Suppr超能文献

利用大豆黄花叶病毒优化病毒诱导基因沉默系统用于大豆基因功能研究

Optimization of a Virus-Induced Gene Silencing System with Soybean yellow common mosaic virus for Gene Function Studies in Soybeans.

作者信息

Kim Kil Hyun, Lim Seungmo, Kang Yang Jae, Yoon Min Young, Nam Moon, Jun Tae Hwan, Seo Min-Jung, Baek Seong-Bum, Lee Jeom-Ho, Moon Jung-Kyung, Lee Suk-Ha, Lee Su-Heon, Lim Hyoun-Sub, Moon Jae Sun, Park Chang-Hwan

机构信息

National Institute of Crop Science, Rural Development Administration, Suwon 441-707, Korea.

Plant Systems Engineering Research Center, Korea Research Institute of Bioscience and Biotechnology, Daejeon 305-806, Korea; Biosystems and Bioengineering Program, University of Science and Technology, Daejeon 305-350, Korea.

出版信息

Plant Pathol J. 2016 Apr;32(2):112-22. doi: 10.5423/PPJ.OA.04.2015.0063. Epub 2016 Apr 1.

Abstract

Virus-induced gene silencing (VIGS) is an effective tool for the study of soybean gene function. Successful VIGS depends on the interaction between virus spread and plant growth, which can be influenced by environmental conditions. Recently, we developed a new VIGS system derived from the Soybean yellow common mosaic virus (SYCMV). Here, we investigated several environmental and developmental factors to improve the efficiency of a SYCMV-based VIGS system to optimize the functional analysis of the soybean. Following SYCMV: Glycine max-phytoene desaturase (GmPDS) infiltration, we investigated the effect of photoperiod, inoculation time, concentration of Agrobacterium inoculm, and growth temperature on VIGS efficiency. In addition, the relative expression of GmPDS between non-silenced and silenced plants was measured by qRT-PCR. We found that gene silencing efficiency was highest at a photoperiod of 16/8 h (light/dark) at a growth temperature of approximately 27°C following syringe infiltration to unrolled unifoliolate leaves in cotyledon stage with a final SYCMV:GmPDS optimal density (OD)600 of 2.0. Using this optimized protocol, we achieved high efficiency of GmPDS-silencing in various soybean germplasms including cultivated and wild soybeans. We also confirmed that VIGS occurred in the entire plant, including the root, stem, leaves, and flowers, and could transmit GmPDS to other soybean germplasms via mechanical inoculation. This optimized protocol using a SYCMV-based VIGS system in the soybean should provide a fast and effective method to elucidate gene functions and for use in large-scale screening experiments.

摘要

病毒诱导的基因沉默(VIGS)是研究大豆基因功能的有效工具。VIGS的成功取决于病毒传播与植物生长之间的相互作用,而这可能会受到环境条件的影响。最近,我们开发了一种源自大豆黄花叶病毒(SYCMV)的新型VIGS系统。在此,我们研究了几个环境和发育因素,以提高基于SYCMV的VIGS系统的效率,从而优化大豆的功能分析。在接种SYCMV:大豆八氢番茄红素去饱和酶(GmPDS)后,我们研究了光周期、接种时间、农杆菌接种物浓度和生长温度对VIGS效率的影响。此外,通过qRT-PCR测定了非沉默和沉默植株之间GmPDS的相对表达。我们发现,在子叶期将展开的单叶用注射器浸润,最终SYCMV:GmPDS的最佳密度(OD)600为2.0,在生长温度约为27°C、光周期为16/8小时(光照/黑暗)的条件下,基因沉默效率最高。使用这种优化方案,我们在包括栽培大豆和野生大豆在内的各种大豆种质中实现了高效的GmPDS沉默。我们还证实,VIGS发生在包括根、茎、叶和花在内的整个植株中,并且可以通过机械接种将GmPDS传递给其他大豆种质。这种在大豆中使用基于SYCMV的VIGS系统的优化方案应该为阐明基因功能以及用于大规模筛选实验提供一种快速有效的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0eaa/4853101/2ec6b3eb072f/ppj-32-112f1.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验