Models of hyperglycaemia in diabetes mellitus and its complications

Magliano, D. J. & Boyko, E. IDF Diabetes Atlas 10th edn (International Diabetes Federation, 2021).

ElSayed, N. A. et al. 2. Classification and diagnosis of diabetes: standards of care in diabetes — 2023. Diabetes Care 46, S19–S40 (2022).

Article 
PubMed Central 

Google Scholar 

Campbell, J. E. & Newgard, C. B. Mechanisms controlling pancreatic islet cell function in insulin secretion. Nat. Rev. Mol. Cell Biol. 22, 142–158 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Li, M. et al. Trends in insulin resistance: insights into mechanisms and therapeutic strategy. Signal. Transduct. Target. Ther. 7, 216 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Weir, G. C., Butler, P. C. & Bonner-Weir, S. The β-cell glucose toxicity hypothesis: attractive but difficult to prove. Metabolism 124, 154870 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Tomic, D., Shaw, J. E. & Magliano, D. J. The burden and risks of emerging complications of diabetes mellitus. Nat. Rev. Endocrinol. 18, 525–539 (2022).

Article 
PubMed 
PubMed Central 

Google Scholar 

Stern, D. et al. Sugar-sweetened soda consumption increases diabetes risk among Mexican women. J. Nutr. 149, 795–803 (2019).

Article 
PubMed 

Google Scholar 

den Biggelaar, L. J. C. J. et al. Association of artificially sweetened and sugar-sweetened soft drinks with β-cell function, insulin sensitivity, and type 2 diabetes: the Maastricht Study. Eur. J. Nutr. 59, 1717–1727 (2020).

Article 

Google Scholar 

Silbernagel, G. et al. Effects of 4-week very-high-fructose/glucose diets on insulin sensitivity, visceral fat and intrahepatic lipids: an exploratory trial. Br. J. Nutr. 106, 79–86 (2011).

Article 
CAS 
PubMed 

Google Scholar 

Olefsky, J. M. & Reaven, G. M. Insulin and glucose responses to identical oral glucose tolerance tests performed forty-eight hours apart. Diabetes 23, 449–453 (1974).

Article 
CAS 
PubMed 

Google Scholar 

Kolterman, O. G., Greenfield, M., Reaven, G. M., Saekow, M. & Olefsky, J. M. Effect of a high carbohydrate diet on insulin binding to adipocytes and on insulin action in vivo in man. Diabetes 28, 731–745 (1979).

Article 
CAS 
PubMed 

Google Scholar 

Aeberli, I. et al. Moderate amounts of fructose consumption impair insulin sensitivity in healthy young men. Diabetes Care 36, 150–156 (2013).

Article 
CAS 
PubMed 

Google Scholar 

Harwood, H. J., Listrani, P. & Wagner, J. D. Nonhuman primates and other animal models in diabetes research. J. Diabetes Sci. Technol. 6, 503–514 (2012).

Article 
PubMed 
PubMed Central 

Google Scholar 

Yoshioka, M., Kayo, T., Ikeda, T. & Koizuni, A. A novel locus, mody4, distal to D7Mit189 on chromosome 7 determines early-onset NIDDM in nonobese C57BL/6 (Akita) mutant mice. Diabetes 46, 887–894 (1997).

Article 
CAS 
PubMed 

Google Scholar 

Heinke, S. et al. Diabetes induction by total pancreatectomy in minipigs with simultaneous splenectomy: a feasible approach for advanced diabetes research. Xenotransplantation 23, 405–413 (2016).

Article 
PubMed 

Google Scholar 

King, A. J. The use of animal models in diabetes research. Br. J. Pharmacol. 166, 877–894 (2012).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

King, A. & Bowe, J. Animal models for diabetes: understanding the pathogenesis and finding new treatments. Biochem. Pharmacol. 99, 1–10 (2016).

Article 
CAS 
PubMed 

Google Scholar 

Masiello, P. Animal models of type 2 diabetes with reduced pancreatic β-cell mass. Int. J. Biochem. Cell Biol. 38, 873–893 (2006).

Article 
CAS 
PubMed 

Google Scholar 

Ghasemi, A., Khalifi, S. & Jedi, S. Streptozotocin-nicotinamide-induced rat model of type 2 diabetes (review). Acta Physiol. Hung. 101, 408–420 (2014).

