Molecular Mechanisms of Plant Responses to Copper: From Deficiency to Excess

Author:

Xu Ending1,Liu Yuanyuan2,Gu Dongfang1,Zhan Xinchun1,Li Jiyu3,Zhou Kunneng1,Zhang Peijiang1,Zou Yu1ORCID

Affiliation:

1. Anhui Province Key Laboratory of Rice Germplasm Innovation and Molecular Improvement, Rice Research Institute, Anhui Academy of Agricultural Sciences, Hefei 230031, China

2. Department of Biochemistry & Molecular Biology, College of Life Science, Nanjing Agriculture University, Nanjing 210095, China

3. Institute of Horticultural Research, Anhui Academy of Agricultural Sciences, Hefei 230031, China

Abstract

Copper (Cu) is an essential nutrient for plant growth and development. This metal serves as a constituent element or enzyme cofactor that participates in many biochemical pathways and plays a key role in photosynthesis, respiration, ethylene sensing, and antioxidant systems. The physiological significance of Cu uptake and compartmentalization in plants has been underestimated, despite the importance of Cu in cellular metabolic processes. As a micronutrient, Cu has low cellular requirements in plants. However, its bioavailability may be significantly reduced in alkaline or organic matter-rich soils. Cu deficiency is a severe and widespread nutritional disorder that affects plants. In contrast, excessive levels of available Cu in soil can inhibit plant photosynthesis and induce cellular oxidative stress. This can affect plant productivity and potentially pose serious health risks to humans via bioaccumulation in the food chain. Plants have evolved mechanisms to strictly regulate Cu uptake, transport, and cellular homeostasis during long-term environmental adaptation. This review provides a comprehensive overview of the diverse functions of Cu chelators, chaperones, and transporters involved in Cu homeostasis and their regulatory mechanisms in plant responses to varying Cu availability conditions. Finally, we identified that future research needs to enhance our understanding of the mechanisms regulating Cu deficiency or stress in plants. This will pave the way for improving the Cu utilization efficiency and/or Cu tolerance of crops grown in alkaline or Cu-contaminated soils.

Funder

Joint Project of Elite Varieties Breeding of Anhui Province

National Key Research and Development Program of China

Anhui Provincial Key Research and Development Project

Open Research Fund Program of the Anhui Province Key Laboratory of Rice Germplasm Innovation and Molecular Improvement

National Rice Industry Technology System

Publisher

MDPI AG

Reference234 articles.

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