Modified Hu-lu-ba-wan protects diabetic glomerular podocytes via promoting PKM2-mediated mitochondrial dynamic homeostasis

被引:8
作者
Gong, Minmin [1 ]
Guo, Yujin [1 ]
Dong, Hui [1 ]
Wu, Fan [2 ]
He, Qiongyao [1 ]
Gong, Jing [2 ]
Lu, Fuer [1 ]
机构
[1] Huazhong Univ Sci & Technol, Tongji Hosp, Tongji Med Coll, Inst Integrated Tradit Chinese & Western Med, Wuhan, Peoples R China
[2] Huazhong Univ Sci & Technol, Tongji Hosp, Tongji Med Coll, Dept Integrated Tradit Chinese & Western Med, Wuhan, Peoples R China
关键词
Modified Hu-lu-ba-wan; Diabetic kidney disease; Podocyte; Mitochondrial dynamic homeostasis; PKM2; KIDNEY-DISEASE; DYSFUNCTION; ACTIVATION; BERBERINE; APOPTOSIS; FISSION; PROGRESSION;
D O I
10.1016/j.phymed.2023.155247
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background: Mitochondrial dysfunction is implicated in the progression of diabetic kidney disease (DKD). Damaged mitochondria produce excessive reactive oxygen species (ROS) that can cause apoptosis. Mitochondrial dynamics control the quality and function of mitochondria. Targeting mitochondrial dynamics may reduce ROS-induced apoptosis and improve renal injury in DKD. Modified Hu-lu-ba-wan (MHLBW) shows distinct clinical effects on DKD patients, which are related to its role in antioxidant stress modulation. However, the relevant mechanisms of MHLBW have not been clearly explored. Purpose: This study was aimed to evaluate the therapeutic effects of MHLBW on spontaneous DKD mice and clarify the potential mechanisms. Methods: The main components of MHLBW were identified by HPLC. Using db/db mice as DKD models, we evaluated the therapeutic effects of MHLBW on mice after an 8-week administration. We investigated the mo-lecular mechanism of MHLBW in regulating mitochondrial dynamic homeostasis, podocyte apoptosis, and glomerular damage. After that, computational docking analysis and in vitro experiments were conducted for further mechanism verification. Results: Intragastric administration of MHLBW for 8 weeks in db/db mice significantly improved glucose metabolism, basement membrane thickening, mesangial expansion, glomerular fibrosis, and podocyte injury. MHLBW can reverse podocyte apoptosis via promoting mitochondrial dynamic homeostasis, which was related to regulating the PKM2/ PGC-1 alpha/Opa1 pathway. Berberine (BBR), one of the components of MHLBW, exhibited preeminent affinity with PKM2 as reflected by computational docking analysis. In cultured podocytes, BBR can also prevent apoptosis by promoting PKM2-mediated mitochondrial dynamic homeostasis. Conclusion: Our study demonstrates that MHLBW can treat DKD by inhibiting glomerular damage and podocyte apoptosis through positive regulation of PKM2-mediated mitochondrial dynamic homeostasis. These results may provide a potential strategy against DKD.
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页数:15
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共 51 条
  • [1] Kidney Disease and Increased Mortality Risk in Type 2 Diabetes
    Afkarian, Maryam
    Sachs, Michael C.
    Kestenbaum, Bryan
    Hirsch, Irl B.
    Tuttle, Katherine R.
    Hinnmelfarb, Jonathan
    de Boer, Ian H.
    [J]. JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2013, 24 (02): : 302 - 308
  • [2] Dynamin-Related Protein 1 Deficiency Improves Mitochondrial Fitness and Protects against Progression of Diabetic Nephropathy
    Ayanga, Bernard A.
    Badal, Shawn S.
    Wang, Yin
    Galvan, Daniel L.
    Chang, Benny H.
    Schumacker, Paul T.
    Danesh, Farhad R.
    [J]. JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2016, 27 (09): : 2733 - 2747
  • [3] Protective effect of the tunneling nanotube-TNFAIP2/M-sec system on podocyte autophagy in diabetic nephropathy
    Barutta, F.
    Bellini, S.
    Kimura, S.
    Hase, K.
    Corbetta, B.
    Corbelli, A.
    Fiordaliso, F.
    Bruno, S.
    Biancone, L.
    Barreca, A.
    Papotti, M. G.
    Hirsh, E.
    Martini, M.
    Gambino, R.
    Durazzo, M.
    Ohno, H.
    Gruden, G.
    [J]. AUTOPHAGY, 2023, 19 (02) : 505 - 524
  • [4] Emerging connectivity of programmed cell death pathways and its physiological implications
    Bedoui, Sammy
    Herold, Marco J.
    Strasser, Andreas
    [J]. NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2020, 21 (11) : 678 - 695
  • [5] The Role of PGC-1α-Mediated Mitochondrial Biogenesis in Neurons
    Chen, Mengjie
    Yan, Ruyu
    Luo, Jiansheng
    Ning, Jiaqi
    Zhou, Ruiling
    Ding, Lingling
    [J]. NEUROCHEMICAL RESEARCH, 2023, 48 (09) : 2595 - 2606
  • [6] Pharmacological Targeting of Mitochondria in Diabetic Kidney Disease
    Cleveland, Kristan H.
    Schnellmann, Rick G.
    [J]. PHARMACOLOGICAL REVIEWS, 2023, 75 (02) : 250 - 262
  • [7] Mapping time-course mitochondrial adaptations in the kidney in experimental diabetes
    Coughlan, Melinda T.
    Tuong-Vi Nguyen
    Penfold, Sally A.
    Higgins, Gavin C.
    Thallas-Bonke, Vicki
    Tan, Sih Min
    Van Bergen, Nicole J.
    Sourris, Karly C.
    Harcourt, Brooke E.
    Thorburn, David R.
    Trounce, Ian A.
    Cooper, Mark E.
    Forbes, Josephine M.
    [J]. CLINICAL SCIENCE, 2016, 130 (09) : 711 - 720
  • [8] Research Progress on Mechanism of Podocyte Depletion in Diabetic Nephropathy
    Dai, Haoran
    Liu, Qingquan
    Liu, Baoli
    [J]. JOURNAL OF DIABETES RESEARCH, 2017, 2017
  • [9] Sirt6 Suppresses High Glucose-Induced Mitochondrial Dysfunction and Apoptosis in Podocytes through AMPK Activation
    Fan, Yanqin
    Yang, Qian
    Yang, Yingjie
    Gao, Zhao
    Ma, Yiqiong
    Zhang, Lu
    Liang, Wei
    Ding, Guohua
    [J]. INTERNATIONAL JOURNAL OF BIOLOGICAL SCIENCES, 2019, 15 (03): : 701 - 713
  • [10] Mitochondrial Dysfunction in Individuals with Diabetic Kidney Disease: A Systematic Review
    Flemming, Nicole
    Pernoud, Laura
    Forbes, Josephine
    Gallo, Linda
    [J]. CELLS, 2022, 11 (16)