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:Microphysiological systems for solid tumor immunotherapy: opportunities and challenges.
Microphysiological systems for solid tumor immunotherapy: opportunities and challenges.
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免疫治疗对血液肿瘤的疗效仍优于实体瘤。实体瘤免疫治疗的主要挑战之一是肿瘤产生的免疫抑制微环境,该微环境限制了免疫效应细胞(如细胞毒性T细胞和NK 细胞)的细胞毒性能力。该微环境的特征包括缺氧、营养缺乏、代谢废物积累和酸性pH。被肿瘤劫持的细胞,如成纤维细胞、巨噬细胞和T调节细胞,也通过分泌免疫抑制性细胞因子来抑制抗肿瘤免疫应答并导致免疫逃逸,从而促成对免疫细胞不利的微环境。
因此,开发能够调节肿瘤微环境并减少肿瘤细胞免疫逃逸的新药物和细胞制剂引起了强烈兴趣。微生理系统(MPSs)是多功能工具,可能加速这些疗法的开发和评估,尽管展示MPSs潜力的具体实例仍然罕见。微技术的进步促进了用于再现肿瘤复杂性的精密微流控装置的开发。由此产生的模型,也称为微生理系统(MPSs),是多功能工具,可用于解析驱动免疫细胞抗肿瘤细胞毒性、免疫细胞耗竭和免疫细胞排斥的分子机制,并评估新的靶向免疫疗法。
在此,我们综述了现有的用于研究免疫肿瘤学应用的微生理平台,并讨论了该领域的挑战和机遇。
Immunotherapy remains more effective for hematologic tumors than for solid tumors. One of the main challenges to immunotherapy of solid tumors is the immunosuppressive microenvironment these tumors generate, which limits the cytotoxic capabilities of immune effector cells (e. g. , cytotoxic T and natural killer cells).
This microenvironment is characterized by hypoxia, nutrient starvation, accumulated waste products, and acidic pH. Tumor-hijacked cells, such as fibroblasts, macrophages, and T regulatory cells, also contribute to this inhospitable microenvironment for immune cells by secreting immunosuppressive cytokines that suppress the antitumor immune response and lead to immune evasion.
Thus, there is a strong interest in developing new drugs and cell formulations that modulate the tumor microenvironment and reduce tumor cell immune evasion. Microphysiological systems (MPSs) are versatile tools that may accelerate the development and evaluation of these therapies, although specific examples showcasing the potential of MPSs remain rare.
Advances in microtechnologies have led to the development of sophisticated microfluidic devices used to recapitulate tumor complexity. The resulting models, also known as microphysiological systems (MPSs), are versatile tools with which to decipher the molecular mechanisms driving immune cell antitumor cytotoxicity, immune cell exhaustion, and immune cell exclusion and to evaluate new targeted immunotherapies.
Here, we review existing microphysiological platforms to study immuno-oncological applications and discuss challenges and opportunities in the field.
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