Article 
CAS 
PubMed 

Google Scholar 

Szkudelski, T. Streptozotocin–nicotinamide-induced diabetes in the rat. Characteristics of the experimental model. Exp. Biol. Med. 237, 481–490 (2012).

Article 
CAS 

Google Scholar 

Radenković, M., Stojanović, M. & Prostran, M. Experimental diabetes induced by alloxan and streptozotocin: the current state of the art. J. Pharmacol. Toxicol. Methods 78, 13–31 (2016).

Article 
PubMed 

Google Scholar 

Furman, B. L. Streptozotocin-induced diabetic models in mice and rats. Curr. Protoc. Pharmacol. 70, 5.47.1–5.47.20 (2015).

Article 
PubMed 

Google Scholar 

Sheng, Q. et al. Autophagy protects pancreatic beta cell mass and function in the setting of a high-fat and high-glucose diet. Sci. Rep. 7, 16348 (2017).

Article 
PubMed 
PubMed Central 

Google Scholar 

Murase, M. et al. Functional adenosine triphosphate-sensitive potassium channel is required in high-carbohydrate diet-induced increase in β-cell mass. J. Diabetes Investig. 10, 238–250 (2019).

Article 
CAS 
PubMed 

Google Scholar 

Rivière, S. et al. High fructose diet inducing diabetes rapidly impacts olfactory epithelium and behavior in mice. Sci. Rep. 6, 34011 (2016).

Article 
PubMed 
PubMed Central 

Google Scholar 

Sievenpiper, J. L., Souza, R. J. de, Kendall, C. W. C. & Jenkins, D. J. A. Is fructose a story of mice but not men? J. Am. Diet. Assoc. 111, 219–220 (2011).

Article 
PubMed 

Google Scholar 

Duh, E. J., Sun, J. K. & Stitt, A. W. Diabetic retinopathy: current understanding, mechanisms, and treatment strategies. JCI Insight 2, e93751 (2017).

Article 
PubMed 
PubMed Central 

Google Scholar 

Olivares, A. M. et al. Animal models of diabetic retinopathy. Curr. Diab. Rep. 17, 93 (2017).

Article 
PubMed 
PubMed Central 

Google Scholar 

Sergeys, J. et al. Longitudinal in vivo characterization of the streptozotocin-induced diabetic mouse model: focus on early inner retinal responses. Invest. Ophthalmol. Vis. Sci. 60, 807–822 (2019).

Article 
CAS 
PubMed 

Google Scholar 

Miloudi, K. et al. NOTCH1 signaling induces pathological vascular permeability in diabetic retinopathy. Proc. Natl Acad. Sci. USA 116, 4538–4547 (2019).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Sohn, E. H. et al. Retinal neurodegeneration may precede microvascular changes characteristic of diabetic retinopathy in diabetes mellitus. Proc. Natl Acad. Sci. USA 113, E2655–E2664 (2016).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Zheng, L. et al. Critical role of inducible nitric oxide synthase in degeneration of retinal capillaries in mice with streptozotocin-induced diabetes. Diabetologia 50, 1987–1996 (2007).

Article 
CAS 
PubMed 

Google Scholar 

Samuels, I. S., Bell, B. A., Pereira, A., Saxon, J. & Peachey, N. S. Early retinal pigment epithelium dysfunction is concomitant with hyperglycemia in mouse models of type 1 and type 2 diabetes. J. Neurophysiol. 113, 1085–1099 (2015).

Article 
CAS 
PubMed 

Google Scholar 

Cubillos, S. & Kazlauskas, A. Manifestation of pathology in animal models of diabetic retinopathy is delayed from the onset of diabetes. Int. J. Mol. Sci. 25, 1610 (2024).

Article 
PubMed 
PubMed Central 

Google Scholar 

Kinuthia, U. M., Wolf, A. & Langmann, T. Microglia and inflammatory responses in diabetic retinopathy. Front. Immunol. 11, 564077 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Forrester, J. V., Kuffova, L. & Delibegovic, M. The role of inflammation in diabetic retinopathy. Front. Immunol. 11, 583687 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Kang, Q. & Yang, C. Oxidative stress and diabetic retinopathy: molecular mechanisms, pathogenetic role and therapeutic implications. Redox Biol. 37, 101799 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Oshitari, T. Advanced glycation end-products and diabetic neuropathy of the retina. Int. J. Mol. Sci. 24, 2927 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Geraldes, P. & King, G. L. Activation of protein kinase C isoforms and its impact on diabetic complications. Circ. Res. 106, 1319–1331 (2010).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Volpe, C. M. O., Villar-Delfino, P. H., dos Anjos, P. M. F. & Nogueira-Machado, J. A. Cellular death, reactive oxygen species (ROS) and diabetic complications. Cell Death Dis. 9, 119 (2018).

