Physiological and Transcriptomic Responses of Bok Choy to Heat Stress

Author:

Dong Cuina1,Peng Xixuan1,Yang Xiaona1,Wang Chenggang123ORCID,Yuan Lingyun123,Chen Guohu123,Tang Xiaoyan123,Wang Wenjie123,Wu Jianqiang123,Zhu Shidong123ORCID,Huang Xingxue3,Zhang Jinlong3,Hou Jinfeng123ORCID

Affiliation:

1. Vegetable Genetics and Breeding Laboratory, College of Horticulture, Anhui Agricultural University, 130 West Changjiang Road, Hefei 230036, China

2. Provincial Engineering Laboratory for Horticultural Crop Breeding of Anhui, 130 West of Changjiang Road, Hefei 230036, China

3. Wanjiang Vegetable Industrial Technology Institute, Maanshan 238200, China

Abstract

High temperatures have adverse effects on the yield and quality of vegetables. Bok choy, a popular vegetable, shows varying resistance to heat. However, the mechanism underlying the thermotolerance of bok choy remains unclear. In this study, 26 bok choy varieties were identified in screening as being heat-resistant at the seedling stage; at 43 °C, it was possible to observe obvious heat damage in different bok choy varieties. The physiological and biochemical reactions of a heat-tolerant cultivar, Jinmei (J7), and a heat-sensitive cultivar, Sanyueman (S16), were analyzed in terms of the growth index, peroxide, and photosynthetic parameters. The results show that Jinmei has lower relative conductivity, lower peroxide content, and higher total antioxidant capacity after heat stress. We performed transcriptome analysis of the two bok choy varieties under heat stress and normal temperatures. Under heat stress, some key genes involved in sulfur metabolism, glutathione metabolism, and the ribosome pathway were found to be significantly upregulated in the heat-tolerant cultivar. The key genes of each pathway were screened according to their fold-change values. In terms of sulfur metabolism, genes related to protease activity were significantly upregulated. Glutathione synthetase (GSH2) in the glutathione metabolism pathway and the L3e, L23, and S19 genes in the ribosomal pathway were significantly upregulated in heat-stressed cultivars. These results suggest that the total antioxidant capacity and heat injury repair capacity are higher in Jinmei than in the heat-sensitive variety, which might be related to the specific upregulation of genes in certain metabolic pathways after heat stress.

Funder

Anhui Provincial Key Research and Development Project

Natural Science Foundation of higher education institutions in Anhui province, China

special fund for the Anhui agriculture research system

Publisher

MDPI AG

Reference61 articles.

1. Plant Tolerance to High Temperature in a Changing Environment: Scientific Fundamentals and Production of Heat Stress-Tolerant Crops;Bita;Front. Plant Sci.,2013

2. Physiological, Biochemical, and Molecular Mechanisms of Heat Stress Tolerance in Plants;Hasanuzzaman;Int. J. Mol. Sci.,2013

3. More than Taking the Heat: Crops and Global Change;Long;Curr. Opin. Plant Biol.,2010

4. Effect of Heat Stress on Photosynthetic Activity and Chloroplast Ultrastructure in Correlation with Endogenous Cytokinin Concentration in Maize Seedlings;Caers;Plant Cell Physiol.,1985

5. The Effect of Drought and Heat Stress on Reproductive Processes in Cereals;Plant Cell Environ.,2007

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