeding | [38] |
| E. coli | Enzyme engineering of methyltransferase (EgtD) and sulfoxide synthase (NcEgt1) via semi-rational design and random mutagenesis; high-throughput screening using ergothionase | 290.0 mg/L | 5.4 g/L | 96 h | Fed-batch with glycerol and amino acid supplementation (24 g/L each of His, Met, Cys) | [41] |
| Y. lipolytica | Development of multi-copy integration tools (YaliCMulti/YaliHMulti) using LTRs and rDNA; multi-copy integration of Egt1/Egt2 | 432.0 mg/L | 7.3 g/L | 168 h | Fed-batch with glucose in 5 L fermenter | [42] |
| Y. lipolytica | Enzyme engineering of Tregt1 (Y786A-A492V); modular engineering of precursor pathways (sulfur assimilation, Met, His, Cys); knockout of SPE2 | 516.3 mg/L | 9.3 g/L | 168 h | Fed-batch with glucose and Met supplementation (20 g/L) and BHT antioxidant | [43] |
| S. cerevisiae | Engineering of precursor supply (His overproduction, MET14, Δspe2); deletion of SAM-competitive pathway (Δerg4); medium optimization with pantothenate | 106.2 mg/L | 2.4 g/L | 160 h | Fed-batch with glucose; no amino acid precursor supplementation | [58] |
| Y. lipolytica | Heterologous expression ofNcegt1 and Cpegt2; phosphate-limitation strategy for biomass control | 205.0 mg/L | 1.6 g/L | 220 h | Phosphate-limited fed-batch with glucose as the only carbon source | [59] |
| R. toruloides | Establishment of CRISPR-assisted Cre recombination (CACR) for iterative genome editing; overexpression of endogenous Rtegt1/Rtegt2; SAM pathway rebalancing (ADO1); high-throughput screening | 267.4 mg/L | - | 168 h | Batch with Met supplementation (2 g/L) | [60] |
| E. coli | Reconstruction of betaine-driven methyl supply system (TnBHMT, SAM2, SAHase, ADO1); inorganic sulfur supply module (Egt1, EgtD, EanB); enhancement of His biosynthesis (hisG mutant, operon amplification); deletion of metJ; overexpression of mfsT1 transporter | 1.2 g/L | 7.2 g/L | 96 h | Fed-batch with glycerol, betaine, and thiosulfate; no exogenous Met or Cys supplementation | [61] |
| E. coli | Membrane permeability engineering (ΔwaaF, ΔmsbB); protein engineering ofTregt2 (E155C); copy number optimization of pathway genes; precursor (sdaA, metJ) and transporter engineering | 334.2 mg/L | 4.1 g/L | 96 h | Fed-batch with glucose and amino acid feed (16 g/L Cys, 10 g/L Met, 10 g/L His) | [62] |
| C. glutamicum | Heterologous expression of egtABCDE and egtBCDE fromM. smegmatis; expression ofegtB from M. pseudosasicola/M. brachiatum with egtDEfrom M. smegmatis in L-Cys-producing strain (CYS-2) | 100.0 mg/L | 100.0 mg/L | 336 h (batch)/120 h (fed-batch) | Fed-batch with glucose and ammonium sulfate; no exogenous His/Met supplementation required | [63] |
| E. coli | Protein engineering of Tr1 and Tr2via solubility tag fusion and truncation; knockout of competing pathways; overexpression of feedback-resistant cysE; copy number optimization of cysM; knockout of pykA, yjeH, and purR; overexpression of metK and C. glutamicum-derived hisG | 430.9 mg/L | 2.3 g/L | 80 h | Fed-batch with glucose and amino acid feed (1 g/L betaine, 2 g/L each of His, Met, Cys, 0.1 g/L VB6, 0.001 g/L VB12) | [65] |
| B. licheniformis | Heterologous expression ofEanA/EanB from C. limicola; expression of novel methyltransferase (EanAN) and sulfurtransferase (EanBN) fromB. bacterium and A. alkalidiazotrophicus, respectively; whole-cell catalysis | 643.8 mg/L | - | 140 h | Exogenous addition of His, Met, and Cys (10 g/L each) using whole-cell transformation | [66] |
