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首页> 外文期刊>Protoplasma: An International Journal of Cell Biology >Physiological and transcriptional response to heat stress in heat-resistant and heat-sensitive maize (Zea maysL.) inbred lines at seedling stage
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Physiological and transcriptional response to heat stress in heat-resistant and heat-sensitive maize (Zea maysL.) inbred lines at seedling stage

机译:在耐热和热敏玉米(Zea maysl中的热应激的生理和转录反应。幼苗阶段的近交系

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摘要

To understand the molecular and physiological mechanism underlying the heat stress in maize, transcriptional and physiological response to heat stress in the heat-resistant Huangzaosi (HZS) and heat-sensitive Lv-9-Kuan (L9K) inbred lines at seedling stage were analyzed and compared at seedling stage. Our results indicated that MDA content of the two inbred lines increased significantly under heat stress; the values of MDA in L9K was significantly higher than that in HZS. The level of SOD, CAT, and POD enzyme activities in HZS was higher than those in L9K for both the heat-treated group and controls. The values of Fv/Fm, qP, and CYRILLIC CAPITAL LETTER EFPSII reduced by heat stress in L9K were higher than the respective values in HZS. RNA-seq data showed that heat stress induced more heat stress-related genes in HZS (257 heat stress-related genes) than in L9K (224 heat stress-related genes). GO and KEGG enrichment analyses indicated that HZS and L9K changed their physiological and biochemical mechanisms in response to heat stress through different molecular mechanisms. Weighted Gene Co-expression Network Analysis showed that HZS might obtain stronger heat resistance than L9K through a unique transcriptional regulatory network. Our findings provide insights into the molecular networks that mediate the tolerance of maize heat stress and also help us to mine key heat stress-related genes.
机译:为了了解玉米热应激的分子和生理机制,分析耐热黄氮(HZS)中热应激的转录和生理反应,并分析幼苗阶段的热敏LV-9-Kum(L9K)近交系在幼苗阶段比较。我们的结果表明,两种自交系的MDA含量在热应力下显着增加; L9K中MDA的值显着高于HZS中的MDA。 Hzs中的SOD,猫和豆荚酶活性的水平高于热处理组和对照的L9K中的水平。通过L9K中的热应力降低的FV / FM,QP和Cyrillic大写字母EFPSII的值高于Hz中的各个值。 RNA-SEQ数据显示,热应力在Hz(257个热应激相关基因)中诱导更多的热应激相关基因,而不是L9K(224个热应激相关基因)。 Go和Kegg Encroce分析表明Hzs和L9k响应于通过不同分子机制的热应激而改变了它们的生理和生化机制。加权基因共表达网络分析表明,HZS可以通过独特的转录调节网络获得比L9K更强的耐热性。我们的研究结果提供了进入介于玉米热应激耐受性的分子网络的见解,并帮助我们挖掘挤出关键的热应激相关基因。

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