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黄瓜绿斑驳花叶病毒亚基因组启动子中假定调控元件的预测及其与RNA依赖RNA聚合酶结构域的相互作用

Prediction of putative regulatory elements in the subgenomic promoters of cucumber green mottle mosaic virus and their interactions with the RNA dependent RNA polymerase domain.

作者信息

Chattopadhyay Anirudha, Abdul Kader Jailani A, Roy Anirban, Mukherjee Sunil Kumar, Mandal Bikash

机构信息

Advanced Centre for Plant Virology, Division of Plant Pathology, Indian Agricultural Research Institute, New Delhi, 110012 India.

出版信息

Virusdisease. 2020 Dec;31(4):503-516. doi: 10.1007/s13337-020-00640-9. Epub 2020 Dec 5.

Abstract

Characterization of the subgenomic RNA (sgRNA) promoter of many plant viruses is important to understand the expression of downstream genes and also to configure their genome into a suitable virus gene-vector system. Cucumber green mottle mosaic virus (CGMMV, genus ) is one of the RNA viruses, which is extensively being exploited as the suitable gene silencing and protein expression vector. Even though, characters of the sgRNA promoters (SGPs) of CGMMV are yet to be addressed. In the present study, we predicted the SGP for the movement protein (MP) and coat protein (CP) of CGMMV. Further, we identified the key regulatory elements in the SGP regions of MP and CP, and their interactions with the core RNA dependent RNA polymerase (RdRp) domain of CGMMV was deciphered. The modeled structure of core RdRp contains two palm (1-41 aa, and 63-109 aa), one finger (42-62 aa) subdomains with three conserved RdRp motifs that played important role in binding to the SGP nucleic acids. RdRp strongly preferred the double helix form of the stem region in the stem and loop (SL) structures, and the internal bulge elements. In MP-SGP, a total of six elements was identified; of them, the affinity of binding to - 26 nt to - 17 nt site (CGCGGAAAAG) was higher through the formation of strong hydrogen bonds with LYS16, TYR17, LYS19, SER20, etc. of the motif A in the palm subdomain of RdRp. Similar strong interactions were noticed in the internal bulge (CAACUUU) located at + 33 to + 39 nt adjacent to the translation start site (TLSS) (+ 1). These could be proposed as the putative core promoter elements in MP-SGP. Likewise, total five elements were predicted within - 114 nt to + 144 nt region of CP-SGP with respect to CP-TLSS. Of them, RdRp preferred to bind at the small hairpin located at - 60 nt to - 43 nt (UUGGAGGUUUAGCCUCCA) in the upstream region, and at the complex duplex structure spanning between + 99 and + 114 nt in the downstream region, thus indicating the distribution of core promoter within - 60 nt to + 114 nt region of CP-SGP with respect to TLSS (+ 1) of the CP; whereas, the - 114 nt to + 144 nt region of CP-SGP might be necessary for the full activity of the CP-SGP. Our in silico prediction certifies the gravity of these nucleotide stretches as the RNA regulatory elements and identifies their potentiality for binding with of palm and finger sub-domain of RdRp. Identification of such elements will be helpful to anticipate the critical length of the SGPs. Our finding will not only be helpful to delineate the SGPs of CGMMV but also their subsequent application in the efficient construction of virus gene-vector for the expression of foreign protein in plant.

摘要

许多植物病毒亚基因组RNA(sgRNA)启动子的表征对于理解下游基因的表达以及将其基因组构建成合适的病毒基因载体系统都很重要。黄瓜绿斑驳花叶病毒(CGMMV,属)是RNA病毒之一,正被广泛用作合适的基因沉默和蛋白质表达载体。尽管如此,CGMMV的sgRNA启动子(SGP)的特性尚未得到研究。在本研究中,我们预测了CGMMV运动蛋白(MP)和外壳蛋白(CP)的SGP。此外,我们确定了MP和CP的SGP区域中的关键调控元件,并解析了它们与CGMMV核心RNA依赖RNA聚合酶(RdRp)结构域的相互作用。核心RdRp的模拟结构包含两个手掌亚结构域(1 - 41 aa和63 - 109 aa)、一个手指亚结构域(42 - 62 aa)以及三个保守的RdRp基序;这些基序在与SGP核酸结合中起重要作用。RdRp强烈偏好茎环(SL)结构中茎区域的双螺旋形式以及内部凸起元件。在MP - SGP中,总共鉴定出六个元件;其中,通过与RdRp手掌亚结构域中基序A的LYS16、TYR17、LYS19、SER20等形成强氢键,与 - 26 nt至 - 17 nt位点(CGCGGAAAAG)的结合亲和力更高。在紧邻翻译起始位点(TLSS)(+1)的 + 33至 + 39 nt处的内部凸起(CAACUUU)中也观察到类似的强相互作用。这些可被认为是MP - SGP中的假定核心启动子元件。同样,相对于CP - TLSS,在CP - SGP的 - 114 nt至 + 144 nt区域内共预测出五个元件。其中,RdRp倾向于结合上游区域位于 - 60 nt至 - 43 nt的小发夹结构(UUGGAGGUUUAGCCUCCA)以及下游区域跨越 + 99至 + 114 nt的复杂双链结构,这表明相对于CP的TLSS(+1),CP - SGP的核心启动子分布在 - 60 nt至 + 114 nt区域;而CP - SGP的 - 114 nt至 + 144 nt区域对于CP - SGP的完全活性可能是必需的。我们的计算机模拟预测证实了这些核苷酸序列作为RNA调控元件的重要性,并确定了它们与RdRp手掌和手指亚结构域结合的潜力。鉴定这些元件将有助于预测SGP的关键长度。我们的发现不仅有助于描绘CGMMV 的SGP,还将有助于其随后在高效构建用于在植物中表达外源蛋白的病毒基因载体中的应用。

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