Suppr超能文献

高通量蛋白质工程改善了可溶性HIV-1包膜糖蛋白SOSIP三聚体的抗原性和稳定性。

High-Throughput Protein Engineering Improves the Antigenicity and Stability of Soluble HIV-1 Envelope Glycoprotein SOSIP Trimers.

作者信息

Sullivan Jonathan T, Sulli Chidananda, Nilo Alberto, Yasmeen Anila, Ozorowski Gabriel, Sanders Rogier W, Ward Andrew B, Klasse P J, Moore John P, Doranz Benjamin J

机构信息

Integral Molecular, Philadelphia, Pennsylvania, USA.

Department of Microbiology and Immunology, Weill Medical College of Cornell University, New York, New York, USA.

出版信息

J Virol. 2017 Oct 27;91(22). doi: 10.1128/JVI.00862-17. Print 2017 Nov 15.

Abstract

Soluble envelope glycoprotein (Env) trimers (SOSIP.664 gp140) are attractive HIV-1 vaccine candidates, with structures that mimic the native membrane-bound Env spike (gp160). Since engineering trimers can be limited by the difficulty of rationally predicting beneficial mutations, here we used a more comprehensive mutagenesis approach with the goal of identifying trimer variants with improved antigenic and stability properties. We created 341 cysteine pairs at predicted points of stabilization throughout gp140, 149 proline residue substitutions at every residue of the gp41 ectodomain, and 362 space-filling residue substitutions at every hydrophobic and aromatic residue in gp140. The parental protein target, the clade B strain B41 SOSIP.664 gp140, does not bind the broadly neutralizing antibody PGT151 and so was used here to identify improved variants that also provide insight into the structural basis for Env antigenicity. Each of the 852 mutants was expressed in human cells and screened for antigenicity using four different monoclonal antibodies (MAbs), including PGT151. We identified 29 trimer variants with antigenic improvements derived from each of the three mutagenesis strategies. We selected four variants (Q203F, T538F, I548F, and M629P) for more comprehensive biochemical, structural, and antigenicity analyses. The T538F substitution had the most beneficial effect overall, including restoration of the PGT151 epitope. The improved B41 SOSIP.664 trimer variants identified here may be useful for vaccine and structural studies. Soluble Env trimers have become attractive HIV-1 vaccine candidates, but the prototype designs are capable of further improvement through protein engineering. Using a high-throughput screening technology (shotgun mutagenesis) to create and evaluate 852 variants, we were able to identify sequence changes that were beneficial to the antigenicity and stability of soluble trimers based on the clade B B41 gene. The strategies described here may be useful for identifying a wider range of antigenically and structurally improved soluble trimers based on multiple genotypes for use in programs intended to create a broadly protective HIV-1 vaccine.

摘要

可溶性包膜糖蛋白(Env)三聚体(SOSIP.664 gp140)是颇具吸引力的HIV-1疫苗候选物,其结构模拟天然膜结合Env刺突(gp160)。由于工程化三聚体可能受合理预测有益突变的难度限制,因此我们在此采用了更全面的诱变方法,目标是鉴定出具有改善的抗原性和稳定性特性的三聚体变体。我们在gp140中预测的稳定位点处创建了341对半胱氨酸对,在gp41胞外域的每个残基处进行了149个脯氨酸残基替换,并在gp140的每个疏水和芳香族残基处进行了362个空间填充残基替换。亲本蛋白靶点,即B亚型毒株B41 SOSIP.664 gp140,不结合广泛中和抗体PGT151,因此在此用于鉴定改进的变体,这些变体也能深入了解Env抗原性的结构基础。852个突变体中的每一个都在人细胞中表达,并使用四种不同的单克隆抗体(MAb)(包括PGT151)进行抗原性筛选。我们从三种诱变策略中各鉴定出29个具有抗原性改善的三聚体变体。我们选择了四个变体(Q203F、T538F、I548F和M629P)进行更全面的生化、结构和抗原性分析。总体而言,T538F替换产生的有益效果最为显著,包括恢复PGT151表位。此处鉴定出的改进型B41 SOSIP.664三聚体变体可能对疫苗和结构研究有用。可溶性Env三聚体已成为颇具吸引力的HIV-1疫苗候选物,但原型设计能够通过蛋白质工程进一步改进。利用高通量筛选技术(鸟枪诱变)创建并评估852个变体,我们能够基于B亚型B41基因鉴定出对可溶性三聚体的抗原性和稳定性有益的序列变化。此处描述的策略可能有助于基于多种基因型鉴定出范围更广的抗原性和结构上得到改善的可溶性三聚体,用于旨在创建具有广泛保护作用的HIV-1疫苗的项目。

