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硼缓解辣椒镉毒性的生理和分子机制

Physiological and molecular mechanisms of boron in alleviating cadmium toxicity in Capsicum annuum.

作者信息

Shen Chuang, Fu Huiling, Huang Baifei, Liao Qiong, Huang Yingying, Wang Yanbin, Wang Yating, Xin Junliang

机构信息

Research Center for Environmental Pollution Control Technology, School of Chemical and Environmental Engineering, Hunan Institute of Technology, Hengyang 421002, China.

Research Center for Environmental Pollution Control Technology, School of Chemical and Environmental Engineering, Hunan Institute of Technology, Hengyang 421002, China.

出版信息

Sci Total Environ. 2023 Dec 10;903:166264. doi: 10.1016/j.scitotenv.2023.166264. Epub 2023 Aug 12.

Abstract

Soil cadmium (Cd) contamination threatens food safety and human health, particularly in developing countries. Previously, we have proposed that boron (B) could reduce Cd uptake and accumulation in hot peppers (Capsicum annuum) by regulating the expression of genes related to Cd transport in roots. However, only few studies have examined the role of B in plant leaves under Cd stress. It is unclear how B induces the expression of relevant genes and metabolites in hot pepper leaves and to what extent B is involved in leaf growth and Cd accumulation. The purpose of this study was to investigate the effects of B on growth and Cd accumulation in hot pepper leaves by determining physiological parameters and transcriptome sequencing. The results showed that B application significantly improved the concentration of chlorophyll a and intercellular CO, stomatal conductance, and photosynthetic and transpiration rates by 18-41 % in Cd-stressed plants. Moreover, B enhanced Cd retention in the cell wall by upregulating the expression levels of pectin-, lignin-, and callose-related genes and improving the activity of pectin methylesterase by 30 %, resulting in an approximate 31 % increase in Cd retention in the cell wall. Furthermore, B application not only enhanced the expression levels of genes related to antioxidant enzymes (superoxide dismutase, catalase, and peroxidase) and their activities by 28-40 %, thereby counteracting Cd-induced oxidative stress, but also improved Cd chelation, sequestration, and exclusion by upregulating the expression levels of genes related to sulfur metabolism, heavy metal-associated isoprenylated plant protein (HIPP), and transporters such as vacuolar cation/proton exchanger (CAX3), metal-nicotianamine transporter (YSL), ATP-binding cassette (ABC), zinc/iron transporters (ZIP) and oxic-compound detoxification (DTX), ultimately reinforcing Cd tolerance. Together, our results suggest that B application reduces the negative effects of Cd on leaf growth, promotes photosynthesis, and decreases Cd transfer to fruits through its sequestration and retention.

摘要

土壤镉(Cd)污染威胁食品安全和人类健康,在发展中国家尤为如此。此前,我们曾提出硼(B)可通过调节根系中与镉转运相关基因的表达,减少辣椒(Capsicum annuum)对镉的吸收和积累。然而,仅有少数研究考察了镉胁迫下硼在植物叶片中的作用。目前尚不清楚硼如何诱导辣椒叶片中相关基因的表达和代谢产物的产生,以及硼在叶片生长和镉积累过程中参与的程度。本研究旨在通过测定生理参数和转录组测序,探究硼对辣椒叶片生长和镉积累的影响。结果表明,在镉胁迫的植株中,施用硼显著提高了叶绿素a浓度、胞间CO₂、气孔导度以及光合速率和蒸腾速率,增幅为18% - 41%。此外,硼通过上调果胶、木质素和胼胝质相关基因的表达水平,并使果胶甲酯酶活性提高30%,增强了细胞壁对镉的固定,使细胞壁中镉的固定量增加了约31%。此外,施用硼不仅使抗氧化酶(超氧化物歧化酶、过氧化氢酶和过氧化物酶)相关基因的表达水平及其活性提高了28% - 40%,从而抵消镉诱导的氧化应激,还通过上调硫代谢、重金属相关异戊二烯化植物蛋白(HIPP)以及液泡阳离子/质子交换体(CAX3)、金属烟酰胺转运体(YSL)、ATP结合盒(ABC)、锌/铁转运体(ZIP)和氧化化合物解毒(DTX)等转运体相关基因的表达水平,改善了镉的螯合、隔离和外排,最终增强了对镉胁迫的耐受性。总之,我们的结果表明,施用硼可减轻镉对叶片生长的负面影响,促进光合作用,并通过螯合和固定减少镉向果实的转移。

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