1.江南大学,食品科学与技术国家重点实验室,江苏 无锡 214122
2.江南大学,食品安全国际合作联合实验室,江苏 无锡 214122
[ "程真真(2001—),女,学士。研究方向为微生物固碳途径的设计、构建与应用。E-mail:zzch0929@163.com" ]
[ "陈修来(1985—),男,博士,教授。研究方向为微生物代谢工程与合成生物学。E-mail:xlchen@jiangnan.edu.cn" ]
收稿:2023-04-17,
修回:2023-05-22,
纸质出版:2023-08-31
移动端阅览
程真真, 张健, 高聪, 刘立明, 陈修来. 代谢工程改造微生物利用甲酸研究进展[J]. 合成生物学, 2023, 4(4): 756-778
CHENG Zhenzhen, ZHANG Jian, GAO Cong, LIU Liming, CHEN Xiulai. Progress in metabolic engineering of microorganisms for the utilization of formate[J]. Synthetic Biology Journal, 2023, 4(4): 756-778
程真真, 张健, 高聪, 刘立明, 陈修来. 代谢工程改造微生物利用甲酸研究进展[J]. 合成生物学, 2023, 4(4): 756-778 DOI: 10.12211/2096-8280.2023-032.
CHENG Zhenzhen, ZHANG Jian, GAO Cong, LIU Liming, CHEN Xiulai. Progress in metabolic engineering of microorganisms for the utilization of formate[J]. Synthetic Biology Journal, 2023, 4(4): 756-778 DOI: 10.12211/2096-8280.2023-032.
微生物利用甲酸生产高附加值产品,是实现碳资源回收利用与绿色产业发展的重要策略之一。然而,在微生物利用甲酸过程中存在甲酸利用效率偏低、细胞生长速率缓慢、目标代谢物产量不高等问题。为了解决上述问题,本文从甲酸利用的微生物、代谢路径与代谢工程策略三个方面,系统总结分析了代谢工程改造微生物利用甲酸的研究进展。在甲酸利用微生物方面,概述了天然甲酸利用微生物的代谢特点以及模式微生物的代谢工程改造潜能;在甲酸利用代谢路径方面,梳理了天然的甲酸利用路径、重构与优化的甲酸利用路径与人工的甲酸利用路径的关键步骤、能量/还原力消耗与特点;在甲酸利用代谢工程策略方面,阐述了提高甲酸同化效率与改善甲酸利用微生物细胞生长的关键方法。最后,从甲酸利用的微生物、代谢路径与代谢工程策略三个方面,展望了微生物利用甲酸的发展方向,为甲酸生物经济的发展奠定了基础。
One carbon resources are expected to become the next generation raw materials for the production of high value-added chemicals to achieve the recycling and utilization of carbon resources and promote the development of green industries. To achieve this aim
microbial utilization of formate produced from various one carbon resources
is one of the important strategies to build a green and sustainable platform for one-carbon biomanufacturing. However
there are many problems in the process of microbial utilization of formate
such as the low efficiency of formate utilization
the slow growth rate of formate-utilizing microorganisms
and the low yield of target metabolites and so on. To solve these problems
in this paper we systematically summarize and analyze the research progress in metabolic engineering of microorganisms for the utilization of formate from following three aspects: formate-utilizing microorganisms
metabolic pathways and metabolic engineering strategies. For formate-utilizing microorganisms
we summarize the metabolic characteristics and applicative advantages of natural formate-utilizing microorganisms
as well as the potential and advantages of model microorganisms for the application of metabolic engineering. For formate-utilizing metabolic pathways
we review the key steps
energy/reducing power consumption and characteristics of natural formate-utilizing pathways
reconstruction and optimization of formate-utilizing pathways and artificial formate-utilizing pathways
and then discuss the potential of metabolic engineering modification of these pathways. For formate-utilizing metabolic engineering strategies
we describe the useful strategies to improve the metabolic efficiency of formate assimilation pathways
such as optimizing the expression level of pathway genes
engineering key pathway enzymes
blocking the competitive pathways
reconstructing cofactor regeneration system
and modular pathway engineering
and then summarize the key approaches to improve the cell growth of formate-utilizing microorganisms
such as adaptive laboratory evolution
enhancing the cell growth of formatotrophs and improving the ability of microorganisms to synergistically utilize formate. Finally
we prospect the developmental direction of microbial utilization of formate from three aspects of formate-utilizing microorganisms
metabolic pathways and metabolic engineering strategies
which would lay the foundation for the development of formate bio-economy.
