不适合移植的大 B 细胞淋巴瘤二线使用 axicabtagene ciloleucel:ALYCANTE 最终分析
Second-line axicabtagene ciloleucel in large B-cell lymphoma ineligible for transplantation: ALYCANTE final analysis.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:ECSIT: Biological function and involvement in diseases.
ECSIT: Biological function and involvement in diseases.
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Toll 通路中进化保守的信号中间体(ECSIT)是一种多功能蛋白,最初被鉴定为 Toll 样受体(TLRs)信号介导的固有免疫应答中的胞质衔接蛋白。在过去二十年中,研究拓展了对 ECSIT 的认识。
然而,由于关于 ECSIT 的研究数量不足,仍存在较大的知识空白,尤其是缺乏对 ECSIT 的全面综述。在此,我们首先全面总结 ECSIT 的生物学功能,特别聚焦于固有免疫应答和线粒体稳态。累积的研究已强化了以下认识:ECSIT 通过激活 NF-κB 信号以及增强维甲酸诱导基因 Ⅰ(RIG-Ⅰ)/线粒体抗病毒信号蛋白(MAVS)通路介导的固有抗病毒免疫,参与固有免疫应答的调控。
此外,ECSIT 决定线粒体形态和功能,包括线粒体复合物 Ⅰ(CⅠ)组装、线粒体活性氧(mROS)产生、线粒体膜电位(MMP)维持和线粒体质量控制。由于这些独特功能,ECSIT 参与人类疾病的病因学和病理学,包括阿尔茨海默病(AD)、心脏肥大、肌肉骨骼解体、癌症、结外自然杀伤/T 细胞淋巴瘤(ENKTL)和缺血性卒中。
总之,本文批判性地讨论了 ECSIT 在生理和病理条件下的作用和机制,以提供对 ECSIT 治疗潜力的更清晰认识。
Evolutionary conserved signaling intermediate in Toll pathways (ECSIT), a multi-functional protein, was first identified as a cytosolic adaptor protein in Toll-like receptors (TLRs) signaling-mediated innate immune responses. In the past two decades, studies have expanded the understanding of ECSIT. Nevertheless, there are still large knowledge gaps due to the inadequate number of studies regarding ECSIT, especially an overall review of ECSIT is lacking.
Here, we first comprehensively summarize the biological functions of ECSIT with particular focus on innate immune responses and mitochondrial homeostasis. Cumulative studies have reinforced that ECSIT is involved in the regulation of innate immune responses through activating NF-κB signaling and potentiating the Retinoic acid-induced gene Ⅰ (RIG-Ⅰ)/ mitochondrial antiviral- signaling protein (MAVS) pathway-mediated innate antiviral immunity.
In addition, ECSIT determines the mitochondrial morphology and function including mitochondrial complex Ⅰ (CⅠ) assembly, mitochondrial reactive oxygen species (mROS) production, mitochondrial membrane potential (MMP) maintenance and mitochondrial quality control.
Owing to these distinct functions, ECSIT is involved in the etiology and pathology of human diseases including Alzheimer's disease (AD), cardiac hypertrophy, musculoskeletal disintegration, cancer, extranodal natural killer/T cell lymphoma (ENKTL) and ischemic stroke. Collectively, the roles and mechanisms of ECSIT under physiological and pathological conditions are critically discussed to provide a clearer view of the therapeutic potential of ECSIT.
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