Structure and Interactions of HIV-1 gp41 CHR-NHR Reverse Hairpin Constructs Reveal Molecular Determinants of Antiviral Activity

IF 4.7 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Molecular Biology Pub Date : 2024-06-10 DOI:10.1016/j.jmb.2024.168650
Li He , Ryan McAndrew , Razvan Barbu , Grant Gifford , Cari Halacoglu , Camille Drouin-Allaire , Lindsey Weber , Line G. Kristensen , Sayan Gupta , Yan Chen , Christopher J. Petzold , Marc Allaire , Kathy H. Li , Corie Y. Ralston , Miriam Gochin
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Abstract

Engineered reverse hairpin constructs containing a partial C-heptad repeat (CHR) sequence followed by a short loop and full-length N-heptad repeat (NHR) were previously shown to form trimers in solution and to be nanomolar inhibitors of HIV-1 Env mediated fusion. Their target is the in situ gp41 fusion intermediate, and they have similar potency to other previously reported NHR trimers. However, their design implies that the NHR is partially covered by CHR, which would be expected to limit potency. An exposed hydrophobic pocket in the folded structure may be sufficient to confer the observed potency, or they may exist in a partially unfolded state exposing full length NHR. Here we examined their structure by crystallography, CD and fluorescence, establishing that the proteins are folded hairpins both in crystal form and in solution. We examined unfolding in the milieu of the fusion reaction by conducting experiments in the presence of a membrane mimetic solvent and by engineering a disulfide bond into the structure to prevent partial unfolding. We further examined the role of the hydrophobic pocket, using a hairpin-small molecule adduct that occluded the pocket, as confirmed by X-ray footprinting. The results demonstrated that the NHR region nominally covered by CHR in the engineered constructs and the hydrophobic pocket region that is exposed by design were both essential for nanomolar potency and that interaction with membrane is likely to play a role in promoting the required inhibitor structure. The design concepts can be applied to other Class 1 viral fusion proteins.

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HIV-1 gp41 CHR-NHR 反向发夹构建体的结构和相互作用揭示了抗病毒活性的分子决定因素。
以前的研究表明,含有部分 C-heptad 重复序列(CHR)和一个短环及全长 N-heptad 重复序列(NHR)的工程化反向发夹构建体在溶液中形成三聚体,是 HIV-1 Env 介导的融合的纳摩尔抑制剂。它们的靶标是原位 gp41 融合中间体,其效力与之前报道的其他 NHR 三聚体相似。不过,它们的设计意味着 NHR 部分被 CHR 覆盖,这预计会限制其效力。折叠结构中暴露的疏水口袋可能足以赋予观察到的效力,或者它们可能以部分展开的状态存在,暴露出全长的 NHR。在这里,我们通过晶体学、CD 和荧光法研究了它们的结构,确定了这些蛋白质在晶体和溶液中都是折叠的发夹。我们在膜模拟溶剂的存在下进行了实验,并在结构上设计了一个二硫键以防止部分解折,从而检验了在融合反应环境中的解折情况。我们使用发夹式小分子加合物进一步研究了疏水口袋的作用,X-射线足迹分析证实了这种加合物能堵塞疏水口袋。结果表明,在工程构建物中,名义上由 CHR 覆盖的 NHR 区域和通过设计暴露出来的疏水口袋区域对于纳摩尔效力都是至关重要的,而且与膜的相互作用很可能在促进所需抑制剂结构方面发挥作用。设计概念可应用于其他 1 类病毒融合蛋白。
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来源期刊
Journal of Molecular Biology
Journal of Molecular Biology 生物-生化与分子生物学
CiteScore
11.30
自引率
1.80%
发文量
412
审稿时长
28 days
期刊介绍: Journal of Molecular Biology (JMB) provides high quality, comprehensive and broad coverage in all areas of molecular biology. The journal publishes original scientific research papers that provide mechanistic and functional insights and report a significant advance to the field. The journal encourages the submission of multidisciplinary studies that use complementary experimental and computational approaches to address challenging biological questions. Research areas include but are not limited to: Biomolecular interactions, signaling networks, systems biology; Cell cycle, cell growth, cell differentiation; Cell death, autophagy; Cell signaling and regulation; Chemical biology; Computational biology, in combination with experimental studies; DNA replication, repair, and recombination; Development, regenerative biology, mechanistic and functional studies of stem cells; Epigenetics, chromatin structure and function; Gene expression; Membrane processes, cell surface proteins and cell-cell interactions; Methodological advances, both experimental and theoretical, including databases; Microbiology, virology, and interactions with the host or environment; Microbiota mechanistic and functional studies; Nuclear organization; Post-translational modifications, proteomics; Processing and function of biologically important macromolecules and complexes; Molecular basis of disease; RNA processing, structure and functions of non-coding RNAs, transcription; Sorting, spatiotemporal organization, trafficking; Structural biology; Synthetic biology; Translation, protein folding, chaperones, protein degradation and quality control.
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