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ESCOBAR J C , LORA E S , VENTURINI O J , et al . Biofuels: environment, technology and food security [J ] . Renewable & Sustainable Energy Reviews , 2009 , 13 ( 6/7 ): 1275 - 1287 .
ZHOU Y J , KERKHOVEN E J , NIELSEN J . Barriers and opportunities in bio-based production of hydrocarbons [J ] . Nature Energy , 2018 , 3 ( 11 ): 925 - 935 .
LV X Q , YU W W , ZHANG C Y , et al . C1-based biomanufacturing: advances, challenges and perspectives [J ] . Bioresource Technology , 2023 , 367 : 128259 .
ZHANG C Q , OTTENHEIM C , WEINGARTEN M , et al . Microbial utilization of next-generation feedstocks for the biomanufacturing of value-added chemicals and food ingredients [J ] . Frontiers in Bioengineering and Biotechnology , 2022 , 10 : 874612 .
SAKARIKA M , GANIGUÉ R , RABAEY K . Methylotrophs: from C1 compounds to food [J ] . Current Opinion in Biotechnology , 2022 , 75 : 102685 .
FLAIZ M , LUDWIG G , BENGELSDORF F R , et al . Production of the biocommodities butanol and acetone from methanol with fluorescent FAST-tagged proteins using metabolically engineered strains of Eubacterium limosum [J ] . Biotechnology for Biofuels , 2021 , 14 ( 1 ): 117 .
OKOYE-CHINE C G , OTUN K , SHIBA N , et al . Conversion of carbon dioxide into fuels—a review [J ] . Journal of CO 2 Utilization , 2022 , 62 : 102099 .
YOON J H , CHANG W J , OH S H , et al . Metabolic engineering of Methylorubrum extorquens AM1 for poly (3-hydroxybutyrate- co -3-hydroxyvalerate) production using formate [J ] . International Journal of Biological Macromolecules , 2021 , 177 : 284 - 293 .
RAY S , JIN J O , CHOI I , et al . Recent trends of biotechnological production of polyhydroxyalkanoates from C1 carbon sources [J ] . Frontiers in Bioengineering and Biotechnology , 2023 , 10 : 907500 .
LIU Y Q , BAI C X , XU Q , et al . Improved methanol-derived lovastatin production through enhancement of the biosynthetic pathway and intracellular lovastatin efflux in methylotrophic yeast [J ] . Bioresources and Bioprocessing , 2018 , 5 ( 1 ): 22 .
LIU Y Q , TU X H , XU Q , et al . Engineered monoculture and co-culture of methylotrophic yeast for de novo production of monacolin J and lovastatin from methanol [J ] . Metabolic Engineering , 2018 , 45 : 189 - 199 .
YASIN M , JEONG Y S , PARK S Y , et al . Microbial synthesis gas utilization and ways to resolve kinetic and mass-transfer limitations [J ] . Bioresource Technology , 2015 , 177 : 361 - 374 .
COTTON C A , CLAASSENS N J , BENITO-VAQUERIZO S , et al . Renewable methanol and formate as microbial feedstocks [J ] . Current Opinion in Biotechnology , 2020 , 62 : 168 - 180 .
JIANG W , HERNÁNDEZ VILLAMOR D , PENG H D , et al . Metabolic engineering strategies to enable microbial utilization of C1 feedstocks [J ] . Nature Chemical Biology , 2021 , 17 ( 8 ): 845 - 855 .
THIJS B , RONGÉ J , MARTENS J A . Matching emerging formic acid synthesis processes with application requirements [J ] . Green Chemistry , 2022 , 24 ( 6 ): 2287 - 2295 .
CLAASSENS N J , BORDANABA-FLORIT G , COTTON C A R , et al . Replacing the Calvin cycle with the reductive glycine pathway in Cupriavidus necator [J ] . Metabolic Engineering , 2020 , 62 : 30 - 41 .
KIM S , LINDNER S N , ASLAN S , et al . Growth of E. coli on formate and methanol via the reductive glycine pathway [J ] . Nature Chemical Biology , 2020 , 16 ( 5 ): 538 - 545 .
BANG J , HWANG C H , AHN J H , et al . Escherichia coli is engineered to grow on CO 2 and formic acid [J ] . Nature Microbiology , 2020 , 5 ( 12 ): 1459 - 1463 .
