长期低氧储存和乙烯信号干扰的转录组学研究表明,苹果(Malus domestica)缺氧反应通路的新功能。

IF 2.3 3区 生物学 Q2 PLANT SCIENCES
Plant Direct Pub Date : 2024-12-20 eCollection Date: 2024-12-01 DOI:10.1002/pld3.70025
John A Hadish, Heidi L Hargarten, Huiting Zhang, James P Mattheis, Stephen P Ficklin, Loren A Honaas
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引用次数: 0

摘要

关于植物如何应对缺氧的研究主要集中在模式生物上,这些生物的组织只能在缺氧条件下存活几小时到几天。相比之下,低氧条件在商业上被用作延长苹果(苹果)果实保质期的一种方法,长达一年的储存时间,而不会对果实质量产生实质性的变化,更不用说缺乏组织死亡。苹果这种承受长时间缺氧条件的能力是一种有趣的适应,尽管具有经济重要性,但分子研究有限。在这里,我们通过对几个采后储存条件的时间过程RNA-seq分析来研究苹果的长期缺氧反应。我们使用系统发育、差异表达和调节网络来识别调节和受缺氧反应调节的基因。我们确定了苹果核心缺氧反应基因的潜在新功能,包括VII组乙烯反应因子(ERF VII)和植物半胱氨酸氧化酶(PCO)家族成员的新调控。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transcriptomics of long-term, low oxygen storage coupled with ethylene signaling interference suggests neofunctionalization of hypoxia response pathways in apple (Malus domestica).

Research on how plants respond to hypoxia has concentrated on model organisms where tissues can only survive hypoxic conditions for a few hours to a few days. In contrast, hypoxic conditions are used commercially as a method to prolong the shelf life of Malus domestica (apple) fruit for up to a year of storage without substantial changes in fruit quality, not to mention a lack of tissue death. This ability of apples to withstand protracted hypoxic conditions is an interesting adaptation that has had limited molecular investigation despite its economic importance. Here, we investigate the long-term apple hypoxia response using a time-course RNA-seq analysis of several postharvest storage conditions. We use phylogenetics, differential expression, and regulatory networks to identify genes that regulate and are regulated by the hypoxia response. We identify potential neofunctionalization of core-hypoxia response genes in apples, including novel regulation of group VII ethylene response factor (ERF VII) and plant cysteine oxidase (PCO) family members.

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来源期刊
Plant Direct
Plant Direct Environmental Science-Ecology
CiteScore
5.00
自引率
3.30%
发文量
101
审稿时长
14 weeks
期刊介绍: Plant Direct is a monthly, sound science journal for the plant sciences that gives prompt and equal consideration to papers reporting work dealing with a variety of subjects. Topics include but are not limited to genetics, biochemistry, development, cell biology, biotic stress, abiotic stress, genomics, phenomics, bioinformatics, physiology, molecular biology, and evolution. A collaborative journal launched by the American Society of Plant Biologists, the Society for Experimental Biology and Wiley, Plant Direct publishes papers submitted directly to the journal as well as those referred from a select group of the societies’ journals.
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