| C. glutamicum | Heterologous expression of egtBCDE from M. smegmatis in an L-Cys-producing strain (CYS-2); introduction of egtB from Methylobacterium spp. with egtDE from M. smegmatis; engineering of His and SAM biosynthesis; osmotic pressure modulation | 267.0 mg/L | 459.0 mg/L | 336 h | Fed-batch with glucose and ammonium sulfate; no exogenous Met/His addition required | [67] |
| E. coli | Heterologous expression of Tregt1 and Tregt2 from T. reesei; co-expression of NcEgt1 and NcEgt2 from N. crassa | 70.6 mg/L | 4.3 g/L | 143 h | Fed-batch with glucose and continuous feeding of amino acid mixture (40 g/L each of His, Met, Cys) | [68] |
| S. cerevisiae | Overexpression of STR2, CYS3, MET6, SAM2, HIS1, and ADK1, combined with downregulation of ERG6, ERG4, and SPE2, and multicopy integration of Ncegt1 and Cpegt2 | 312.8 mg/L | 1.3 g/L | 168 h | Fed-batch fermentation with glucose as the primary carbon source, His, Met, Cys, and Arg were supplemented to the initial culture | This study |
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| Hosts | Key metabolic engineering features | EGT titer (shake flask) | EGT titer (bioreactor) | Fermentation time | Feeding strategy | References |
|---|
| E. coli | Construction of a combined fungal-bacterial pathway (TrEgt1/TrEgt2+MsEgtD/MsEgtE); enhancement of Cys biosynthesis (cysE); introduction of a methyl donor regeneration system | 141.3 mg/L | 2.5 g/L | 134 h | Fed-batch with glucose and low-dose amino acid feeding (1 g/L each of His, Met, Cys) | [30] |
| E. coli | Heterologous expression of egtBCDE from M. smegmatis; reinforcement of γ-GC supply by thiosulfate feeding | 24.0 mg/L | - | 72 h | Batch with His, Met, and thiosulfate supplementation | [31] |
| S. cerevisiae | Screening of fungal/bacterial EGT pathway combinations; expression of NcEgt1 and CpEgt2; medium optimization; nitrogen metabolism engineering | 80.0 mg/L | 598.0 mg/L | 84 h | Fed-batch with glucose, and supplementation of Arg, His, Met, and pyridoxine | [33] |
| S. cerevisiae | Heterologous expression of Gfegt1 and Gfegt2 from G. frondosa; optimization of carbon source (glycerol) | 20.6 mg/L | - | 168 h | Daily addition of 1% glycerol to the culture medium | [34] |
| E. coli | Heterologous expression of Mp_egtB from M. pseudosasicola with egtDE from M. smegmatis in a high Cys-producing, SAM-reinforced strain (CHΔmetJ) | 657.0 mg/L | 598.0 mg/L | 192 h | Batch culture in Erlenmeyer flasks with His, Met, and Cys supplementation; no feeding. | [37] |
| E. coli | High Cys-producing strain; expression of egtABCDE from M. smegmatis; disruption of metJ; supplementation of precursors | 275.0 mg/L | 1.3 g/L | 216 h | Fed-batch with glucose, Met, His, and thiosulfate feeding | [38] |
| E. coli | Enzyme engineering of methyltransferase (EgtD) and sulfoxide synthase (NcEgt1) via semi-rational design and random mutagenesis; high-throughput screening using ergothionase | 290.0 mg/L | 5.4 g/L | 96 h | Fed-batch with glycerol and amino acid supplementation (24 g/L each of His, Met, Cys) | [41] |
| Y. lipolytica | Development of multi-copy integration tools (YaliCMulti/YaliHMulti) using LTRs and rDNA; multi-copy integration of Egt1/Egt2 | 432.0 mg/L | 7.3 g/L | 168 h | Fed-batch with glucose in 5 L fermenter | [42] |
| Y. lipolytica | Enzyme engineering of Tregt1 (Y786A-A492V); modular engineering of precursor pathways (sulfur assimilation, Met, His, Cys); knockout of SPE2 | 516.3 mg/L | 9.3 g/L | 168 h | Fed-batch with glucose and Met supplementation (20 g/L) and BHT antioxidant | [43] |
