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M13主要外壳蛋白及其跨膜肽段在DNA模板上的重组。

Reconstitution of the M13 major coat protein and its transmembrane peptide segment on a DNA template.

作者信息

Li Weijun, Suez Itai, Szoka Francis C

机构信息

Department of Biopharmaceutical Sciences, School of Pharmacy, University of California at San Francisco, San Francisco, California 94143-0446, USA.

出版信息

Biochemistry. 2007 Jul 24;46(29):8579-91. doi: 10.1021/bi700165m. Epub 2007 Jun 27.

Abstract

The major coat protein (pVIII) of M13 phage is of particular interest to structure biologists since it functions in two different environments: during assembly and infection, it interacts with the bacterial lipid bilayer, but in the phage particle, it exists as a protein capsid to protect a closed circular, single-stranded DNA (ssDNA) genome. We synthesized pVIII and a 32mer peptide consisting of the transmembrane and DNA binding domains of pVIII. The 32mer peptide displays typically an alpha-helical structure in trifluroethanol or 0.2 M octylglucoside solutions similar to pVIII. Attachment of polyethylene glycol (PEG) onto the N-terminal of 32mer increased the alpha-helical content and the peptide thermal stability. The peptides were reconstituted with DNA from a detergent solution into a discrete (<200 nm diameter) nanoparticle on both linear double-stranded DNA (dsDNA) and linear ssDNA, where the linear dsDNA is used to mimic the closed circular, ssDNA in M13 phage, upon removal of the detergent. The peptide/DNA particle was an irregular and not a rod-shaped aggregate when imaged by atomic force microscopy. All three peptides underwent a structural transition from alpha-helix to beta-sheet within approximately 1 h of DNA addition to the detergent solution. There was a further decrease in alpha-helical content when the detergent was removed. The presence of anionic (such as octanoic acid) or cationic (such as 1,5-diaminopentane) molecules in the detergent mixture resulted in the retention of the peptide alpha-helical structure. Thus the interaction between the peptide and DNA in octylglucoside is driven by electrostatic forces, and peptide-peptide interactions are responsible for the transition from alpha-helix to beta-sheet conformation in pVIII and its analogues. These results suggest that the assembly process to form a rod-shaped phage is a delicate balance to maintain pVIII in an alpha-helical conformation that requires either an oriented bilayer to solubilize pVIII prior to interaction with the DNA or other phage proteins to nucleate pVIII in the alpha-helical conformation on the DNA.

摘要

M13噬菌体的主要外壳蛋白(pVIII)引起了结构生物学家的特别关注,因为它在两种不同的环境中发挥作用:在组装和感染过程中,它与细菌脂质双层相互作用,但在噬菌体颗粒中,它以蛋白质衣壳的形式存在,以保护封闭的环状单链DNA(ssDNA)基因组。我们合成了pVIII和一种由pVIII的跨膜和DNA结合结构域组成的32聚体肽。在三氟乙醇或0.2M辛基葡糖苷溶液中,32聚体肽通常呈现出与pVIII相似的α-螺旋结构。将聚乙二醇(PEG)连接到32聚体的N端增加了α-螺旋含量和肽的热稳定性。在去除去污剂后,这些肽与来自去污剂溶液的DNA一起重构成离散的(直径<200nm)纳米颗粒,该纳米颗粒可作用于线性双链DNA(dsDNA)和线性ssDNA,其中线性dsDNA用于模拟M13噬菌体中的封闭环状ssDNA。当通过原子力显微镜成像时,肽/DNA颗粒是不规则的,而不是棒状聚集体。在将DNA添加到去污剂溶液中约1小时内,所有三种肽都经历了从α-螺旋到β-折叠的结构转变。去除去污剂后,α-螺旋含量进一步降低。去污剂混合物中存在阴离子(如辛酸)或阳离子(如1,5-二氨基戊烷)分子会导致肽的α-螺旋结构得以保留。因此,辛基葡糖苷中肽与DNA之间的相互作用是由静电力驱动的,而肽-肽相互作用则导致pVIII及其类似物从α-螺旋构象转变为β-折叠构象。这些结果表明,形成棒状噬菌体的组装过程是一种微妙的平衡,以将pVIII维持在α-螺旋构象中,这需要在与DNA或其他噬菌体蛋白相互作用之前有一个定向双层来溶解pVIII,从而使pVIII以α-螺旋构象在DNA上成核。

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