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Multigene manipulation of photosynthetic carbon metabolism enhances the photosynthetic capacity and biomass yield of cucumber under low-CO(2) environment

Solar greenhouses are important in the vegetable production and widely used for the counter-season production in the world. However, the CO(2) consumed by crops for photosynthesis after sunrise is not supplemented and becomes chronically deficient due to the airtight structure of solar greenhouses....

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Autores principales: Chen, Zhi-Feng, Wang, Tian-Hong, Feng, Chao-Yang, Guo, Hai-Feng, Guan, Xiao-Xi, Zhang, Tian-Li, Li, Wen-Zhao, Xing, Guo-Ming, Sun, Sheng, Tan, Guo-Fei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9623318/
https://www.ncbi.nlm.nih.gov/pubmed/36330244
http://dx.doi.org/10.3389/fpls.2022.1005261
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author Chen, Zhi-Feng
Wang, Tian-Hong
Feng, Chao-Yang
Guo, Hai-Feng
Guan, Xiao-Xi
Zhang, Tian-Li
Li, Wen-Zhao
Xing, Guo-Ming
Sun, Sheng
Tan, Guo-Fei
author_facet Chen, Zhi-Feng
Wang, Tian-Hong
Feng, Chao-Yang
Guo, Hai-Feng
Guan, Xiao-Xi
Zhang, Tian-Li
Li, Wen-Zhao
Xing, Guo-Ming
Sun, Sheng
Tan, Guo-Fei
author_sort Chen, Zhi-Feng
collection PubMed
description Solar greenhouses are important in the vegetable production and widely used for the counter-season production in the world. However, the CO(2) consumed by crops for photosynthesis after sunrise is not supplemented and becomes chronically deficient due to the airtight structure of solar greenhouses. Vegetable crops cannot effectively utilize light resources under low-CO(2) environment, and this incapability results in reduced photosynthetic efficiency and crop yield. We used cucumber as a model plant and generated several sets of transgenic cucumber plants overexpressing individual genes, including β-carbonic anhydrase 1 (CsβCA1), β-carbonic anhydrase 4 (CsβCA4), and sedoheptulose-1,7-bisphosphatase (CsSBP); fructose-1,6-bisphosphate aldolase (CsFBA), and CsβCA1 co-expressing plants; CsβCA4, CsSBP, and CsFBA co-expressing plants (14SF). The results showed that the overexpression of CsβCA1, CsβCA4, and 14SF exhibited higher photosynthetic and biomass yield in transgenic cucumber plants under low-CO(2) environment. Further enhancements in photosynthesis and biomass yield were observed in 14SF transgenic plants under low-CO(2) environment. The net photosynthesis biomass yield and photosynthetic rate increased by 49% and 79% compared with those of the WT. However, the transgenic cucumbers of overexpressing CsFBA and CsSBP showed insignificant differences in photosynthesis and biomass yield compared with the WT under low-CO(2).environment. Photosynthesis, fluorescence parameters, and enzymatic measurements indicated that CsβCA1, CsβCA4, CsSBP, and CsFBA had cumulative effects in photosynthetic carbon assimilation under low-CO(2) environment. Co-expression of this four genes (CsβCA1, CsβCA4, CsSBP, and CsFBA) can increase the carboxylation activity of RuBisCO and promote the regeneration of RuBP. As a result, the 14SF transgenic plants showed a higher net photosynthetic rate and biomass yield even under low-CO(2)environment.These findings demonstrate the possibility of cultivating crops with high photosynthetic efficiency by manipulating genes involved in the photosynthetic carbon assimilation metabolic pathway.
