• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

非洲锥虫变体表面糖蛋白的结构分类。

A structural classification of the variant surface glycoproteins of the African trypanosome.

机构信息

Division of Structural Biology of Infection and Immunity, German Cancer Research Center, Heidelberg, Germany.

Division of Immune Diversity, German Cancer Research Center, Heidelberg, Germany.

出版信息

PLoS Negl Trop Dis. 2023 Sep 1;17(9):e0011621. doi: 10.1371/journal.pntd.0011621. eCollection 2023 Sep.

DOI:10.1371/journal.pntd.0011621
PMID:37656766
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10501684/
Abstract

Long-term immune evasion by the African trypanosome is achieved through repetitive cycles of surface protein replacement with antigenically distinct versions of the dense Variant Surface Glycoprotein (VSG) coat. Thousands of VSG genes and pseudo-genes exist in the parasite genome that, together with genetic recombination mechanisms, allow for essentially unlimited immune escape from the adaptive immune system of the host. The diversity space of the "VSGnome" at the protein level was thought to be limited to a few related folds whose structures were determined more than 30 years ago. However, recent progress has shown that the VSGs possess significantly more architectural variation than had been appreciated. Here we combine experimental X-ray crystallography (presenting structures of N-terminal domains of coat proteins VSG11, VSG21, VSG545, VSG558, and VSG615) with deep-learning prediction using Alphafold to produce models of hundreds of VSG proteins. We classify the VSGnome into groups based on protein architecture and oligomerization state, contextualize recent bioinformatics clustering schemes, and extensively map VSG-diversity space. We demonstrate that in addition to the structural variability and post-translational modifications observed thus far, VSGs are also characterized by variations in oligomerization state and possess inherent flexibility and alternative conformations, lending additional variability to what is exposed to the immune system. Finally, these additional experimental structures and the hundreds of Alphafold predictions confirm that the molecular surfaces of the VSGs remain distinct from variant to variant, supporting the hypothesis that protein surface diversity is central to the process of antigenic variation used by this organism during infection.

摘要

通过重复的表面蛋白替换过程,非洲锥虫实现了长期的免疫逃避,这些表面蛋白具有与密集变异表面糖蛋白 (VSG) 外壳不同的抗原版本。寄生虫基因组中存在数千个 VSG 基因和假基因,加上遗传重组机制,允许寄生虫从宿主的适应性免疫系统中进行实质上无限的免疫逃避。在蛋白质水平上,“VSGnome”的多样性空间被认为仅限于少数相关折叠,这些结构早在 30 多年前就已经确定。然而,最近的进展表明,VSGs 具有比以前认为的更多的结构变化。在这里,我们将实验 X 射线晶体学(呈现出 N 端结构域的结构)与使用 Alphafold 的深度学习预测相结合,生成了数百种 VSG 蛋白的模型。我们根据蛋白质结构和寡聚状态对 VSGnome 进行分类,将最近的生物信息学聚类方案置于上下文中,并广泛映射 VSG 多样性空间。我们证明,除了迄今为止观察到的结构可变性和翻译后修饰外,VSGs 还具有寡聚状态的变化,并具有内在的灵活性和替代构象,从而为暴露于免疫系统的结构赋予了额外的可变性。最后,这些额外的实验结构和数百个 Alphafold 预测证实,VSGs 的分子表面在变体之间仍然存在差异,支持了这样的假设,即蛋白质表面多样性是该生物体在感染过程中用于抗原变异的核心。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/04ee188130c8/pntd.0011621.g006.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/2ca706427856/pntd.0011621.g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/331978557683/pntd.0011621.g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/527324e6f5b2/pntd.0011621.g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/79ea6a467740/pntd.0011621.g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/d1fb25fe98bf/pntd.0011621.g005.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/04ee188130c8/pntd.0011621.g006.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/2ca706427856/pntd.0011621.g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/331978557683/pntd.0011621.g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/527324e6f5b2/pntd.0011621.g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/79ea6a467740/pntd.0011621.g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/d1fb25fe98bf/pntd.0011621.g005.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96e2/10501684/04ee188130c8/pntd.0011621.g006.jpg

