Department of Pharmacology and Toxicology, Faculty of Pharmacy, Comenius University in Bratislava, Bratislava, Slovak Republic.
Physiol Res. 2023 Jun 9;72(S1):S23-S29. doi: 10.33549/physiolres.935020.
Diabetes mellitus is known to produce various cell-damaging events and thereby underlie heart dysfunction and remodeling. However, very little is known about its inflammation-associated pathomechanisms due to necrosis-like cell death. For this purpose, we aimed to investigate signaling pathways of necroptosis and pyroptosis, known to produce plasma membrane rupture with the resultant promotion of inflammation. One-year old Zucker diabetic fatty (ZDF) rats did not exhibit significant heart dysfunction as revealed by echocardiographic measurement. On the other hand, there was a decrease in heart rate due to diabetes. Immunoblotting analysis showed that the left ventricles of ZDF rats overexpress neither the main necroptotic proteins including receptor-interacting protein kinase 3 (RIP3) and mixed lineage domain kinase-like pseudokinase (MLKL), nor the pyroptotic regulators including NLR family pyrin domain containing 3 protein (NLRP3), caspase-1, interleukin-1 beta (IL-1beta and the N-terminal gasdermin D (GSDMD-N). On the other hand, the increased activation of the RIP3 kinase due to phosphorylation was found in such hearts. In summary, we showed for the first time that the activation of cardiac RIP3 is upregulated due to disturbances in glucose metabolism which, however, did not proceed to necrosis-like cell death. These data can indicate that the activated RIP3 might also underlie other pleiotropic, non-necroptotic signaling pathways under basal conditions.
糖尿病已知会产生各种细胞损伤事件,从而导致心脏功能障碍和重塑。然而,由于类似于坏死的细胞死亡,其与炎症相关的发病机制知之甚少。为此,我们旨在研究坏死性细胞凋亡和细胞焦亡的信号通路,已知它们会导致细胞膜破裂,从而促进炎症。一岁的 Zucker 糖尿病肥胖(ZDF)大鼠的超声心动图测量并未显示出明显的心脏功能障碍。另一方面,由于糖尿病,心率下降。免疫印迹分析表明,ZDF 大鼠的左心室既不表达主要的坏死性细胞凋亡蛋白,包括受体相互作用蛋白激酶 3(RIP3)和混合谱系激酶样伪激酶(MLKL),也不表达细胞焦亡调节蛋白,包括 NLR 家族包含吡啶结构域的 3 蛋白(NLRP3)、半胱天冬酶-1、白细胞介素-1β(IL-1β)和 N 端气液二甲基转移酶 D(GSDMD-N)。另一方面,在这些心脏中发现 RIP3 激酶由于磷酸化而增加激活。总之,我们首次表明,由于葡萄糖代谢紊乱,心脏 RIP3 的激活被上调,但不会进展为类似于坏死的细胞死亡。这些数据表明,激活的 RIP3 也可能在基础条件下为其他多效性、非坏死性信号通路提供基础。