He Y, Chang Y, Peng Y, Zhu J, Liu K, Chen J, et al. (October 2022). "Glibenclamide Directly Prevents Neuroinflammation by Targeting SUR1-TRPM4-Mediated NLRP3 Inflammasome Activation In Microglia". Molecular Neurobiology. 59 (10): 6590–6607. doi:10.1007/s12035-022-02998-x. PMID35972671. S2CID242029244.
Ortega FJ, Gimeno-Bayon J, Espinosa-Parrilla JF, Carrasco JL, Batlle M, Pugliese M, et al. (May 2012). "ATP-dependent potassium channel blockade strengthens microglial neuroprotection after hypoxia-ischemia in rats". Experimental Neurology. 235 (1): 282–296. doi:10.1016/j.expneurol.2012.02.010. hdl:2445/34278. PMID22387180. S2CID4828181.
Chen S, Ogawa A, Ohneda M, Unger RH, Foster DW, McGarry JD (July 1994). "More direct evidence for a malonyl-CoA-carnitine palmitoyltransferase I interaction as a key event in pancreatic beta-cell signaling". Diabetes. 43 (7): 878–883. doi:10.2337/diab.43.7.878. PMID8013751. S2CID25251669.
Lehtihet M, Welsh N, Berggren PO, Cook GA, Sjoholm A (August 2003). "Glibenclamide inhibits islet carnitine palmitoyltransferase 1 activity, leading to PKC-dependent insulin exocytosis". American Journal of Physiology. Endocrinology and Metabolism. 285 (2): E438–E446. doi:10.1152/ajpendo.00057.2003. PMID12684219. S2CID175394.
He Y, Chang Y, Peng Y, Zhu J, Liu K, Chen J, et al. (October 2022). "Glibenclamide Directly Prevents Neuroinflammation by Targeting SUR1-TRPM4-Mediated NLRP3 Inflammasome Activation In Microglia". Molecular Neurobiology. 59 (10): 6590–6607. doi:10.1007/s12035-022-02998-x. PMID35972671. S2CID242029244.
Ortega FJ, Gimeno-Bayon J, Espinosa-Parrilla JF, Carrasco JL, Batlle M, Pugliese M, et al. (May 2012). "ATP-dependent potassium channel blockade strengthens microglial neuroprotection after hypoxia-ischemia in rats". Experimental Neurology. 235 (1): 282–296. doi:10.1016/j.expneurol.2012.02.010. hdl:2445/34278. PMID22387180. S2CID4828181.
Chen S, Ogawa A, Ohneda M, Unger RH, Foster DW, McGarry JD (July 1994). "More direct evidence for a malonyl-CoA-carnitine palmitoyltransferase I interaction as a key event in pancreatic beta-cell signaling". Diabetes. 43 (7): 878–883. doi:10.2337/diab.43.7.878. PMID8013751. S2CID25251669.
Lehtihet M, Welsh N, Berggren PO, Cook GA, Sjoholm A (August 2003). "Glibenclamide inhibits islet carnitine palmitoyltransferase 1 activity, leading to PKC-dependent insulin exocytosis". American Journal of Physiology. Endocrinology and Metabolism. 285 (2): E438–E446. doi:10.1152/ajpendo.00057.2003. PMID12684219. S2CID175394.
He Y, Chang Y, Peng Y, Zhu J, Liu K, Chen J, et al. (October 2022). "Glibenclamide Directly Prevents Neuroinflammation by Targeting SUR1-TRPM4-Mediated NLRP3 Inflammasome Activation In Microglia". Molecular Neurobiology. 59 (10): 6590–6607. doi:10.1007/s12035-022-02998-x. PMID35972671. S2CID242029244.
Ortega FJ, Gimeno-Bayon J, Espinosa-Parrilla JF, Carrasco JL, Batlle M, Pugliese M, et al. (May 2012). "ATP-dependent potassium channel blockade strengthens microglial neuroprotection after hypoxia-ischemia in rats". Experimental Neurology. 235 (1): 282–296. doi:10.1016/j.expneurol.2012.02.010. hdl:2445/34278. PMID22387180. S2CID4828181.
Chen S, Ogawa A, Ohneda M, Unger RH, Foster DW, McGarry JD (July 1994). "More direct evidence for a malonyl-CoA-carnitine palmitoyltransferase I interaction as a key event in pancreatic beta-cell signaling". Diabetes. 43 (7): 878–883. doi:10.2337/diab.43.7.878. PMID8013751. S2CID25251669.
Lehtihet M, Welsh N, Berggren PO, Cook GA, Sjoholm A (August 2003). "Glibenclamide inhibits islet carnitine palmitoyltransferase 1 activity, leading to PKC-dependent insulin exocytosis". American Journal of Physiology. Endocrinology and Metabolism. 285 (2): E438–E446. doi:10.1152/ajpendo.00057.2003. PMID12684219. S2CID175394.