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Slc20a1/Pit1 和 Slc20a2/Pit2 对于正常的骨骼肌纤维功能和存活是必不可少的。

Slc20a1/Pit1 and Slc20a2/Pit2 are essential for normal skeletal myofiber function and survival.

机构信息

Department of Internal Medicine, Section Endocrinology, Yale University School of Medicine, New Haven, CT, USA.

Department of Cellular&Molecular Physiology, Yale University School of Medicine, New Haven, CT, USA.

出版信息

Sci Rep. 2020 Feb 20;10(1):3069. doi: 10.1038/s41598-020-59430-4.

Abstract

Low blood phosphate (Pi) reduces muscle function in hypophosphatemic disorders. Which Pi transporters are required and whether hormonal changes due to hypophosphatemia contribute to muscle function is unknown. To address these questions we generated a series of conditional knockout mice lacking one or both house-keeping Pi transporters Pit1 and Pit2 in skeletal muscle (sm), using the postnatally expressed human skeletal actin-cre. Simultaneous conditional deletion of both transporters caused skeletal muscle atrophy, resulting in death by postnatal day P13. smPit1, smPit2 and three allele mutants are fertile and have normal body weights, suggesting a high degree of redundance for the two transporters in skeletal muscle. However, these mice show a gene-dose dependent reduction in running activity also seen in another hypophosphatemic model (Hyp mice). In contrast to Hyp mice, grip strength is preserved. Further evaluation of the mechanism shows reduced ERK1/2 activation and stimulation of AMP kinase in skeletal muscle from smPit1; smPit2 mice consistent with energy-stress. Similarly, C2C12 myoblasts show a reduced oxygen consumption rate mediated by Pi transport-dependent and ERK1/2-dependent metabolic Pi sensing pathways. In conclusion, we here show that Pit1 and Pit2 are essential for normal myofiber function and survival, insights which may improve management of hypophosphatemic myopathy.

摘要

低血磷(Pi)会降低低磷血症疾病中的肌肉功能。需要哪些 Pi 转运体,以及低磷血症引起的激素变化是否会影响肌肉功能尚不清楚。为了解决这些问题,我们使用在出生后表达的人类骨骼肌肌动蛋白启动子 Cre 生成了一系列条件性敲除小鼠,这些小鼠在骨骼肌中缺失一个或两个看家 Pi 转运体 Pit1 和 Pit2。两种转运体的同时条件性缺失导致骨骼肌萎缩,导致出生后第 13 天死亡。smPit1、smPit2 和三种等位基因突变体具有生育能力且体重正常,表明这两种转运体在骨骼肌中具有高度冗余性。然而,这些小鼠表现出与另一种低磷血症模型(Hyp 小鼠)相似的跑步活动减少,呈基因剂量依赖性。与 Hyp 小鼠不同的是,握力得以保留。对机制的进一步评估表明,smPit1 中的 ERK1/2 激活和 AMP 激酶刺激减少;smPit2 中的 Pit2 小鼠能量应激。同样,C2C12 成肌细胞的耗氧量降低是由 Pi 转运依赖和 ERK1/2 依赖的代谢 Pi 感应途径介导的。总之,我们在这里表明 Pit1 和 Pit2 对于正常肌纤维功能和存活至关重要,这些发现可能会改善低磷血症性肌病的治疗管理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d162/7033257/13cd2f5691e2/41598_2020_59430_Fig1_HTML.jpg

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