Chinese Journal of Tissue Engineering Research ›› 2026, Vol. 30 ›› Issue (36): 9560-9565.doi: 10.12307/2026.902
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Huang Weiqing, Liao Weimin, Du Tingting, Tian Xin
Received:2025-10-15
Revised:2026-03-06
Online:2026-12-28
Published:2026-05-23
About author:Huang Weiqing, MS, Attending physician, Affiliated Hospital of Jiangxi University of Traditional Chinese Medicine, Nanchang 330006, Jiangxi Province, China
Supported by:CLC Number:
Huang Weiqing, Liao Weimin, Du Tingting, Tian Xin. Atractylenolide III ameliorates myocardial injury in a mouse model of myocardial infarction[J]. Chinese Journal of Tissue Engineering Research, 2026, 30(36): 9560-9565.
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2.3 白术内酯Ⅲ对心肌组织病理变化的影响 假手术组小鼠心肌组织形态基本正常,心肌细胞结构完整,细胞之间连接紧密,没有炎性细胞浸润;模型组小鼠心肌细胞肿胀并破裂,纤维排列紊乱,伴随着大量炎性细胞浸润;白术内酯Ⅲ各剂量组和阿司匹林组小鼠心肌损伤程度明显减轻,细胞破裂减少,局部散在的炎性细胞浸润减少,其中白术内酯Ⅲ高剂量组和阿司匹林组减轻效果最为明显,因此采用60 mg/kg白术内酯Ⅲ进行后续实验,见图1。 2.4 白术内酯Ⅲ对小鼠心肌梗死面积百分数的影响 与假手术组相比,其余各组小鼠心肌梗死面积百分数升高,与模型组相比,白术内酯Ⅲ高剂量组和阿司匹林组小鼠心肌梗死面积百分数降低(P < 0.05),白术内酯Ⅲ高剂量组和阿司匹林组心肌梗死面积百分数比较差异无显著性意义(P > 0.05),见表3,图2。"
| [1] JINAWONG K, PIAMSIRI C, APAIJAI N, et al. Modulating Mitochondrial Dynamics Mitigates Cognitive Impairment in Rats with Myocardial Infarction. Curr Neuropharmacol. 2024;22(10):1749-1760. [2] NAIR RS, SOBHAN PK, SHENOY SJ, et al. Mitigation of Fibrosis after Myocardial Infarction in Rats by Using a Porcine Cholecyst Extracellular Matrix. Comp Med. 2023;73(4):312-323. [3] SHARMA K, KONAT A, PRAJAPATI P, et al. Can the Location of Angina Predict the Site of Coronary Artery Occlusion in Acute Myocardial Infarction? - The ACOLYTE Study. J Saudi Heart Assoc. 2025;37(2):10. [4] DENG G, YANG Y, QING O, et al. Chrysin Attenuates Myocardial Cell Apoptosis in Mice. Cardiovasc Toxicol. 2025;25(11):1791-1806. [5] ZHU D, ZHANG X, FANG Y, et al. Identification of a lactylation-related gene signature as the novel biomarkers for early diagnosis of acute myocardial infarction. Int J Biol Macromol. 2024;282(Pt 6):137431. [6] JIA J, ZHAO XA, TAO SM, et al. Icariin improves cardiac function and remodeling via the TGF-β1/Smad signaling pathway in rats following myocardial infarction. Eur J Med Res. 2023;28(1):607. [7] HU D, LI R, LI Y, et al. Inflammation-Targeted Nanomedicines Alleviate Oxidative Stress and Reprogram Macrophages Polarization for Myocardial Infarction Treatment. Adv Sci (Weinh). 2024;11(21):e2308910. [8] 刘棣文,何莉莉,崔娜,等.白术化学成分、药理作用研究进展及质量标志物预测[J].中医药信息,2024,41(1):65-78. [9] LI X, ZHU X, JIANG S, et al. Atractylenolide-III restrains cardiac fibrosis after myocardial infarction via suppression of the RhoA/ROCK1 and ERK1/2 pathway. Int Immunopharmacol. 2025;145:113825. [10] CAO M, YU C, YAO Z, et al. Atractylodesin III maintains mitochondrial function and inhibits caspase-3 activity to reverse apoptosis of cardiomyocytes in AMI rats. Int J Clin Exp Pathol. 2019;12(1):198-204. [11] ZENG Q, ZHANG LD, CHEN QF, et al. Effects of Mitochondrial ATP-Sensitive Potassium Channel in Rats with Acute Myocardial Infarction and Its Association with the AKT/mTOR Pathway.Anatol J Cardiol. 2023;27(2):88-99. [12] LU M, ZHANG Y, MA X, et al. Shenmai Injection Alleviates Myocardial Ferroptosis via Activating the AKT1/mTOR Pathway in Rats with Acute Myocardial Infarction.Ann Clin Lab Sci. 2024;54(1):35-46. [13] 杨文龙.白术内酯Ⅱ和Ⅲ预处理对小鼠心梗后心脏保护作用研究[D].上海:上海交通大学,2017. [14] 马伟谦,刘明,魏娟,等.白术内酯I调节HIF-1α/VEGF信号通路对急性心肌梗死大鼠心肌损伤的影响[J].河北医学,2024,30(4):544-549. [15] SUN M, MAO S, WU C, et al. Piezo1-Mediated Neurogenic Inflammatory Cascade Exacerbates Ventricular Remodeling After Myocardial Infarction. Circulation. 2024;149(19):1516-1533. [16] LI B, LIANG C, LV Y, et al. MiR-22 inhibits myocardial fibrosis in rats with myocardial infarction by targeting PTEN/Akt/mTOR signaling pathway. Cell Mol Biol (Noisy-le-grand). 2024;70(1):28-33. [17] NOVIANTI E, KATSUURA G, KAWAMURA N, et al. Atractylenolide-III suppresses lipopolysaccharide-induced inflammation via downregulation of toll-like receptor 4 in mouse microglia. Heliyon. 2021;7(10):e08269. [18] ZHANG L, YI H, JIANG D, et al. Protective effects of Atractylenolide III on inflammation and oxidative stress in ovalbumin-induced asthma mice and its possible mechanisms. Gen Physiol Biophys. 