Comparative physiological and transcriptome analysis reveals the potential mechanism of selenium accumulation and tolerance to selenate toxicity of Broussonetia papyrifera

Author:

Chen Qiangwen1,Yu Li1,Chao Wei1,Xiang Juan1,Yang Xiaoyan1,Ye Jiabao1,Liao Xiaoli1,Zhou Xian1,Rao Shen23,Cheng Shuiyuan24,Cong Xin25,Xiao Bo1,Xu Feng1ORCID

Affiliation:

1. College of Horticulture and Gardening, Yangtze University , Jingzhou 434025, Hubei , China

2. National R&D Center for Se-rich Agricultural Products Processing, Wuhan Polytechnic University , Wuhan 430023, Hubei , China

3. School of Modern Industry for Selenium Science and Engineering, Wuhan Polytechnic University , Wuhan 430023, Hubei , China

4. National Selenium Rich Product Quality Supervision and Inspection Center , Enshi 445000, Hubei , China

5. Enshi Se-Run Material Engineering Technology Co., Ltd , Enshi, 445000 , China

Abstract

Abstract Broussonetia papyrifera is an important fodder tree that is widely distributed in China. Enhancing the selenium (Se) content in B. papyrifera may help to improve the nutritional value of the feed. In this study, sodium selenite and selenate were foliar applied to investigate the mechanisms of Se tolerance and accumulation in B. papyrifera. The results showed that both Se forms significantly increased the total Se content, and the proportion of organic Se was significantly higher in the sodium selenite treatment than in the control. In addition, the soluble sugar, phenolic acid and flavonoid contents and antioxidant enzyme activities were increased by exogenous Se. The de novo RNA sequencing results showed that 644 and 1804 differentially expressed genes were identified in the selenite and selenate comparison groups, respectively. Pathway enrichment analysis demonstrated that 24 of the 108 pathways were significantly enriched, of which sulfur assimilation genes in the sodium selenite-treated groups were upregulated, whereas Se conjugation and transporter genes, such as SBP1, PCS, GSTs, ABCs and GPX, were significantly induced under selenate treatment. The hub genes identified by weighted-gene co-expression network analysis further confirmed that sulfur assimilation, conjugation and transporter genes might play a vital role in Se assimilation and tolerance. From this, a model of Se metabolism in B. papyrifera was proposed based on the above physiological and RNA sequencing data. This study is the first study to report that B. papyrifera has a strong ability to accumulate and tolerate exogenous Se, thereby providing a foundation for further characterization of the accumulation and tolerance mechanism of B. papyrifera. Our findings can provide technical support for producing Se-enriched fodder.

Funder

Key Research and Development Program of Hubei Province

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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