Volume 13 Issue 2
Mar.  2023
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Ya Zhao, Yanwei Wang, Yuying Wu, Cimin Tao, Rui Xu, Yong Chen, Linghui Qian, Tengfei Xu, Xiaoyuan Lian. PKM2-mediated neuronal hyperglycolysis enhances the risk of Parkinson's disease in diabetic rats[J]. Journal of Pharmaceutical Analysis, 2023, 13(2): 187-200. doi: 10.1016/j.jpha.2022.11.006
Citation: Ya Zhao, Yanwei Wang, Yuying Wu, Cimin Tao, Rui Xu, Yong Chen, Linghui Qian, Tengfei Xu, Xiaoyuan Lian. PKM2-mediated neuronal hyperglycolysis enhances the risk of Parkinson's disease in diabetic rats[J]. Journal of Pharmaceutical Analysis, 2023, 13(2): 187-200. doi: 10.1016/j.jpha.2022.11.006

PKM2-mediated neuronal hyperglycolysis enhances the risk of Parkinson's disease in diabetic rats

doi: 10.1016/j.jpha.2022.11.006
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This work was supported by the National Natural Science Foundation of China (Grant Nos.: 82074039 and 82204584). We thank Beibei Wang of the Center of Cryo-Electron Microscopy (CCEM), Zhejiang University, for her technical assistance in Transmission Electron Microscopy. We appreciate the Core Facilities of Zhejiang University School of Medicine for providing facilities.

  • Received Date: Jun. 28, 2022
  • Accepted Date: Nov. 16, 2022
  • Rev Recd Date: Nov. 15, 2022
  • Publish Date: Mar. 07, 2023
  • Epidemiological and animal studies indicate that pre-existing diabetes increases the risk of Parkinson's disease (PD). However, the mechanisms underlying this association remain unclear. In the present study, we found that high glucose (HG) levels in the cerebrospinal fluid (CSF) of diabetic rats might enhance the effect of a subthreshold dose of the neurotoxin 6-hydroxydopamine (6-OHDA) on the development of motor disorders, and the damage to the nigrostriatal dopaminergic neuronal pathway. In vitro, HG promoted the 6-OHDA-induced apoptosis in PC12 cells differentiated to neurons with nerve growth factor (NGF) (NGF-PC12). Metabolomics showed that HG promoted hyperglycolysis in neurons and impaired tricarboxylic acid cycle (TCA cycle) activity, which was closely related to abnormal mitochondrial fusion, thus resulting in mitochondrial loss. Interestingly, HG-induced upregulation of pyruvate kinase M2 (PKM2) combined with 6-OHDA exposure not only mediated glycolysis but also promoted abnormal mitochondrial fusion by upregulating the expression of MFN2 in NGF-PC12 cells. In addition, we found that PKM2 knockdown rescued the abnormal mitochondrial fusion and cell apoptosis induced by HG+6-OHDA. Furthermore, we found that shikonin (SK), an inhibitor of PKM2, restored the mitochondrial number, promoted TCA cycle activity, reversed hyperglycolysis, enhanced the tolerance of cultured neurons to 6-OHDA, and reduced the risk of PD in diabetic rats. Overall, our results indicate that diabetes promotes hyperglycolysis and abnormal mitochondrial fusion in neurons through the upregulation of PKM2, leading to an increase in the vulnerability of dopaminergic neurons to 6-OHDA. Thus, the inhibition of PKM2 and restoration of mitochondrial metabolic homeostasis/pathways may prevent the occurrence and development of diabetic PD.
