Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, GA, USA.
Parker H. Petit Institute for Bioengineering and Biosciences, Georgia Institute of Technology, Atlanta, GA, USA.
Nat Commun. 2022 Nov 17;13(1):7055. doi: 10.1038/s41467-022-34587-w.
Antigen recognition by the T cell receptor (TCR) of CD4 T cells can be greatly enhanced by the coreceptor CD4. Yet, understanding of the molecular mechanism is hindered by the ultra-low affinity of CD4 binding to class-II peptide-major histocompatibility complexes (pMHC). Here we show, using two-dimensional (2D) mechanical-based assays, that the affinity of CD4-pMHC interaction is 3-4 logs lower than that of cognate TCR-pMHC interactions, and it is more susceptible to increased dissociation by forces (slip bond). In contrast, CD4 binds TCR-pre-bound pMHC at 3-6 logs higher affinity, forming TCR-pMHC-CD4 tri-molecular bonds that are prolonged by force (catch bond), and modulated by protein mobility on the cell membrane, indicating profound TCR-CD4 cooperativity. Consistent with a tri-crystal structure, using DNA origami as a molecular ruler to titrate spacing between TCR and CD4 we show that 7-nm proximity optimizes TCR-pMHC-CD4 tri-molecular bond formation with pMHC. Our results thus provide deep mechanistic insight into CD4 enhancement of TCR antigen recognition.
CD4 T 细胞的 T 细胞受体 (TCR) 通过共受体 CD4 可大大增强对抗原的识别。然而,由于 CD4 与 II 类肽-主要组织相容性复合物 (pMHC) 的超低亲和力,对其分子机制的理解受到阻碍。在这里,我们使用二维(2D)基于机械的测定法表明,CD4-pMHC 相互作用的亲和力比同源 TCR-pMHC 相互作用低 3-4 个对数,并且更容易受到力的增加而解离(滑动键)。相比之下,CD4 以高 3-6 个对数的亲和力结合 TCR 预结合的 pMHC,形成 TCR-pMHC-CD4 三分子键,该键通过力(捕获键)延长,并受细胞膜上蛋白质流动性的调节,表明 TCR-CD4 之间存在深刻的协同作用。与三聚体晶体结构一致,我们使用 DNA 折纸作为分子标尺来滴定 TCR 和 CD4 之间的间距,结果表明 7nm 的接近度优化了 pMHC 上 TCR-pMHC-CD4 三分子键的形成。因此,我们的研究结果为深入了解 CD4 增强 TCR 抗原识别提供了深刻的机制见解。