Division of Chemical Biology, Department of Biology and Biological Engineering, Chalmers University of Technology, Gothenburg, SE 412 96, Sweden.
Laboratoire de Bioimagerie et Pathologies, UMR 7021 CNRS, Université de Strasbourg, Faculté de Pharmacie, Illkirch, F 67401, France.
Q Rev Biophys. 2019 Jan;52:e2. doi: 10.1017/S0033583518000124.
The nucleocapsid protein NC is a crucial component in the human immunodeficiency virus type 1 life cycle. It functions both in its processed mature form and as part of the polyprotein Gag that plays a key role in the formation of new viruses. NC can protect nucleic acids (NAs) from degradation by compacting them to a dense coil. Moreover, through its NA chaperone activity, NC can also promote the most stable conformation of NAs. Here, we explore the balance between these activities for NC and Gag by confining DNA-protein complexes in nanochannels. The chaperone activity is visualized as concatemerization and circularization of long DNA via annealing of short single-stranded DNA overhangs. The first ten amino acids of NC are important for the chaperone activity that is almost completely absent for Gag. Gag condenses DNA more efficiently than mature NC, suggesting that additional residues of Gag are involved. Importantly, this is the first single DNA molecule study of full-length Gag and we reveal important differences to the truncated Δ-p6 Gag that has been used before. In addition, the study also highlights how nanochannels can be used to study reactions on ends of long single DNA molecules, which is not trivial with competing single DNA molecule techniques.
核衣壳蛋白 NC 是人类免疫缺陷病毒 1 型生命周期中的关键组成部分。它既以加工成熟的形式发挥作用,也作为多蛋白 Gag 的一部分发挥作用,Gag 在形成新病毒方面起着关键作用。NC 可以通过将核酸 (NAs) 压缩成致密的螺旋来保护它们免受降解。此外,通过其 NA 伴侣活性,NC 还可以促进 NAs 最稳定的构象。在这里,我们通过将 DNA-蛋白复合物限制在纳米通道中来探索 NC 和 Gag 之间的这种平衡。通过退火短单链 DNA 突出端,将长 DNA 连接形成串联体和环化,从而可视化伴侣活性。NC 的前十个氨基酸对于伴侣活性很重要,而 Gag 几乎完全没有这种活性。Gag 比成熟的 NC 更有效地浓缩 DNA,这表明 Gag 中的其他残基也参与其中。重要的是,这是对全长 Gag 的第一项单 DNA 分子研究,我们揭示了与之前使用的截断 Δ-p6 Gag 之间的重要差异。此外,该研究还强调了纳米通道如何可用于研究长单 DNA 分子末端的反应,这对于具有竞争的单 DNA 分子技术来说并非易事。