CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Mechanistic insights into c-Met rs368750834 mutation and a bifunctional CAR-T strategy for serous ovarian carcinoma.
Mechanistic insights into c-Met rs368750834 mutation and a bifunctional CAR-T strategy for serous ovarian carcinoma.
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c-Met基因编码一种被称为肝细胞生长因子受体(HGFR)的蛋白,通常称为c-Met受体。该基因及其编码的受体在正常生理过程以及多种疾病尤其是癌症的发生、进展和转移中发挥关键作用。
然而,该基因第110位残基(缬氨酸变为异亮氨酸)错义突变背后的精确分子机制尚未被探索。该突变被认为会影响蛋白质稳定性;但其如何改变c-Met的三维结构、动态行为和功能特性尚不清楚。
在本研究中,我们创新性地整合高精度结构预测、基于蛋白质模型的分子动力学模拟和AI驱动的热力学稳定性分析,系统阐明第110位残基突变破坏蛋白质结构完整性、调节构象动力学并最终损害受体功能的分子机制。利用c-Met作为肿瘤相关抗原,我们开发了分泌PD-1抗体的c-Met靶向CAR-T 细胞,并在体外和体内评估了其对浆液性卵巢癌细胞系SKOV-3的细胞毒性效力。
本研究揭示,c-Met第110位突变诱导蛋白质构象重编程,使其从稳定、紧凑的结构状态转变为组织更松散且动态灵活的构象。实验证据证实,这种结构改变导致V110I突变体在卵巢癌细胞中的蛋白质表达水平显著高于野生型,从功能上证明了构象稳定性改变对蛋白质代谢的实质性影响。在确定c-Met蛋白为卵巢癌潜在治疗靶点的基础上,我们开发了能够分泌抗PD-1抗体的c-Met CAR-T 细胞。这些细胞对过表达c-Met的肿瘤细胞表现出显著增强的细胞毒性,并伴随干扰素-等关键效应细胞因子释放的增加。
该研究框架为克服浆液性卵巢癌中CAR-T 治疗反应的局限性提供了一种精确的协同治疗策略。
The c-Met gene encodes a protein known as the hepatocyte growth factor receptor (HGFR), which is frequently called the c-Met receptor. This gene and its encoded receptor play pivotal roles in normal physiological processes as well as in the initiation, progression, and metastasis of various diseases, particularly cancer.
However, the precise molecular mechanisms underlying the missense mutation at residue 110 (valine to isoleucine) within this gene remain unexplored. This mutation occurs hypothesized to impact protein stability; yet, how it alters the three-dimensional structure, dynamic behavior, and functional properties of c-Met is unclear.
In this study, we innovatively integrate high-precision structure prediction, protein model-based molecular dynamics simulations, and AI-driven thermodynamic stability analyses to systematically elucidate the molecular mechanism by which the residue 110 mutation disrupts protein structural integrity, modulates conformational dynamics, and ultimately impairs receptor function.
Utilizing c-Met as a tumor-associated antigen, we developed a PD-1 antibody-secreting c-Met-targeted CAR-T cell and evaluated its cytotoxic efficacy against the serous ovarian cancer cell line SKOV-3 both in vitro and in vivo.
This study reveals that mutation at position 110 of c-Met induces protein conformational reprogramming, transforming it from a stable, compact structural state into a more loosely organised and dynamically flexible conformation. Experimental evidence confirms that this structural alteration leads to significantly elevated protein expression levels of the V110I mutant in ovarian cancer cells compared to the wild-type, functionally demonstrating the substantive impact of altered conformational stability on protein metabolism.
Building upon the identification of c-Met protein as a potential therapeutic target in ovarian cancer, we developed c-Met CAR-T cells capable of secreting anti-PD-1 antibodies. These cells exhibited markedly enhanced cytotoxicity against tumour cells overexpressing c-Met, accompanied by increased release of key effector cytokines such as interferon- . This research framework offers a precise, synergistic therapeutic strategy to overcome limitations in CAR-T therapy response within serous ovarian carcinoma.
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