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骨骼肌代谢分析对于设计 2 型糖尿病的最佳运动方案至关重要。

The analysis of the skeletal muscle metabolism is crucial for designing optimal exercise paradigms in type 2 diabetes mellitus.

机构信息

Faculty of Basic and Biomedical Sciences, Université Paris Cité & Inserm UMR_S1124, 45 rue des Saints-Pères, 75270, Paris Cedex 06, France.

Department of Anatomy, Cell Biology and Physiological Sciences, Faculty of Medicine and Medical Center, American University of Beirut, Bliss Street, 11-0236, Riad El-Solh, Beirut, 1107-2020, Lebanon.

出版信息

Mol Med. 2024 Jun 10;30(1):80. doi: 10.1186/s10020-024-00850-7.

Abstract

BACKGROUND

Type 2 diabetes mellitus (T2DM) is a chronic metabolic disease that commonly results from a high-calorie diet and sedentary lifestyle, leading to insulin resistance and glucose homeostasis perturbation. Physical activity is recommended as one first-line treatment in T2DM, but it leads to contrasted results. We hypothesized that, instead of applying standard exercise protocols, the prescription of personalized exercise programs specifically designed to reverse the potential metabolic alterations in skeletal muscle could result in better results.

METHODS

To test this hypothesis, we drew the metabolic signature of the fast-twitch quadriceps muscle, based on a combined unbiased NMR spectroscopy and RT-qPCR study, in several T2DM mouse models of different genetic background (129S1/SvImJ, C57Bl/6J), sex and aetiology (high-fat diet (HFD) or HFD/Streptozotocin (STZ) induction or transgenic MKR (FVB-Tg Ckm-IGF1R*K1003R)1Dlr/J) mice. Three selected mouse models with unique muscular metabolic signatures were submitted to three different swimming-based programs, designed to address each metabolic specificity.

RESULTS

We found that depending on the genetic background, the sex, and the mode of T2DM induction, specific muscular adaptations occurred, including depressed glycolysis associated with elevated PDK4 expression, shift to β-oxidation, or deregulation of amino-acid homeostasis. Interestingly, dedicated swimming-based exercises designed to restore specific metabolic alterations in muscle were found optimal in improving systemic T2DM hallmarks, including a significant reduction in insulin resistance, the improvement of glucose homeostasis, and a delay in sensorimotor function alterations.

CONCLUSION

The muscle metabolism constitutes an important clue for the design of precision exercises with potential clinical implications for T2DM patients.

摘要

背景

2 型糖尿病(T2DM)是一种常见的慢性代谢疾病,通常由高热量饮食和久坐的生活方式引起,导致胰岛素抵抗和葡萄糖内稳态紊乱。体力活动被推荐为 T2DM 的一线治疗方法,但它的效果却大相径庭。我们假设,与其应用标准的运动方案,不如开具体的个性化运动方案,专门针对骨骼肌的潜在代谢改变,可能会产生更好的效果。

方法

为了验证这一假设,我们根据一项综合的非靶向 NMR 光谱学和 RT-qPCR 研究,绘制了几种不同遗传背景(129S1/SvImJ、C57Bl/6J)、性别和病因(高脂肪饮食(HFD)或 HFD/链脲佐菌素(STZ)诱导或转基因 MKR(FVB-Tg Ckm-IGF1R*K1003R)1Dlr/J)的 T2DM 小鼠模型快肌四头肌的代谢特征。我们对 3 种具有独特肌肉代谢特征的小鼠模型进行了 3 种不同的基于游泳的运动方案,这些方案旨在解决每种代谢的特异性。

结果

我们发现,根据遗传背景、性别和 T2DM 的诱导方式,会出现特定的肌肉适应性,包括与 PDK4 表达升高相关的糖酵解下调、向β氧化转移或氨基酸内稳态失调。有趣的是,专门设计的游泳运动方案被发现可以改善肌肉的特定代谢改变,从而优化全身性 T2DM 特征,包括显著降低胰岛素抵抗、改善葡萄糖稳态以及延迟感觉运动功能改变。

结论

肌肉代谢为设计精准运动提供了重要线索,这可能对 T2DM 患者具有潜在的临床意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c15c/11165837/457f0b76a267/10020_2024_850_Fig1_HTML.jpg

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