PO.MCB02.01 · 分子与细胞生物学

AUTAC在血液系统恶性肿瘤中的治疗性应用及心脏保护作用

Therapeutic exploitation of AUTAC in hematologic malignancies with cardiac protection

海报缩略图:AUTAC在血液系统恶性肿瘤中的治疗性应用及心脏保护作用
编号 4676 展板 25 时间 4/21 09:00–12:00 区域 Section 20 主讲 Ahmed Elshazly, BS;MS
分会场 Cell Death Regulation and Therapeutic Resistance in Cancer
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作者与单位 Authors & Affiliations

Ahmed M. Elshazly, Nayyerehalsadat Hosseini, Senthil K. Radhakrishnan

Virginia Commonwealth University, Richmond, VA

摘要 Abstract

中文摘要
背景:髓样细胞白血病-1(Mcl1)是Bcl 2家族的一个关键成员,在调控凋亡和维持线粒体完整性方面发挥重要作用,尤其是在心脏组织中。虽然Mcl1过表达是多种抗癌治疗耐药的主要驱动因素,但其药理学抑制一直受到剂量限制性心脏毒性的阻碍,这在心脏肿瘤学中是一个重大且尚未解决的挑战。开发能够选择性靶向癌细胞中Mcl1同时保全心脏细胞的更安全治疗策略,仍是一项高优先级目标。在本研究中,我们的团队研究了一种新型自噬靶向嵌合体(AUTAC),其设计用于通过自噬-溶酶体途径选择性降解Mcl1。我们旨在确定AUTAC能否在多发性骨髓瘤细胞中诱导选择性细胞毒性,同时保全心脏细胞活力和线粒体功能。 方法:分别使用多发性骨髓瘤细胞系(U266B1、RPMI-8226)和心脏细胞系(AC16、H9c2)作为肿瘤和心脏模型。采用CellTiter-Glo检测和IncuCyte活细胞成像评估细胞活力。通过TMRE荧光测量线粒体膜电位。通过蛋白质印迹、共聚焦显微镜以及使用3-甲基腺嘌呤(3-MA)和氯喹(CQ)的抑制研究,评估AUTAC对Mcl1和自噬动态的影响。为确认自噬依赖性,使用shRNA敲低ATG5。 结果:AUTAC处理选择性诱导Mcl1的溶酶体降解,而对其他抗凋亡Bcl 2家族成员(包括Bcl 2和Bcl xL)无可检测的影响。用3-MA(早期抑制剂)或CQ(晚期抑制剂)药理学抑制自噬可有效阻断AUTAC介导的Mcl1降解,证实该过程需要完整的自噬-溶酶体途径。此外,敲低ATG5可消除Mcl1的减少,进一步强化了这一降解机制的自噬依赖性。在功能上,AUTAC处理使U266B1和RPMI-8226多发性骨髓瘤细胞的活力降低超过50%,并伴随凋亡信号增加。相比之下,AUTAC对AC16和H9c2细胞的细胞毒性极小,维持了线粒体功能和形态。与传统Mcl1抑制剂相比,AUTAC表现出显著降低的心脏毒性,突显了其良好的安全性。 结论:通过AUTAC靶向溶酶体降解Mcl1代表了一种有前景的治疗策略,它将自噬重新用于选择性清除致癌蛋白。AUTAC在恶性细胞中有效降解Mcl1,同时使心脏细胞免于凋亡和线粒体损伤,凸显了其作为传统Mcl1抑制剂的下一代、心脏安全替代方案的潜力。
查看英文原文 English abstract
Background: Myeloid cell leukemia-1 (Mcl1) is a critical member of the Bcl 2 family that plays an essential role in regulating apoptosis and maintaining mitochondrial integrity, particularly within cardiac tissue. While Mcl1 overexpression is a major driver of resistance to multiple anticancer therapies, its pharmacologic inhibition has been hampered by dose-limiting cardiotoxicity, representing a significant and unresolved challenge in cardio-oncology. The development of safer therapeutic strategies that selectively target Mcl1 in cancer cells while sparing cardiac cells remains a high-priority goal. In this study, our group investigated a novel autophagy-targeting chimera (AUTAC) designed to selectively degrade Mcl1 via the autophagy-lysosomal pathway. We aimed to determine whether AUTAC could induce selective cytotoxicity in multiple myeloma cells while preserving cardiac cell viability and mitochondrial function. Methods: Multiple myeloma cell lines (U266B1, RPMI-8226) and cardiac cell lines (AC16, H9c2) were used as tumor and cardiac models, respectively. Cell viability was assessed using the CellTiter-Glo assay and IncuCyte live-cell imaging. Mitochondrial membrane potential was measured by TMRE fluorescence. Effects of AUTAC on Mcl1 and autophagy dynamics were evaluated by Western blotting, confocal microscopy, and inhibition studies with 3-methyladenine (3-MA) and chloroquine (CQ). To confirm autophagy dependence, ATG5 was knocked down using shRNA. Results: Treatment with AUTAC selectively induced lysosomal degradation of Mcl1, without detectable effects on other anti-apoptotic Bcl 2 family members, including Bcl 2 and Bcl xL . Pharmacological inhibition of autophagy with 3-MA (early-stage inhibitor) or CQ (late-stage inhibitor) effectively blocked AUTAC-mediated Mcl1 degradation, confirming that the process required an intact autophagy-lysosomal pathway. Furthermore, knockdown of ATG5 abolished Mcl1 reduction, reinforcing the autophagy dependence of this degradation mechanism. Functionally, AUTAC treatment led to a greater than 50% reduction in cell viability in U266B1 and RPMI-8226 multiple myeloma cells, accompanied by increased apoptotic signaling. In contrast, AUTAC caused minimal cytotoxicity in AC16 and H9c2 cells, maintaining mitochondrial function and morphology. Compared with conventional Mcl1 inhibitors, AUTAC exhibited substantially reduced cardiotoxicity, underscoring its favorable safety profile. Conclusions: Targeted lysosomal degradation of Mcl1 via AUTAC represents a promising therapeutic strategy that repurposes autophagy for selective oncogenic protein removal. AUTAC effectively degraded Mcl1 in malignant cells while sparing cardiac cells from apoptosis and mitochondrial injury, highlighting its potential as a next-generation, cardio-safe alternative to conventional Mcl1 inhibitors.
利益披露 Disclosure
A. M. Elshazly, None.. N. Hosseini, None.. S. K. Radhakrishnan, None.

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