Comparative Transcriptome Analysis Reveals the Molecular Basis of Brassica napus in Response to Aphid Stress

Author:

Li Yuanhong1,Cai Lei12,Ding Ting1,Tian Entang1,Yan Xiaohong3,Wang Xiaodong4ORCID,Zhang Jiefu4,Yu Kunjiang125,Chen Zhuo2

Affiliation:

1. College of Agriculture, Guizhou University, Guiyang 550025, China

2. Center for Research and Development of Fine Chemical, Guizhou University, Guiyang 550025, China

3. Key Laboratory of Biology and Genetic Improvement of Oil Crops, Ministry of Agriculture and Rural Affairs, Oil Crops Research Institute, Chinese Academy of Agricultural Sciences, Wuhan 430062, China

4. Institute of Industrial Crops, Jiangsu Academy of Agricultural Sciences, Key Laboratory of Cotton and Rapeseed, Ministry of Agriculture and Rural Affairs, Nanjing 210014, China

5. Guangxi Tianyuan Biochemical Co., Ltd., Nanning 530009, China

Abstract

Rapeseed is a globally important economic crop that can be severely impacted by aphids. However, our understanding of rapeseed resistance to aphid stress is very limited. In this study, we analyzed the resistance characteristics of the low aphid-susceptible variety APL01 and the highly aphid-susceptible variety Holly in response to aphid stress. APL01 had a more significant inhibitory effect on aphid proliferation compared with Holly during the early stage of inoculation, whereas Holly showed stronger tolerance to aphid stress compared with APL01 during the later stage of inoculation. Through transcriptome, physiological, and gene expression analyses, it was revealed that chitinase activity, catalase activity, calcium signal transduction, and activation of systemic acquired resistance might be involved in aphid resistance in B. napus. The degree of inhibition of photosynthesis in plants under aphid stress directly determines the tolerance of B. napus to aphid stress. Furthermore, four promising candidate genes were screened from eight genes related to rapeseed response to biotic stress through RT-qPCR analysis of gene expression levels. These research findings represent an important step forward in understanding the resistance of rapeseed to aphid stress and provide a solid foundation for the cloning of genes responsible for this resistance.

Funder

Guizhou Provincial Science and Technology Plan Project

Open fund of Key Laboratory of Biology and Genetic Improvement of Oil Crops, Ministry of Agriculture and Rural Affairs

National Natural Science Foundation of China

Guizhou University Cultivation Project

Key Laboratory of Molecular Breeding for Grain and Oil Crops in Guizhou Province

Key Laboratory of Functional Agriculture of Guizhou Provincial Higher Education Institutions

Jiangsu Agricultural Science and Technology Innovation Fund

Publisher

MDPI AG

Subject

Plant Science,Ecology,Ecology, Evolution, Behavior and Systematics

Reference86 articles.

1. Early allopolyploid evolution in the post-Neolithic Brassica napus oilseed genome;Chalhoub;Science,2014

2. Arora, R., and Sandhu, S. (2017). Breeding Insect Resistant Crops for Sustainable Agriculture, Springer.

3. Blackman, R.L., and Eastop, V.F. (2000). Aphids on the World’s Crops: An Identification and Information Guide, John Wiley and Sons. [2nd ed.].

4. (2016). Ecofriendly Pest Management for Food Security, Elsevier.

5. Mechanisms of aphid adaptation to host plant resistance;Yates;Curr. Opin. Insect Sci.,2018

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