Rubisco production in maize mesophyll cells through ectopic expression of subunits and chaperones

Author:

Hotto Amber M1ORCID,Salesse-Smith Coralie1ORCID,Lin Myat2ORCID,Busch Florian A34ORCID,Simpson Isabelle1,Stern David B1ORCID

Affiliation:

1. Boyce Thompson Institute, Ithaca, NY, USA

2. Cornell University, Ithaca, NY, USA

3. School of Biosciences, and Birmingham Institute of Forest Research, University of Birmingham, Edgbaston, Birmingham, UK

4. Research School of Biology, The Australian National University, Canberra, Australian Capital Territory, Australia

Abstract

Abstract C4 plants, such as maize, strictly compartmentalize Rubisco to bundle sheath chloroplasts. The molecular basis for the restriction of Rubisco from the more abundant mesophyll chloroplasts is not fully understood. Mesophyll chloroplasts transcribe the Rubisco large subunit gene and, when normally quiescent transcription of the nuclear Rubisco small subunit gene family is overcome by ectopic expression, mesophyll chloroplasts still do not accumulate measurable Rubisco. Here we show that a combination of five ubiquitin promoter-driven nuclear transgenes expressed in maize leads to mesophyll accumulation of assembled Rubisco. These encode the Rubisco large and small subunits, Rubisco assembly factors 1 and 2, and the assembly factor Bundle sheath defective 2. In these plants, Rubisco large subunit accumulates in mesophyll cells, and appears to be assembled into a holoenzyme capable of binding the substrate analog CABP (carboxyarabinitol bisphosphate). Isotope discrimination assays suggest, however, that mesophyll Rubisco is not participating in carbon assimilation in these plants, most probably due to a lack of the substrate ribulose 1,5-bisphosphate and/or Rubisco activase. Overall, this work defines a minimal set of Rubisco assembly factors in planta and may help lead to methods of regulating the C4 pathway.

Funder

Agriculture and Food Research Initiative

Department of Energy Biosciences

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

Reference29 articles.

1. Plant RuBisCo assembly in E. coli with five chloroplast chaperones including BSD2;Aigner;Science,2017

2. Development and availability of germplasm with high type II culture formation response;Armstrong;Maize Genetics Cooperation Newsletter,1991

3. Nuclear mutants of maize with defects in chloroplast polysome assembly have altered chloroplast RNA metabolism;Barkan;The Plant Cell,1993

4. Single-cell C4 photosynthesis in aquatic plants.;Bowes,2011

5. BUNDLE SHEATH DEFECTIVE2, a novel protein required for post-translational regulation of the rbcL gene of maize;Brutnell;The Plant cell,1999

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