Cargando…

The role of chloroplast movement in C(4) photosynthesis: a theoretical analysis using a three-dimensional reaction–diffusion model for maize

Chloroplasts movement within mesophyll cells in C(4) plants is hypothesized to enhance the CO(2) 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 CO(2) concentrating...

Descripción completa

Detalles Bibliográficos
Autores principales: Retta, Moges A, Yin, Xinyou, Ho, Quang Tri, Watté, Rodrigo, Berghuijs, Herman N C, Verboven, Pieter, Saeys, Wouter, Cano, Francisco Javier, Ghannoum, Oula, Struik, Paul C, Nicolaï, Bart M
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10400148/
https://www.ncbi.nlm.nih.gov/pubmed/37083863
http://dx.doi.org/10.1093/jxb/erad138
_version_ 1785084401703452672
author Retta, Moges A
Yin, Xinyou
Ho, Quang Tri
Watté, Rodrigo
Berghuijs, Herman N C
Verboven, Pieter
Saeys, Wouter
Cano, Francisco Javier
Ghannoum, Oula
Struik, Paul C
Nicolaï, Bart M
author_facet Retta, Moges A
Yin, Xinyou
Ho, Quang Tri
Watté, Rodrigo
Berghuijs, Herman N C
Verboven, Pieter
Saeys, Wouter
Cano, Francisco Javier
Ghannoum, Oula
Struik, Paul C
Nicolaï, Bart M
author_sort Retta, Moges A
collection PubMed
description Chloroplasts movement within mesophyll cells in C(4) plants is hypothesized to enhance the CO(2) 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 CO(2) concentrating mechanism. The first volumetric reaction–diffusion model of C(4) photosynthesis that incorporates detailed 3D leaf anatomy, light propagation, ATP and NADPH production, and CO(2), O(2) 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 CO(2) concentrating mechanism at very high light intensities.
format Online
Article
Text
id pubmed-10400148
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-104001482023-08-04 The role of chloroplast movement in C(4) photosynthesis: a theoretical analysis using a three-dimensional reaction–diffusion model for maize Retta, Moges A Yin, Xinyou Ho, Quang Tri Watté, Rodrigo Berghuijs, Herman N C Verboven, Pieter Saeys, Wouter Cano, Francisco Javier Ghannoum, Oula Struik, Paul C Nicolaï, Bart M J Exp Bot Research Papers Chloroplasts movement within mesophyll cells in C(4) plants is hypothesized to enhance the CO(2) 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 CO(2) concentrating mechanism. The first volumetric reaction–diffusion model of C(4) photosynthesis that incorporates detailed 3D leaf anatomy, light propagation, ATP and NADPH production, and CO(2), O(2) 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 CO(2) concentrating mechanism at very high light intensities. Oxford University Press 2023-04-21 /pmc/articles/PMC10400148/ /pubmed/37083863 http://dx.doi.org/10.1093/jxb/erad138 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of the Society for Experimental Biology. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Papers
Retta, Moges A
Yin, Xinyou
Ho, Quang Tri
Watté, Rodrigo
Berghuijs, Herman N C
Verboven, Pieter
Saeys, Wouter
Cano, Francisco Javier
Ghannoum, Oula
Struik, Paul C
Nicolaï, Bart M
The role of chloroplast movement in C(4) photosynthesis: a theoretical analysis using a three-dimensional reaction–diffusion model for maize
title The role of chloroplast movement in C(4) photosynthesis: a theoretical analysis using a three-dimensional reaction–diffusion model for maize
title_full The role of chloroplast movement in C(4) photosynthesis: a theoretical analysis using a three-dimensional reaction–diffusion model for maize
title_fullStr The role of chloroplast movement in C(4) photosynthesis: a theoretical analysis using a three-dimensional reaction–diffusion model for maize
title_full_unstemmed The role of chloroplast movement in C(4) photosynthesis: a theoretical analysis using a three-dimensional reaction–diffusion model for maize
title_short The role of chloroplast movement in C(4) photosynthesis: a theoretical analysis using a three-dimensional reaction–diffusion model for maize
title_sort role of chloroplast movement in c(4) photosynthesis: a theoretical analysis using a three-dimensional reaction–diffusion model for maize
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10400148/
https://www.ncbi.nlm.nih.gov/pubmed/37083863
http://dx.doi.org/10.1093/jxb/erad138
work_keys_str_mv AT rettamogesa theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT yinxinyou theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT hoquangtri theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT watterodrigo theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT berghuijshermannc theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT verbovenpieter theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT saeyswouter theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT canofranciscojavier theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT ghannoumoula theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT struikpaulc theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT nicolaibartm theroleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT rettamogesa roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT yinxinyou roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT hoquangtri roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT watterodrigo roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT berghuijshermannc roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT verbovenpieter roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT saeyswouter roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT canofranciscojavier roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT ghannoumoula roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT struikpaulc roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize
AT nicolaibartm roleofchloroplastmovementinc4photosynthesisatheoreticalanalysisusingathreedimensionalreactiondiffusionmodelformaize