Sodium fluoride induced skeletal muscle changes: Degradation of proteins and signaling mechanism

肌发生 C2C12型 骨骼肌 肌生成抑制素 内分泌学 心肌细胞 肌肉肥大 内科学 化学 肌肉萎缩 氟骨症 成骨细胞 蛋白激酶B 信号转导 细胞生物学 生物 氟化物 生物化学 氟斑牙 医学 体外 无机化学
作者
Sudheer Shenoy P,Utsav Sen,Saketh Kapoor,Anu Vinod Ranade,Chitta Ranjan Chowdhury,Bipasha Bose
出处
期刊:Environmental Pollution [Elsevier]
卷期号:244: 534-548 被引量:26
标识
DOI:10.1016/j.envpol.2018.10.034
摘要

Fluoride is a well-known compound for its usefulness in healing dental caries. Similarly, fluoride is also known for its toxicity to various tissues in animals and humans. It causes skeletal fluorosis leading to osteoporosis of the bones. We hypothesized that when bones are affected by fluoride, the skeletal muscles are also likely to be affected by underlying molecular events involving myogenic differentiation. Murine myoblasts C2C12 were cultured in differentiation media with or without NaF (1 ppm-5 ppm) for four days. The effects of NaF on myoblasts and myotubes when exposed to low (1.5 ppm) and high concentration (5 ppm) were assessed based on the proliferation, alteration in gene expression, ROS production, and production of inflammatory cytokines. Changes based on morphology, multinucleated myotube formation, expression of MyHC1 and signaling pathways were also investigated. Concentrations of NaF tested had no effects on cell viability. NaF at low concentration (1.5 ppm) caused myoblast proliferation and when subjected to myogenic differentiation it induced hypertrophy of the myotubes by activating the IGF-1/AKT pathway. NaF at higher concentration (5 ppm), significantly inhibited myotube formation, increased skeletal muscle catabolism, generated reactive oxygen species (ROS) and inflammatory cytokines (TNF-α and IL-6) in C2C12 cells. NaF also enhanced the production of muscle atrophy-related genes, myostatin, and atrogin-1. The data suggest that NaF at low concentration can be used as muscle enhancing factor (hypertrophy), and at higher concentration, it accelerates skeletal muscle atrophy by activating the ubiquitin-proteosome pathway.
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