ryanodine受体离子通道功能障碍小鼠的mTOR信号传导。

Tai-Qin Huang, Min-Xu Zou, Daniel A Pasek, Gerhard Meissner
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引用次数: 4

摘要

在心脏良嘌呤受体离子通道(RyR2)的钙调素结合域(W3587A/L3591D/F3603A, ADA)中同时置换3个氨基酸残基,破坏了钙调素对RyR2的抑制作用,导致Ryr2ADA/ADA小鼠心脏肥大和早期死亡。为了确定促生长信号分子的生理意义,我们测定了野生型和Ryr2ADA/ADA小鼠心脏中丝氨酸/苏氨酸激酶mTOR及上下游信号分子的蛋白和磷酸化水平。mTOR在Ser-2448位点磷酸化,mTOR下游靶蛋白p70S6激酶在Thr-389位点磷酸化,S6核糖体蛋白在Ser-240/244位点磷酸化,4E-BP1在Ser-65位点磷酸化。然而,mTOR上游激酶Ser-241位点PDK1、Thr-308位点AKT、Thr-172位点AMPK和Thr-202/Tyr204位点ERK1/2的磷酸化均未增加。为了证实mTOR信号在心肌肥厚发生中的作用,将mTOR抑制剂雷帕霉素注射到野生型和突变型小鼠中。在10日龄Ryr2ADA/ADA小鼠中,雷帕霉素降低了小鼠心体重比,改善了心脏功能,降低了mTOR和下游靶点p70S6K和S6的磷酸化,但没有延长寿命。综上所述,这些结果将RyR2功能失调与调节心脏生长和功能的信号分子活性改变联系起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

mTOR signaling in mice with dysfunctional cardiac ryanodine receptor ion channel.

mTOR signaling in mice with dysfunctional cardiac ryanodine receptor ion channel.

mTOR signaling in mice with dysfunctional cardiac ryanodine receptor ion channel.

mTOR signaling in mice with dysfunctional cardiac ryanodine receptor ion channel.

Simultaneous substitution of three amino acid residues in the calmodulin binding domain (W3587A/L3591D/F3603A, ADA) of the cardiac ryanodine receptor ion channel (RyR2) impairs calmodulin inhibition of RyR2 and causes cardiac hypertrophy and early death of Ryr2ADA/ADA mice. To determine the physiological significance of growth promoting signaling molecules, the protein and phosphorylation levels of Ser/Thr kinase mTOR and upstream and downstream signaling molecules were determined in hearts of wild-type and Ryr2ADA/ADA mice. Phosphorylation of mTOR at Ser-2448, and mTOR downstream targets p70S6 kinase at Thr-389, S6 ribosomal protein at Ser-240/244, and 4E-BP1 at Ser-65 were increased. However, there was no increased phosphorylation of mTOR upstream kinases PDK1 at Ser-241, AKT at Thr-308, AMPK at Thr-172, and ERK1/2 at Thr-202/Tyr204. To confirm a role for mTOR signaling in the development of cardiac hypertrophy, rapamycin, an inhibitor of mTOR, was injected into wild-type and mutant mice. Rapamycin decreased mouse heart-to-body weight ratio, improved cardiac performance, and decreased phosphorylation of mTOR and downstream targets p70S6K and S6 in 10-day-old Ryr2ADA/ADA mice but did not extend longevity. Taken together, the results link a dysfunctional RyR2 to an altered activity of signaling molecules that regulate cardiac growth and function.

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