决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Recent Advances and Future Directions in Sonodynamic Therapy for Cancer Treatment.
深部组织实体瘤治疗预后较差,导致患者 5 年生存率极低。
深部组织实体癌患者预后较差,5年生存率很低。实体瘤治疗面临的主要挑战包括药物或治疗难以到达肿瘤、手术无法完全切除肿瘤组织、缺氧且异质性显著的肿瘤微环境对化疗和放疗耐受,以及脱靶毒性造成的痛苦。声动力疗法(SDT)是一种不断发展的治疗方法,利用低强度超声靶向深部实体瘤。超声能够安全、精准地向深度超过10 cm的小体积深部组织传递能量,因此SDT较传统光动力疗法更有效。目前SDT用于多形性胶质母细胞瘤的治疗处于I/II期临床试验阶段;用于乳腺癌、胰腺癌、肝癌和前列腺癌等其他实体瘤仍处于临床前阶段,还需进一步研究提高疗效。因此,本文聚焦SDT癌症治疗的近期进展,介绍超声与声敏剂分子的相互作用及其向恶性细胞传递能量的机制;该过程是SDT介导细胞死亡的核心。综述列举了不同癌症治疗临床和临床前试验使用的各类声敏剂,并回顾SDT的关键超声参数。文章还讨论提高声敏剂疗效的方法、三维球体体外研究的作用、超声调控CAR-T细胞和基于SDT的多模式治疗,以及利用机器学习优化声敏剂;这些进展可能促进SDT的临床转化。
Deep-tissue solid cancer treatment has a poor prognosis, resulting in a very low 5-year patient survival rate. The primary challenges facing solid tumor therapies are accessibility, incomplete surgical removal of tumor tissue, the resistance of the hypoxic and heterogeneous tumor microenvironment to chemotherapy and radiation, and suffering caused by off-target toxicities. Here, sonodynamic therapy (SDT) is an evolving therapeutic approach that uses low-intensity ultrasound to target deep-tissue solid tumors. The ability of ultrasound to deliver energy safely and precisely into small deep-tissue (>10 cm) volumes makes SDT more effective than conventional photodynamic therapy. While SDT is currently in phase 1/2 clinical trials for glioblastoma multiforme, its use for other solid cancer treatments, such as breast, pancreatic, liver, and prostate cancer, is still in the preclinical stage, with further investigation required to improve its therapeutic efficacy. This review, therefore, focuses on recent advances in SDT cancer treatments. We describe the interaction between ultrasound and sonosensitizer molecules and the associated energy transfer mechanism to malignant cells, which plays a central role in SDT-mediated cell death. Different sensitizers used in clinical and preclinical trials of various cancer treatments are listed, and the critical ultrasound parameters for SDT are reviewed. We also discuss approaches to improve the efficacies of these sonosensitizers, the role of the 3-dimensional spheroid in vitro investigations, ultrasound-controlled CAR-T cell and SDT-based multimodal therapy, and machine learning for sonosensitizer optimization, which could facilitate clinical translation of SDT.
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