Attenuating effects and mechanisms of apelin-13 on aortic injuries in diabetic mice

ZHANG Jia WANG Yang-jia ZENG Xiang-jun

Acta Anatomica Sinica ›› 2018, Vol. 49 ›› Issue (1) : 81-86.

PDF(757 KB)
Welcome to visit Acta Anatomica Sinica! Today is Chinese
PDF(757 KB)
Acta Anatomica Sinica ›› 2018, Vol. 49 ›› Issue (1) : 81-86. DOI: 10.16098/j.issn.0529-1356.2018.01.013
Anatomy

Attenuating effects and mechanisms of apelin-13 on aortic injuries in diabetic mice

  • ZHANG Jia WANG Yang-jia ZENG Xiang-jun*
Author information +
History +

Abstract

Objective To observe the effects and mechanisms of apelin-13 on aortic fibrosis in diabetic mice. Methods Eighteen mice were divided into three groups: control group: C57/BL6j mice in eight weeks old (n=6), diabetic group: kkAy mice in eight weeks old (n=6), and apelin-13 group: kkAy mice implanted with osmotic pump to release apelin-13 at the rate of 30μg/(g·d).After 28 days, the aortas were harvested and fixed. Morphological changes and collagen deposition were observed with HE and Masson staining. The aortic elastic fibers were observed with elastin staining. Expression of transforming growth factor-β1 (TGF-β1) was measured with immunohistochemical staining. Results Compared to the control group, the wall of aorta in diabetic mice thickened, the collagen deposite in diabetic mice was significantly more than that in control mice(P<0.05). The elastin in diabetic mice was irregularly arranged. The levels of TGF-β1 in the aorta of diabetic mice were significantly more than that in control mice(P<0.05).After apelin-13 treatment, the wall of the aorta in diabetic mice became thinner, the collagen deposite was significantly improved than that in diabetic mice(P<0.05), while apelin-13 reset the elastin of aorta in diabetic mice,and reduced TGF-β1 expression to almost normal levels(P<0.05). Conclusion Apelin-13 may attenuate fibrosis and elastin breakdown in the aorta in diabetic mice by inhibit TGF-β1 expression and proliferation of smooth muscle cells in medium of the aortic wall.

Key words

Apelin-13
/ Diabetes / Vascular fibrosis / Transforming growth factor-β1 / Masson staining / Elastin staining / Immunohistochemistry / Mouse

Cite this article

Download Citations
ZHANG Jia WANG Yang-jia ZENG Xiang-jun. Attenuating effects and mechanisms of apelin-13 on aortic injuries in diabetic mice[J]. Acta Anatomica Sinica. 2018, 49(1): 81-86 https://doi.org/10.16098/j.issn.0529-1356.2018.01.013

