Article(id=1304366199442268661, tenantId=1146029695717560320, journalId=1192105938417971205, issueId=1304366133864321404, articleNumber=null, orderNo=null, doi=10.13343/j.cnki.wsxb.20260431, pmid=null, cstr=null, oa=null, hot=null, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=research-article, receivedDate=1779206400000, receivedDateStr=2026-05-20, revisedDate=null, revisedDateStr=null, acceptedDate=1782576000000, acceptedDateStr=2026-06-28, onlineDate=1788914735899, onlineDateStr=2026-09-09, pubDate=1788451200000, pubDateStr=2026-09-04, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1788914735899, onlineIssueDateStr=2026-09-09, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1788914735899, creator=13701087609, updateTime=1788914735899, updator=13701087609, issue=Issue{id=1304366133864321404, tenantId=1146029695717560320, journalId=1192105938417971205, year='2026', volume='66', issue='9', pageStart='4291', pageEnd='4651', issueExtLink='null', onlineDate='null', pubDate='1788451200000', pubDateStr='2026-09-04', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=1, specialIssue=0, createTime=1788914720263, creator='13701087609', updateTime=1788914779113, updator='13701087609', preIssue=null, nextIssue=null, articleTotal=null, ext={EN=IssueExt(id=1304366380803974113, tenantId=1146029695717560320, journalId=1192105938417971205, issueId=1304366133864321404, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1304366380803974114, tenantId=1146029695717560320, journalId=1192105938417971205, issueId=1304366133864321404, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null, downloadFileDto=null}, startPage=4456, endPage=4470, ext={EN=ArticleExt(id=1304366199643595254, articleId=1304366199442268661, tenantId=1146029695717560320, journalId=1192105938417971205, language=EN, title=Design and construction of carbon dioxide fixation and transformation systems driven by synthetic microbial consortia, columnId=1192149543727808575, journalTitle=Acta Microbiologica Sinica, columnName=Review, runingTitle=null, highlight=null, articleAbstract=
With the proposal of carbon neutrality goals, microbial conversion of CO2 into high-value chemicals, fuels, and biomaterials has emerged as an important strategy for clean energy and green manufacturing. Although single-strain carbon fixation systems have ideal controllability, they still face limitations, including heavy metabolic burden, limited carbon fixation flux, insufficient energy and reducing power supply, low yield, and challenges in industrial-scale application. In contrast, synthetic microbial consortia enable rational metabolic division of labor among functionally distinct microorganisms, thereby alleviating metabolic burden, enhancing carbon fixation efficiency, and expanding product diversity. These advantages further improve product value and promote the industrial application of CO2 fixation. This review summarizes recent advances in the application of synthetic microbial consortia for CO2 conversion, including photosynthesis-driven systems, hydrogen-driven systems, and potentially safer chemoautotrophic systems classified according to carbon fixation modules. In addition, this paper discusses the design principles for constructing carbon cycling systems based on synthetic microbial consortia, together with current challenges and future perspectives, providing theoretical and practical guidance for the development of efficient and stable artificial carbon cycling systems.
, authors=Wei ZHAO
1, 3, Tingting CHENG
1, Qingyuan CHAI
1, 2, Meiling BAN
1, Jihuan DONG
1, 2, Zhiyong HUANG
1, 3, Yifan HAN
1, 3, *, authorsList=Wei ZHAO, Tingting CHENG, Qingyuan CHAI, Meiling BAN, Jihuan DONG, Zhiyong HUANG, Yifan HAN, authorCompany=null, correspAuthors=Yifan HAN, authorNote=
These authors contributed equally to this work.