相似文献

2
A native-like SOSIP.664 trimer based on an HIV-1 subtype B env gene.
J Virol. 2015 Mar;89(6):3380-95. doi: 10.1128/JVI.03473-14. Epub 2015 Jan 14.
3
Effects of Adjuvants on HIV-1 Envelope Glycoprotein SOSIP Trimers .
J Virol. 2018 Jun 13;92(13). doi: 10.1128/JVI.00381-18. Print 2018 Jul 1.
5
Single-Chain Soluble BG505.SOSIP gp140 Trimers as Structural and Antigenic Mimics of Mature Closed HIV-1 Env.
J Virol. 2015 May;89(10):5318-29. doi: 10.1128/JVI.03451-14. Epub 2015 Mar 4.
6
Comparison of Uncleaved and Mature Human Immunodeficiency Virus Membrane Envelope Glycoprotein Trimers.
J Virol. 2018 May 29;92(12). doi: 10.1128/JVI.00277-18. Print 2018 Jun 15.
9
Epitope-Independent Purification of Native-Like Envelope Trimers from Diverse HIV-1 Isolates.
J Virol. 2016 Sep 29;90(20):9471-82. doi: 10.1128/JVI.01351-16. Print 2016 Oct 15.

引用本文的文献

1
Biomedical Interventions for HIV Prevention and Control: Beyond Vaccination.
Viruses. 2025 May 26;17(6):756. doi: 10.3390/v17060756.
2
Signal peptide exchange alters HIV-1 envelope antigenicity and immunogenicity.
Front Immunol. 2024 Sep 24;15:1476924. doi: 10.3389/fimmu.2024.1476924. eCollection 2024.
3
Proscan: a structure-based proline design web server.
Nucleic Acids Res. 2024 Jul 5;52(W1):W280-W286. doi: 10.1093/nar/gkae408.
4
Protein Stability: Enhancement and Measurement.
Methods Mol Biol. 2023;2699:369-419. doi: 10.1007/978-1-0716-3362-5_18.
5
A united model for diagnosing pulmonary tuberculosis with random forest and artificial neural network.
Front Genet. 2023 Mar 9;14:1094099. doi: 10.3389/fgene.2023.1094099. eCollection 2023.
7
Sites of vulnerability in HCV E1E2 identified by comprehensive functional screening.
Cell Rep. 2022 May 24;39(8):110859. doi: 10.1016/j.celrep.2022.110859.
9
Convergent HIV-1 Evolution upon Targeted Destabilization of the gp120-gp41 Interface.
J Virol. 2021 Nov 23;95(24):e0053221. doi: 10.1128/JVI.00532-21. Epub 2021 Sep 29.
10
Neutralizing Antibodies Induced by First-Generation gp41-Stabilized HIV-1 Envelope Trimers and Nanoparticles.
mBio. 2021 Jun 29;12(3):e0042921. doi: 10.1128/mBio.00429-21. Epub 2021 Jun 22.

本文引用的文献

3
The HIV-1 envelope glycoprotein structure: nailing down a moving target.
Immunol Rev. 2017 Jan;275(1):21-32. doi: 10.1111/imr.12507.
4
Native-like Env trimers as a platform for HIV-1 vaccine design.
Immunol Rev. 2017 Jan;275(1):161-182. doi: 10.1111/imr.12481.
5
Sequential and Simultaneous Immunization of Rabbits with HIV-1 Envelope Glycoprotein SOSIP.664 Trimers from Clades A, B and C.
PLoS Pathog. 2016 Sep 14;12(9):e1005864. doi: 10.1371/journal.ppat.1005864. eCollection 2016 Sep.
7
Cryo-EM structure of a native, fully glycosylated, cleaved HIV-1 envelope trimer.
Science. 2016 Mar 4;351(6277):1043-8. doi: 10.1126/science.aad2450.
8
HIV-1 Envelope Trimer Design and Immunization Strategies To Induce Broadly Neutralizing Antibodies.
Trends Immunol. 2016 Mar;37(3):221-232. doi: 10.1016/j.it.2016.01.007. Epub 2016 Feb 9.

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验