微生物資源が秘めるCO2削減への新たな可能性~遺伝情報とCO2固定能力を統合的に解析して体系化~

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2026-01-20 理化学研究所

理化学研究所バイオリソース研究センターの研究チームは、同センターが保有する微生物コレクション(JCM株)約6,700株のゲノム情報と文献データを統合解析し、約300株がCO₂固定の主要経路であるカルビン・ベンソン回路に関わる遺伝子セットを有することを明らかにした。このうち約半数は、これまでCO₂固定能力が実証されていない微生物であった。ルビスコの型ごとに生息環境や代謝特性を整理した結果、CO₂固定戦略が微生物ごとに大きく異なることが判明し、培養条件次第で新たなCO₂固定微生物が顕在化する可能性も示された。本研究は、地球規模の炭素循環理解を深めるとともに、CO₂を資源として活用するバイオものづくりや低炭素社会の実現に向けた重要な基盤情報を提供する成果である。

微生物資源が秘めるCO2削減への新たな可能性~遺伝情報とCO2固定能力を統合的に解析して体系化~
JCM微生物資源を基盤としたCO2固定候補株の探索

<関連情報>

日本微生物コレクションにおける原核生物におけるRubisCOを介したCO2固定の多様性と代謝ポテンシャルの探究 Exploring the Diversity and Metabolic Potential of CO2 fixation Mediated by RubisCO in Prokaryotes in the Japan Collection of Microorganisms

Arisa Nishihara , Shingo Kato, Moriya Ohkuma
Microbes and Environments  Published:January 20, 2026
DOI:https://doi.org/10.1264/jsme2.ME25035

Abstract

A genome anal­ysis is essential for identifying valuable microbial resources for future applications. In the present study, we exami­ned potential CO2-fixing microorganisms based on the presence of the Calvin–Benson–Bassham (CBB) cycle using 6,262 bacterial and 487 archaeal genomes from available cultures in the Japan Collection of Microorganisms (JCM), a well-established culture collection, in October 2023. A total of 306 strains (147 genera, eight phyla) carried CBB cycle genes, and a literature survey showed that 74 genera had experimental evidence of autotrophic growth while 73 lacked supporting information. A phylogenetic anal­ysis of the large subunit of ribulose-1,5-bisphosphate carboxylase/oxygenase (RbcL) identified diverse forms (IA, IB, IC, IE, I+α, II, and III) with distinct metabolic associations; IA was associated with sulfur species oxidation and formed IC with hydrogen oxidation. Genome-based metabolic predictions identified the potential for CO2 fixation in numerous species lacking experimental evidence. Our anal­yses indicate that members of Actinomycetota harboring IE RbcL were generally associated with hydrogen oxidation, possibly by using oxygen or nitrate as an electron acceptor. Additionally, 12 species in Pseudomonadota contained photosystem II reaction center proteins (PufL and PufM), suggesting phototrophic capabilities. However, the prediction of electron donors failed in some of these species. They may use the CBB cycle to regulate the intracellular redox balance under photoheterotrophic growth. The present results reveal unrecognized autotrophic potential in JCM strains and broaden our knowledge of the diversity of CO2-fixing microorganisms. Experimental validation will clarify their roles in the global carbon cycle and their potential for biotechnological applications towards environmental sustainability.

生物環境工学
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