GONZALEZ DE LA CRUZ J , MACHENS F , MESSERSCHMIDT K , et al . Core catalysis of the reductive glycine pathway demonstrated in yeast [J ] . ACS Synthetic Biology , 2019 , 8 ( 5 ): 911 - 917 .
DRAKE H L , KÜSEL K , MATTHIES C . Acetogenic prokaryotes [M/OL ] // The Prokaryotes . Berlin, Heidelberg: Springer Berlin Heidelberg, 2013 : 3 - 60 [2023-03-01] . https://link.springer.com/referenceworkentry/10.1007/978-3-642-30141-4_61 https://link.springer.com/referenceworkentry/10.1007/978-3-642-30141-4_61 .
MOON J , DÖNIG J , KRAMER S , et al . Formate metabolism in the acetogenic bacterium Acetobacterium woodii [J ] . Environmental Microbiology , 2021 , 23 ( 8 ): 4214 - 4227 .
NEUENDORF C S , VIGNOLLE G A , DERNTL C , et al . A quantitative metabolic analysis reveals Acetobacterium woodii as a flexible and robust host for formate-based bioproduction [J ] . Metabolic Engineering , 2021 , 68 : 68 - 85 .
REEVE J N . Molecular biology of methanogens [J ] . Annual Review of Microbiology , 1992 , 46 : 165 - 191 .
LUPA B , HENDRICKSON E L , LEIGH J A , et al . Formate-dependent H 2 production by the mesophilic methanogen Methanococcus maripaludis [J ] . Applied and Environmental Microbiology , 2008 , 74 ( 21 ): 6584 - 6590 .
SARMIENTO F B , LEIGH J A , WHITMAN W B . Genetic systems for hydrogenotrophic methanogens [M/OL ] // Methods in Methane Metabolism, Part A: Methods in Enzymology . Amsterdam : Elsevier , 2011 : 43 - 73 [2023-03-01] . https://www.sciencedirect.com/science/article/abs/pii/B9780123851123000032?via%3Dihub https://www.sciencedirect.com/science/article/abs/pii/B9780123851123000032?via%3Dihub .
GOYAL N , ZHOU Z , KARIMI I A . Metabolic processes of Methanococcus maripaludis and potential applications [J ] . Microbial Cell Factories , 2016 , 15 ( 1 ): 107 .
MARTINS M , PEREIRA I A C . Sulfate-reducing bacteria as new microorganisms for biological hydrogen production [J ] . International Journal of Hydrogen Energy , 2013 , 38 ( 28 ): 12294 - 12301 .
RITTMANN S K M R , LEE H S , LIM J K , et al . One-carbon substrate-based biohydrogen production: microbes, mechanism, and productivity [J ] . Biotechnology Advances , 2015 , 33 ( 1 ): 165 - 177 .
MARTINS M , MOURATO C , PEREIRA I A C . Desulfovibrio vulgaris growth coupled to formate-driven H 2 production [J ] . Environmental Science & Technology , 2015 , 49 ( 24 ): 14655 - 14662 .
SINGH R P , SINGH R N , SRIVASTAVA M K , et al . Structure prediction and analysis of MxaF from obligate, facultative and restricted facultative methylobacterium [J ] . Bioinformation , 2012 , 8 ( 21 ): 1042 - 1046 .
CROWTHER G J , KOSÁLY G , LIDSTROM M E . Formate as the main branch point for methylotrophic metabolism in Methylobacterium extorquens AM1 [J ] . Journal of Bacteriology , 2008 , 190 ( 14 ): 5057 - 5062 .
CUI L Y , YANG J , LIANG W F , et al . Sodium formate redirects carbon flux and enhances heterologous mevalonate production in Methylobacterium extorquens AM1 [J ] . Biotechnology Journal , 2023 , 18 ( 2 ): 2200402 .
POHLMANN A , FRICKE W F , REINECKE F , et al . Genome sequence of the bioplastic-producing "Knallgas" bacterium Ralstonia eutropha H16 [J ] . Nature Biotechnology , 2006 , 24 ( 10 ): 1257 - 1262 .
CRAMM R . Genomic view of energy metabolism in Ralstonia eutropha H16 [J ] . Journal of Molecular Microbiology and Biotechnology , 2008 , 16 ( 1/2 ): 38 - 52 .
