Producing fast and active Rubisco in tobacco to enhance photosynthesis

Author:

Chen Taiyu12,Riaz Saba3,Davey Philip4,Zhao Ziyu3,Sun Yaqi2,Dykes Gregory F2,Zhou Fei1,Hartwell James2,Lawson Tracy4,Nixon Peter J3,Lin Yongjun1,Liu Lu-Ning25ORCID

Affiliation:

1. National Key Laboratory of Crop Genetic Improvement and National Center of Plant Gene Research, Huazhong Agricultural University , Wuhan 430070 , China

2. Institute of Systems, Molecular and Integrative Biology, University of Liverpool , Liverpool L69 7ZB , UK

3. Department of Life Sciences, Sir Ernst Chain Building-Wolfson Laboratories, Imperial College London, South Kensington Campus , London SW7 2AZ , UK

4. School of Life Sciences, University of Essex , Colchester CO4 4SQ , UK

5. College of Marine Life Sciences, and Frontiers Science Center for Deep Ocean Multispheres and Earth System, Ocean University of China , Qingdao 266003 , China

Abstract

AbstractRibulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) performs most of the carbon fixation on Earth. However, plant Rubisco is an intrinsically inefficient enzyme given its low carboxylation rate, representing a major limitation to photosynthesis. Replacing endogenous plant Rubisco with a faster Rubisco is anticipated to enhance crop photosynthesis and productivity. However, the requirement of chaperones for Rubisco expression and assembly has obstructed the efficient production of functional foreign Rubisco in chloroplasts. Here, we report the engineering of a Form 1A Rubisco from the proteobacterium Halothiobacillus neapolitanus in Escherichia coli and tobacco (Nicotiana tabacum) chloroplasts without any cognate chaperones. The native tobacco gene encoding Rubisco large subunit was genetically replaced with H. neapolitanus Rubisco (HnRubisco) large and small subunit genes. We show that HnRubisco subunits can form functional L8S8 hexadecamers in tobacco chloroplasts at high efficiency, accounting for ∼40% of the wild-type tobacco Rubisco content. The chloroplast-expressed HnRubisco displayed a ∼2-fold greater carboxylation rate and supported a similar autotrophic growth rate of transgenic plants to that of wild-type in air supplemented with 1% CO2. This study represents a step toward the engineering of a fast and highly active Rubisco in chloroplasts to improve crop photosynthesis and growth.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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