| S. cerevisiae | Engineering of precursor supply (His overproduction, MET14, Δspe2); deletion of SAM-competitive pathway (Δerg4); medium optimization with pantothenate | 106.2 mg/L | 2.4 g/L | 160 h | Fed-batch with glucose; no amino acid precursor supplementation | [58] |
| Y. lipolytica | Heterologous expression ofNcegt1 and Cpegt2; phosphate-limitation strategy for biomass control | 205.0 mg/L | 1.6 g/L | 220 h | Phosphate-limited fed-batch with glucose as the only carbon source | [59] |
| R. toruloides | Establishment of CRISPR-assisted Cre recombination (CACR) for iterative genome editing; overexpression of endogenous Rtegt1/Rtegt2; SAM pathway rebalancing (ADO1); high-throughput screening | 267.4 mg/L | - | 168 h | Batch with Met supplementation (2 g/L) | [60] |
| E. coli | Reconstruction of betaine-driven methyl supply system (TnBHMT, SAM2, SAHase, ADO1); inorganic sulfur supply module (Egt1, EgtD, EanB); enhancement of His biosynthesis (hisG mutant, operon amplification); deletion of metJ; overexpression of mfsT1 transporter | 1.2 g/L | 7.2 g/L | 96 h | Fed-batch with glycerol, betaine, and thiosulfate; no exogenous Met or Cys supplementation | [61] |
| E. coli | Membrane permeability engineering (ΔwaaF, ΔmsbB); protein engineering ofTregt2 (E155C); copy number optimization of pathway genes; precursor (sdaA, metJ) and transporter engineering | 334.2 mg/L | 4.1 g/L | 96 h | Fed-batch with glucose and amino acid feed (16 g/L Cys, 10 g/L Met, 10 g/L His) | [62] |
| C. glutamicum | Heterologous expression of egtABCDE and egtBCDE fromM. smegmatis; expression ofegtB from M. pseudosasicola/M. brachiatum with egtDEfrom M. smegmatis in L-Cys-producing strain (CYS-2) | 100.0 mg/L | 100.0 mg/L | 336 h (batch)/120 h (fed-batch) | Fed-batch with glucose and ammonium sulfate; no exogenous His/Met supplementation required | [63] |
| E. coli | Protein engineering of Tr1 and Tr2via solubility tag fusion and truncation; knockout of competing pathways; overexpression of feedback-resistant cysE; copy number optimization of cysM; knockout of pykA, yjeH, and purR; overexpression of metK and C. glutamicum-derived hisG | 430.9 mg/L | 2.3 g/L | 80 h | Fed-batch with glucose and amino acid feed (1 g/L betaine, 2 g/L each of His, Met, Cys, 0.1 g/L VB6, 0.001 g/L VB12) | [65] |
| B. licheniformis | Heterologous expression ofEanA/EanB from C. limicola; expression of novel methyltransferase (EanAN) and sulfurtransferase (EanBN) fromB. bacterium and A. alkalidiazotrophicus, respectively; whole-cell catalysis | 643.8 mg/L | - | 140 h | Exogenous addition of His, Met, and Cys (10 g/L each) using whole-cell transformation | [66] |
| C. glutamicum | Heterologous expression of egtBCDE from M. smegmatis in an L-Cys-producing strain (CYS-2); introduction of egtB from Methylobacterium spp. with egtDE from M. smegmatis; engineering of His and SAM biosynthesis; osmotic pressure modulation | 267.0 mg/L | 459.0 mg/L | 336 h | Fed-batch with glucose and ammonium sulfate; no exogenous Met/His addition required | [67] |
| E. coli | Heterologous expression of Tregt1 and Tregt2 from T. reesei; co-expression of NcEgt1 and NcEgt2 from N. crassa | 70.6 mg/L | 4.3 g/L | 143 h | Fed-batch with glucose and continuous feeding of amino acid mixture (40 g/L each of His, Met, Cys) | [68] |
| S. cerevisiae | Overexpression of STR2, CYS3, MET6, SAM2, HIS1, and ADK1, combined with downregulation of ERG6, ERG4, and SPE2, and multicopy integration of Ncegt1 and Cpegt2 | 312.8 mg/L | 1.3 g/L | 168 h | Fed-batch fermentation with glucose as the primary carbon source, His, Met, Cys, and Arg were supplemented to the initial culture | This study |
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