Lin Zhu, Faliang Zeng, Yinpei Liang, Qi Wang, Hongwei Chen, Pulin Feng, Mingqian Fan, Yanshuang Cheng, Jiayu Wang
{"title":"受 SPD25 调控的小乳突对平衡水稻光合作用的二氧化碳同化和水分损失至关重要","authors":"Lin Zhu, Faliang Zeng, Yinpei Liang, Qi Wang, Hongwei Chen, Pulin Feng, Mingqian Fan, Yanshuang Cheng, Jiayu Wang","doi":"10.1186/s12284-023-00676-7","DOIUrl":null,"url":null,"abstract":"<h3 data-test=\"abstract-sub-heading\">Background</h3><p>The leaf epidermis plays an important role in the transmission of light and the regulation of water and gas exchange, which influences the photosynthesis of mesophyll cells. Small papillae (SP) are one of the important structural elements of the leaf epidermis. The mechanism of the effect that small papillae have on rice leaf photosynthetic performance remains unclear.</p><h3 data-test=\"abstract-sub-heading\">Results</h3><p>In this study, a <i>small papilla deficient 25</i> (<i>spd25</i>) mutant was isolated from <i>japonica</i> rice Longjin1. Small papillae were absent on the adaxial and abaxial leaf surfaces of the <i>spd25</i> mutant and the silicon and cuticular wax content in the <i>spd25</i> mutant leaves decreased. Map-based cloning and functional analysis revealed that <i>SPD25</i>, encoding a guanine nucleotide exchange factor for Rop, is a novel allele of <i>OsRopGEF10</i>. The <i>spd25</i> mutant showed an increased water loss rate and reduced relative water content. The lower stomatal conductance in the <i>spd25</i> mutant prevented water loss but decreased the intercellular CO<sub>2</sub> concentration and net assimilation rate. The fluorescence parameters showed that the inhibited CO<sub>2</sub> assimilation reaction feedback regulated the photochemical electron-transfer reaction, but the performance of Photosystem II was stable. Further analysis indicated that the excess light energy absorbed by the <i>spd25</i> mutant was dissipated in the form of non-photochemical quenching to avoid photodamage through the optical properties of small papillae.</p><h3 data-test=\"abstract-sub-heading\">Conclusions</h3><p><i>SPD25</i> regulates the development of small papillae on the surface of rice leaves, which play an important role in balancing photosynthetic gas exchange and water loss. This study deepens our understanding of the physiological mechanisms by which small papillae affect photosynthetic performance.</p>","PeriodicalId":21408,"journal":{"name":"Rice","volume":"288 1 1","pages":""},"PeriodicalIF":4.8000,"publicationDate":"2023-12-13","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Small Papillae Regulated by SPD25 are Critical for Balancing Photosynthetic CO2 Assimilation and Water Loss in Rice\",\"authors\":\"Lin Zhu, Faliang Zeng, Yinpei Liang, Qi Wang, Hongwei Chen, Pulin Feng, Mingqian Fan, Yanshuang Cheng, Jiayu Wang\",\"doi\":\"10.1186/s12284-023-00676-7\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<h3 data-test=\\\"abstract-sub-heading\\\">Background</h3><p>The leaf epidermis plays an important role in the transmission of light and the regulation of water and gas exchange, which influences the photosynthesis of mesophyll cells. Small papillae (SP) are one of the important structural elements of the leaf epidermis. The mechanism of the effect that small papillae have on rice leaf photosynthetic performance remains unclear.</p><h3 data-test=\\\"abstract-sub-heading\\\">Results</h3><p>In this study, a <i>small papilla deficient 25</i> (<i>spd25</i>) mutant was isolated from <i>japonica</i> rice Longjin1. Small papillae were absent on the adaxial and abaxial leaf surfaces of the <i>spd25</i> mutant and the silicon and cuticular wax content in the <i>spd25</i> mutant leaves decreased. Map-based cloning and functional analysis revealed that <i>SPD25</i>, encoding a guanine nucleotide exchange factor for Rop, is a novel allele of <i>OsRopGEF10</i>. The <i>spd25</i> mutant showed an increased water loss rate and reduced relative water content. The lower stomatal conductance in the <i>spd25</i> mutant prevented water loss but decreased the intercellular CO<sub>2</sub> concentration and net assimilation rate. The fluorescence parameters showed that the inhibited CO<sub>2</sub> assimilation reaction feedback regulated the photochemical electron-transfer reaction, but the performance of Photosystem II was stable. Further analysis indicated that the excess light energy absorbed by the <i>spd25</i> mutant was dissipated in the form of non-photochemical quenching to avoid photodamage through the optical properties of small papillae.</p><h3 data-test=\\\"abstract-sub-heading\\\">Conclusions</h3><p><i>SPD25</i> regulates the development of small papillae on the surface of rice leaves, which play an important role in balancing photosynthetic gas exchange and water loss. 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Small Papillae Regulated by SPD25 are Critical for Balancing Photosynthetic CO2 Assimilation and Water Loss in Rice
Background
The leaf epidermis plays an important role in the transmission of light and the regulation of water and gas exchange, which influences the photosynthesis of mesophyll cells. Small papillae (SP) are one of the important structural elements of the leaf epidermis. The mechanism of the effect that small papillae have on rice leaf photosynthetic performance remains unclear.
Results
In this study, a small papilla deficient 25 (spd25) mutant was isolated from japonica rice Longjin1. Small papillae were absent on the adaxial and abaxial leaf surfaces of the spd25 mutant and the silicon and cuticular wax content in the spd25 mutant leaves decreased. Map-based cloning and functional analysis revealed that SPD25, encoding a guanine nucleotide exchange factor for Rop, is a novel allele of OsRopGEF10. The spd25 mutant showed an increased water loss rate and reduced relative water content. The lower stomatal conductance in the spd25 mutant prevented water loss but decreased the intercellular CO2 concentration and net assimilation rate. The fluorescence parameters showed that the inhibited CO2 assimilation reaction feedback regulated the photochemical electron-transfer reaction, but the performance of Photosystem II was stable. Further analysis indicated that the excess light energy absorbed by the spd25 mutant was dissipated in the form of non-photochemical quenching to avoid photodamage through the optical properties of small papillae.
Conclusions
SPD25 regulates the development of small papillae on the surface of rice leaves, which play an important role in balancing photosynthetic gas exchange and water loss. This study deepens our understanding of the physiological mechanisms by which small papillae affect photosynthetic performance.
期刊介绍:
Rice aims to fill a glaring void in basic and applied plant science journal publishing. This journal is the world''s only high-quality serial publication for reporting current advances in rice genetics, structural and functional genomics, comparative genomics, molecular biology and physiology, molecular breeding and comparative biology. Rice welcomes review articles and original papers in all of the aforementioned areas and serves as the primary source of newly published information for researchers and students in rice and related research.