CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Molecular mechanism of specific HLA-A mRNA recognition by the RNA-binding-protein hMEX3B to promote tumor immune escape.
Molecular mechanism of specific HLA-A mRNA recognition by the RNA-binding-protein hMEX3B to promote tumor immune escape.
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免疫治疗,包括免疫检查点抑制剂和过继性细胞转移,已取得巨大进展,但由于遗传和表观遗传差异,其疗效因患者而异。人MEX3B(hMEX3B)蛋白是一种RNA结合蛋白,其N端含有两个KH结构域,C端含有一个RING结构域,具有E3泛素连接酶活性,并且对RNA降解至关重要。目前证据表明,hMEX3B参与许多重要生物学过程,包括肿瘤免疫逃逸和HLA-A调控,但hMEX3B识别的底物RNA序列及功能分子机制尚不清楚。在这里,我们首先筛选了HLA-A mRNA上优化的hMEX3B结合序列,并报道两个串联KH结构域与其底物的结合能力比单个KH结构域强一百倍。
我们通过核磁共振(NMR)系统研究了两KH结构域与其RNA底物之间的结合特征。基于这些信息和小角X射线散射(SAXS)数据,我们使用分子动力学模拟获得了KH结构域与其相应RNA复合物的结构模型。通过分析这些模型,我们注意到在KH结构域的可变环上,有两对苏氨酸和精氨酸可以完全破坏对RNA的识别,并且这种影响也在体外和体内得到了验证。
最后,我们提出了hMEX3B蛋白的功能模型,表明hMEX3B在许多生物学过程中调控其底物mRNA的降解。综上所述,我们的研究揭示了hMEX3B蛋白在肿瘤细胞免疫应答过程中如何发挥翻译抑制的关键作用,并为其他MEX3家族蛋白的分子机制和功能研究提供了思路和线索。
Immunotherapy, including immune checkpoint inhibitors and adoptive cell transfer, has obtained great progress, but their efficiencies vary among patients due to the genetic and epigenetic differences. Human MEX3B (hMEX3B) protein is an RNA-binding protein that contains two KH domains at the N-terminus and a RING domain at its C-terminus, which has the activity of E3 ubiquitin ligase and is essential for RNA degradation.
Current evidence suggests that hMEX3B is involved in many important biological processes, including tumor immune evasion and HLA-A regulation, but the sequence of substrate RNA recognized by hMEX3B and the functional molecular mechanisms are unclear.
Here, we first screened the optimized hMEX3B binding sequence on the HLA-A mRNA and reported that the two tandem KH domains can bind with their substrate one hundred times more than the individual KH domains.
We systematically investigated the binding characteristics between the two KH domains and their RNA substrates by nuclear magnetic resonance (NMR). Based on this information and the small-angle X-ray scattering (SAXS) data, we used molecular dynamics simulations to obtain structural models of KH domains in complex with their corresponding RNAs.
By analyzing the models, we noticed that on the KH domains' variable loops, there were two pairs of threonines and arginines that can disrupt the recognition of the RNA completely, and this influence had also been verified both in vitro and in vivo.
Finally, we presented a functional model of the hMEX3B protein, which indicated that hMEX3B regulated the degradation of its substrate mRNAs in many biological processes. Taken together, our research illustrated how the hMEX3B protein played a key role in translation inhibition during the immune response to tumor cells and provided an idea and a lead for the study of the molecular mechanism and function of other MEX3 family proteins.
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