Prohibitin 1 tethers lipid membranes and regulates OPA1-mediated membrane fusion.

IF 4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Tadato Ban, Kimiya Kuroda, Mitsuhiro Nishigori, Keisuke Yamashita, Keisuke Ohta, Takumi Koshiba
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Abstract

Prohibitins (PHBs) are ubiquitously expressed proteins in the mitochondrial inner membrane (MIM) that provide membrane scaffolds for both mitochondrial proteins and phospholipids. Eukaryotic PHB complexes contain two highly homologous PHB subunits, PHB1 and PHB2, which are involved in various cellular processes, including metabolic control through the regulation of mitochondrial dynamics and integrity. Their mechanistic actions at the molecular level, however, particularly those of PHB1, remain poorly understood. To gain insight into the mechanistic actions of PHB1, we established an overexpression system for the full-length recombinant protein using silkworm larvae and characterized its biophysical properties in vitro. Using recombinant PHB1 proteoliposomes reconstituted into MIM-mimicking phospholipids, we found that PHB1 forms an oligomer via its carboxy-terminal coiled-coil region. A proline substitution into the PHB1 coiled-coil collapsed its well-ordered oligomeric state, and its destabilization correlated with mitochondrial morphologic defects. Negative-staining electron microscopy revealed that homotypic PHB1-PHB1 interactions via the coiled-coil also induced liposome tethering with remodeling of the lipid membrane structure. We clarified that PHB1 promotes membrane fusion mediated by optic atrophy 1 (OPA1), a key regulator of MIM fusion. Additionally, the presence of PHB1 reduces the dependency of lipids and OPA1 for completing the fusion process. Our in vitro study provides structural insight into how the mitochondrial scaffold plays a crucial role in regulating mitochondrial dynamics. Modulating the structure and/or function of PHB1 may offer new therapeutic potential, not only for mitochondrial dysfunction but also for other cell-related disorders.

抑制素 1 可拴住脂质膜并调节 OPA1 介导的膜融合。
抑制素(PHB)是线粒体内膜(MIM)中普遍表达的蛋白质,为线粒体蛋白质和磷脂提供膜支架。真核生物 PHB 复合物包含两个高度同源的 PHB 亚基--PHB1 和 PHB2,它们参与各种细胞过程,包括通过调节线粒体动力学和完整性来控制新陈代谢。然而,人们对它们在分子水平上的机理作用,尤其是 PHB1 的机理作用,仍然知之甚少。为了深入了解 PHB1 的机理作用,我们利用家蚕幼虫建立了全长重组蛋白的过表达系统,并在体外鉴定了其生物物理特性。通过将重组的 PHB1 蛋白脂质体重组到 MIM 模拟磷脂中,我们发现 PHB1 可通过其羧基末端的线圈区域形成寡聚体。PHB1盘绕线圈中的脯氨酸取代使其有序的低聚物状态崩溃,其不稳定性与线粒体形态缺陷相关。负染色电子显微镜显示,同型PHB1-PHB1通过盘绕线圈的相互作用也诱导了脂质体的拴系,并重塑了脂质膜结构。我们明确了 PHB1 可促进由视神经萎缩 1(OPA1)介导的膜融合,而视神经萎缩 1 是 MIM 融合的关键调节因子。此外,PHB1 的存在减少了完成融合过程对脂质和 OPA1 的依赖。我们的体外研究从结构上揭示了线粒体支架如何在调节线粒体动力学中发挥关键作用。调节 PHB1 的结构和/或功能可能提供新的治疗潜力,不仅可治疗线粒体功能障碍,还可治疗其他细胞相关疾病。
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来源期刊
Journal of Biological Chemistry
Journal of Biological Chemistry Biochemistry, Genetics and Molecular Biology-Biochemistry
自引率
4.20%
发文量
1233
期刊介绍: The Journal of Biological Chemistry welcomes high-quality science that seeks to elucidate the molecular and cellular basis of biological processes. Papers published in JBC can therefore fall under the umbrellas of not only biological chemistry, chemical biology, or biochemistry, but also allied disciplines such as biophysics, systems biology, RNA biology, immunology, microbiology, neurobiology, epigenetics, computational biology, ’omics, and many more. The outcome of our focus on papers that contribute novel and important mechanistic insights, rather than on a particular topic area, is that JBC is truly a melting pot for scientists across disciplines. In addition, JBC welcomes papers that describe methods that will help scientists push their biochemical inquiries forward and resources that will be of use to the research community.
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