CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Bioengineered nanogels for cancer immunotherapy.
Bioengineered nanogels for cancer immunotherapy.
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近年来,旨在改进癌症治疗模式的纳米载体生物医学发展迅速。纳米凝胶通过分子内交联形成多功能工程化载体,可构建药物递送系统,其优势主要归因于良好的生物相容性、生物响应性、高稳定性和低毒性。近期免疫治疗空前发展,已成为癌症治疗首选策略,主要通过动员免疫系统并增强肿瘤微环境的抗肿瘤免疫发挥作用。尽管疗效令人鼓舞,免疫治疗仍受缓解率低和免疫相关不良事件限制。与其他纳米药物类似,注射进入机体后,纳米凝胶在病灶处的富集率也相对较低。由于纳米凝胶是三维交联水性材料,性质类似天然组织且结构稳定,可耐受血液循环中的剪切力和血清蛋白;较长的循环时间增加了纳米凝胶在肿瘤内蓄积的机会,并促进其深部渗透。通过引入刺激响应官能团,其较大的比表面积可降低或消除脱靶效应;纳米凝胶还可进行多种物理和化学修饰,以特异性靶向特定免疫细胞亚群或免疫器官,提高药物生物利用度,并减少免疫相关不良事件。到达肿瘤部位后缓慢释放,可使宿主免疫系统长期保持活化,最终增强治疗效果。纳米凝胶免疫治疗已广泛用作癌症免疫治疗候选方案。本文主要总结近期纳米凝胶免疫治疗进展,包括递送免疫调节小分子药物、抗体、基因和细胞因子,靶向抗原呈递细胞、构建癌症疫苗以及支持嵌合抗原受体(CAR)T细胞疗法。本文还指出未来挑战以及临床治疗中预期且可行的发展方向。
Recent years have witnessed increasingly rapid advances in nanocarrier-based biomedicine aimed at improving treatment paradigms for cancer. Nanogels serve as multipurpose and constructed vectors formed via intramolecular cross-linking to generate drug delivery systems, which is attributed predominantly to their satisfactory biocompatibility, bio-responsiveness, high stability, and low toxicity. Recently, immunotherapy has experienced unprecedented growth and has become the preferred strategy for cancer treatment, and mainly involves the mobilisation of the immune system and an enhanced anti-tumour immunity of the tumour microenvironment. Despite the inspiring success, immunotherapeutic strategies are limited due to the low response rates and immune-related adverse events. Like other nanomedicines, nanogels are comparably limited by lower focal enrichment rates upon introduction into the organism via injection. Because nanogels are three-dimensional cross-linked aqueous materials that exhibit similar properties to natural tissues and are structurally stable, they can comfortably cope with shear forces and serum proteins in the bloodstream, and the longer circulation life increases the chance of nanogel accumulation in the tumour, conferring deep tumour penetration.
The large specific surface area can reduce or eliminate off-target effects by introducing stimuli-responsive functional groups, allowing multiple physical and chemical modifications for specific purposes to improve targeting to specific immune cell subpopulations or immune organs, increasing the bioavailability of the drug, and conferring a low immune-related adverse events on nanogel therapies. The slow release upon reaching the tumour site facilitates long-term awakening of the host's immune system, ultimately achieving enhanced therapeutic effects.
As an effective candidate for cancer immunotherapy, nanogel-based immunotherapy has been widely used. In this review, we mainly summarize the recent advances of nanogel-based immunotherapy to deliver immunomodulatory small molecule drugs, antibodies, genes and cytokines, to target antigen presenting cells, form cancer vaccines, and enable chimeric antigen receptor (CAR)-T cell therapy. Future challenges as well as expected and feasible prospects for clinical treatment are also highlighted.
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