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针对 MAGE-A10 的 T 细胞受体工程化改造的结构见解:提高亲和力和特异性以用于癌症免疫治疗

英文原题:Structural insights into engineering a T-cell receptor targeting MAGE-A10 with higher affinity and specificity for cancer immunotherapy.

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Structural insights into engineering a T-cell receptor targeting MAGE-A10 with higher affinity and specificity for cancer immunotherapy.

PubMed 2022/07/01(内容时间) J Immunother Cancer Q1 · IF 11.7(JCR 2025)

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研究概要

针对 MAGE-A10 的工程化 TCR 的微小改变产生了显著不同的特性。TCR 和抗原肽的构象不变性以及更占空间的 CDR 环序列可能是临床相关 TCR-pHLA 系统理想的性质,以降低结构相似的肽模拟物被 TCR 耐受的可能性。这些性质可能部分解释了为何亲和力增强的、体外筛选的 TCR 在患者中总体耐受良好。

研究思路结论见上方概要

T细胞受体(TCR)免疫疗法正成为癌症治疗中一种可行的模式,在临床试验中显示出疗效。患者的安全至关重要,因此正在采用创新的细胞工程方法来利用适应性免疫,同时控制决定抗原受体(即TCR)特异性和交叉反应性的因素。我们最近报道了一项针对黑色素瘤抗原基因(MAGE)-A10肽的TCR工程活动和选择性分析试验(X-scan)。这有助于在临床前药物评估中根据交叉反应潜力区分两种表现良好的TCR,使其中一种得以推进至T细胞免疫治疗临床试验。在此,我们展示了这些TCR的三维结构信息,重点介绍了工程改造的改进以及可能支撑差异性选择性的分子机制。

亲本和工程化TCR被纯化并结晶,或是单独结晶,或是与呈递MAGE-A10 9聚体肽GLYDGMEHL(pHLA/MAGE-A10-9)的人类白细胞抗原(HLA)-A*02:01复合物共结晶。利用X射线衍射,我们解析了四个高分辨率晶体结构,并参照先前报道的功能性结果进行了评估。

未连接的亲本 TCR 在与 pHLA/MAGE-A10-9 结合时显示出相似的互补决定区 (CDR) 环构象;TCR β 链可变域 (TRBV) 相对于 TCR α 链可变域的刚体运动有助于实现最佳 pHLA 接合。首次观察到 HLA 结合的 MAGE-A10 肽揭示了肽 Tyr3 与 Glu7 之间的链内非共价“订书钉”。亲本 TCR 的 βCDR1 中一个细微的 Glu31-Asp 突变产生了高亲和力衍生物。其 pHLA 复合物结构显示,较短的 Asp 向 pHLA 倾斜,并导致刚体 TRBV 位移,从而在肽 C 末端周围产生局部变化。与选择性较低的 TCR 进行结构比较表明,对 MAGE-A10 肽变体的差异性交叉反应最容易通过表面静电变化以及 TCR-肽界面空腔的大小和几何形状来解释。

展开英文摘要原文

T-cell receptor (TCR) immunotherapy is becoming a viable modality in cancer treatment with efficacy in clinical trials. The safety of patients is paramount, so innovative cell engineering methods are being employed to exploit adaptive immunity while controlling the factors governing antigen receptor (ie, TCR) specificity and cross-reactivity. We recently reported a TCR engineering campaign and selectivity profiling assay (X-scan) targeting a melanoma antigen gene (MAGE)-A10 peptide. This helped to distinguish between two well-performing TCRs based on cross-reactivity potential during preclinical drug evaluation, allowing one to be advanced to T-cell immunotherapeutic clinical trials. Here, we present three-dimensional structural information on those TCRs, highlighting engineering improvements and molecular mechanisms likely underpinning differential selectivity.

Parental and engineered TCRs were purified and crystallized either alone or complexed to human leucocyte antigen (HLA)-A*02:01 presenting the MAGE-A10 9-mer peptide, GLYDGMEHL (pHLA/MAGE-A10-9). Using X-ray diffraction, we solved four high-resolution crystal structures and evaluated them relative to previously reported functional results.

The unligated parental TCR displayed similar complementarity-determining region (CDR) loop conformations when bound to pHLA/MAGE-A10-9; a rigid-body movement of TCR beta chain variable domain (TRBV) relative to TCR alpha chain variable domain helped optimal pHLA engagement. This first view of an HLA-bound MAGE-A10 peptide revealed an intrachain non-covalent 'staple' between peptide Tyr3 and Glu7. A subtle Glu31-Asp mutation in βCDR1 of the parental TCR generated a high-affinity derivative. Its pHLA-complexed structure shows that the shorter Asp leans toward the pHLA with resulting rigid-body TRBV shift, creating localized changes around the peptide's C-terminus. Structural comparison with a less selective TCR indicated that differential cross-reactivity to MAGE-A10 peptide variants is most readily explained by alterations in surface electrostatics, and the size and geometry of TCR-peptide interfacial cavities.

Modest changes in engineered TCRs targeting MAGE-A10 produced significantly different properties. Conformational invariance of TCR and antigen peptide plus more space-filling CDR loop sequences may be desirable properties for clinically relevant TCR-pHLA systems to reduce the likelihood of structurally similar peptide mimics being tolerated by a TCR. Such properties may partially explain why the affinity-enhanced, in vitro-selected TCR has been generally well tolerated in patients.

论文信息

作者
Simister PC、Border EC、Vieira JF、Pumphrey NJ
单位
Adaptimmune, Abingdon, Oxfordshire, UK Philip.Simister@adaptimmune.com.United Kingdom
文献类型
非美国政府资助研究
期刊
Journal for immunotherapy of cancer2022 Jul
原文标识
PubMed 35851311 · DOI 10.1136/jitc-2022-004600