PAN H J , WANG J , WU H L , et al . Synthetic biology toolkit for engineering Cupriviadus necator H16 as a platform for CO 2 valorization [J ] . Biotechnology for Biofuels , 2021 , 14 ( 1 ): 212 .
CALVEY C H , SANCHEZ I N V , WHITE A M , et al . Improving growth of Cupriavidus necator H16 on formate using adaptive laboratory evolution-informed engineering [J ] . Metabolic Engineering , 2023 , 75 : 78 - 90 .
SCHUCHMANN K , MÜLLER V . Autotrophy at the thermodynamic limit of life: a model for energy conservation in acetogenic bacteria [J ] . Nature Reviews Microbiology , 2014 , 12 ( 12 ): 809 - 821 .
LIU Y C , WHITMAN W B . Metabolic, phylogenetic, and ecological diversity of the methanogenic Archaea [J ] . Annals of the New York Academy of Sciences , 2008 , 1125 ( 1 ): 171 - 189 .
冷欢 , 杨清 , 黄钢锋 , 等 . 氢营养型产甲烷代谢途径研究进展 [J ] . 微生物学报 , 2020 , 60 ( 10 ): 2136 - 2160 .
LENG H , YANG Q , HUANG G F , et al . Recent advances in hydrogenotrophic methanogenesis [J ] . Acta Microbiologica Sinica , 2020 , 60 ( 10 ): 2136 - 2160 .
THAUER R K , KASTER A K , SEEDORF H , et al . Methanogenic Archaea: ecologically relevant differences in energy conservation [J ] . Nature Reviews Microbiology , 2008 , 6 ( 8 ): 579 - 591 .
COSTA K C , WONG P M , WANG T S , et al . Protein complexing in a methanogen suggests electron bifurcation and electron delivery from formate to heterodisulfide reductase [J ] . Proceedings of the National Academy of Sciences of the United States of America , 2010 , 107 ( 24 ): 11050 - 11055 .
LI J , ZHANG L Y , XU Q , et al . CRISPR-Cas9 toolkit for genome editing in an autotrophic CO 2 -fixing methanogenic archaeon [J ] . Microbiology Spectrum , 2022 , 10 ( 4 ): 01165 - 22 .
BAO J C , DE DIOS MATEOS E , SCHELLER S . Efficient CRISPR/Cas12a-based genome-editing toolbox for metabolic engineering in Methanococcus maripaludis [J ] . ACS Synthetic Biology , 2022 , 11 ( 7 ): 2496 - 2503 .
HEIDELBERG J F , SESHADRI R , HAVEMAN S A , et al . The genome sequence of the anaerobic, sulfate-reducing bacterium Desulfovibrio vulgaris hildenborough [J ] . Nature Biotechnology , 2004 , 22 ( 5 ): 554 - 559 .
JANSEN K , THAUER R K , WIDDEL F , et al . Carbon assimilation pathways in sulfate reducing bacteria. Formate, carbon dioxide, carbon monoxide, and acetate assimilation by Desulfovibrio baarsii [J ] . Archives of Microbiology , 1984 , 138 ( 3 ): 257 - 262 .
SÁNCHEZ-ANDREA I , ALVES GUEDES I , HORNUNG B , et al . The reductive glycine pathway allows autotrophic growth of Desulfovibrio desulfuricans [J ] . Nature Communications , 2020 , 11 : 5090 .
SUN H , SPRING S , LAPIDUS A , et al . Complete genome sequence of Desulfarculus baarsii type strain (2st14 T ) [J ] . Standards in Genomic Sciences , 2010 , 3 ( 3 ): 276 - 284 .
MARTINS M , MOURATO C , MORAIS-SILVA F O , et al . Electron transfer pathways of formate-driven H 2 production in Desulfovibrio [J ] . Applied Microbiology and Biotechnology , 2016 , 100 ( 18 ): 8135 - 8146 .
ZHANG W M , SONG M , YANG Q , et al . Current advance in bioconversion of methanol to chemicals [J ] . Biotechnology for Biofuels , 2018 , 11 : 260 .
KIM S M , LEE S H , KIM I K , et al . Structural insight into a molecular mechanism of methenyltetrahydrofolate cyclohydrolase from Methylobacterium extorquens AM1 [J ] . International Journal of Biological Macromolecules , 2022 , 202 : 234 - 240 .