Article 
PubMed 
PubMed Central 

Google Scholar 

Oshitari, T. The pathogenesis and therapeutic approaches of diabetic neuropathy in the retina. Int. J. Mol. Sci. 22, 9050 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Rakoczy, E. P. et al. Characterization of a mouse model of hyperglycemia and retinal neovascularization. Am. J. Pathol. 177, 2659–2670 (2010).

Article 
PubMed 
PubMed Central 

Google Scholar 

Lai, C.-M. et al. Long-term evaluation of AAV-mediated sFlt-1 gene therapy for ocular neovascularization in mice and monkeys. Mol. Ther. 12, 659–668 (2005).

Article 
CAS 
PubMed 

Google Scholar 

van Eeden, P. E. et al. Early vascular and neuronal changes in a VEGF transgenic mouse model of retinal neovascularization. Invest. Ophthalmol. Vis. Sci. 47, 4638–4645 (2006).

Article 
PubMed 

Google Scholar 

Gurley, S. B. et al. Impact of genetic background on nephropathy in diabetic mice. Am. J. Physiol. Renal Physiol. 290, F214–F222 (2006).

Article 
CAS 
PubMed 

Google Scholar 

Qi, Z. et al. Characterization of susceptibility of inbred mouse strains to diabetic nephropathy. Diabetes 54, 2628–2637 (2005).

Article 
CAS 
PubMed 

Google Scholar 

Sharma, K., McCue, P. & Dunn, S. R. Diabetic kidney disease in the db/db mouse. Am. J. Physiol. Renal Physiol. 284, F1138–F1144 (2003).

Article 
CAS 
PubMed 

Google Scholar 

Couturier, A. et al. Mouse models of diabetes-related ulcers: a systematic review and network meta-analysis. eBioMedicine 98, 104856 (2023).

Article 
PubMed 
PubMed Central 

Google Scholar 

Schmidt, R. E. et al. Non-obese diabetic mice rapidly develop dramatic sympathetic neuritic dystrophy: a new experimental model of diabetic autonomic neuropathy. Am. J. Pathol. 163, 2077–2091 (2003).

Article 
PubMed 
PubMed Central 

Google Scholar 

Rosso, C. et al. Impact of infarct location on functional outcome following endovascular therapy for stroke. J. Neurol. Neurosurg. Psychiatry 90, 313–319 (2019).

Article 
PubMed 

Google Scholar 

Bahader, G. A. et al. Type-I diabetes aggravates post-hemorrhagic stroke cognitive impairment by augmenting oxidative stress and neuroinflammation in mice. Neurochem. Int. 149, 105151 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Huynh, K. et al. Targeting the upregulation of reactive oxygen species subsequent to hyperglycemia prevents type 1 diabetic cardiomyopathy in mice. Free. Radic. Biol. Med. 60, 307–317 (2013).

Article 
CAS 
PubMed 

Google Scholar 

Bugger, H. et al. Type 1 diabetic Akita mouse hearts are insulin sensitive but manifest structurally abnormal mitochondria that remain coupled despite increased uncoupling protein 3. Diabetes 57, 2924–2932 (2008).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Barouch, L. A., Berkowitz, D. E., Harrison, R. W., O’Donnell, C. P. & Hare, J. M. Disruption of leptin signaling contributes to cardiac hypertrophy independently of body weight in mice. Circulation 108, 754–759 (2003).

Article 
CAS 
PubMed 

Google Scholar 

Semeniuk, L. M., Kryski, A. J. & Severson, D. L. Echocardiographic assessment of cardiac function in diabetic db/db and transgenic db/db-hGLUT4 mice. Am. J. Physiol. Heart Circ. Physiol. 283, H976–H982 (2002).

Article 
CAS 
PubMed 

Google Scholar 

Smith, C. C. T. et al. Leptin, the obesity-associated hormone, exhibits direct cardioprotective effects. Br. J. Pharmacol. 149, 5–13 (2006).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Hodgin, J. B. et al. Identification of cross-species shared transcriptional networks of diabetic nephropathy in human and mouse glomeruli. Diabetes 62, 299–308 (2012).

