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Salicylate restores transport function and anion exchanger activity of missense pendrin mutations.

机译:水杨酸盐可恢复错义Pendrin突变的转运功能和阴离子交换活性。

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摘要

The SLC26A4 gene encodes the transmembrane protein pendrin, which is involved in the homeostasis of the ion concentration of the endolymph of the inner ear, most likely by acting as a chloride/bicarbonate transporter. Mutations in the SLC26A4 gene cause sensorineuronal hearing loss. However, the mechanisms responsible for such loss have remained unknown. Therefore, in this study, we focused on the function of ten missense pendrin mutations (p.P123S (Pendred syndrome), p.M147V (NSEVA), p.K369E (NSEVA), p.A372V (Pendred syndrome/NSEVA), p.N392Y (Pendred syndrome), p.C565Y (NSEVA), p.S657N (NSEVA), p.S666F (NSEVA), p.T721M (NSEVA) and p.H723R (Pendred syndrome/NSEVA)) reported in Japanese patients, and analyzed their cellular localization and anion exchanger activity using HEK293 cells transfected with each mutant gene. Immunofluorescent staining of the cellular localization of the pendrin mutants revealed that p.K369E and p.C565Y, as well as wild-type pendrin, were transported to the plasma membrane, while 8 other mutants were retained in the cytoplasm. Furthermore, we analyzed whether salicylate, as a pharmacological chaperone, restores normal plasma membrane localization of 8 pendrin mutants retained in the cytoplasm to the plasma membrane. Incubation with 10 mM of salicylate of the cells transfected with the mutants induced the transport of 4 pendrin mutants (p.P123S, p.M147V, p.S657Y and p.H723R) from the cytoplasm to the plasma membrane and restored the anion exchanger activity. These findings suggest that salicylate might contribute to development of a new method of medical treatment for sensorineuronal hearing loss caused by the mutation of the deafness-related proteins, including pendrin.
机译:SLC26A4基因编码跨膜蛋白pendrin,该蛋白参与内耳内淋巴离子浓度的稳态,最有可能通过充当氯离子/碳酸氢根转运蛋白来发挥作用。 SLC26A4基因的突变会导致感觉神经神经性听力丧失。但是,造成这种损失的机制仍然未知。因此,在这项研究中,我们集中于十种错义Pendrin突变的功能(p.P123S(Pendred综合征),p.M147V(NSEVA),p.K369E(NSEVA),p.A372V(Pendred综合征/ NSEVA),p .N392Y(Pendred syndrome),p.C565Y(NSEVA),p.S657N(NSEVA),p.S666F(NSEVA),p.T721M(NSEVA)和p.H723R(Pendred syndrome / NSEVA)),并使用每个突变基因转染的HEK293细胞分析了它们的细胞定位和阴离子交换活性。对pendrin突变体的细胞定位进行的免疫荧光染色显示,p.K369E和p.C565Y以及野生型pendrin被转运到质膜,而其他8个突变体则保留在细胞质中。此外,我们分析了水杨酸盐作为药理伴侣,是否能恢复保留在细胞质中的8个pendrin突变体的正常质膜定位。将水杨酸酯与突变体转染的细胞一起孵育10 mM,可诱导4种pendrin突变体(p.P123S,p.M147V,p.S657Y和p.H723R)从细胞质转运到质膜,并恢复了阴离子交换剂的活性。 。这些发现表明,水杨酸酯可能有助于开发一种新的医学方法,用于治疗由耳聋相关蛋白(包括Pendrin)引起的感觉神经神经失聪。

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