CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Heat Shock Protein 90: From Molecular Chaperone Function to Therapeutic Targeting in Malignancies.
Heat Shock Protein 90: From Molecular Chaperone Function to Therapeutic Targeting in Malignancies.
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热休克蛋白90(HSP90)是一种进化上保守的分子伴侣,在细胞蛋白质稳态和应激适应中占据核心地位。通过促进蛋白质折叠并协助广泛客户蛋白的功能激活,HSP90支撑着发育、增殖、分化和应激反应等基本细胞过程。在癌症中,这一庞大的网络使肿瘤细胞高度依赖HSP90,以维持致癌信号传导、耐受蛋白质毒性应激并在治疗打击下存活。在本综述中,我们提出一个整合性概念框架,将HSP90的分子伴侣功能与其在癌症中的病理作用联系起来:HSP90作为一个中心节点,同时支持致癌信号传导、缓冲蛋白质毒性应激、维持癌症干细胞可塑性并塑造肿瘤-免疫相互作用——所有这些汇聚在一起,驱动治疗耐药和肿瘤复发。在这一框架内,我们总结了调控HSP90活性的分子机制,并剖析其在癌症进展、耐药和免疫调节中依赖上下文的作用。
我们进一步强调HSP90靶向干预的最新进展,包括小分子抑制剂、单克隆抗体、工程化免疫细胞,以及旨在预防、延迟或克服耐药的新兴策略。
综上所述,这些进展凸显了HSP90作为一个多功能治疗节点,并指向面向临床转化和未来研究的创新性、耐药感知策略。
Heat shock protein 90 (HSP90) is an evolutionarily conserved molecular chaperone that occupies a central position in cellular proteostasis and adaptation to stress. By promoting protein folding and facilitating the functional activation of a broad repertoire of clients, HSP90 underpins essential cellular processes, including development, proliferation, differentiation, and stress responses. In cancer, this extensive network renders tumor cells highly dependent on HSP90 to maintain oncogenic signaling, tolerate proteotoxic stress, and survive therapeutic insults.
In this review, we propose an integrated conceptual framework linking HSP90's molecular chaperone functions to its pathological roles in cancer: HSP90 serves as a central node that concurrently supports oncogenic signaling, buffers proteotoxic stress, maintains cancer stem cell plasticity, and shapes tumor-immune interactions-all of which converge to drive therapeutic resistance and tumor recurrence.
Within this framework, we summarize the molecular mechanisms governing HSP90 activity and dissect its context-dependent roles in cancer progression, drug resistance, and immune regulation.
We further highlight recent advances in HSP90-targeted interventions, including small-molecule inhibitors, monoclonal antibodies, engineered immune cells, and emerging strategies designed to prevent, delay, or overcome drug resistance. Taken together, these developments underscore HSP90 as a versatile therapeutic node and point toward innovative, resistance-aware strategies for clinical translation and future research.
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