Article 
PubMed 
PubMed Central 

Google Scholar 

Lezoualc’h, F. et al. Diabetic cardiomyopathy: the need for adjusting experimental models to meet clinical reality. Cardiovasc. Res. 119, 1130–1145 (2023).

Article 
PubMed 

Google Scholar 

Lu, X. et al. Type 2 diabetes mellitus in adults: pathogenesis, prevention and therapy. Signal. Transduct. Target. Ther. 9, 262 (2024).

Article 
PubMed 
PubMed Central 

Google Scholar 

Scarr, D. et al. Ketone production and excretion even during mild hyperglycemia and the impact of sodium-glucose co-transporter inhibition in type 1 diabetes. Diabetes Res. Clin. Pract. 207, 111031 (2024).

Article 
CAS 
PubMed 

Google Scholar 

Rebelato, E., Santos, L. R., Carpinelli, A. R., Rorsman, P. & Abdulkader, F. Short-term high glucose culture potentiates pancreatic beta cell function. Sci. Rep. 8, 13061 (2018).

Article 
PubMed 
PubMed Central 

Google Scholar 

Liu, Y. Q., Moibi, J. A. & Leahy, J. L. Chronic high glucose lowers pyruvate dehydrogenase activity in islets through enhanced production of long chain acyl-CoA: prevention of impaired glucose oxidation by enhanced pyruvate recycling through the malate-pyruvate shuttle. J. Biol. Chem. 279, 7470–7475 (2004).

Article 
CAS 
PubMed 

Google Scholar 

Haythorne, E. et al. Altered glycolysis triggers impaired mitochondrial metabolism and mTORC1 activation in diabetic β-cells. Nat. Commun. 13, 6754 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Cheruiyot, A. et al. Sustained hyperglycemia specifically targets translation of mRNAs for insulin secretion. J. Clin. Invest. 134, e173280 (2024).

Article 
CAS 
PubMed Central 

Google Scholar 

Ritzel, R. A., Hansen, J. B., Veldhuis, J. D. & Butler, P. C. Induction of β-cell rest by a Kir6.2/SUR1-selective KATP-channel opener preserves β-cell insulin stores and insulin secretion in human islets cultured at high (11 mM) glucose. J. Clin. Endocrinol. Metab. 89, 795–805 (2004).

Article 
CAS 
PubMed 

Google Scholar 

Eizirik, D. L., Korbutt, G. S. & Hellerström, C. Prolonged exposure of human pancreatic islets to high glucose concentrations in vitro impairs the beta-cell function. J. Clin. Invest. 90, 1263–1268 (1992).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Marshak, S. et al. Impaired beta-cell functions induced by chronic exposure of cultured human pancreatic islets to high glucose. Diabetes 48, 1230–1236 (1999).

Article 
CAS 
PubMed 

Google Scholar 

Miyazaki, J.-I. et al. Establishment of a pancreatic β cell line that retains glucose-inducible insulin secretion: special reference to expression of glucose transporter isoforms. Endocrinology 127, 126–132 (1990).

Article 
CAS 
PubMed 

Google Scholar 

Hohmeier, H. E. et al. Isolation of INS-1-derived cell lines with robust ATP-sensitive K+ channel-dependent and -independent glucose-stimulated insulin secretion. Diabetes 49, 424–430 (2000).

Article 
CAS 
PubMed 

Google Scholar 

Scharfmann, R. et al. Development of a conditionally immortalized human pancreatic β cell line. J. Clin. Invest. 124, 2087–2098 (2014).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Blanchi, B. et al. EndoC-βH5 cells are storable and ready-to-use human pancreatic beta cells with physiological insulin secretion. Mol. Metab. 76, 101772 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Muller, Y. L., Wiedrich, K., Sutherland, J., Jones, D. & Baier, L. Assessing gene expression profile and insulin secretion in human beta cells (EndoC-BH3) under glucose exposure [abstract]. Diabetes 72, 1764-P (2023).

Article 

Google Scholar 

Furuichi, Y. et al. Excess glucose impedes the proliferation of skeletal muscle satellite cells under adherent culture conditions. Front. Cell Dev. Biol. 9, 640399 (2021).

