CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Reinvigoration of cytotoxic T lymphocytes in microsatellite instability-high colon adenocarcinoma through lysosomal degradation of PD-L1.
Reinvigoration of cytotoxic T lymphocytes in microsatellite instability-high colon adenocarcinoma through lysosomal degradation of PD-L1.
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PD-L1的补偿和细胞内储存可能削弱靶向细胞表面PD1/PD-L1构象阻断的抗体药物的疗效。旨在降低PD-L1总体细胞丰度的替代疗法因此可能克服对常规免疫检查点阻断的耐药性。
在此,我们通过生物信息学分析表明,具有高度微卫星不稳定性(MSI-H)的结肠腺癌(COAD)对这种治疗干预呈现出最有前景的潜力,并且总体PD-L1丰度可通过HSC70介导的溶酶体降解来控制。对原位MSI-H小鼠COAD的蛋白质组学和代谢组学分析揭示了一个显著的酸性肿瘤微环境。为了利用这些特性,使用pH响应性肽折叠体工程化了一种人工蛋白IgP β。其具有定制的肽模式和设计的分子功能,以促进肿瘤性PD-L1与HSC70之间的相互作用。IgP β通过HSC70介导的溶酶体降解有效降低肿瘤性PD-L1水平,从而持续恢复肿瘤浸润CD8+ T细胞的作用。
值得注意的是,在多个小鼠模型中,基于溶酶体降解的疗法对MSI-H COAD的抗肿瘤效果优于基于抗体的免疫检查点阻断。所提出的策略扩展了肽折叠体在发现用于靶向癌症免疫治疗的人工蛋白药物中的应用。
Compensation and intracellular storage of PD-L1 may compromise the efficacy of antibody drugs targeting the conformational blockade of PD1/PD-L1 on the cell surface. Alternative therapies aiming to reduce the overall cellular abundance of PD-L1 thus might overcome resistance to conventional immune checkpoint blockade.
Here we show by bioinformatics analysis that colon adenocarcinoma (COAD) with high microsatellite instability (MSI-H) presents the most promising potential for this therapeutic intervention, and that overall PD-L1 abundance could be controlled via HSC70-mediated lysosomal degradation. Proteomic and metabolomic analyses of mice COAD with MSI-H in situ unveil a prominent acidic tumor microenvironment.
To harness these properties, an artificial protein, IgP β, is engineered using pH-responsive peptidic foldamers. This features customized peptide patterns and designed molecular function to facilitate interaction between neoplastic PD-L1 and HSC70. IgP β effectively reduces neoplastic PD-L1 levels via HSC70-mediated lysosomal degradation, thereby persistently revitalizing the action of tumor-infiltrating CD8 + T cells.
Notably, the anti-tumor effect of lysosomal-degradation-based therapy surpasses that of antibody-based immune checkpoint blockade for MSI-H COAD in multiple mouse models. The presented strategy expands the use of peptidic foldamers in discovering artificial protein drugs for targeted cancer immunotherapy.
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