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spelling pubmed-96233182022-11-02 Multigene manipulation of photosynthetic carbon metabolism enhances the photosynthetic capacity and biomass yield of cucumber under low-CO(2) environment Chen, Zhi-Feng Wang, Tian-Hong Feng, Chao-Yang Guo, Hai-Feng Guan, Xiao-Xi Zhang, Tian-Li Li, Wen-Zhao Xing, Guo-Ming Sun, Sheng Tan, Guo-Fei Front Plant Sci Plant Science Solar greenhouses are important in the vegetable production and widely used for the counter-season production in the world. However, the CO(2) consumed by crops for photosynthesis after sunrise is not supplemented and becomes chronically deficient due to the airtight structure of solar greenhouses. Vegetable crops cannot effectively utilize light resources under low-CO(2) environment, and this incapability results in reduced photosynthetic efficiency and crop yield. We used cucumber as a model plant and generated several sets of transgenic cucumber plants overexpressing individual genes, including β-carbonic anhydrase 1 (CsβCA1), β-carbonic anhydrase 4 (CsβCA4), and sedoheptulose-1,7-bisphosphatase (CsSBP); fructose-1,6-bisphosphate aldolase (CsFBA), and CsβCA1 co-expressing plants; CsβCA4, CsSBP, and CsFBA co-expressing plants (14SF). The results showed that the overexpression of CsβCA1, CsβCA4, and 14SF exhibited higher photosynthetic and biomass yield in transgenic cucumber plants under low-CO(2) environment. Further enhancements in photosynthesis and biomass yield were observed in 14SF transgenic plants under low-CO(2) environment. The net photosynthesis biomass yield and photosynthetic rate increased by 49% and 79% compared with those of the WT. However, the transgenic cucumbers of overexpressing CsFBA and CsSBP showed insignificant differences in photosynthesis and biomass yield compared with the WT under low-CO(2).environment. Photosynthesis, fluorescence parameters, and enzymatic measurements indicated that CsβCA1, CsβCA4, CsSBP, and CsFBA had cumulative effects in photosynthetic carbon assimilation under low-CO(2) environment. Co-expression of this four genes (CsβCA1, CsβCA4, CsSBP, and CsFBA) can increase the carboxylation activity of RuBisCO and promote the regeneration of RuBP. As a result, the 14SF transgenic plants showed a higher net photosynthetic rate and biomass yield even under low-CO(2)environment.These findings demonstrate the possibility of cultivating crops with high photosynthetic efficiency by manipulating genes involved in the photosynthetic carbon assimilation metabolic pathway. Frontiers Media S.A. 2022-10-18 /pmc/articles/PMC9623318/ /pubmed/36330244 http://dx.doi.org/10.3389/fpls.2022.1005261 Text en Copyright © 2022 Chen, Wang, Feng, Guo, Guan, Zhang, Li, Xing, Sun and Tan https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Chen, Zhi-Feng
Wang, Tian-Hong
Feng, Chao-Yang
Guo, Hai-Feng
Guan, Xiao-Xi
Zhang, Tian-Li
Li, Wen-Zhao
Xing, Guo-Ming
Sun, Sheng
Tan, Guo-Fei
Multigene manipulation of photosynthetic carbon metabolism enhances the photosynthetic capacity and biomass yield of cucumber under low-CO(2) environment
title Multigene manipulation of photosynthetic carbon metabolism enhances the photosynthetic capacity and biomass yield of cucumber under low-CO(2) environment
title_full Multigene manipulation of photosynthetic carbon metabolism enhances the photosynthetic capacity and biomass yield of cucumber under low-CO(2) environment
title_fullStr Multigene manipulation of photosynthetic carbon metabolism enhances the photosynthetic capacity and biomass yield of cucumber under low-CO(2) environment
title_full_unstemmed Multigene manipulation of photosynthetic carbon metabolism enhances the photosynthetic capacity and biomass yield of cucumber under low-CO(2) environment
title_short Multigene manipulation of photosynthetic carbon metabolism enhances the photosynthetic capacity and biomass yield of cucumber under low-CO(2) environment
title_sort multigene manipulation of photosynthetic carbon metabolism enhances the photosynthetic capacity and biomass yield of cucumber under low-co(2) environment
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9623318/
https://www.ncbi.nlm.nih.gov/pubmed/36330244
http://dx.doi.org/10.3389/fpls.2022.1005261
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