Article 
PubMed 
PubMed Central 

Google Scholar 

Aas, V., Kase, E. T., Solberg, R., Jensen, J. & Rustan, A. C. Chronic hyperglycaemia promotes lipogenesis and triacylglycerol accumulation in human skeletal muscle cells. Diabetologia 47, 1452–1461 (2004).

Article 
CAS 
PubMed 

Google Scholar 

Badu-Mensah, A., Valinski, P., Parsaud, H., Hickman, J. J. & Guo, X. Hyperglycemia negatively affects IPSC-derived myoblast proliferation and skeletal muscle regeneration and function. Cells 11, 3674 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Nelson, B. A., Robinson, K. A. & Buse, M. G. High glucose and glucosamine induce insulin resistance via different mechanisms in 3T3-L1 adipocytes. Diabetes 49, 981–991 (2000).

Article 
CAS 
PubMed 

Google Scholar 

Han, C. Y. et al. Adipocyte-derived serum amyloid A3 and hyaluronan play a role in monocyte recruitment and adhesion. Diabetes 56, 2260–2273 (2007).

Article 
CAS 
PubMed 

Google Scholar 

Lustig, M., Gefen, A. & Benayahu, D. Adipogenesis and lipid production in adipocytes subjected to sustained tensile deformations and elevated glucose concentration: a living cell-scale model system of diabesity. Biomech. Model. Mechanobiol. 17, 903–913 (2018).

Article 
PubMed 

Google Scholar 

Shao, J., Qiao, L., Janssen, R. C., Pagliassotti, M. & Friedman, J. E. Chronic hyperglycemia enhances PEPCK gene expression and hepatocellular glucose production via elevated liver activating protein/liver inhibitory protein ratio. Diabetes 54, 976–984 (2005).

Article 
CAS 
PubMed 

Google Scholar 

Shiroyama, K., Moriwaki, K., Kusunoki, S., Saeki, N. & Yuge, O. Glucose loading during primary culture has opposite effects on the viability of hepatocytes exposed to potassium cyanide and to iodoacetic acid. Metab. Clin. Exp. 50, 342–348 (2001).

Article 
CAS 
PubMed 

Google Scholar 

Zong, H. et al. Hyperglycaemia-induced pro-inflammatory responses by retinal Müller glia are regulated by the receptor for advanced glycation end-products (RAGE). Diabetologia 53, 2656–2666 (2010).

Article 
CAS 
PubMed 

Google Scholar 

Saker, S., Stewart, E. A., Browning, A. C., Allen, C. L. & Amoaku, W. M. The effect of hyperglycaemia on permeability and the expression of junctional complex molecules in human retinal and choroidal endothelial cells. Exp. Eye Res. 121, 161–167 (2014).

Article 
CAS 
PubMed 

Google Scholar 

Nazeer, A. A. et al. Normal glucose enhances neuronal regeneration after lidocaine-induced injury. Br. J. Anaesth. 104, 482–486 (2010).

Article 
PubMed 

Google Scholar 

Chung, H.-H. The dysregulation of high glucose-induced iPSC-neural stem cells differentiation by caspase-1. Neurosci. Lett. 865, 138347 (2025).

Article 
CAS 
PubMed 

Google Scholar 

Chae, C. W. et al. High glucose-mediated VPS26a down-regulation dysregulates neuronal amyloid precursor protein processing and tau phosphorylation. Br. J. Pharmacol. 179, 3934–3950 (2022).

Article 
CAS 
PubMed 

Google Scholar 

Hauguel-de-Mouzon, S., Mrejen, C., Alengrin, F. & Van Obberghen, E. Glucose-induced stimulation of human insulin-receptor mRNA and tyrosine kinase activity in cultured cells. Biochem. J. 305, 119–124 (1995).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Li, W. et al. Hyperglycemia alters astrocyte metabolism and inhibits astrocyte proliferation. Aging Dis. 9, 674–684 (2018).

Article 
PubMed 
PubMed Central 

Google Scholar 

Muona, P., Peltonen, J., Jaakkola, S. & Uitto, J. Increased matrix gene expression by glucose in rat neural connective tissue cells in culture. Diabetes 40, 605–611 (1991).

Article 
CAS 
PubMed 

Google Scholar 

Almhanna, K., Wilkins, P. L., Bavis, J. R., Harwalkar, S. & Berti-Mattera, L. N. Hyperglycemia triggers abnormal signaling and proliferative responses in Schwann cells. Neurochem. Res. 27, 1341–1347 (2002).

