Fu Xiaoxiang, Jin Yu, Paul Matthew J, Yuan Minxuan, Liang Xingwei, Cui Ruqiang, Huang Yingjin, Peng Wenwen, Liang Xiaogui
The Laboratory for Phytochemistry and Botanical Pesticides, College of Agriculture, Jiangxi Agricultural University, Nanchang, China.
Key Laboratory of Crop Physiology, Ecology and Genetic Breeding, Ministry of Education/Jiangxi Province, Jiangxi Agricultural University, Nanchang, China.
Front Plant Sci. 2023 May 8;14:1168985. doi: 10.3389/fpls.2023.1168985. eCollection 2023.
Ustiloxins are the main mycotoxin in rice false smut, a devastating disease caused by . A typical phytotoxicity of ustiloxins is strong inhibition of seed germination, but the physiological mechanism is not clear. Here, we show that the inhibition of rice germination by ustiloxin A (UA) is dose-dependent. The sugar availability in UA-treated embryo was lower while the starch residue in endosperm was higher. The transcripts and metabolites responsive to typical UA treatment were investigated. The expression of several SWEET genes responsible for sugar transport in embryo was down-regulated by UA. Glycolysis and pentose phosphate processes in embryo were transcriptionally repressed. Most of the amino acids detected in endosperm and embryo were variously decreased. Ribosomal RNAs for growth were inhibited while the secondary metabolite salicylic acid was also decreased under UA. Hence, we propose that the inhibition of seed germination by UA involves the block of sugar transport from endosperm to embryo, leading to altered carbon metabolism and amino acid utilization in rice plants. Our analysis provides a framework for understanding of the molecular mechanisms of ustiloxins on rice growth and in pathogen infection.
玉蜀黍黑粉菌素是稻曲病中的主要霉菌毒素,稻曲病是由……引起的一种毁灭性病害。玉蜀黍黑粉菌素典型的植物毒性是强烈抑制种子萌发,但其生理机制尚不清楚。在此,我们表明玉蜀黍黑粉菌素A(UA)对水稻萌发的抑制作用具有剂量依赖性。经UA处理的胚中可利用糖含量较低,而胚乳中的淀粉残留量较高。对典型UA处理下的转录本和代谢产物进行了研究。负责胚中糖转运的几个SWEET基因的表达被UA下调。胚中的糖酵解和磷酸戊糖途径在转录水平上受到抑制。在胚乳和胚中检测到的大多数氨基酸均有不同程度的减少。生长所需的核糖体RNA受到抑制,同时在UA处理下次生代谢产物水杨酸也减少。因此,我们认为UA对种子萌发的抑制作用涉及胚乳到胚的糖转运受阻,导致水稻植株碳代谢和氨基酸利用发生改变。我们的分析为理解玉蜀黍黑粉菌素对水稻生长及病原体感染的分子机制提供了一个框架。