References

[1]Bhatt MP, Lim YC, Ha KS. C-peptide replacement therapy as an emerging strategy for preventing diabetic vasculopathy[J]. Cardiovasc Res,2014, 104(02): 234-244.
[2]Hu YH, Hou J, Zheng DZh, et al. Protection and mechanism of shenqi compound for diabetic angiopathy model rats[J]. Chinese Journal of Integrated Traditional and Western Medicine,2014, 34(9): 1078-1085. (in Chinese)
呼永河,侯君,郑德志,等. 参芪复方对糖尿病模型大鼠血管病变的保护作用及机制[J]. 中国中西医结合杂志,  2014, 34(9): 1078-1085. 
[3] Huang S, Chen L, Lu L, et al. The apelin-APJ axis: A novel potential therapeutic target for organ fibrosis[J]. Clin Chim Acta, 2016, 456: 8188.
[4]Wang LY, Ding JX, Zhang DL, et al. Apelin/APJ and organ fibrosis[J]. Chinese General Practice, 2013, 16(7): 2424-2426. (in Chinese)
王丽妍,丁嘉祥,张东亮,等. Apelin/APJ系统与器官纤维化关系的研究进展[J]. 中国全科医学, 2013, 16(7): 2424-2426. 
[5]Wu D, He L, Chen L. Apelin/APJ system: a promising therapy target for hypertension[J]. Mol Biol Rep,2014, 41(10): 6691-6703.
[6]Kuai M, Li Y, Sun X, et al. A novel formula Sang-Tong-Jian improves glycometabolism and ameliorates insulin resistance by activating PI3K/AKT pathway in type 2 diabetic KKAy mice[J]. Biomed Pharmacother,2016, 84: 1585-1594.
[7]Yin H, Wang W, Yu W, et al. Changes in synaptic plasticity and glutamate receptors in type 2 diabetic KK-Ay mice[J]. J Alzheimers Dis,2017,57(4):1207-1220.
[8]Wang L, Zhao XC, Cui W, et al. Genetic and pharmacologic inhibition of the chemokine receptor CXCR2 prevents experimental hypertension and vascular dysfunction[J]. Circulation, 2016, 134(18): 1353-1368.
[9]Zhang BH, Guo CX, Wang HX, et al. Cardioprotective effects of adipokine apelin on myocardial infarction[J]. Heart Vessels, 2014, 29(5): 679-689.
[10]Wei ShN, Zeng XJ, Li HH. Improvement of masson staining in renal fibrosis of mice[J]. Acta Anatomica Sinica, 2013,44(4): 576-579. (in Chinese)
魏胜男,曾翔俊,李汇华. 小鼠肾脏纤维化Masson染色方法的改进[J]. 解剖学报, 2013,44(4): 576-579. 
[11]Ren J, Yang M, Qi G, et al. Proinflammatory protein CARD9 is essential for infiltration of monocytic fibroblast precursors and cardiac fibrosis caused by Angiotensin Ⅱ infusion[J]. Am J Hypertens, 2011, 24(6): 701-707.
[12]Yang K, Zhang TP, Tian C, et al. Carboxyl terminus of heat shock protein 70-interacting protein inhibits angiotensin Ⅱ-induced cardiac remodeling[J]. Am J Hypertens, 2012, 25(9): 994-1001.
[13]Hu H, He L, Li L, et al. Apelin/APJ system as a therapeutic target in diabetes and its complications[J]. Mol Genet Metab, 2016, 119(1-2): 20-27.
[14]Li DD, Zhang Zh, Liu ZD. Mechanism on prevention and treatment effect of Apelin-13 for myocardial fibrosisin type 2 diabetic rats [J]. Chinese Journal of Arteriosclerosis, 2014, 22(10): 1009-1014. (in Chinese)
林朵朵,张志,刘紫东. Apelin-13对2型糖尿病大鼠心肌纤维化防治的作用机制[J]. 中国动脉硬化杂志, 2014, 22(10): 1009-1014. 
[15]Li HQ, Zhang Zh, Jiao H, et al. Effect of apelin-13 on myocardial fibrosis in diabetic rats[J]. Academic Journal of Pla Postgraduate Medical School, 2013, 34(6): 621-624. (in Chinese)
里宏晴,张志,焦慧,等. Apelin-13对糖尿病大鼠心肌纤维化的影响[J]. 解放军医学院学报, 2013, 34(6): 621-624. 
[16]Xu R, Zhang ZZ, Chen LJ, et al. Ascending aortic adventitial remodeling and fibrosis are ameliorated with Apelin-13 in rats after TAC via suppression of the miRNA-122 and LGR4-beta-catenin signaling[J]. Peptides, 2016, 86: 85-94.
[17]Wei C, Shen E, Hu B. Advances in research of macroangiopathy in diabetes[J]. Journal of Shanghai Jiaotong University (Medical Science),  2010, 30(10): 1292-1296. (in Chinese)
魏聪,申锷,胡兵. 糖尿病大血管病变的研究进展[J]. 上海交通大学学报(医学版), 2010, 30(10): 1292-1296. 
[18]Wang J, Xu Y, Yuan XK, et al. TGF-β1 and CTGF expression and intervention of traditional Chinese medicine in experimental diabetic rats of macrovascular disease[J]. Tianjin Journal of Traditional Chinese Medicine, 2012, 29(3): 266-269. (in Chinese)
王军,徐阳,袁向科,等. 实验性糖尿病鼠大血管病变TGF-β1和CTGF的表达及中药的干预作用[J]. 天津中医药, 2012, 29(3): 266-269. 
[19]Kovanecz I, Nolazco G, Ferrini MG, et al. Early onset of fibrosis within the arterial media in a rat model of type 2 diabetes mellitus with erectile dysfunction[J]. BJU Int, 2009, 103(10): 1396-1404.
[20]Robert L, Jacob MP, Frances C, et al. Interaction between elastin and elastases and its role in the aging of the arterial wall, skin and other connective tissues[J]. A Review Mech Ageing Dev,1984, 28(2-3):155-166.
[21]Zeng WJ, Chen Ch, Huang ShA. Role of transforming growth factor-β and its signaling transduction in the process of vascular fibrosis[J]. Medical Recapitulate, 2008,14(3): 332-334. (in Chinese)
曾伟杰,陈灿,黄石安. 血管纤维化过程中TGF-β及信号转导的作用[J]. 医学综述, 2008,14(3): 332-334. 
[22]Wang YN, Lin C, Ren Q, et al. Astragaloside effect on TGF-β1, SMAD2/3, and α-SMA expression in the kidney tissues of diabetic KKAy mice[J]. Int J Clin Exp Pathol, 2015, 8(6):6828-6834.
PDF(757 KB)

Accesses

Citation

Detail

Sections
Recommended

/