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:A microfluidic bone marrow chip for the safety profiling of biologics in pre-clinical drug development.
A microfluidic bone marrow chip for the safety profiling of biologics in pre-clinical drug development.
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血液学不良事件是药物开发中常见的剂量限制性毒性。由于与非人同源蛋白的交叉反应性不足、免疫系统差异以及伦理考量,用于免疫疗法临床前安全性评估的经典动物模型往往受到限制。
因此,我们评估了一种人骨髓(BM)微生理系统(MPS)预测免疫治疗药物预期造血毒性的能力。BM-MPS 由一个封闭的微流体回路组成,其中包含一个陶瓷支架,支架上覆盖有人间充质基质细胞,并在化学成分明确且富含生长因子的培养基中接种了人 BM 来源的 CD34+ 细胞。该模型支持 CD34+ 细胞在芯片上向红系、髓系和 NK 细胞分化,持续 31 天。造血谱系平衡和产出对促炎因子和细胞因子具有响应性。使用靶向转铁蛋白受体的 IgG1 抗体处理会导致芯片上红系生成受到抑制。通过在全自体设置中加入外周血 T 细胞,建立了芯片的免疫活性。使用 T 细胞双特异性抗体处理可诱导 T 细胞活化和靶细胞杀伤,与预期的靶向非肿瘤毒性一致。
总之,本研究提供了概念验证,表明该 BM-MPS 适用于免疫治疗药物的体外造血安全性分析。
Hematologic adverse events are common dose-limiting toxicities in drug development. Classical animal models for preclinical safety assessment of immunotherapies are often limited due to insufficient cross-reactivity with non-human homologous proteins, immune system differences, and ethical considerations.
Therefore, we evaluate a human bone marrow (BM) microphysiological system (MPS) for its ability to predict expected hematopoietic liabilities of immunotherapeutics. The BM-MPS consists of a closed microfluidic circuit containing a ceramic scaffold covered with human mesenchymal stromal cells and populated with human BM-derived CD34+ cells in chemically defined growth factor-enriched media. The model supports on-chip differentiation of erythroid, myeloid and NK cells from CD34+ cells over 31 days.
The hematopoietic lineage balance and output is responsive to pro-inflammatory factors and cytokines. Treatment with a transferrin receptor-targeting IgG1 antibody results in inhibition of on-chip erythropoiesis. The immunocompetence of the chip is established by the addition of peripheral blood T cells in a fully autologous setup. Treatment with T cell bispecific antibodies induces T cell activation and target cell killing consistent with expected on-target off-tumor toxicities.
In conclusion, this study provides a proof-of-concept that this BM-MPS is applicable for in vitro hematopoietic safety profiling of immunotherapeutics.
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