Gaillard Vanessa, Galloux Marie, Garcin Dominique, Eléouët Jean-François, Le Goffic Ronan, Larcher Thibaut, Rameix-Welti Marie-Anne, Boukadiri Abdelhak, Héritier Julien, Segura Jean-Manuel, Baechler Elodie, Arrell Miriam, Mottet-Osman Geneviève, Nyanguile Origène
HES-SO Valais, Sion, Switzerland.
VIM, INRA, Université Paris-Saclay, Jouy-en-Josas, France.
Antimicrob Agents Chemother. 2017 Mar 24;61(4). doi: 10.1128/AAC.02241-16. Print 2017 Apr.
Synthetic peptides derived from the heptad repeat (HR) of fusion (F) proteins can be used as dominant negative inhibitors to inhibit the fusion mechanism of class I viral F proteins. Here, we have performed a stapled-peptide scan across the HR2 domain of the respiratory syncytial virus (RSV) F protein with the aim to identify a minimal domain capable of disrupting the formation of the postfusion six-helix bundle required for viral cell entry. Constraining the peptides with a single staple was not sufficient to inhibit RSV infection. However, the insertion of double staples led to the identification of novel short stapled peptides that display nanomolar potency in HEp-2 cells and are exceptionally robust to proteolytic degradation. By replacing each amino acid of the peptides by an alanine, we found that the substitution of residues 506 to 509, located in a patch of polar contacts between HR2 and HR1, severely affected inhibition. Finally, we show that intranasal delivery of the most potent peptide to BALB/c mice significantly decreased RSV infection in upper and lower respiratory tracts. The discovery of this minimal HR2 sequence as a means for inhibition of RSV infection provides the basis for further medicinal chemistry efforts toward developing RSV fusion antivirals.
源自融合(F)蛋白七肽重复序列(HR)的合成肽可作为显性负抑制剂,抑制I类病毒F蛋白的融合机制。在此,我们对呼吸道合胞病毒(RSV)F蛋白的HR2结构域进行了订书肽扫描,目的是确定一个能够破坏病毒进入细胞所需的融合后六螺旋束形成的最小结构域。用单个订书钉约束肽不足以抑制RSV感染。然而,插入双订书钉导致鉴定出新型短订书肽,这些肽在HEp-2细胞中表现出纳摩尔效力,并且对蛋白水解降解具有极强的抗性。通过用丙氨酸替换肽的每个氨基酸,我们发现位于HR2和HR1之间极性接触区域的506至509位残基的替换严重影响抑制作用。最后,我们表明将最有效的肽经鼻递送至BALB/c小鼠可显著降低上、下呼吸道中的RSV感染。发现这个最小的HR2序列作为抑制RSV感染的手段,为进一步开展药物化学研究以开发RSV融合抗病毒药物提供了基础。