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  • P. Fang, S.A. Kazmi, K.G. Jameson, et al., The microbiome as a modifier of neurodegenerative disease risk, Cell Host Microbe 28 (2020) 201-222
    K. Zhang, S. Zhu, J. Li, et al., Targeting autophagy using small-molecule compounds to improve potential therapy of Parkinson's disease, Acta Pharm. Sin. B 11 (2021) 3015-3034
    Z. Zhao, F. Li, J. Ning, et al., Novel compound FLZ alleviates rotenone-induced PD mouse model by suppressing TLR4/MyD88/NF-κB pathway through microbiota-gut-brain axis, Acta Pharm. Sin. B 11 (2021) 2859-2879
    C. Estes, Q.M. Anstee, M.T. Arias-Loste, et al., Modeling NAFLD disease burden in China, France, Germany, Italy, Japan, Spain, United Kingdom, and United States for the period 2016-2030, J. Hepatol. 69 (2018) 896-904
    F. Yao, M. Zhang, L. Chen, 5'-Monophosphate-activated protein kinase (AMPK) improves autophagic activity in diabetes and diabetic complications, Acta Pharm. Sin. B 6 (2016) 20-25
    A. Moussa, J. Li, AMPK in myocardial infarction and diabetes: the yin/yang effect, Acta Pharm. Sin. B 2 (2012) 368-378
    P. Liu, L. Jiang, W. Kong, et al., PXR activation impairs hepatic glucose metabolism partly via inhibiting the HNF4α-GLUT2 pathway, Acta Pharm. Sin. B 12 (2022) 2391-2405
    J. Potashkin, X. Huang, C. Becker, et al., Understanding the links between cardiovascular disease and Parkinson's disease, Mov. Disord. 35 (2020) 55-74
    R. Brauer, L. Wei, T. Ma, et al., Diabetes medications and risk of Parkinson's disease: a cohort study of patients with diabetes, Brain 143 (2020) 3067-3076
    T. Foltynie, D. Athauda, Diabetes, BMI, and Parkinson's, Mov. Disord. 35 (2020) 201-203
    J.L.Y. Cheong, E. De Pablo-Fernandez, T. Foltynie, et al., The association between type 2 diabetes mellitus and Parkinson's disease, J. Parkinsons Dis. 10 (2020) 775-789
    O.R. Tamtaji, M. Taghizadeh, R. Daneshvar Kakhaki, et al., Clinical and metabolic response to probiotic administration in people with Parkinson's disease: a randomized, double-blind, placebo-controlled trial, Clin. Nutr. 38 (2019) 1031-1035
    B. Mahalakshmi, N. Maurya, S.D. Lee, et al., Possible neuroprotective mechanisms of physical exercise in neurodegeneration, Int. J. Mol. Sci. 21 (2020), 5895
    S. Kullmann, A. Kleinridders, D.M. Small, et al., Central nervous pathways of insulin action in the control of metabolism and food intake, Lancet Diabetes Endocrinol. 8 (2020) 524-534
    I. Martinez-Valbuena, I. Amat-Villegas, R. Valenti-Azcarate, et al., Interaction of amyloidogenic proteins in pancreatic β cells from subjects with synucleinopathies, Acta Neuropathol. 135 (2018) 877-886
    I. Martinez-Valbuena, R. Valenti-Azcarate, I. Amat-Villegas, et al., Mixed pathologies in pancreatic β cells from subjects with neurodegenerative diseases and their interaction with prion protein, Acta Neuropathol. Commun. 9 (2021), 64
    B.C. Melnik, Synergistic effects of milk-derived exosomes and galactose on α-synuclein pathology in Parkinson's disease and type 2 diabetes mellitus, Int. J. Mol. Sci. 22 (2021), 1059
    G. Pagano, S. Polychronis, H. Wilson, et al., Diabetes mellitus and Parkinson disease, Neurology 90 (2018) e1654-e1662
    P.H. Nguyen, A. Ramamoorthy, B.R. Sahoo, et al., Amyloid oligomers: a joint experimental/computational perspective on Alzheimer's disease, Parkinson's disease, type II diabetes, and Amyotrophic lateral sclerosis, Chem. Rev. 121 (2021) 2545-2647
    A. De Iuliis, E. Montinaro, G. Fatati, et al., Diabetes mellitus and Parkinson's disease: dangerous liaisons between insulin and dopamine, Neural Regen. Res. 17 (2022) 523-533
    S. Heinzel, D. Berg, T. Gasser, et al., Update of the MDS research criteria for prodromal Parkinson's disease, Mov. Disord. 34 (2019) 1464-1470