TONG S , ZHAO L Z , ZHU D L , et al . From formic acid to single-cell protein: genome-scale revealing the metabolic network of Paracoccus communis MA5 [J ] . Bioresources and Bioprocessing , 2022 , 9 ( 1 ): 55 .
PICKERING B S , ORESNIK I J . Formate-dependent autotrophic growth in Sinorhizobium meliloti [J ] . Journal of Bacteriology , 2008 , 190 ( 19 ): 6409 - 6418 .
SOROKIN D Y , LÜCKER S , VEJMELKOVA D , et al . Nitrification expanded: discovery, physiology and genomics of a nitrite-oxidizing bacterium from the Phylum chloroflexi [J ] . The ISME Journal , 2012 , 6 ( 12 ): 2245 - 2256 .
GROSTERN A , ALVAREZ-COHEN L . RubisCO-based CO 2 fixation and C1 metabolism in the actinobacterium Pseudonocardia dioxanivorans CB1190 [J ] . Environmental Microbiology , 2013 , 15 ( 11 ): 3040 - 3053 .
ORLOVA M V , TARLACHKOV S V , DUBININA G A , et al . Genomic insights into metabolic versatility of a lithotrophic sulfur-oxidizing diazotrophic Alphaproteobacterium Azospirillum thiophilum [J ] . FEMS Microbiology Ecology , 2016 , 92 ( 12 ): fiw199 .
BANG J , AHN J H , LEE J A , et al . Synthetic formatotrophs for one-carbon biorefinery [J ] . Advanced Science , 2021 , 8 ( 12 ): 2100199 .
GLEIZER S , BEN-NISSAN R , BAR-ON Y M , et al . Conversion of Escherichia coli to generate all biomass carbon from CO 2 [J ] . Cell , 2019 , 179 ( 6 ): 1255 - 1263.e12 .
YU H , LIAO J C . A modified serine cycle in Escherichia coli coverts methanol and CO 2 to two-carbon compounds [J ] . Nature Communications , 2018 , 9 : 3992 .
HE H , HOPER R , DODENHOFT M , et al . An optimized methanol assimilation pathway relying on promiscuous formaldehyde-condensing aldolases in E. coli [J ] . Metabolic Engineering , 2020 , 60 : 1 - 13 .
YISHAI O , GOLDBACH L , TENENBOIM H , et al . Engineered assimilation of exogenous and endogenous formate in Escherichia coli [J ] . ACS Synthetic Biology , 2017 , 6 ( 9 ): 1722 - 1731 .
TASHIRO Y , HIRANO S , MATSON M M , et al . Electrical-biological hybrid system for CO 2 reduction [J ] . Metabolic Engineering , 2018 , 47 : 211 - 218 .
YISHAI O , BOUZON M , DÖRING V , et al . In vivo assimilation of one-carbon via a synthetic reductive glycine pathway in Escherichia coli [J ] . ACS Synthetic Biology , 2018 , 7 ( 9 ): 2023 - 2028 .
BANG J , LEE S Y . Assimilation of formic acid and CO 2 by engineered Escherichia coli equipped with reconstructed one-carbon assimilation pathways [J ] . Proceedings of the National Academy of Sciences of the United States of America , 2018 , 115 ( 40 ): E9271 - E9279 .
DÖRING V , DARII E , YISHAI O , et al . Implementation of a reductive route of one-carbon assimilation in Escherichia coli through directed evolution [J ] . ACS Synthetic Biology , 2018 , 7 ( 9 ): 2029 - 2036 .
DELMAS V A , PERCHAT N , MONET O , et al . Genetic and biocatalytic basis of formate dependent growth of Escherichia coli strains evolved in continuous culture [J ] . Metabolic Engineering , 2022 , 72 : 200 - 214 .
KIM S , GIRALDO N , RAINALDI V , et al . Optimizing E. coli as a formatotrophic platform for bioproduction via the reductive glycine pathway [J ] . Frontiers in Bioengineering and Biotechnology , 2023 , 11 : 1091899 .
LU X Y , LIU Y W , YANG Y Q , et al . Constructing a synthetic pathway for acetyl-coenzyme A from one-carbon through enzyme design [J ] . Nature Communications , 2019 , 10 : 1378 .
LIU B , LI H J , ZHOU H L , et al . Enhancing xylanase expression by Komagataella phaffii by formate as carbon source and inducer [J ] . Applied Microbiology and Biotechnology , 2022 , 106 ( 23 ): 7819 - 7829 .
