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:Complex PK-PD of an engineered IL-15/IL-15Rα-Fc fusion protein in cynomolgus monkeys: QSP modeling of lymphocyte dynamics.
Complex PK-PD of an engineered IL-15/IL-15Rα-Fc fusion protein in cynomolgus monkeys: QSP modeling of lymphocyte dynamics.
分数与星级只用于站内排序 —— 不代表疗效、安全性或个人适用性。
XmAb24306是一种淋巴增殖性白细胞介素(IL)-15/IL-15受体α(IL-15Rα)Fc融合蛋白,目前正在作为癌症治疗的免疫治疗药物进行临床研究。XmAb24306在IL-15中带有突变,可减弱其与异二聚体IL-15受体βγ(IL-15R)的亲和力。
我们在单次和重复给药食蟹猴(cyno)研究中观察到,与野生型IL-15(半衰期约1小时)相比,其药代动力学(PK)显著延长(半衰期约2.5至4.5天),导致暴露量增加,并增强且持久地扩增NK细胞、CD8+ T细胞和CD4-CD8-(双阴性[DN])T细胞。药物清除率随剂量水平和给药后时间而变化,且重复给药后PK暴露量下降,我们将其归因于药物诱导的淋巴细胞扩增导致靶点介导的药物处置(TMDD)增加(即药效学(PD)增强的TMDD)。
我们开发了一个定量系统药理学(QSP)模型,以量化XmAb24306与外周血(PB)和淋巴组织中多种细胞类型(CD8+、CD4+、DN T细胞和NK细胞)相互作用所致的复杂PKPD行为。该模型包括非特异性药物清除、与淋巴细胞亚群上差异表达的IL15R结合及由此介导的TMDD,以及由此导致的淋巴细胞从PB边缘化/迁移、在淋巴组织中扩增并重新分布至血液,成功描述了食蟹猴研究中观察到的全身PK和淋巴细胞动力学。
结果表明,在每两周一次(Q2W)给药最多70天、共3次剂量后,各消除途径对XmAb24306清除的相对贡献为:DN T细胞 > NK细胞 > CD8+ T细胞 > 非特异性清除 > CD4+ T细胞。模型表明,观察到的血液中细胞扩增源于淋巴组织中药物扩增细胞的大量流入。该模型用于预测淋巴组织扩增,并模拟不同给药方案的PK-PD。
因此,该模型为理解工程化细胞因子观察到的PK-PD行为背后的机制提供了见解,并可作为快速整合和分析来自癌症患者正在进行的单药或联合临床研究数据的框架。
XmAb24306 is a lymphoproliferative interleukin (IL)-15/IL-15 receptor α (IL-15Rα) Fc-fusion protein currently under clinical investigation as an immunotherapeutic agent for cancer treatment. XmAb24306 contains mutations in IL-15 that attenuate its affinity to the heterodimeric IL-15 receptor βγ (IL-15R).
We observe substantially prolonged pharmacokinetics (PK) (half-life ∼ 2. 5 to 4. 5 days) in single- and repeat-dose cynomolgus monkey (cyno) studies compared to wild-type IL-15 (half-life ∼ 1 hour), leading to increased exposure and enhanced and durable expansion of NK cells, CD8+ T cells and CD4-CD8- (double negative [DN]) T cells.
Drug clearance varied with dose level and time post-dose, and PK exposure decreased upon repeated dosing, which we attribute to increased target-mediated drug disposition (TMDD) resulting from drug-induced lymphocyte expansion (i. e. , pharmacodynamic (PD)-enhanced TMDD).
We developed a quantitative systems pharmacology (QSP) model to quantify the complex PKPD behaviors due to the interactions of XmAb24306 with multiple cell types (CD8+, CD4+, DN T cells, and NK cells) in the peripheral blood (PB) and lymphoid tissues. The model, which includes nonspecific drug clearance, binding to and TMDD by IL15R differentially expressed on lymphocyte subsets, and resultant lymphocyte margination/migration out of PB, expansion in lymphoid tissues, and redistribution to the blood, successfully describes the systemic PK and lymphocyte kinetics observed in the cyno studies.
Results suggest that after 3 doses of every-two-week (Q2W) doses up to 70 days, the relative contributions of each elimination pathway to XmAb24306 clearance are: DN T cells > NK cells > CD8+ T cells > nonspecific clearance > CD4+ T cells. Modeling suggests that observed cellular expansion in blood results from the influx of cells expanded by the drug in lymphoid tissues. The model is used to predict lymphoid tissue expansion and to simulate PK-PD for different dose regimens.
Thus, the model provides insight into the mechanisms underlying the observed PK-PD behavior of an engineered cytokine and can serve as a framework for the rapid integration and analysis of data that emerges from ongoing clinical studies in cancer patients as single-agent or given in combination.
MEMBER ACCOUNT
登录成功会直接打开下一页。