Better together:利用病毒诱导的基因沉默技术同时抑制柑橘两种内源基因的表达。

IF 2.8 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Nabil Killiny
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引用次数: 0

摘要

病毒诱导的基因沉默是一种很有前途的功能基因组学研究技术。利用柑桔tristeza病毒成功构建了柑桔内源基因沉默的感染性克隆。植物烯去饱和酶(PDS)和δ (δ)-氨基乙酰丙酸脱水酶(ALAD)在柑橘中被成功靶向。沉默PDS通常导致光漂白叶片表型,而沉默ALAD则导致叶片中离散的黄色斑点。由于质粒和随后的克隆的能力,使用同一传染性克隆同时沉默两个或多个基因可能是困难的。另一方面,由于重复感染排斥现象,将新结构体接种到预先感染了另一结构体的柑橘植株上失败。在此,我报告了我们成功的试验,即我们同时移植接种针对PDS和ALAD的构建物。将幼芽嫁接到同一棵树上,但嫁接在两根不同的树枝上。有趣的是,由于这两个基因的沉默,产生了一种新的表型,我们称之为“破色”。在两个分支中均观察到表型。基因表达分析显示PDS和ALAD转录物显著减少。这一发现提示了使用不同结构靶向多个基因的可能性,然而,移植物接种必须同时进行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Better together: the use of virus-induced gene silencing technique to repress the expression of two endogenous citrus genes simultaneously.

Better together: the use of virus-induced gene silencing technique to repress the expression of two endogenous citrus genes simultaneously.

Better together: the use of virus-induced gene silencing technique to repress the expression of two endogenous citrus genes simultaneously.

Better together: the use of virus-induced gene silencing technique to repress the expression of two endogenous citrus genes simultaneously.

Virus-induced gene silencing is a promising technique for functional genomics studies. Citrus tristeza virus was employed successfully to create an infectious clone that was used to silence endogenous citrus genes. Phytoene desaturase (PDS) and delta (δ)-aminolevulinic acid dehydratase (ALAD) were targeted successfully in citrus. Silencing PDS usually results in a photo-bleached leaf phenotype while silencing ALAD causes discrete yellow spots in leaves. Silencing two or more genes simultaneously using the same infectious clone could be difficult due to the capacity of the plasmid and subsequent cloning. On the other hand, inoculating a new construct into a citrus plant pre-infected with another construct fails due to the superinfection exclusion phenomenon. Herein, I report our successful trials whereby we simultaneously graft-inoculate constructs targeting PDS and ALAD. The budwoods were graft-inoculated into the same tree but on two different branches. Interestingly, a new phenotype was produced because of the silencing of the two genes, which we called "color-breaking". The phenotype was observed in both branches. Gene expression analysis showed a significant reduction of PDS and ALAD transcripts. This finding suggests the possibility of targeting more than one gene using different constructs, however, the graft-inoculation must be at the same time.

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来源期刊
Plant Signaling & Behavior
Plant Signaling & Behavior Agricultural and Biological Sciences-Plant Science
CiteScore
6.00
自引率
3.40%
发文量
111
期刊介绍: Plant Signaling & Behavior, a multidisciplinary peer-reviewed journal published monthly online, publishes original research articles and reviews covering the latest aspects of signal perception and transduction, integrative plant physiology, and information acquisition and processing.
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