LIU B , ZHAO Y X , ZHOU H L , et al . Enhancing xylanase expression of Komagataella phaffii induced by formate through Mit1 co-expression [J ] . Bioprocess and Biosystems Engineering , 2022 , 45 ( 9 ): 1515 - 1525 .
TURLIN J , DRONSELLA B , DE MARIA A , et al . Integrated rational and evolutionary engineering of genome-reduced Pseudomonas putida strains promotes synthetic formate assimilation [J ] . Metabolic Engineering , 2022 , 74 : 191 - 205 .
BAR-EVEN A , NOOR E , FLAMHOLZ A , et al . Design and analysis of metabolic pathways supporting formatotrophic growth for electricity-dependent cultivation of microbes [J ] . Biochimica et Biophysica Acta (BBA)-Bioenergetics , 2013 , 1827 ( 8/9 ): 1039 - 1047 .
BAR-EVEN A , FLAMHOLZ A , NOOR E , et al . Thermodynamic constraints shape the structure of carbon fixation pathways [J ] . Biochimica et Biophysica Acta (BBA) - Bioenergetics , 2012 , 1817 ( 9 ): 1646 - 1659 .
KIM S J , YOON J , IM D K , et al . Adaptively evolved Escherichia coli for improved ability of formate utilization as a carbon source in sugar-free conditions [J ] . Biotechnology for Biofuels , 2019 , 12 : 207 .
NITSCHKE W , RUSSELL M J . Beating the acetyl coenzyme A-pathway to the origin of life [J ] . Philosophical Transactions of the Royal Society of London Series B , Biological Sciences, 2013 , 368 ( 1622 ): 20120258 .
YISHAI O , LINDNER S N , GONZALEZ DE LA CRUZ J , et al . The formate bio-economy [J ] . Current Opinion in Chemical Biology , 2016 , 35 : 1 - 9 .
LIU Z H , WANG K , CHEN Y , et al . Third-generation biorefineries as the means to produce fuels and chemicals from CO 2 [J ] . Nature Catalysis , 2020 , 3 ( 3 ): 274 - 288 .
SONG Y , LEE J S , SHIN J , et al . Functional cooperation of the glycine synthase-reductase and Wood-Ljungdahl pathways for autotrophic growth of Clostridium drakei [J ] . Proceedings of the National Academy of Sciences of the United States of America , 2020 , 117 ( 13 ): 7516 - 7523 .
MAO W , YUAN Q Q , QI H G , et al . Recent progress in metabolic engineering of microbial formate assimilation [J ] . Applied Microbiology and Biotechnology , 2020 , 104 ( 16 ): 6905 - 6917 .
ZHANG H , LI Y C , NIE J L , et al . Structure-based dynamic analysis of the glycine cleavage system suggests key residues for control of a key reaction step [J ] . Communications Biology , 2020 , 3 : 756 .
XU Y Y , REN J , WANG W , et al . Improvement of glycine biosynthesis from one-carbon compounds and ammonia catalyzed by the glycine cleavage system in vitro [J ] . Engineering in Life Sciences , 2022 , 22 ( 1 ): 40 - 53 .
ERB T J , KELLER P , VORHOLT J A . Escherichia coli in auto(trophic) mode [J ] . Cell , 2019 , 179 ( 6 ): 1244 - 1245 .
ZHANG Y X , LI F L , DONG J , et al . Recent advances in designing efficient electrocatalysts for electrochemical carbon dioxide reduction to formic acid/formate [J ] . Journal of Electroanalytical Chemistry , 2023 , 928 : 117018 .
JUNQUEIRA J R C , DAS D , CATHRIN BRIX A , et al . Simultaneous anodic and cathodic formate production in a paired electrolyzer by CO 2 reduction and glycerol oxidation [J ] . ChemSusChem , 2023 : e202300667 .
WANG T , CHEN J D , REN X Y , et al . Halogen-incorporated Sn catalysts for selective electrochemical CO 2 reduction to formate [J ] . Angewandte Chemie International Edition , 2023 , 62 ( 10 ): e202211174 .
BAR-EVEN A . Formate assimilation: the metabolic architecture of natural and synthetic pathways [J ] . Biochemistry , 2016 , 55 ( 28 ): 3851 - 3863 .
CHEN N H , DJOKO K Y , VEYRIER F J , et al . Formaldehyde stress responses in bacterial pathogens [J ] . Frontiers in Microbiology , 2016 , 7 : 257 .