相似文献

1
A structural classification of the variant surface glycoproteins of the African trypanosome.非洲锥虫变体表面糖蛋白的结构分类。
PLoS Negl Trop Dis. 2023 Sep 1;17(9):e0011621. doi: 10.1371/journal.pntd.0011621. eCollection 2023 Sep.
2
Capturing the variant surface glycoprotein repertoire (the VSGnome) of Trypanosoma brucei Lister 427.捕获布氏锥虫李斯特427株的可变表面糖蛋白库(VSG基因库)。
Mol Biochem Parasitol. 2014 Jun;195(1):59-73. doi: 10.1016/j.molbiopara.2014.06.004. Epub 2014 Jun 30.
3
Immunodominant surface epitopes power immune evasion in the African trypanosome.免疫显性表面表位助力非洲锥虫的免疫逃避。
Cell Rep. 2023 Mar 28;42(3):112262. doi: 10.1016/j.celrep.2023.112262. Epub 2023 Mar 20.
4
Mosaic VSGs and the scale of Trypanosoma brucei antigenic variation.镶嵌型 VSG 与布氏锥虫抗原变异的规模。
PLoS Pathog. 2013;9(7):e1003502. doi: 10.1371/journal.ppat.1003502. Epub 2013 Jul 11.
5
Evolution of Antigenic Variation in African Trypanosomes: Variant Surface Glycoprotein Expression, Structure, and Function.非洲锥虫抗原变异的进化:变异表面糖蛋白的表达、结构和功能。
Bioessays. 2018 Dec;40(12):e1800181. doi: 10.1002/bies.201800181. Epub 2018 Oct 29.
6
VSGs Expressed during Natural T. b. gambiense Infection Exhibit Extensive Sequence Divergence and a Subspecies-Specific Bias towards Type B N-Terminal Domains.在自然感染 T.b. 冈比亚锥虫期间表达的 VSGs 表现出广泛的序列差异,并且对 B 型 N 端结构域具有亚种特异性偏向。
mBio. 2022 Dec 20;13(6):e0255322. doi: 10.1128/mbio.02553-22. Epub 2022 Nov 10.
7
African trypanosomes evade immune clearance by O-glycosylation of the VSG surface coat.非洲锥虫通过 VSG 表面被 O-糖基化逃避免疫清除。
Nat Microbiol. 2018 Aug;3(8):932-938. doi: 10.1038/s41564-018-0187-6. Epub 2018 Jul 9.
8
Antigenic diversity is generated by distinct evolutionary mechanisms in African trypanosome species.抗原多样性是由不同的进化机制在非洲锥虫物种中产生的。
Proc Natl Acad Sci U S A. 2012 Feb 28;109(9):3416-21. doi: 10.1073/pnas.1117313109. Epub 2012 Feb 13.
9
Trypanosomes expressing a mosaic variant surface glycoprotein coat escape early detection by the immune system.表达嵌合型可变表面糖蛋白外壳的锥虫能够逃避免疫系统的早期检测。
Infect Immun. 2005 May;73(5):2690-7. doi: 10.1128/IAI.73.5.2690-2697.2005.
10
DNA Recombination Strategies During Antigenic Variation in the African Trypanosome.在非洲锥虫抗原变异过程中的 DNA 重组策略。
Microbiol Spectr. 2015 Apr;3(2):MDNA3-0016-2014. doi: 10.1128/microbiolspec.MDNA3-0016-2014.

引用本文的文献

1
Structure-function analysis defines the minimal functional C-terminal domain of the variant surface glycoprotein of Trypanosomabrucei.结构-功能分析确定了布氏锥虫可变表面糖蛋白最小的功能性C末端结构域。
J Biol Chem. 2025 May 22;301(7):110260. doi: 10.1016/j.jbc.2025.110260.
2
DNA damage drives antigen diversification through mosaic Variant Surface Glycoprotein (VSG) formation in .DNA损伤通过在……中形成嵌合变异表面糖蛋白(VSG)驱动抗原多样化。
bioRxiv. 2024 Aug 30:2024.03.22.582209. doi: 10.1101/2024.03.22.582209.
3
Sorting of GPI-anchored proteins at the trypanosome surface is independent of GPI insertion signals.