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随着“碳中和”目标的提出,利用微生物将二氧化碳(CO2)转化为高附加值化学品、燃料及生物材料已成为清洁能源与绿色化工领域的重要发展方向。单一菌株的碳转化体系虽具备较好的可控性,但实际应用中仍面临代谢负荷过重、固碳通量受限、能量与还原力供给不足、产物得率偏低及工艺放大困难等多重挑战。相比之下,合成微生物群落可通过理性设计不同功能微生物的组合,实现代谢分工、分担代谢负担、提升固碳效率、增加产物多样性,进而提升产物价值,推动CO2固定技术的工业化落地。本文综述了当前合成微生物群落在CO2转化体系中的应用进展,涵盖以固碳模块划分的光能驱动系统、氢能驱动系统,以及具备更高应用安全性的潜在化能系统;总结了基于合成微生物群落构建碳循环体系的核心设计原则,梳理了当前领域面临的关键挑战与未来发展方向,可为构建高效稳定的人工碳循环系统提供理论与实践参考。
, authors=赵维
1, 3, 成婷婷
1, 柴清圆
1, 2, 班美玲
1, 董继焕
1, 2, 黄志勇
1, 3, 韩一凡
1, 3, *, authorsList=赵维, 成婷婷, 柴清圆, 班美玲, 董继焕, 黄志勇, 韩一凡, authorCompany=null, correspAuthors=韩一凡, authorNote=
作者贡献声明
赵维:文章主要内容的组织撰写与修改,案例搜集、整理;成婷婷:文章内容的修改,案例搜集整理;柴清圆:调查研究;班美玲:可视化呈现;董继焕:文章参考文献整理;黄志勇:统筹安排,逻辑思路指导,基金支持;韩一凡:文章主题和框架制定,文章修改,基金支持。
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2022,
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3.National Technology Innovation Center for Synthetic Biology, Tianjin, China), AuthorCompanyExt(id=1304388964199198921, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1304366199442268661, companyId=1304388964178227399, language=CN, country=null, province=null, city=null, postcode=null, companyName=null, departmentName=null, remark=
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Community synergy mechanisms and engineering regulation strategies. This figure illustrates the bidirectional metabolic cross-feeding mechanism sustaining coexistence within microbial consortia: carbon-fixing strains supply carbon substrates to heterotrophs, while heterotrophs reciprocally provide growth factors and environmental modulation. Based on this core natural mechanism, four distinct engineering strategies (metabolic dependency locking, growth-product coupling, spatial organization design, and process parameter control) can be adopted to maintain long-term stable operation of the synergistic network., figureFileSmall=R1usBGrZ/oYzxz+vWgQx1g==, figureFileBig=XcoRvXNGjPFTYgsDUWhbxA==, tableContent=null), ArticleFig(id=1304388972529086720, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1304366199442268661, language=CN, label=图1, caption=
群落协同机制与工程调控策略, figureFileSmall=R1usBGrZ/oYzxz+vWgQx1g==, figureFileBig=XcoRvXNGjPFTYgsDUWhbxA==, tableContent=null), ArticleFig(id=1304388972650721537, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1304366199442268661, language=EN, label=Figure 2, caption=
Overall architecture of synthetic microbial consortia-based carbon cycling systems. CO2 is first converted into soluble organic carbon via distinct carbon fixation modules; The intermediate metabolites are then channeled through heterotrophic modules toward a variety of high-value products, enabling the coupling of carbon fixation and product biosynthesis., figureFileSmall=gefThg3TOOnz5ZyAYCKW8Q==, figureFileBig=wR6kimX3q7G+xvnj0osfyw==, tableContent=null), ArticleFig(id=1304388972759773442, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1304366199442268661, language=CN, label=图2, caption=
合成微生物群落碳循环体系总体架构, figureFileSmall=gefThg3TOOnz5ZyAYCKW8Q==, figureFileBig=wR6kimX3q7G+xvnj0osfyw==, tableContent=null), ArticleFig(id=1304388972843659523, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1304366199442268661, language=EN, label=Table 1, caption=
Comparison of core CO2 fixation pathways
, figureFileSmall=null, figureFileBig=null, tableContent=
| Pathway | Representative microorganisms | Core enzymes and key characteristics | Advantages | Bottlenecks | Roles in synthetic consortia |
|---|
| Calvin-Benson-Bassham (CBB) cycle | Cyanobacteria, plants, some chemolithoautotrophs | RuBisCO; 3-phosphoglycerate as the primary product | Most thoroughly characterized; natively coupled with photosynthesis; compatible with light-driven systems | Low catalytic efficiency of RuBisCO; photorespiration carbon loss; light transfer limitations | Carbon-fixing module for saccharides/organic acids[6,13] |
| Wood-Ljungdahl (WL) pathway | Acetogens, Clostridia, methanogenic archaea | Acetyl-CoA synthase; CO2 converted directly to acetyl-CoA | Highest energy efficiency; compatible with syngas (CO/CO2/H2) | Strict anaerobic requirement; poor gas-liquid mass transfer; pH sensitivity; slow growth | Gas carbon-fixing module, acetate/ethanol supplying module[14-15] |
| rTCA cycle and other native or synthetic carbon fixation pathways | Anaerobic/microaerophilic bacteria, archaea, engineered strains | ATP citrate lyase; 2-oxoglutarate synthase | High energy efficiency; short metabolic routes; diverse target products | Oxygen sensitivity; low heterologous expression efficiency of key enzymes; difficult engineering manipulation | High-specificity carbon-fixing module; chassis for synthetic pathways[16-18] |