ALKIM C , FARIAS D , FREDONNET J , et al . Toxic effect and inability of L-homoserine to be a nitrogen source for growth of Escherichia coli resolved by a combination of in vivo evolution engineering and omics analyses [J ] . Frontiers in Microbiology , 2022 , 13 : 1051425 .
KLEIN V J , IRLA M , GIL LÓPEZ M , et al . Unravelling formaldehyde metabolism in bacteria: road towards synthetic methylotrophy [J ] . Microorganisms , 2022 , 10 ( 2 ): 220 .
HONG Y , ARBTER P , WANG W , et al . Introduction of glycine synthase enables uptake of exogenous formate and strongly impacts the metabolism in Clostridium pasteurianum [J ] . Biotechnology and Bioengineering , 2021 , 118 ( 3 ): 1366 - 1380 .
KHANA D B , CALLAGHAN M M , AMADOR-NOGUEZ D . Novel computational and experimental approaches for investigating the thermodynamics of metabolic networks [J ] . Current Opinion in Microbiology , 2022 , 66 : 21 - 31 .
CHEN K , ARNOLD F H . Engineering new catalytic activities in enzymes [J ] . Nature Catalysis , 2020 , 3 ( 3 ): 203 - 213 .
KIM D H , NOH M H , PARK M H , et al . Enzyme activity engineering based on sequence co-evolution analysis [J ] . Metabolic Engineering , 2022 , 74 : 49 - 60 .
SIEGEL J B , SMITH A L , POUST S , et al . Computational protein design enables a novel one-carbon assimilation pathway [J ] . Proceedings of the National Academy of Sciences of the United States of America , 2015 , 112 ( 12 ): 3704 - 3709 .
HU G P , LI Z H , MA D L , et al . Light-driven CO 2 sequestration in Escherichia coli to achieve theoretical yield of chemicals [J ] . Nature Catalysis , 2021 , 4 ( 5 ): 395 - 406 .
HU G P , GUO L , GAO C , et al . Synergistic metabolism of glucose and formate increases the yield of short-chain organic acids in Escherichia coli [J ] . ACS Synthetic Biology , 2022 , 11 ( 1 ): 135 - 143 .
CLAASSENS N J , HE H , BAR-EVEN A . Synthetic methanol and formate assimilation via modular engineering and selection strategies [J ] . Current Issues in Molecular Biology , 2019 , 33 ( 1 ): 237 - 248 .
DRAGOSITS M , MATTANOVICH D . Adaptive laboratory evolution—principles and applications for biotechnology [J ] . Microbial Cell Factories , 2013 , 12 : 64 .
AHN J H , BANG J , KIM W J , et al . Formic acid as a secondary substrate for succinic acid production by metabolically engineered Mannheimia succiniciproducens [J ] . Biotechnology and Bioengineering , 2017 , 114 ( 12 ): 2837 - 2847 .
SINGH A , MOESTEDT J , BERG A , et al . Microbiological surveillance of biogas plants: targeting acetogenic community [J ] . Frontiers in Microbiology , 2021 , 12 : 700256 .
SUDA K , SAKAMOTO S , IGUCHI A , et al . Novel quantitative method for individual isotopomer of organic acids from 13 C tracer experiments determines carbon flow in acetogenesis [J ] . Talanta , 2023 , 257 : 124328 .
KIRST H , FERLEZ B H , LINDNER S N , et al . Toward a glycyl radical enzyme containing synthetic bacterial microcompartment to produce pyruvate from formate and acetate [J ] . Proceedings of the National Academy of Sciences of the United States of America , 2022 , 119 ( 8 ): e2116871119 .
NA D , YOO S M , CHUNG H , et al . Metabolic engineering of Escherichia coli using synthetic small regulatory RNAs [J ] . Nature Biotechnology , 2013 , 31 ( 2 ): 170 - 174 .
PONATH F , HÖR J , VOGEL J . An overview of gene regulation in bacteria by small RNAs derived from mRNA 3′ ends [J ] . FEMS Microbiology Reviews , 2022 , 46 ( 5 ): fuac017 .
WENK S , SCHANN K , HE H , et al . An "energy-auxotroph" Escherichia coli provides an in vivo platform for assessing NADH regeneration systems [J ] . Biotechnology and Bioengineering , 2020 , 117 ( 11 ): 3422 - 3434 .
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