本文引用的文献

1
Progress at protein structure prediction, as seen in CASP15.在 CASP15 中看到的蛋白质结构预测的进展。
Curr Opin Struct Biol. 2023 Jun;80:102594. doi: 10.1016/j.sbi.2023.102594. Epub 2023 Apr 14.
2
The X-ray crystallography phase problem solved thanks to AlphaFold and RoseTTAFold models: a case-study report. Corrigendum.借助AlphaFold和RoseTTAFold模型解决的X射线晶体学相位问题:案例研究报告。勘误
Acta Crystallogr D Struct Biol. 2023 Apr 1;79(Pt 4):353. doi: 10.1107/S2059798323002826. Epub 2023 Mar 30.
3
Immunodominant surface epitopes power immune evasion in the African trypanosome.
锥虫表面糖基磷脂酰肌醇(GPI)锚定蛋白的分选独立于GPI插入信号。
Cell Surf. 2024 Jul 6;12:100131. doi: 10.1016/j.tcsw.2024.100131. eCollection 2024 Dec.
4
The release of host-derived antibodies bound to the variant surface glycoprotein (VSG) of cannot be explained by pH-dependent conformational changes of the VSG dimer.与锥虫可变表面糖蛋白(VSG)结合的宿主衍生抗体的释放不能用VSG二聚体的pH依赖性构象变化来解释。
Open Res Eur. 2024 Apr 24;4:87. doi: 10.12688/openreseurope.16783.1. eCollection 2024.
5
Loss to gain: pseudogenes in microorganisms, focusing on eubacteria, and their biological significance.得失之间:微生物中的假基因,聚焦于真细菌及其生物学意义。
Appl Microbiol Biotechnol. 2024 May 8;108(1):328. doi: 10.1007/s00253-023-12971-w.
6
Beyond the VSG layer: Exploring the role of intrinsic disorder in the invariant surface glycoproteins of African trypanosomes.超越 VSG 层:探索内在无序在非洲锥虫不变表面糖蛋白中的作用。
PLoS Pathog. 2024 Apr 22;20(4):e1012186. doi: 10.1371/journal.ppat.1012186. eCollection 2024 Apr.
免疫显性表面表位助力非洲锥虫的免疫逃避。
Cell Rep. 2023 Mar 28;42(3):112262. doi: 10.1016/j.celrep.2023.112262. Epub 2023 Mar 20.
4
Evolutionary-scale prediction of atomic-level protein structure with a language model.用语言模型进行原子级蛋白质结构的进化尺度预测。
Science. 2023 Mar 17;379(6637):1123-1130. doi: 10.1126/science.ade2574. Epub 2023 Mar 16.
5
Accelerating crystal structure determination with iterative AlphaFold prediction.利用迭代 AlphaFold 预测加速晶体结构测定。
Acta Crystallogr D Struct Biol. 2023 Mar 1;79(Pt 3):234-244. doi: 10.1107/S205979832300102X. Epub 2023 Feb 27.
6
Structural similarities between the metacyclic and bloodstream form variant surface glycoproteins of the African trypanosome.间日疟原虫循环和血流形式变异表面糖蛋白的结构相似性。
PLoS Negl Trop Dis. 2023 Feb 13;17(2):e0011093. doi: 10.1371/journal.pntd.0011093. eCollection 2023 Feb.
7
ModelCraft: an advanced automated model-building pipeline using Buccaneer.ModelCraft:一个使用 Buccaneer 的高级自动化模型构建流水线。
Acta Crystallogr D Struct Biol. 2022 Sep 1;78(Pt 9):1090-1098. doi: 10.1107/S2059798322007732. Epub 2022 Aug 25.
8
ColabFold: making protein folding accessible to all.ColabFold:让蛋白质折叠变得人人可用。
Nat Methods. 2022 Jun;19(6):679-682. doi: 10.1038/s41592-022-01488-1. Epub 2022 May 30.
9
Dali server: structural unification of protein families.达尔服务器:蛋白质家族的结构统一。
Nucleic Acids Res. 2022 Jul 5;50(W1):W210-W215. doi: 10.1093/nar/gkac387.
10
Implications of AlphaFold2 for crystallographic phasing by molecular replacement.AlphaFold2 对分子置换晶体学相位的影响。
Acta Crystallogr D Struct Biol. 2022 Jan 1;78(Pt 1):1-13. doi: 10.1107/S2059798321012122.