Literature DB >> 30639120

Engineering a New Chloroplastic Photorespiratory Bypass to Increase Photosynthetic Efficiency and Productivity in Rice.

Bo-Ran Shen1, Li-Min Wang1, Xiu-Ling Lin1, Zhen Yao1, Hua-Wei Xu2, Cheng-Hua Zhu1, Hai-Yan Teng1, Li-Li Cui1, E-E Liu1, Jian-Jun Zhang1, Zheng-Hui He3, Xin-Xiang Peng4.   

Abstract

Over the past few years, three photorespiratory bypasses have been introduced into plants, two of which led to observable increases in photosynthesis and biomass yield. However, most of the experiments were carried out using Arabidopsis under controlled environmental conditions, and the increases were only observed under low-light and short-day conditions. In this study, we designed a new photorespiratory bypass (called GOC bypass), characterized by no reducing equivalents being produced during a complete oxidation of glycolate into CO2 catalyzed by three rice-self-originating enzymes, i.e., glycolate oxidase, oxalate oxidase, and catalase. We successfully established this bypass in rice chloroplasts using a multi-gene assembly and transformation system. Transgenic rice plants carrying GOC bypass (GOC plants) showed significant increases in photosynthesis efficiency, biomass yield, and nitrogen content, as well as several other CO2-enriched phenotypes under both greenhouse and field conditions. Grain yield of GOC plants varied depending on seeding season and was increased significantly in the spring. We further demonstrated that GOC plants had significant advantages under high-light conditions and that the improvements in GOC plants resulted primarily from a photosynthetic CO2-concentrating effect rather than from improved energy balance. Taken together, our results reveal that engineering a newly designed chloroplastic photorespiratory bypass could increase photosynthetic efficiency and yield of rice plants grown in field conditions, particularly under high light.
Copyright © 2018 The Author. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  photorespiratory bypass; photosynthetic efficiency; productivity; rice

Mesh:

Substances:

Year:  2019        PMID: 30639120     DOI: 10.1016/j.molp.2018.11.013

Source DB:  PubMed          Journal:  Mol Plant        ISSN: 1674-2052            Impact factor:   13.164


  37 in total

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3.  Partially functional NARROW LEAF1 balances leaf photosynthesis and plant architecture for greater rice yield.

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4.  Phosphomimetic T335D Mutation of Hydroxypyruvate Reductase 1 Modifies Cofactor Specificity and Impacts Arabidopsis Growth in Air.

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Review 5.  Photosynthesis research under climate change.

Authors:  Sajad Hussain; Zaid Ulhassan; Marian Brestic; Marek Zivcak; Suleyman I Allakhverdiev; Xinghong Yang; Muhammad Ehsan Safdar; Wenyu Yang; Weiguo Liu
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7.  Subcellular Proteomics as a Unified Approach of Experimental Localizations and Computed Prediction Data for Arabidopsis and Crop Plants.

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8.  Phosphorylation of SWEET sucrose transporters regulates plant root:shoot ratio under drought.

Authors:  Qingchao Chen; Tao Hu; Xiaohua Li; Chun-Peng Song; Jian-Kang Zhu; Liqing Chen; Yang Zhao
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Review 9.  Biotechnological strategies for improved photosynthesis in a future of elevated atmospheric CO2.

Authors:  Stacy D Singer; Raju Y Soolanayakanahally; Nora A Foroud; Roland Kroebel
Journal:  Planta       Date:  2019-11-29       Impact factor: 4.116

Review 10.  Photosynthesis in a Changing Global Climate: Scaling Up and Scaling Down in Crops.

Authors:  Marouane Baslam; Toshiaki Mitsui; Michael Hodges; Eckart Priesack; Matthew T Herritt; Iker Aranjuelo; Álvaro Sanz-Sáez
Journal:  Front Plant Sci       Date:  2020-07-06       Impact factor: 5.753

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