铁响应性ZNF185过表达通过颗粒细胞骨架重塑驱动线粒体裂变和内质网应激。

IF 7 2区 生物学 Q1 CELL BIOLOGY
Zhaoyue Huang, Yang You, Qi Qiu, Nan Dong, Xinye Hu, Meihong Cai, Yaoqiu Wu, Chunwei Cao, Qingxue Zhang
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引用次数: 0

摘要

卵巢子宫内膜瘤(OMA)是一种雌激素依赖型妇科疾病,其特征是囊肿内子宫内膜细胞反复出血导致大量游离铁,对卵巢功能产生不利影响。然而,铁超载损害卵巢功能的潜在机制尚不清楚。在这项研究中,我们在体外用柠檬酸铁铵(FAC)刺激KGN细胞,观察到剂量依赖性的显著变化,包括线粒体膜电位降低、活性氧(ROS)增加、细胞活力降低和凋亡率升高。铁超载KGN细胞的RNA测序分析显示,在多个浓度梯度和处理时间内,ZNF185的表达显著上调。研究发现,ZNF185过表达会破坏F-actin动力学,引发一系列细胞事件,包括drp1介导的线粒体高分裂、内质网应激和细胞色素C释放,最终导致颗粒细胞凋亡。重要的是,在铁过载条件下,敲低ZNF185被证明可以保持细胞骨架的完整性并减弱凋亡反应。我们的研究结果表明,ZNF185作为一种新的铁反应调节因子参与铁超载诱导的颗粒细胞凋亡。这些结果可能为保留OMA患者的卵巢生育能力提供潜在的治疗策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Iron-responsive ZNF185 overexpression drives mitochondrial fission and endoplasmic reticulum stress via cytoskeletal remodeling in granulosa cells.

Ovarian endometrioma (OMA), an estrogen-dependent gynecological disorder, is characterized by the presence of abundant free iron resulting from recurrent hemorrhage of endometrial cells within the cyst, which adversely affects ovarian function. However, the underlying mechanisms through which iron overload impairs ovarian function remain unclear. In this study, we stimulated KGN cells with ferric ammonium citrate (FAC) in vitro and observed dose-dependent significant alterations, including decreased mitochondrial membrane potential, increased reactive oxygen species (ROS), decreased cell viability, and elevated apoptosis rates. RNA sequencing analysis of iron-overloaded KGN cells demonstrated significant upregulation of ZNF185 expression across multiple concentration gradients and treatment durations. ZNF185 overexpression was found to disrupt F-actin dynamics, triggering a cascade of cellular events including Drp1-mediated mitochondrial hyperfission, endoplasmic reticulum stress, and cytochrome C release, ultimately leading to granulosa cell apoptosis. Importantly, knockdown of ZNF185 was shown to preserve cytoskeletal integrity and attenuate apoptotic responses under conditions of iron overload. Our findings demonstrated that ZNF185 served as a novel iron-responsive regulator involved in iron overload-induced granulosa cell apoptosis. These results might provide potential therapeutic strategies for ovarian fertility preservation in OMA patients.

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来源期刊
Cell Death Discovery
Cell Death Discovery Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
8.30
自引率
1.40%
发文量
468
审稿时长
9 weeks
期刊介绍: Cell Death Discovery is a multidisciplinary, international, online-only, open access journal, dedicated to publishing research at the intersection of medicine with biochemistry, pharmacology, immunology, cell biology and cell death, provided it is scientifically sound. The unrestricted access to research findings in Cell Death Discovery will foster a dynamic and highly productive dialogue between basic scientists and clinicians, as well as researchers in industry with a focus on cancer, neurobiology and inflammation research. As an official journal of the Cell Death Differentiation Association (ADMC), Cell Death Discovery will build upon the success of Cell Death & Differentiation and Cell Death & Disease in publishing important peer-reviewed original research, timely reviews and editorial commentary. Cell Death Discovery is committed to increasing the reproducibility of research. To this end, in conjunction with its sister journals Cell Death & Differentiation and Cell Death & Disease, Cell Death Discovery provides a unique forum for scientists as well as clinicians and members of the pharmaceutical and biotechnical industry. It is committed to the rapid publication of high quality original papers that relate to these subjects, together with topical, usually solicited, reviews, editorial correspondence and occasional commentaries on controversial and scientifically informative issues.
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