    N. Palacios, A. Ascherio, Reply to: diabetes and risk of Parkinson's disease, Mov. Disord. 28 (2013), 258
    S. Luo, B.C. Angelo, T. Chow, et al., Associations between exposure to gestational diabetes mellitus in utero and daily energy intake, brain responses to food cues, and Adiposity in children, Diabetes Care 44 (2021) 1185-1193
    L. Yang, Z. Chen, B. Li, et al., Multiple evidences for association between cognitive impairment and dysglycemia in Parkinson's disease: implications for clinical practice, Front. Aging Neurosci. 9 (2017), 355
    L.F. Burbulla, P. Song, J.R. Mazzulli, et al., Dopamine oxidation mediates mitochondrial and lysosomal dysfunction in Parkinson's disease, Science 357 (2017) 1255-1261
    L.K. Fonken, M.G. Frank, A.D. Gaudet, et al., Neuroinflammatory priming to stress is differentially regulated in male and female rats, Brain Behav. Immun. 70 (2018) 257-267
    S. Fakhri, S. Piri, S.Z. Moradi, et al., Phytochemicals targeting oxidative stress, interconnected neuroinflammatory, and neuroapoptotic pathways following radiation, Curr. Neuropharmacol. 20 (2022) 836-856
    E. De Pablo-Fernandez, R. Goldacre, J. Pakpoor, et al., Association between diabetes and subsequent Parkinson disease: a record-linkage cohort study, Neurology 91 (2018) e139-e142
    S.W. Lai, Reader response: association between diabetes and subsequent Parkinson disease: a record-linkage cohort study, Neurology 92 (2019), 925
    M. Kato, R. Natarajan, Epigenetics and epigenomics in diabetic kidney disease and metabolic memory, Nat. Rev. Nephrol. 15 (2019) 327-345
    C.J. Chiu, A. Taylor, Dietary hyperglycemia, glycemic index and metabolic retinal diseases, Prog. Retin. Eye Res. 30 (2011) 18-53
    D.R. Schmidt, R. Patel, D.G. Kirsch, et al., Metabolomics in cancer research and emerging applications in clinical oncology, CA. Cancer J. Clin. 71 (2021) 333-358
    L. Chen, W. Lu, L. Wang, et al., Metabolite discovery through global annotation of untargeted metabolomics data, Nat. Methods 18 (2021) 1377-1385
    H. Yuan, S. Sarre, G. Ebinger, et al., Histological, behavioural and neurochemical evaluation of medial forebrain bundle and striatal 6-OHDA lesions as rat models of Parkinson's disease, J. Neurosci. Methods 144 (2005) 35-45
    Y. Bi, Y. Zhu, M. Zhang, et al., Effect of shikonin on spinal cord injury in rats via regulation of HMGB1/TLR4/NF-kB signaling pathway, Cell. Physiol. Biochem. 43 (2017) 481-491
    S.P. Yun, T.I. Kam, N. Panicker, et al., Block of A1 astrocyte conversion by microglia is neuroprotective in models of Parkinson's disease, Nat. Med. 24 (2018) 931-938
    T. Chotibut, S. Meadows, E.A. Kasanga, et al., Ceftriaxone reduces L-dopa-induced dyskinesia severity in 6-hydroxydopamine Parkinson's disease model, Mov. Disord. 32 (2017) 1547-1556
    J.R. Cannon, V. Tapias, H.M. Na, et al., A highly reproducible rotenone model of Parkinson's disease, Neurobiol. Dis. 34 (2009) 279-290
    S. Fraioli, H.S. Crombag, A. Badiani, et al., Susceptibility to amphetamine-induced locomotor sensitization is modulated by environmental stimuli, Neuropsychopharmacology 20 (1999) 533-541
    B. Wiatrak, A. Kubis-Kubiak, A. Piwowar, et al., PC12 cell line: cell types, coating of culture vessels, differentiation and other culture conditions, Cells 9 (2020), 958
    F.Y. Wu, W.C. Liao, H.M. Chang, Comparison of antitumor activity of vitamins K1, K2 and K3 on human tumor cells by two (MTT and SRB) cell viability assays, Life Sci. 52 (1993) 804-1797
    X. Song, J. Liu, F. Kuang, et al., PDK4 dictates metabolic resistance to ferroptosis by suppressing pyruvate oxidation and fatty acid synthesis, Cell Rep. 34 (2021), 108767.