| Hydrogen-oxidizing autotrophic carbon fixation system (with CBB as carbon fixation pathway) | Cupriavidus necator and related strains | Hydrogenase; H2 serves as electron donor | Electro-hydrogen-biological coupling; no light limitation; fast growth; capable of PHA biosynthesis | Safety hazards of H2/O2 mixture; strict gas proportion control; weak product secretion capacity | Electrogenic carbon-fixing module; carbon intermediate supplying module[19-20] |
), ArticleFig(id=1304388972910768388, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1304366199442268661, language=CN, label=表1, caption=
核心CO2 固定途径对比
, figureFileSmall=null, figureFileBig=null, tableContent=
| Pathway | Representative microorganisms | Core enzymes and key characteristics | Advantages | Bottlenecks | Roles in synthetic consortia |
|---|
| Calvin-Benson-Bassham (CBB) cycle | Cyanobacteria, plants, some chemolithoautotrophs | RuBisCO; 3-phosphoglycerate as the primary product | Most thoroughly characterized; natively coupled with photosynthesis; compatible with light-driven systems | Low catalytic efficiency of RuBisCO; photorespiration carbon loss; light transfer limitations | Carbon-fixing module for saccharides/organic acids[6,13] |
| Wood-Ljungdahl (WL) pathway | Acetogens, Clostridia, methanogenic archaea | Acetyl-CoA synthase; CO2 converted directly to acetyl-CoA | Highest energy efficiency; compatible with syngas (CO/CO2/H2) | Strict anaerobic requirement; poor gas-liquid mass transfer; pH sensitivity; slow growth | Gas carbon-fixing module, acetate/ethanol supplying module[14-15] |
| rTCA cycle and other native or synthetic carbon fixation pathways | Anaerobic/microaerophilic bacteria, archaea, engineered strains | ATP citrate lyase; 2-oxoglutarate synthase | High energy efficiency; short metabolic routes; diverse target products | Oxygen sensitivity; low heterologous expression efficiency of key enzymes; difficult engineering manipulation | High-specificity carbon-fixing module; chassis for synthetic pathways[16-18] |
| Hydrogen-oxidizing autotrophic carbon fixation system (with CBB as carbon fixation pathway) | Cupriavidus necator and related strains | Hydrogenase; H2 serves as electron donor | Electro-hydrogen-biological coupling; no light limitation; fast growth; capable of PHA biosynthesis | Safety hazards of H2/O2 mixture; strict gas proportion control; weak product secretion capacity | Electrogenic carbon-fixing module; carbon intermediate supplying module[19-20] |
), ArticleFig(id=1304388972998848773, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1304366199442268661, language=EN, label=Table 2, caption=
Representative studies on carbon conversion systems with synthetic microbial consortia
, figureFileSmall=null, figureFileBig=null, tableContent=
| Carbon fixation module | Downstream module | Forms of carbon sources | Target products | Cooperation mechanism | Main advantages | Key challenges |
|---|
| SynechococcuscscB | Pseudomonas putidacscAB | Sucrose | Polyhydroxyalkanoates (PHA) | Commensalism: cyanobacteria conduct photosynthetic carbon fixation and secrete sucrose, while Pseudomonas sp. utilizes sucrose to synthesize polyhydroxyalkanoate (PHA) | Platformized and scalable | Carbon flux competition[45] |
| Synechococcus elongatus UTEX 2973 | E. coli BL21 (DE3) | Sucrose | 3-hydroxypropionic acid (3-HP) | Mutualistic symbiosis: cyanobacteria fix carbon via photosynthesis and secrete sucrose, while Escherichia coli utilizes sucrose to synthesize 3-HP and eliminate reactive oxygen species (ROS) | The growth of cyanobacteria was markedly improved | Dynamic control of microbial community ratios[46] |
Synechococcus elongatus PCC79429 (cscB) | E. coli BL21 (efe, ispS) | Sucrose | Ethylene, isoprene | Commensalism (cyanobacteria secrete sugars and oxygen, while Escherichia coli utilizes sucrose to synthesize ethylene and isoprene) | Light-driven, short integrated metabolic pathway | Limited sucrose flux, photoinhibition[47] |
| Clostridium acetobutylicum | Clostridium kluyveri | CO/CO2→acetic acid | Butanol, hexanol | Mutualistic symbiosis: Clostridium ljungdahlii consumes and detoxifies CO while supplying acetate and ethanol; Clostridium kluyveri utilizes these substrates to elongate carbon chains and synthesize medium-chain fatty acids and higher alcohols | Carbon chain elongation with high carbon yields | pH control[48] |
