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泛素化参与蛋白激酶 C 介导线粒体 Kv1.5 通道的降解。

Ubiquitination is involved in PKC-mediated degradation of cell surface Kv1.5 channels.

机构信息

Department of Biomedical and Molecular Sciences, Queen's University, Kingston, ON, Canada.

Department of Biomedical and Molecular Sciences, Queen's University, Kingston, ON, Canada.

出版信息

J Biol Chem. 2024 Jul;300(7):107483. doi: 10.1016/j.jbc.2024.107483. Epub 2024 Jun 17.

DOI:10.1016/j.jbc.2024.107483
PMID:38897569
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11301065/
Abstract

The voltage-gated Kv1.5 potassium channel, conducting the ultra-rapid delayed rectifier K current (I) in human cells, plays important roles in the repolarization of atrial action potentials and regulation of the vascular tone. We previously reported that activation of protein kinase C (PKC) by phorbol 12-myristate 13-acetate (PMA) induces endocytic degradation of cell-surface Kv1.5 channels, and a point mutation removing the phosphorylation site, T15A, in the N terminus of Kv1.5 abolished the PMA-effect. In the present study, using mutagenesis, patch clamp recording, Western blot analysis, and immunocytochemical staining, we demonstrate that ubiquitination is involved in the PMA-mediated degradation of mature Kv1.5 channels. Since the expression of the Kv1.4 channel is unaffected by PMA treatment, we swapped the N- and/or C-termini between Kv1.5 and Kv1.4. We found that the N-terminus alone did not but both N- and C-termini of Kv1.5 did confer PMA sensitivity to mature Kv1.4 channels, suggesting the involvement of Kv1.5 C-terminus in the channel ubiquitination. Removal of each of the potential ubiquitination residue Lysine at position 536, 565, and 591 by Arginine substitution (K536R, K565R, and K591R) had little effect, but removal of all three Lysine residues with Arginine substitution (3K-R) partially reduced PMA-mediated Kv1.5 degradation. Furthermore, removing the cysteine residue at position 604 by Serine substitution (C604S) drastically reduced PMA-induced channel degradation. Removal of the three Lysines and Cys604 with a quadruple mutation (3K-R/C604S) or a truncation mutation (Δ536) completely abolished the PKC activation-mediated degradation of Kv1.5 channels. These results provide mechanistic insight into PKC activation-mediated Kv1.5 degradation.

摘要

电压门控 Kv1.5 钾通道在人类细胞中传导超快速延迟整流钾电流 (I),在心房动作电位复极化和血管张力调节中发挥重要作用。我们之前报道过,蛋白激酶 C (PKC) 的激活通过佛波醇 12-肉豆蔻酸 13-乙酸酯 (PMA) 诱导细胞表面 Kv1.5 通道的内吞降解,并且 N 末端去除磷酸化位点 T15A 的点突变消除了 PMA 效应。在本研究中,我们使用突变、膜片钳记录、Western blot 分析和免疫细胞化学染色,证明泛素化参与了 PMA 介导的成熟 Kv1.5 通道的降解。由于 Kv1.4 通道的表达不受 PMA 处理的影响,我们在 Kv1.5 和 Kv1.4 之间交换了 N-和/或 C-末端。我们发现单独的 N 末端不能,但 Kv1.5 的 N-和 C-末端都使成熟的 Kv1.4 通道对 PMA 敏感,这表明 Kv1.5 C-末端参与了通道泛素化。通过精氨酸取代 (K536R、K565R 和 K591R) 去除每个潜在的泛素化赖氨酸位置 536、565 和 591 几乎没有影响,但通过精氨酸取代去除所有三个赖氨酸残基 (3K-R) 部分降低了 PMA 介导的 Kv1.5 降解。此外,通过丝氨酸取代 (C604S) 去除位置 604 的半胱氨酸残基大大降低了 PMA 诱导的通道降解。通过四重突变 (3K-R/C604S) 或截断突变 (Δ536) 去除三个赖氨酸和 Cys604 完全消除了 PKC 激活介导的 Kv1.5 通道降解。这些结果为 PKC 激活介导的 Kv1.5 降解提供了机制上的见解。

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