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Development of Two-Dimensional Model of Photosynthesis in Plant Leaves and Analysis of Induction of Spatial Heterogeneity of CO(2) Assimilation Rate under Action of Excess Light and Drought

Photosynthesis is a key process in plants that can be strongly affected by the actions of environmental stressors. The stressor-induced photosynthetic responses are based on numerous and interacted processes that can restrict their experimental investigation. The development of mathematical models o...

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Autores principales: Sukhova, Ekaterina, Ratnitsyna, Daria, Gromova, Ekaterina, Sukhov, Vladimir
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9739240/
https://www.ncbi.nlm.nih.gov/pubmed/36501325
http://dx.doi.org/10.3390/plants11233285
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author Sukhova, Ekaterina
Ratnitsyna, Daria
Gromova, Ekaterina
Sukhov, Vladimir
author_facet Sukhova, Ekaterina
Ratnitsyna, Daria
Gromova, Ekaterina
Sukhov, Vladimir
author_sort Sukhova, Ekaterina
collection PubMed
description Photosynthesis is a key process in plants that can be strongly affected by the actions of environmental stressors. The stressor-induced photosynthetic responses are based on numerous and interacted processes that can restrict their experimental investigation. The development of mathematical models of photosynthetic processes is an important way of investigating these responses. Our work was devoted to the development of a two-dimensional model of photosynthesis in plant leaves that was based on the Farquhar–von Caemmerer–Berry model of CO(2) assimilation and descriptions of other processes including the stomatal and transmembrane CO(2) fluxes, lateral CO(2) and HCO(3)(−) fluxes, transmembrane and lateral transport of H(+) and K(+), interaction of these ions with buffers in the apoplast and cytoplasm, light-dependent regulation of H(+)-ATPase in the plasma membrane, etc. Verification of the model showed that the simulated light dependences of the CO(2) assimilation rate were similar to the experimental ones and dependences of the CO(2) assimilation rate of an average leaf CO(2) conductance were also similar to the experimental dependences. An analysis of the model showed that a spatial heterogeneity of the CO(2) assimilation rate on a leaf surface should be stimulated under an increase in light intensity and a decrease in the stomatal CO(2) conductance or quantity of the open stomata; this prediction was supported by the experimental verification. Results of the work can be the basis of the development of new methods of the remote sensing of the influence of abiotic stressors (at least, excess light and drought) on plants.
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spelling pubmed-97392402022-12-11 Development of Two-Dimensional Model of Photosynthesis in Plant Leaves and Analysis of Induction of Spatial Heterogeneity of CO(2) Assimilation Rate under Action of Excess Light and Drought Sukhova, Ekaterina Ratnitsyna, Daria Gromova, Ekaterina Sukhov, Vladimir Plants (Basel) Article Photosynthesis is a key process in plants that can be strongly affected by the actions of environmental stressors. The stressor-induced photosynthetic responses are based on numerous and interacted processes that can restrict their experimental investigation. The development of mathematical models of photosynthetic processes is an important way of investigating these responses. Our work was devoted to the development of a two-dimensional model of photosynthesis in plant leaves that was based on the Farquhar–von Caemmerer–Berry model of CO(2) assimilation and descriptions of other processes including the stomatal and transmembrane CO(2) fluxes, lateral CO(2) and HCO(3)(−) fluxes, transmembrane and lateral transport of H(+) and K(+), interaction of these ions with buffers in the apoplast and cytoplasm, light-dependent regulation of H(+)-ATPase in the plasma membrane, etc. Verification of the model showed that the simulated light dependences of the CO(2) assimilation rate were similar to the experimental ones and dependences of the CO(2) assimilation rate of an average leaf CO(2) conductance were also similar to the experimental dependences. An analysis of the model showed that a spatial heterogeneity of the CO(2) assimilation rate on a leaf surface should be stimulated under an increase in light intensity and a decrease in the stomatal CO(2) conductance or quantity of the open stomata; this prediction was supported by the experimental verification. Results of the work can be the basis of the development of new methods of the remote sensing of the influence of abiotic stressors (at least, excess light and drought) on plants. MDPI 2022-11-29 /pmc/articles/PMC9739240/ /pubmed/36501325 http://dx.doi.org/10.3390/plants11233285 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sukhova, Ekaterina
Ratnitsyna, Daria
Gromova, Ekaterina
Sukhov, Vladimir
Development of Two-Dimensional Model of Photosynthesis in Plant Leaves and Analysis of Induction of Spatial Heterogeneity of CO(2) Assimilation Rate under Action of Excess Light and Drought
title Development of Two-Dimensional Model of Photosynthesis in Plant Leaves and Analysis of Induction of Spatial Heterogeneity of CO(2) Assimilation Rate under Action of Excess Light and Drought
title_full Development of Two-Dimensional Model of Photosynthesis in Plant Leaves and Analysis of Induction of Spatial Heterogeneity of CO(2) Assimilation Rate under Action of Excess Light and Drought
title_fullStr Development of Two-Dimensional Model of Photosynthesis in Plant Leaves and Analysis of Induction of Spatial Heterogeneity of CO(2) Assimilation Rate under Action of Excess Light and Drought
title_full_unstemmed Development of Two-Dimensional Model of Photosynthesis in Plant Leaves and Analysis of Induction of Spatial Heterogeneity of CO(2) Assimilation Rate under Action of Excess Light and Drought
title_short Development of Two-Dimensional Model of Photosynthesis in Plant Leaves and Analysis of Induction of Spatial Heterogeneity of CO(2) Assimilation Rate under Action of Excess Light and Drought
title_sort development of two-dimensional model of photosynthesis in plant leaves and analysis of induction of spatial heterogeneity of co(2) assimilation rate under action of excess light and drought
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9739240/
https://www.ncbi.nlm.nih.gov/pubmed/36501325
http://dx.doi.org/10.3390/plants11233285
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