Is Photoprotection of PSII One of the Key Mechanisms for Drought Tolerance in Maize?

Drought is one of the most important abiotic stress factors limiting maize production worldwide. The objective of this study was to investigate whether photoprotection of PSII was associated with the degree of drought tolerance and yield in three maize hybrids (30Y87, 31R88, P3939). To do this, thre...

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Main Authors: Nahidah Bashir, Habib-ur-Rehman Athar, Hazem M. Kalaji, Jacek Wróbel, Seema Mahmood, Zafar Ullah Zafar, Muhammad Ashraf
Format: Article
Language:English
Published: MDPI AG 2021-12-01
Series:International Journal of Molecular Sciences
Subjects:
Online Access:https://www.mdpi.com/1422-0067/22/24/13490
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author Nahidah Bashir
Habib-ur-Rehman Athar
Hazem M. Kalaji
Jacek Wróbel
Seema Mahmood
Zafar Ullah Zafar
Muhammad Ashraf
author_facet Nahidah Bashir
Habib-ur-Rehman Athar
Hazem M. Kalaji
Jacek Wróbel
Seema Mahmood
Zafar Ullah Zafar
Muhammad Ashraf
author_sort Nahidah Bashir
collection DOAJ
description Drought is one of the most important abiotic stress factors limiting maize production worldwide. The objective of this study was to investigate whether photoprotection of PSII was associated with the degree of drought tolerance and yield in three maize hybrids (30Y87, 31R88, P3939). To do this, three maize hybrids were subjected to three cycles of drought, and we measured the activities of photosystem II (PSII) and photosystem I (PSI). In a second field experiment, three maize hybrids were subjected to drought by withholding irrigation, and plant water status, yield and yield attributes were measured. Drought stress decreased leaf water potential (Ψ<sub>L</sub>) in three maize hybrids, and this reduction was more pronounced in hybrid P3939 (−40%) compared to that of 30Y87 (−30%). Yield and yield attributes of three maize hybrids were adversely affected by drought. The number of kernels and 100-kernel weight was the highest in maize hybrid 30Y87 (−56%, −6%), whereas these were lowest in hybrid P3939 (−88%, −23%). Drought stress reduced the quantum yield of PSII [Y(II)], photochemical quenching (qP), electron transport rate through PSII [ETR(II)] and NPQ, except in P3939. Among the components of NPQ, drought increased the Y(NPQ) with concomitant decrease in Y(NO) only in P3939, whereas Y(NO) increased in drought-stressed plants of hybrid 30Y87 and 31R88. However, an increase in cyclic electron flow (CEF) around PSI and Y(NPQ) in P3939 might have protected the photosynthetic machinery but it did not translate in yield. However, drought-stressed plants of 30Y87 might have sufficiently downregulated PSII to match the energy consumption in downstream biochemical processes. Thus, changes in PSII and PSI activity and development of NPQ through CEF are physiological mechanisms to protect the photosynthetic apparatus, but an appropriate balance between these physiological processes is required, without which plant productivity may decline.
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spelling doaj.art-7801cf43475c4d258a6ad925334e41732023-11-23T08:47:07ZengMDPI AGInternational Journal of Molecular Sciences1661-65961422-00672021-12-0122241349010.3390/ijms222413490Is Photoprotection of PSII One of the Key Mechanisms for Drought Tolerance in Maize?Nahidah Bashir0Habib-ur-Rehman Athar1Hazem M. Kalaji2Jacek Wróbel3Seema Mahmood4Zafar Ullah Zafar5Muhammad Ashraf6Department of Botany, The Women University, Multan 66000, PakistanInstitute of Pure and Applied Biology, Bahauddin Zakariya University, Multan 60800, PakistanDepartment of Plant Physiology, Institute of Biology, University of Life Sciences SGGW, 02-776 Warsaw, PolandDepartment of Bioengineering, West Pomeranian University of Technology in Szczecin, Słowackiego 17, 71-434 Szczecin, PolandInstitute of Pure and Applied Biology, Bahauddin Zakariya University, Multan 60800, PakistanInstitute of Pure and Applied Biology, Bahauddin Zakariya University, Multan 60800, PakistanInstitute of Molecular Biology and Biotechnology, The University of Lahore, Lahore 54590, PakistanDrought is one of the most important abiotic stress factors limiting maize production worldwide. The objective of this study was to investigate whether photoprotection of PSII was associated with the degree of drought tolerance and yield in three maize hybrids (30Y87, 31R88, P3939). To do this, three maize hybrids were subjected to three cycles of drought, and we measured the activities of photosystem II (PSII) and photosystem I (PSI). In a second field experiment, three maize hybrids were subjected to drought by withholding irrigation, and plant water status, yield and yield attributes were measured. Drought stress decreased leaf water potential (Ψ<sub>L</sub>) in three maize hybrids, and this reduction was more pronounced in hybrid P3939 (−40%) compared to that of 30Y87 (−30%). Yield and yield attributes of three maize hybrids were adversely affected by drought. The number of kernels and 100-kernel weight was the highest in maize hybrid 30Y87 (−56%, −6%), whereas these were lowest in hybrid P3939 (−88%, −23%). Drought stress reduced the quantum yield of PSII [Y(II)], photochemical quenching (qP), electron transport rate through PSII [ETR(II)] and NPQ, except in P3939. Among the components of NPQ, drought increased the Y(NPQ) with concomitant decrease in Y(NO) only in P3939, whereas Y(NO) increased in drought-stressed plants of hybrid 30Y87 and 31R88. However, an increase in cyclic electron flow (CEF) around PSI and Y(NPQ) in P3939 might have protected the photosynthetic machinery but it did not translate in yield. However, drought-stressed plants of 30Y87 might have sufficiently downregulated PSII to match the energy consumption in downstream biochemical processes. Thus, changes in PSII and PSI activity and development of NPQ through CEF are physiological mechanisms to protect the photosynthetic apparatus, but an appropriate balance between these physiological processes is required, without which plant productivity may decline.https://www.mdpi.com/1422-0067/22/24/13490nonphotochemical quenchingcyclic electron transportdonor-end limitations to PSIyield100-kernal weight
spellingShingle Nahidah Bashir
Habib-ur-Rehman Athar
Hazem M. Kalaji
Jacek Wróbel
Seema Mahmood
Zafar Ullah Zafar
Muhammad Ashraf
Is Photoprotection of PSII One of the Key Mechanisms for Drought Tolerance in Maize?
International Journal of Molecular Sciences
nonphotochemical quenching
cyclic electron transport
donor-end limitations to PSI
yield
100-kernal weight
title Is Photoprotection of PSII One of the Key Mechanisms for Drought Tolerance in Maize?
title_full Is Photoprotection of PSII One of the Key Mechanisms for Drought Tolerance in Maize?
title_fullStr Is Photoprotection of PSII One of the Key Mechanisms for Drought Tolerance in Maize?
title_full_unstemmed Is Photoprotection of PSII One of the Key Mechanisms for Drought Tolerance in Maize?
title_short Is Photoprotection of PSII One of the Key Mechanisms for Drought Tolerance in Maize?
title_sort is photoprotection of psii one of the key mechanisms for drought tolerance in maize
topic nonphotochemical quenching
cyclic electron transport
donor-end limitations to PSI
yield
100-kernal weight
url https://www.mdpi.com/1422-0067/22/24/13490
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