Article 
CAS 
PubMed 

Google Scholar 

Han, H. J., Lee, Y. J., Park, S. H., Lee, J. H. & Taub, M. High glucose-induced oxidative stress inhibits Na+/glucose cotransporter activity in renal proximal tubule cells. Am. J. Physiol. Renal Physiol. 288, F988–F996 (2005).

Article 
CAS 
PubMed 

Google Scholar 

Wei, P. Z. et al. Metabolomic changes of human proximal tubular cell line in high glucose environment. Sci. Rep. 9, 16617 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar 

Jones, S. C., Saunders, H. J. & Pollock, C. A. High glucose increases growth and collagen synthesis in cultured human tubulointerstitial cells. Diabet. Med. 16, 932–938 (1999).

Article 
CAS 
PubMed 

Google Scholar 

De Nigris, V. et al. Short-term high glucose exposure impairs insulin signaling in endothelial cells. Cardiovasc. Diabetol. 14, 114 (2015).

Article 
PubMed 
PubMed Central 

Google Scholar 

Manea, A. et al. High-glucose-increased expression and activation of NADPH oxidase in human vascular smooth muscle cells is mediated by 4-hydroxynonenal-activated PPARα and PPARβ/δ. Cell Tissue Res. 361, 593–604 (2015).

Article 
CAS 
PubMed 

Google Scholar 

Irshad, Z. et al. Activation of the unfolded protein response in high glucose treated endothelial cells is mediated by methylglyoxal. Sci. Rep. 9, 7889 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar 

Mordel, P., Fontaine, F., Dupas, Q., Joubert, M. & Allouche, S. Glucose fluctuation promotes mitochondrial dysfunctions in the cardiomyocyte cell line HL-1. PLoS ONE 18, e0289475 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Yeshao, W., Gu, J., Peng, X., Nairn, A. C. & Nadler, J. L. Elevated glucose activates protein synthesis in cultured cardiac myocytes. Metab. Clin. Exp. 54, 1453–1460 (2005).

Article 
CAS 
PubMed 

Google Scholar 

Canfield, S. G. et al. High glucose attenuates anesthetic cardioprotection in stem-cell-derived cardiomyocytes: the role of reactive oxygen species and mitochondrial fission. Anesth. Analg. 122, 1269–1279 (2016).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Wang, M., Zhang, W., Zhu, J., Fu, G. & Zhou, B. Breviscapine ameliorates hypertrophy of cardiomyocytes induced by high glucose in diabetic rats via the PKC signaling pathway. Acta Pharmacol. Sin. 30, 1081–1091 (2009).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Molgat, A. S. D. et al. Hyperglycemia inhibits cardiac stem cell-mediated cardiac repair and angiogenic capacity. Circulation 130, S70–S76 (2014).

Article 
CAS 
PubMed 

Google Scholar 

Wei, F., Zhang, Y., Wang, X. & Huo, J. Effects of high glucose and insulin on the electrophysiological properties of cardiomyocytes derived from human-induced pluripotent stem cells [Chinese]. Zhong Nan Da Xue Xue Bao Yi Xue Ban. 47, 610–618 (2022).

CAS 
PubMed 

Google Scholar 

Tsai, H.-H. et al. Empagliflozin reduces high glucose-induced cardiomyopathy in hiPSC-derived cardiomyocytes. Stem Cell Rev. Rep. 21, 849–858 (2025).

Article 
CAS 
PubMed 

Google Scholar 

Beydag-Tasöz, B. S., Yennek, S. & Grapin-Botton, A. Towards a better understanding of diabetes mellitus using organoid models. Nat. Rev. Endocrinol. 19, 232–248 (2023).

Article 
PubMed 
PubMed Central 

Google Scholar 

McVicar, C. M. et al. Role of the receptor for advanced glycation endproducts (RAGE) in retinal vasodegenerative pathology during diabetes in mice. Diabetologia 58, 1129–1137 (2015).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Du, Y. et al. Adrenergic and serotonin receptors affect retinal superoxide generation in diabetic mice: relationship to capillary degeneration and permeability. FASEB J. 29, 2194–2204 (2015).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar 

Bogdanov, P. et al. The db/db mouse: a useful model for the study of diabetic retinal neurodegeneration. PLoS ONE 9, e97302 (2014).

Article 
PubMed 
PubMed Central 

Google Scholar 

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