    L.Y. Zhang, R.T. Lin, H.R. Chen, et al., High glucose activated cardiac fibroblasts by a disruption of mitochondria-associated membranes, Front. Physiol. 12 (2021), 724470
    O. Cordero-Llana, B.C. Houghton, F. Rinaldi, et al., Enhanced efficacy of the CDNF/MANF family by combined intranigral overexpression in the 6-OHDA rat model of Parkinson's disease, Mol. Ther. 23 (2015) 244-254
    L. Cheng, L. Chen, X. Wei, et al., NOD2 promotes dopaminergic degeneration regulated by NADPH oxidase 2 in 6-hydroxydopamine model of Parkinson's disease, J. Neuroinflammation 15 (2018), 243
    M. Sever, M. Turkyilmaz, C. Sevinc, et al., Regenerative effects of peptide nanofibers in an experimental model of Parkinson's disease, Acta Biomater. 46 (2016) 79-90
    R.Y. Pan, L. He, J. Zhang, et al., Positive feedback regulation of microglial glucose metabolism by histone H4 lysine 12 lactylation in Alzheimer's disease, Cell Metabol. 34 (2022) 634-648.e6
    J. Chen, J. Xie, Z. Jiang, et al., Shikonin and its analogs inhibit cancer cell glycolysis by targeting tumor pyruvate kinase-M2, Oncogene 30 (2011) 4297-4306
    A. Franko, P. Huypens, S. Neschen, et al., Bezafibrate improves insulin sensitivity and metabolic flexibility in STZ-induced diabetic mice, Diabetes 65 (2016) 2540-2552
    F. Erendor, Y.E. Eksi, E.O. Sahin, et al., Lentivirus mediated pancreatic beta-cell-specific insulin gene therapy for STZ-induced diabetes, Mol. Ther. 29 (2021) 149-161
    I. Perez-Taboada, S. Alberquilla, E.D. Martin, et al., Diabetes causes dysfunctional dopamine neurotransmission favoring nigrostriatal degeneration in mice, Mov. Disord. 35 (2020) 1636-1648
    C. Deischinger, E. Dervic, M. Kaleta, et al., Diabetes mellitus is associated with a higher relative risk for Parkinson's disease in women than in men, J. Parkinsons Dis. 11 (2021) 793-800
    H. Chohan, K. Senkevich, R.K. Patel, et al., Type 2 diabetes as a determinant of Parkinson's disease risk and progression, Mov. Disord. 36 (2021) 1420-1429
    S.M. Jeong, K. Han, D. Kim, et al., Body mass index, diabetes, and the risk of Parkinson's disease, Mov. Disord. 35 (2020) 236-244
    H. Hwang, J. Zhang, K.A. Chung, et al., Glycoproteomics in neurodegenerative diseases, Mass Spectrom. Rev. 29 (2010) 79-125
    A. Laguna, H. Xicoy, E. Tolosa, et al., Serum metabolic biomarkers for synucleinopathy conversion in isolated REM sleep behavior disorder, NPJ. Parkinsons Dis. 7 (2021), 40
    T.J. Collier, N.M. Kanaan, J.H. Kordower, Aging and Parkinson's disease: different sides of the same coin?, Mov. Disord. 32 (2017) 983-990
    C.M. Labandeira, A. Fraga-Bau, D. Arias Ron, et al., Parkinson's disease and diabetes mellitus: common mechanisms and treatment repurposing, Neural Regen. Res. 17 (2022) 1652-1658
    P. Zhang, B. Tian, Metabolic syndrome: an important risk factor for Parkinson's disease, Oxid. Med. Cell. Longev. 2014 (2014), 729194
    B.C. Callaghan, H.T. Cheng, C.L. Stables, et al., Diabetic neuropathy: clinical manifestations and current treatments, Lancet Neurol. 11 (2012) 521-534
    D.W. Song, N. Xin, B.J. Xie, et al., Formation of a salsolinol-like compound, the neurotoxin, 1-acetyl-6,7-dihydroxy-1,2,3,4-tetrahydroisoquinoline, in a cellular model of hyperglycemia and a rat model of diabetes, Int. J. Mol. Med. 33 (2014) 736-742
    S.P. Martin, V. Fako, H. Dang, et al., PKM2 inhibition may reverse therapeutic resistance to transarterial chemoembolization in hepatocellular carcinoma, J. Exp. Clin. Cancer Res. 39 (2020), 99
    J. Lu, S.Y. Liu, J. Zhang, et al., Inhibition of BAG3 enhances the anticancer effect of shikonin in hepatocellular carcinoma, Am. J. Cancer Res. 11 (2021) 3575-3593
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