[电针干预通过激活 AMPK/Sirt1 通路和上调 Nrg4 含量,改善中老年肥胖大鼠的脂质代谢并促进白色脂肪组织棕色化]。

Xin-Lu He, Xue-Zhi Li, De-Wei Xu, Yi Li, Zhu-Xin Yang
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Rats of the blank control and model groups were also restrained for 20 min. The body mass and food intake were measured every week, and the Lee's index, epididymal fat, perirenal fat and brown adipose tissue were weighed. The contents of serum total cholesterol (TC), triglyceride (TG), high density lipoprotein cholesterol (HDL-C), low density lipoprotein cholesterol (LDL-C) and norepinephrine (NE) were determined by ELISA. H.E. staining was used to observe the morphological changes of white and brown adipose tissue. The mRNA expression levels of mitochondrial uncoupling protein 1 (UCP1), peroxisome proliferator activated receptor γ co-activator 1<b>α</b> (PGC-1<b>α</b>), PR-domain protein 16 (PRDM16), peroxisome proliferator activated receptor γ (PPARγ) and Nrg4 in the adipose tissue were detected by quantitative real time PCR, and the protein expression levels of Nrg4, AMPK<b>α</b>, Sirt1 and interleukin-6 (IL-6) in the white and brown adipose tissue were detected by Western blot.</p><p><strong>Results: </strong>Compared with the blank control group, the body mass, food intake, the Lee's index, epididymal fat and perirenal fat mass, and serum TG, TC and LDL-C contents and the expression level of IL-6 protein were significantly increased (<i>P</i><0.01, <i>P</i><0.05, <i>P</i><0.001), and the brown adipose mass, serum HDL-C and NE contents, the expression levels of UCP1, PGC-1<b>α</b>, PRDM16, PPARγ and Nrg4 mRNAs, and the protein expression levels of AMPK<b>α</b>, Sirt1 and Nrg4 proteins in both white and brown adipose tissues were significantly decreased in the model group (<i>P</i><0.01, <i>P</i><0.05). After EA intervention, the increased levels of body mass, food intake, Lee's index, epididymal fat and perirenal fat mass, serum TG, TC and LDL-C contents, and the expression of IL-6 protein, and the decreased levels of brown adipose mass, serum HDL-C and NE contents, expression levels of UCP1, PGC-1<b>α</b>, PRDM16, PPARγ and Nrg4 mRNAs, and those of AMPK<b>α</b>, Sirt1 and Nrg4 proteins in both white and brown adipose tissues were apparently reversed(<i>P</i><0.05, <i>P</i><0.01, <i>P</i><0.001). 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引用次数: 0

摘要

目的研究电针(EA)通过调节AMP激活蛋白激酶(AMPK目的:探讨电针(EA)通过调节AMP激活蛋白激酶(AMPK)/沉默信息调节因子1(Sirt1)促进高脂诱导的中老年肥胖大鼠白色脂肪组织棕色化的机制。/沉默信息调节因子1(Sirt1)方法:将24只雄性SD大鼠随机分为空白对照组、模型组和EA组(每组8只)。用高脂肪饮食喂养大鼠6周,建立肥胖模型。EA组在 "关元 "上施加EA(2赫兹/15赫兹,1.5毫安)。施加于 "关元"(CV4)和双边 "神树"(BL23)、"丰隆"(ST40)和 "天枢" (ST25)每天一次,每次 20 分钟,每周 5 天,连续 6 周。空白对照组和模型组的大鼠也被约束 20 分钟。每周测量大鼠的体重和食物摄入量,并称重大鼠的李氏指数、附睾脂肪、肾周脂肪和棕色脂肪组织。测定血清总胆固醇(TC)、甘油三酯(TG)、高密度脂蛋白胆固醇(HDL-C)、低密度脂蛋白胆固醇(LDL-C)和去甲肾上腺素(N-α)的含量。和去甲肾上腺素(NE)用酶联免疫吸附法测定。H.E.染色观察白色和棕色脂肪组织的形态变化。线粒体解偶联蛋白1(UCP1)、过氧化物酶体增殖物活化受体γ协同激活剂1α(PGC-1α)、PR-domain蛋白16(PRDM16)、过氧化物酶体增殖物活化受体γ(PPARγ)和Nrg4的mRNA在脂肪组织中的表达水平分别为0.5%、0.5%和0.5%。实时定量 PCR 检测了脂肪组织中的 Nrg4、AMPKα、Sirt1 和白细胞介素-6(IL-6)的蛋白表达水平。结果:结果:与空白对照组相比,对照组的体重、食物摄入量、李氏指数、附睾脂肪和肾周脂肪质量、血清 TG、TC 和 LDL-C 含量以及 IL-6 蛋白表达水平均显著增加(PPPα、PRDM16、PPARγ 和 Nrg4 mRNA,以及 AMPKα 蛋白表达水平)、PPα、PRDM16、PPARγ和Nrg4 mRNA水平明显降低,AMPKα、Sirt1和Nrg4蛋白在白色和棕色脂肪组织中的表达水平明显逆转(PPPC结论:EA干预可改善脂质代谢:EA干预能改善中老年肥胖大鼠的脂质代谢,促进白色脂肪组织棕色化,这可能与其激活AMPK/Sirt1信号通路和上调Nrg4水平有关。
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[Electroacupuncture intervention improves lipid metabolism and promotes browning of white adipose tissue by activating AMPK/Sirt1 pathway and up-regulating Nrg4 content in middle-aged and aged obese rats].

