RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:LIM domain only 7: a novel driver of immune evasion through regulatory T cell differentiation and chemotaxis in pancreatic ductal adenocarcinoma.
LIM domain only 7: a novel driver of immune evasion through regulatory T cell differentiation and chemotaxis in pancreatic ductal adenocarcinoma.
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随着基因组学和免疫学的进步,免疫治疗已成为肿瘤治疗的革命性策略。然而,胰腺导管腺癌(PDAC)作为一种免疫“冷”肿瘤,对免疫治疗的反应性有限。
本研究旨在满足揭示PDAC免疫微环境异质性并确定驱动免疫逃逸的分子机制的迫切需求。利用单细胞RNA测序数据集和空间蛋白质组学,我们发现PDAC细胞中的LIM结构域仅7(LMO7)是一种先前未被认识的通过Treg细胞富集驱动免疫逃逸的因子。LMO7与浸润性调节性T细胞(Tregs)和功能障碍的CD8 + T细胞呈正相关。一系列体外和体内实验证明LMO7在促进Treg细胞分化和趋化同时抑制CD8 + T细胞和NK 细胞细胞毒性方面发挥重要作用。在机制上,LMO7通过其LIM结构域直接结合并促进Foxp1的泛素化和降解。Foxp1通过分别结合位点2和I/III负向调节转化生长因子-β(TGF-β)和C-C基序趋化因子配体5(CCL5)的表达。TGF-β和CCL5水平升高有助于Treg细胞富集,诱导PDAC中的免疫逃逸。TGF-β/CCL5抗体联合LMO7抑制治疗有效逆转了PDAC中的免疫逃逸,激活了免疫反应,并延长了小鼠生存期。
因此,本研究确定LMO7是通过促进Treg细胞富集和抑制细胞毒性效应功能驱动免疫逃逸的新型促进因子。靶向LMO7-Foxp1-TGF-β/CCL5轴有望成为PDAC的治疗策略。图形摘要揭示LMO7通过促进Tregs分化和趋化、诱导CD8 + T/NK 细胞抑制,作为驱动免疫逃逸的新型促进因子。
With advancements in genomics and immunology, immunotherapy has emerged as a revolutionary strategy for tumor treatment.
However, pancreatic ductal adenocarcinoma (PDAC), an immunologically "cold" tumor, exhibits limited responsiveness to immunotherapy.
This study aimed to address the urgent need to uncover PDAC's immune microenvironment heterogeneity and identify the molecular mechanisms driving immune evasion. Using single-cell RNA sequencing datasets and spatial proteomics, we discovered LIM domain only 7 (LMO7) in PDAC cells as a previously unrecognized driver of immune evasion through Treg cell enrichment.
LMO7 was positively correlated with infiltrating regulatory T cells (Tregs) and dysfunctional CD8 + T cells. A series of in vitro and in vivo experiments demonstrated LMO7's significant role in promoting Treg cell differentiation and chemotaxis while inhibiting CD8 + T cells and natural killer cell cytotoxicity.
Mechanistically, LMO7, through its LIM domain, directly bound and promoted the ubiquitination and degradation of Foxp1. Foxp1 negatively regulated transforming growth factor-beta (TGF-β) and C-C motif chemokine ligand 5 (CCL5) expression by binding to sites 2 and I/III, respectively.
Elevated TGF-β and CCL5 levels contribute to Treg cell enrichment, inducing immune evasion in PDAC. Combined treatment with TGF-β/CCL5 antibodies, along with LMO7 inhibition, effectively reversed immune evasion in PDAC, activated the immune response, and prolonged mouse survival.
Therefore, this study identified LMO7 as a novel facilitator in driving immune evasion by promoting Treg cell enrichment and inhibiting cytotoxic effector functions. Targeting the LMO7-Foxp1-TGF-β/CCL5 axis holds promise as a therapeutic strategy for PDAC. Graphical abstract revealing LMO7 as a novel facilitator in driving immune evasion by promoting Tregs differentiation and chemotaxis, inducing CD8 + T/natural killer cells inhibition.
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