教授 博士生导师 硕士生导师
性别: 男
毕业院校: 东北师范大学
学位: 博士
所在单位: 生物工程学院
学科: 生物化工. 生物化学与分子生物学. 生物工程
办公地点: 生物工程学院401室
联系方式: 13624087256
电子邮箱: luanyush@dlut.edu.cn
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论文类型: 期刊论文
发表时间: 2015-10-01
发表刊物: PLANT CELL TISSUE AND ORGAN CULTURE
收录刊物: SCIE、EI、Scopus
卷号: 123
期号: 1
页面范围: 67-81
ISSN号: 0167-6857
关键字: Tomato; WRKY; Phytophthora infestans; Salt/drought stress; ROS; Defense-related genes
摘要: WRKY transcription factors play essential roles in diverse signaling pathways related to plant defense responses. However, research focusing on the WRKY family in tomato is fairly limited. In this work, a pathogen-induced SpWRKY1 gene from the wild tomato Solanum pimpinellifolium L3708 showing that its overexpression in cultivated tomato Solanum lycopersicum cv. Zaofen No. 2 results in markedly increased resistance to Phytophthora infestans than untransformed wild-type plant, mainly demonstrated by less severe cell death, lower reactive oxygen species (ROS) production, malonaldehyde (MDA) content, relative electrolyte leakage (REL) and stomatal conductance; and higher peroxidase (POD), superoxide dismutase (SOD), phenylalanine ammonia-lyase, chlorophyll content and photosynthetic rate. This resistance was also coupled with enhanced the expression of ROS scavenging-related genes, SA/JA-responsive genes and SA/JA biosynthesis-related genes. This overexpression was accompanied by regulating the expression of an ABA biosynthetic gene, reveals a potentially positive role of SpWRKY1 in ABA-mediated stomatal closure. Furthermore, transgenic tomato also displayed an enhanced tolerance to salt and drought stress by decreasing ROS generation, reducing MDA content and REL, improving POD, SOD and proline content, keeping leaf relative water content, preventing chlorophyll loss, and protecting photosynthetic rate and stomatal conductance, accompanied by not only enhanced expression of some ROS scavenging-related and stress-related genes, but also directly up-regulated the expressions of PR genes in response to salt and drought stress. These findings broaden our knowledge about the functions of SpWRKY1 in diverse signalling pathways and may be useful in improving tomato plants tolerance to biotic and abiotic stress.