The role of chloroplast movement in C4 photosynthesis: a theoretical analysis using a three-dimensional reaction–diffusion model for maize

Author:

Retta Moges A12ORCID,Yin Xinyou2ORCID,Ho Quang Tri3ORCID,Watté Rodrigo1,Berghuijs Herman N C4ORCID,Verboven Pieter1ORCID,Saeys Wouter1ORCID,Cano Francisco Javier56ORCID,Ghannoum Oula6ORCID,Struik Paul C2ORCID,Nicolaï Bart M17ORCID

Affiliation:

1. KU Leuven, MeBioS division , Willem de Croylaan 42, B-3001, Leuven , Belgium

2. Centre for Crop Systems Analysis, Wageningen University & Research , P.O. Box 430, 6700 AK Wageningen , The Netherlands

3. Institute of Marine Research , Nordnesgaten 50, NO-5005 Bergen, P.O. Box 1870, Nordnes , Norway

4. Plant Production Systems group, Wageningen University & Research , P.O. Box 430, 6700 AK Wageningen , The Netherlands

5. Centro de Investigación Forestal (CIFOR), Instituto Nacional de Investigacion y Tecnologia Agraria y Alimentaria (INIA), Consejo Superior de Investigaciones Científicas (CSIC) , Carretera de la Coruña Km 7.5, 28040, Madrid , Spain

6. ARC Centre of Excellence for Translational Photosynthesis, Hawkesbury Institute for the Environment, University of Western Sydney , Hawkesbury campus, Locked Bag 1797, Penrith 2751, NSW , Australia

7. Flanders Center of Postharvest Technology , Willem de Croylaan 42, B-3001, Leuven , Belgium

Abstract

Abstract Chloroplasts movement within mesophyll cells in C4 plants is hypothesized to enhance the CO2 concentrating mechanism, but this is difficult to verify experimentally. A three-dimensional (3D) leaf model can help analyse how chloroplast movement influences the operation of the CO2 concentrating mechanism. The first volumetric reaction–diffusion model of C4 photosynthesis that incorporates detailed 3D leaf anatomy, light propagation, ATP and NADPH production, and CO2, O2 and bicarbonate concentration driven by diffusional and assimilation/emission processes was developed. It was implemented for maize leaves to simulate various chloroplast movement scenarios within mesophyll cells: the movement of all mesophyll chloroplasts towards bundle sheath cells (aggregative movement) and movement of only those of interveinal mesophyll cells towards bundle sheath cells (avoidance movement). Light absorbed by bundle sheath chloroplasts relative to mesophyll chloroplasts increased in both cases. Avoidance movement decreased light absorption by mesophyll chloroplasts considerably. Consequently, total ATP and NADPH production and net photosynthetic rate increased for aggregative movement and decreased for avoidance movement compared with the default case of no chloroplast movement at high light intensities. Leakiness increased in both chloroplast movement scenarios due to the imbalance in energy production and demand in mesophyll and bundle sheath cells. These results suggest the need to design strategies for coordinated increases in electron transport and Rubisco activities for an efficient CO2 concentrating mechanism at very high light intensities.

Funder

Research Council of KU Leuven

Research Fund Flanders

Spanish fellowship Ramon y Cajal

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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