Chloroplast genome editing of Rubisco boosts photosynthesis and plant growth

Редактирование генома хлоропластов Rubisco повышает фотосинтез и рост растений
Tomoko Miyata, Keiichi Namba, Hiroyoshi Matsumura, Wataru Yamori, Issei Nakazato, Yuchen Qu, Yukina Sanga, Ryo Uehara, Yuma Noto, Hiroshi Fukayama, Shin‐ichi Arimura
2026-06-19

M309I and D397N substitutionsRubisco large subunit rbcLchloroplast genome editingcryo-EM structural analysisptpTALECD base editor
Abstract Photosynthetic inefficiencies limit the productivity and sustainability of crop production and the resilience of agriculture to future societal and environmental challenges. Ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) has inherently low catalytic efficiency, making it a key target for photosynthesis and crop improvement. However, introducing mutations to the chloroplast-encoded Rubisco large subunit ( rbc L), which contains the enzyme’s catalytic sites, is technically challenging. In this study, we successfully generated a range of chloroplast-genome-edited Arabidopsis thaliana plants targeting rbcL by a targeted base editor, ptpTALECD. The M309I and D397N substitutions in rbcL resulted in an increased Rubisco catalytic rate ( k cat ) without any reductions of Rubisco content, thereby enhancing photosynthetic rates and plant growth under both current atmospheric CO 2 concentrations (i.e., 381 μmol mol −1 ) and projected future concentrations (i.e., 549 μmol mol −1 ). Cryo-electron microscopy (cryo-EM) structural analysis showed that the M309I and D397N substitutions, although located far from the catalytic site, induce structural alterations in the catalytic (60s) loops. Our findings highlight the potential of Rubisco engineering to improve plant photosynthesis and growth, and underscore the unique opportunities that chloroplast genome editing offers for enhancing photosynthesis and crop productivity and reducing atmospheric CO 2 levels in a non-GMO context.
1
Chloroplast genome editing of Rubisco demonstrates potential to improve photosynthesis and crop productivity and to help reduce atmospheric CO2 in a non-GMO context.
2
Chloroplast-genome editing of rbcL in Arabidopsis thaliana was achieved using a targeted base editor, ptpTALECD.
3
Cryo-EM revealed M309I and D397N, though distant from the active site, induce structural changes in the catalytic (60s) loops of Rubisco.
4
Plants with M309I and D397N showed enhanced photosynthetic rates and growth at current (381 μmol mol−1) and projected (549 μmol mol−1) CO2 concentrations.
5
Two rbcL substitutions, M309I and D397N, increased Rubisco catalytic rate (kcat) without reducing Rubisco content.

Chloroplast-genome-edited Arabidopsis thaliana plants with rbcL (Rubisco large subunit) M309I and D397N substitutions

Effects of rbcL M309I and D397N substitutions on Rubisco catalytic rate (kcat), Rubisco content, photosynthetic rates, plant growth under current and elevated CO2, and induced structural alterations in catalytic loops (cryo-EM)

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2026-06-19
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Authors
Tomoko Miyata
Keiichi Namba
Hiroyoshi Matsumura
Wataru Yamori
Issei Nakazato
Yuchen Qu
Yukina Sanga
Ryo Uehara
Yuma Noto
Hiroshi Fukayama
Shin‐ichi Arimura
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