| Engineered Clostridium acetobutylicum | Clostridium ljungdahlii | Sugars+CO2 | Isopropanol, butanol | Mutualistic symbiosis: Clostridium acetobutylicum produces CO2, H2, and acetone; Clostridium ljungdahlii fixes carbon, converts acetone to isopropanol, and generates acetate to feed back to the primary strain | Enhance carbon utilization efficiency | Maintain community stability[16] |
| Acetobacterium | Alcaligenes | CO2+electricity (electrolytic H2 generation) | Single cell protein (SCP) | Mutualistic symbiosis: Acetobacter produces acetate to feed Alcaligenes, while Alcaligenes consumes acetate to relieve metabolic inhibition and balance the pH of the system | Alleviated product inhibition, low wastewater generation, nearly 100% gas utilization efficiency, high protein content | Low electron-to-protein conversion efficiency and high risk of membrane fouling during long-term operation[49] |
| Cupriavidus necator | Escherichia coli, Saccharomyces cerevisiae | CO2+H2 | PHA/other chemicals | Cupriavidus performs chemolithoautotrophic carbon fixation and secretes sucrose to support heterotrophs; heterotrophs consume sucrose to relieve product inhibition and drive upstream biosynthesis | High cell density, industrial potential | Cases of co-cultivation remain scarce[50] |
), ArticleFig(id=1304388973082734854, tenantId=1146029695717560320, journalId=1192105938417971205, articleId=1304366199442268661, language=CN, label=表2, caption=
基于合成微生物群落的碳转化体系代表性研究案例
, figureFileSmall=null, figureFileBig=null, tableContent=
| Carbon fixation module | Downstream module | Forms of carbon sources | Target products | Cooperation mechanism | Main advantages | Key challenges |
|---|
| SynechococcuscscB | Pseudomonas putidacscAB | Sucrose | Polyhydroxyalkanoates (PHA) | Commensalism: cyanobacteria conduct photosynthetic carbon fixation and secrete sucrose, while Pseudomonas sp. utilizes sucrose to synthesize polyhydroxyalkanoate (PHA) | Platformized and scalable | Carbon flux competition[45] |
| Synechococcus elongatus UTEX 2973 | E. coli BL21 (DE3) | Sucrose | 3-hydroxypropionic acid (3-HP) | Mutualistic symbiosis: cyanobacteria fix carbon via photosynthesis and secrete sucrose, while Escherichia coli utilizes sucrose to synthesize 3-HP and eliminate reactive oxygen species (ROS) | The growth of cyanobacteria was markedly improved | Dynamic control of microbial community ratios[46] |
Synechococcus elongatus PCC79429 (cscB) | E. coli BL21 (efe, ispS) | Sucrose | Ethylene, isoprene | Commensalism (cyanobacteria secrete sugars and oxygen, while Escherichia coli utilizes sucrose to synthesize ethylene and isoprene) | Light-driven, short integrated metabolic pathway | Limited sucrose flux, photoinhibition[47] |
| Clostridium acetobutylicum | Clostridium kluyveri | CO/CO2→acetic acid | Butanol, hexanol | Mutualistic symbiosis: Clostridium ljungdahlii consumes and detoxifies CO while supplying acetate and ethanol; Clostridium kluyveri utilizes these substrates to elongate carbon chains and synthesize medium-chain fatty acids and higher alcohols | Carbon chain elongation with high carbon yields | pH control[48] |
| Engineered Clostridium acetobutylicum | Clostridium ljungdahlii | Sugars+CO2 | Isopropanol, butanol | Mutualistic symbiosis: Clostridium acetobutylicum produces CO2, H2, and acetone; Clostridium ljungdahlii fixes carbon, converts acetone to isopropanol, and generates acetate to feed back to the primary strain | Enhance carbon utilization efficiency | Maintain community stability[16] |
| Acetobacterium | Alcaligenes | CO2+electricity (electrolytic H2 generation) | Single cell protein (SCP) | Mutualistic symbiosis: Acetobacter produces acetate to feed Alcaligenes, while Alcaligenes consumes acetate to relieve metabolic inhibition and balance the pH of the system | Alleviated product inhibition, low wastewater generation, nearly 100% gas utilization efficiency, high protein content | Low electron-to-protein conversion efficiency and high risk of membrane fouling during long-term operation[49] |
| Cupriavidus necator | Escherichia coli, Saccharomyces cerevisiae | CO2+H2 | PHA/other chemicals | Cupriavidus performs chemolithoautotrophic carbon fixation and secretes sucrose to support heterotrophs; heterotrophs consume sucrose to relieve product inhibition and drive upstream biosynthesis | High cell density, industrial potential | Cases of co-cultivation remain scarce[50] |
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