Objective: To investigate the mechanism of electroacupuncture (EA) in promoting the browning of white adipose tissue in middle-aged and aged obese rats induced by high fat by regulating AMP-activated protein kinase (AMPK) /silence-information regulatory factor 1 (Sirt1) pathway and neuregulin 4 (Nrg4).

Methods: Twenty-four male SD rats were randomized into blank control, model and EA groups (n=8 per group). The obesity model was established by feeding the rats with high-fat diet for 6 weeks. For the EA group, EA (2 Hz/15 Hz, 1.5 mA) was applied to "Guanyuan" (CV4) and bilateral "Shenshu" (BL23), "Fenglong" (ST40) and "Tianshu" (ST25) for 20 min, once a day, 5 days a week for 6 weeks. Rats of the blank control and model groups were also restrained for 20 min. The body mass and food intake were measured every week, and the Lee's index, epididymal fat, perirenal fat and brown adipose tissue were weighed. The contents of serum total cholesterol (TC), triglyceride (TG), high density lipoprotein cholesterol (HDL-C), low density lipoprotein cholesterol (LDL-C) and norepinephrine (NE) were determined by ELISA. H.E. staining was used to observe the morphological changes of white and brown adipose tissue. The mRNA expression levels of mitochondrial uncoupling protein 1 (UCP1), peroxisome proliferator activated receptor γ co-activator 1α (PGC-1α), PR-domain protein 16 (PRDM16), peroxisome proliferator activated receptor γ (PPARγ) and Nrg4 in the adipose tissue were detected by quantitative real time PCR, and the protein expression levels of Nrg4, AMPKα, Sirt1 and interleukin-6 (IL-6) in the white and brown adipose tissue were detected by Western blot.

Results: Compared with the blank control group, the body mass, food intake, the Lee's index, epididymal fat and perirenal fat mass, and serum TG, TC and LDL-C contents and the expression level of IL-6 protein were significantly increased (P<0.01, P<0.05, P<0.001), and the brown adipose mass, serum HDL-C and NE contents, the expression levels of UCP1, PGC-1α, PRDM16, PPARγ and Nrg4 mRNAs, and the protein expression levels of AMPKα, Sirt1 and Nrg4 proteins in both white and brown adipose tissues were significantly decreased in the model group (P<0.01, P<0.05). After EA intervention, the increased levels of body mass, food intake, Lee's index, epididymal fat and perirenal fat mass, serum TG, TC and LDL-C contents, and the expression of IL-6 protein, and the decreased levels of brown adipose mass, serum HDL-C and NE contents, expression levels of UCP1, PGC-1α, PRDM16, PPARγ and Nrg4 mRNAs, and those of AMPKα, Sirt1 and Nrg4 proteins in both white and brown adipose tissues were apparently reversed(P<0.05, P<0.01, P<0.001). H.E. staining showed an increase of the volume and content of intracellular vacuoles of both white and brown adipose tissues, disordered arrangement of cells with vague boundary in the model group, which was relatively milder including a decrease of volume and content of vacuoles of both white and brown adipose, neat arrangement of cells with clear boundary.

Conclusion: EA intervention can improve lipid metabolism and promote white adipose tissue browning in middle-aged and aged obese rats, which is possibly associated with its functions in activating AMPK/Sirt1 signaling pathway and up-regulating the level of Nrg4.

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