2021;40(2):137-146. [19] ZHANG D, LI X, SONG D, et al. Atractylenolide III induces apoptosis by regulating the Bax/Bcl-2 signaling pathway in human colorectal cancer HCT-116 Cells in vitro and in vivo. Anticancer Drugs. 2022;33(1):30-47. [20] LI S, YANG M, ZHAO Y, et al. Deletion of ASPP1 in myofibroblasts alleviates myocardial fibrosis by reducing p53 degradation. Nat Commun. 2024;15(1):8425. [21] TANI H, SADAHIRO T, YAMADA Y, et al. Direct Reprogramming Improves Cardiac Function and Reverses Fibrosis in Chronic Myocardial Infarction. Circulation. 2023;147(3):223-238. [22] CHEN G, XU H, XU T, et al. Calycosin reduces myocardial fibrosis and improves cardiac function in post-myocardial infarction mice by suppressing TGFBR1 signaling pathways. Phytomedicine. 2022;104:154277. [23] HU S, GAO Y, GAO R,et al. The selective STING inhibitor H-151 preserves myocardial function and ameliorates cardiac fibrosis in murine myocardial infarction. Int Immunopharmacol. 2022;107:108658. [24] YE T, YAN Z, CHEN C, et al. Lactoferrin attenuates cardiac fibrosis and cardiac remodeling after myocardial infarction via inhibiting mTORC1/S6K signaling pathway. Theranostics. 2023;13(10):3419-3433. [25] WANG M, LIU X, DING B, et al. SGLT2 inhibitor Dapagliflozin alleviates cardiac dysfunction and fibrosis after myocardial infarction by activating PXR and promoting angiogenesis. Biomed Pharmacother. 2024;177:116994. [26] 李璐.急性心肌梗死患者的梗死部位、脑钠肽的水平与其心肌梗死面积及预后的关系[J].当代医药论丛,2018,16(10):65-66. [27] CAI S, ZHAO M, ZHOU B, et al. Mitochondrial dysfunction in macrophages promotes inflammation and suppresses repair after myocardial infarction. J Clin Invest. 2023;133(4):e159498. [28] HUYNH P, HOFFMANN JD, GERHARDT T, et al. Myocardial infarction augments sleep to limit cardiac inflammation and damage. Nature. 2024;635(8037): 168-177. [29] LIU X, ZHANG W, LUO J, et al. TRIM21 deficiency protects against atrial inflammation and remodeling post myocardial infarction by attenuating oxidative stress. Redox Biol. 2023;62:102679. [30] ZHANG G, HAN X, XU T, et al. Buyang Huanwu Decoction suppresses cardiac inflammation and fibrosis in mice after myocardial infarction through inhibition of the TLR4 signalling pathway. J Ethnopharmacol. 2024;320:117388. [31] ZHU H, LIU X, DING Y, et al. IL-6 coaxes cellular dedifferentiation as a pro-regenerative intermediate that contributes to pericardial ADSC-induced cardiac repair. Stem Cell Res Ther. 2022;13(1):44. [32] CINAR I, YAYLA M, TAVACI T, et al. In Vivo and In Vitro Cardioprotective Effect of Gossypin Against Isoproterenol-Induced Myocardial Infarction Injury. Cardiovasc Toxicol. 2022;22(1):52-62. [33] 崔怀仁,郭瑞.心肌损伤标志物检测在急性心肌梗死早期诊断中的应用评价[J].现代医学与健康研究电子杂志,2024,8(12):120-122. [34] LV F, XIE L, LI L, et al. LMK235 ameliorates inflammation and fibrosis after myocardial infarction by inhibiting LSD1-related pathway. Sci Rep. 2024;14(1):23450. [35] ZHANG Q, WANG L, WANG S, et al. Signaling pathways and targeted therapy for myocardial infarction. Signal Transduct Target Ther. 2022;7(1):78. [36] HAN X, ZHANG G, PANG M, et al. Taohong siwu decoction suppresses oxidative stress-induced myocardial apoptosis post-myocardial infarction by inhibiting PTEN pathway. Phytomedicine. 2024;135:155388. [37] 桂杨.白术内酯Ⅲ通过抑制心肌自噬和凋亡对心肌梗死小鼠的保护作用研究[D].武汉:华中科技大学,2022. [38] QI S, YI G, YU K, et al. The Role of HSP90 Inhibitors in the Treatment of Cardiovascular Diseases.Cells. 2022;11(21):3444. [39] QIN GW, LU P, PENG L, et al. Ginsenoside Rb1 Inhibits Cardiomyocyte Autophagy via PI3K/Akt/mTOR Signaling Pathway and Reduces Myocardial Ischemia/Reperfusion Injury. Am J Chin Med. 2021;49(8):1913-1927. [40] LI JP, QIU S, TAI GJ, et al. NLRP3 inflammasome-modulated angiogenic function of EPC via PI3K/ Akt/mTOR pathway in diabetic myocardial infarction. Cardiovasc Diabetol. 2025;24(1):6. [41] GUO S, QI X, ZHANG L, et al. Plumbagin improves myocardial fibrosis after myocardial infarction by inhibiting the AKT/mTOR pathway to upregulate autophagy levels. Int Immunopharmacol. 2025;148:114086. |
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