Department of Pharmaceutical and Pharmacological Sciences, West Virginia University, Morgantown, West Virginia, USA; Ophthalmology and Visual Sciences, West Virginia University, Morgantown, West Virginia, USA.
Ophthalmology and Visual Sciences, West Virginia University, Morgantown, West Virginia, USA; Biochemistry and Molecular Medicine, West Virginia University, Morgantown, West Virginia, USA.
J Biol Chem. 2023 Jun;299(6):104809. doi: 10.1016/j.jbc.2023.104809. Epub 2023 May 11.
Heat shock protein 90 (HSP90) is an abundant molecular chaperone that regulates the stability of a small set of proteins essential in various cellular pathways. Cytosolic HSP90 has two closely related paralogs: HSP90α and HSP90β. Due to the structural and sequence similarities of cytosolic HSP90 paralogs, identifying the unique functions and substrates in the cell remains challenging. In this article, we assessed the role of HSP90α in the retina using a novel HSP90α murine knockout model. Our findings show that HSP90α is essential for rod photoreceptor function but was dispensable in cone photoreceptors. In the absence of HSP90α, photoreceptors developed normally. We observed rod dysfunction in HSP90α knockout at 2 months with the accumulation of vacuolar structures, apoptotic nuclei, and abnormalities in the outer segments. The decline in rod function was accompanied by progressive degeneration of rod photoreceptors that was complete at 6 months. The deterioration in cone function and health was a "bystander effect" that followed the degeneration of rods. Tandem mass tag proteomics showed that HSP90α regulates the expression levels of <1% of the retinal proteome. More importantly, HSP90α was vital in maintaining rod PDE6 and AIPL1 cochaperone levels in rod photoreceptor cells. Interestingly, cone PDE6 levels were unaffected. The robust expression of HSP90β paralog in cones likely compensates for the loss of HSP90α. Overall, our study demonstrated the critical need for HSP90α chaperone in the maintenance of rod photoreceptors and showed potential substrates regulated by HSP90α in the retina.
热休克蛋白 90(HSP90)是一种丰富的分子伴侣,可调节各种细胞途径中必需的一小部分蛋白质的稳定性。细胞质 HSP90 有两个密切相关的同源物:HSP90α 和 HSP90β。由于细胞质 HSP90 同源物的结构和序列相似,因此确定细胞中的独特功能和底物仍然具有挑战性。在本文中,我们使用新型 HSP90α 小鼠敲除模型评估了 HSP90α 在视网膜中的作用。我们的研究结果表明,HSP90α 对杆状光感受器功能至关重要,但在锥状光感受器中却不是必需的。在没有 HSP90α 的情况下,光感受器正常发育。我们在 2 个月时观察到 HSP90α 敲除的杆状功能障碍,此时出现空泡结构、凋亡核和外节异常。杆状功能下降伴随着杆状光感受器的进行性退化,到 6 个月时完全退化。锥状功能和健康的恶化是一种“旁观者效应”,紧随杆状的退化之后。串联质量标签蛋白质组学表明,HSP90α 调节视网膜蛋白质组中 <1%的蛋白表达水平。更重要的是,HSP90α 对于维持杆状光感受器细胞中的 PDE6 和 AIPL1 共伴侣的水平至关重要。有趣的是,锥状 PDE6 水平不受影响。锥状中 HSP90β 同源物的强表达可能补偿了 HSP90α 的缺失。总体而言,我们的研究表明 HSP90α 伴侣在维持杆状光感受器中的关键作用,并显示 HSP90α 在视网膜中调节的潜在底物。