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:GrB-Fc-KS49, an anti-EMP2 granzyme B fusion protein therapeutic alters immune cell infiltration and suppresses breast cancer growth.
GrB-Fc-KS49, an anti-EMP2 granzyme B fusion protein therapeutic alters immune cell infiltration and suppresses breast cancer growth.
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GrB-Fc-KS49 对 EMP2 阳性细胞表现出高特异性和细胞毒性。在体内,它减轻了肿瘤负荷并增加了免疫细胞向肿瘤的募集,表明 GrB-Fc-KS49 是一种有前景的抗 BC 治疗候选药物。
颗粒酶B(GrB)是一种关键效应分子,由细胞毒性T淋巴细胞和NK 细胞在免疫监视过程中递送以诱导细胞死亡。融合蛋白和免疫偶联物代表了一种创新的治疗策略,能够将致命载荷特异性递送至靶细胞。上皮膜蛋白-2(EMP2)在侵袭性乳腺癌(BC)中高表达,包括三阴性BC(TNBC),是一个有吸引力的治疗靶点。
我们设计了一种新型融合蛋白(GrB-Fc-KS49),由活性GrB与抗EMP2单链抗体通过免疫球蛋白G重链(Fc)结构域连接而成。我们评估了该构建体的GrB酶活性、抗EMP2结合亲和力以及对一组BC细胞的细胞毒性。还评估了该构建体的药代动力学(PK)、毒性特征和体内疗效。
GrB-Fc-KS49 表现出与商业化 GrB 相当的 GrB 酶活性,以及对 EMP2 肽的高亲和力,解离常数在皮摩尔范围内。该融合蛋白迅速内化进入 EMP2+ 癌细胞,并对表达表面 EMP2 的细胞系显示出体外细胞毒性,对大多数阳性细胞系的半数最大细胞毒性(IC50)值低于 100 nM。37°C 下的离体稳定性表明半衰期超过 96 小时,而体内 PK 显示双指数血浆清除,具有中等的初始清除率(t1/2 α=18.4 小时)和更慢的终末清除率(t1/2 β=73.1 小时)。在 Chem16 panel 中,对照组与 GrB-Fc-KS49 之间未检测到毒性。在体内,GrB-Fc-KS49 对 TNBC 同系(4T1/FLuc)小鼠模型显示出疗效,与对照组相比,减少了肿瘤体积和细胞增殖并增加了细胞死亡。使用 EMT6 小鼠模型的治疗证实了这些结果。除了对细胞增殖的显著影响外,GrB-Fc-KS49 治疗还导致肿瘤浸润 CD45+ 细胞的显著增加和肿瘤相关巨噬细胞的重新分布。治疗后肿瘤的转录组分析证实了 GrB-Fc-KS49 免疫毒素对免疫肿瘤微环境的重塑。
Granzyme B (GrB) is a key effector molecule, delivered by cytotoxic T lymphocytes and natural killer cells during immune surveillance to induce cell death. Fusion proteins and immunoconjugates represent an innovative therapeutic approach to specifically deliver a deadly payload to target cells. Epithelial membrane protein-2 (EMP2) is highly expressed in invasive breast cancer (BC), including triple-negative BC (TNBC), and represents an attractive therapeutic target.
We designed a novel fusion protein (GrB-Fc-KS49) composed of an active GrB fused to an anti-EMP2 single-chain antibody tethered through the immunoglobulin G heavy chain (Fc) domain. We assessed the construct's GrB enzymatic activity, anti-EMP2 binding affinity, and cytotoxicity against a panel of BC cells. The construct's pharmacokinetics (PK), toxicity profile, and in vivo efficacy were also evaluated.
GrB-Fc-KS49 exhibited comparable GrB enzymatic activity to commercial GrB, as well as high affinity to an EMP2 peptide, with the dissociation constant in the picomolar range. The fusion protein rapidly internalized into EMP2+cancer cells and showed in vitro cytotoxicity to cell lines expressing surface EMP2, with half-maximal cytotoxicity (IC 50 ) values below 100 nM for most positive lines. Ex vivo stability at 37°C indicated a half-life exceeding 96 hours while in vivo PK indicated a biexponential plasma clearance, with a moderate initial clearance (t 1/2 α=18.4 hours) and a much slower terminal clearance rate (t 1/2 β=73.1 hours). No toxicity was measured in a Chem16 panel between the control and the GrB-Fc-KS49. In vivo, the GrB-Fc-KS49 showed efficacy against a TNBC syngeneic (4T1/ FLuc ) mouse model, reducing tumor volume and cell proliferation and increasing cell death compared with controls. Treatment using an EMT6 mouse model confirmed these results. In addition to a significant impact on cell proliferation, GrB-Fc-KS49 treatment also resulted in a dramatic increase of tumor-infiltrating CD45+ cells and redistribution of tumor-associated macrophages. Transcriptomic analysis of tumors post-treatment confirmed the remodeling of the immune tumor microenvironment by the GrB-Fc-KS49 immunotoxin.
GrB-Fc-KS49 showed high specificity and cytotoxicity towards EMP2-positive cells. In vivo, it reduced tumor burden and increased the recruitment of immune cells into the tumor, suggesting that GrB-Fc-KS49 is a promising therapeutic candidate against BC.
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