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血小板自噬机制通过 AMPK-MTOR 与鞘脂代谢的新联系参与血栓形成。

Platelet autophagic machinery involved in thrombosis through a novel linkage of AMPK-MTOR to sphingolipid metabolism.

机构信息

Graduate Institute of Medical Sciences, College of Medicine, Taipei Medical University, Taipei, Taiwan.

Department of Pharmacology, School of Medicine, College of Medicine, Taipei Medical University, Taipei, Taiwan.

出版信息

Autophagy. 2021 Dec;17(12):4141-4158. doi: 10.1080/15548627.2021.1904495. Epub 2021 Apr 5.

Abstract

Basal macroautophagy/autophagy has recently been found in anucleate platelets. Platelet autophagy is involved in platelet activation and thrombus formation. However, the mechanism underlying autophagy in anucleate platelets require further clarification. Our data revealed that LC3-II formation and SQSTM1/p62 degradation were noted in HO-activated human platelets, which could be blocked by 3-methyladenine and bafilomycin A, indicating that platelet activation may cause platelet autophagy. AMPK phosphorylation and MTOR dephosphorylation were also detected, and block of AMPK activity by the AMPK inhibitor dorsomorphin reversed SQSTM1 degradation and LC3-II formation. Moreover, autophagosome formation was observed through transmission electron microscopy and deconvolution microscopy. These findings suggest that platelet autophagy was induced partly through the AMPK-MTOR pathway. In addition, increased LC3-II expression occurred only in HO-treated platelets, but not in HO-treated platelets, suggesting that platelet autophagy occurs during platelet activation. platelets also exhibited a lower aggregation in response to agonists, and platelet-specific mice exhibited delayed thrombus formation in mesenteric microvessles and decreased mortality rate due to pulmonary thrombosis. Notably, metabolic analysis revealed that sphingolipid metabolism is involved in platelet activation, as evidenced by observed several altered metabolites, which could be reversed by dorsomorphin. Therefore, platelet autophagy and platelet activation are positively correlated, partly through the interconnected network of sphingolipid metabolism. In conclusion, this study for the first time demonstrated that AMPK-MTOR signaling could regulate platelet autophagy. A novel linkage between AMPK-MTOR and sphingolipid metabolism in anucleate platelet autophagy was also identified: platelet autophagy and platelet activation are positively correlated.: 3-MA: 3-methyladenine; A.C.D.: citric acid/sod. citrate/glucose; ADP: adenosine diphosphate; AKT: AKT serine/threonine kinase; AMPK: AMP-activated protein kinase; ANOVA: analysis of variance; ATG: autophagy-related; B4GALT/LacCS: beta-1,4-galactosyltransferase; Baf-A1: bafilomycin A; BECN1: beclin 1; BHT: butylate hydrooxytoluene; BSA: bovine serum albumin; DAG: diacylglycerol; ECL: enhanced chemiluminescence; EDTA: ethylenediamine tetraacetic acid; ELISA: enzyme-linked immunosorbent assay; GALC/GCDase: galactosylceramidase; GAPDH: glyceraldehyde-3-phosphate dehydrogenase; GBA/GluSDase: glucosylceramidase beta; GPI: glycosylphosphatidylinositol; HO: hydrogen peroxide; HMDB: human metabolome database; HRP: horseradish peroxidase; IF: immunofluorescence; IgG: immunoglobulin G; KEGG: Kyoto Encyclopedia of Genes and Genomes; LAMP1: lysosomal associated membrane protein 1; LC-MS/MS: liquid chromatography-tandem mass spectrometry; mAb: monoclonal antibody; MAP1LC3/LC3: microtubule associated protein 1 light chain 3; MPV: mean platelet volume; MTOR: mechanistic target of rapamycin kinase; ox-LDL: oxidized low-density lipoprotein; pAb: polyclonal antibody; PC: phosphatidylcholine; PCR: polymerase chain reaction; PI3K: phosphoinositide 3-kinase; PLS-DA: partial least-squares discriminant analysis; PRP: platelet-rich plasma; Q-TOF: quadrupole-time of flight; RBC: red blood cell; ROS: reactive oxygen species; RPS6KB/p70S6K: ribosomal protein S6 kinase B; SDS: sodium dodecyl sulfate; S.E.M.: standard error of the mean; SEM: scanning electron microscopy; SGMS: sphingomyelin synthase; SM: sphingomyelin; SMPD/SMase: sphingomyelin phosphodiesterase; SQSTM1/p62: sequestosome 1; TEM: transmission electron microscopy; UGT8/CGT: UDP glycosyltransferase 8; UGCG/GCS: UDP-glucose ceramide glucosyltransferase; ULK1: unc-51 like autophagy activating kinase 1; UPLC: ultra-performance liquid chromatography; PIK3C3/VPS34: phosphatidylinositol 3-kinase catalytic subunit type 3; PtdIns3P: phosphatidylinositol-3-phosphate; WBC: white blood cell; WT: wild type.

摘要

在无核血小板中最近发现了基础宏观自噬/自噬。血小板自噬参与血小板激活和血栓形成。然而,无核血小板中自噬的机制尚需进一步阐明。我们的数据显示,HO 激活的人血小板中可观察到 LC3-II 形成和 SQSTM1/p62 降解,可被 3-甲基腺嘌呤和巴弗洛霉素 A 阻断,表明血小板激活可能导致血小板自噬。还检测到 AMPK 磷酸化和 MTOR 去磷酸化,AMPK 抑制剂 Dorsomorphin 阻断 AMPK 活性可逆转 SQSTM1 降解和 LC3-II 形成。此外,还通过透射电子显微镜和共聚焦显微镜观察到自噬体形成。这些发现表明,血小板自噬部分通过 AMPK-MTOR 途径诱导。此外,仅在 HO 处理的血小板中观察到 LC3-II 表达增加,而在 HO 处理的血小板中未观察到,表明血小板自噬发生在血小板激活期间。血小板特异性 敲除小鼠在肠系膜微血管中血栓形成延迟,肺血栓形成死亡率降低。值得注意的是,代谢分析表明,鞘脂代谢参与血小板激活,如观察到几种代谢物发生改变,这些改变可被 Dorsomorphin 逆转。因此,血小板自噬和血小板激活呈正相关,部分通过鞘脂代谢的相互关联网络。总之,本研究首次证明了 AMPK-MTOR 信号可调节血小板自噬。还发现了无核血小板自噬中 AMPK-MTOR 与鞘脂代谢之间的新联系:血小板自噬和血小板激活呈正相关。3-MA:3-甲基腺嘌呤;A.C.D.:柠檬酸/柠檬酸钠/葡萄糖;ADP:二磷酸腺苷;AKT:AKT 丝氨酸/苏氨酸激酶;AMPK:AMP 激活的蛋白激酶;ANOVA:方差分析;ATG:自噬相关;B4GALT/LacCS:β-1,4-半乳糖基转移酶;Baf-A1:巴弗洛霉素 A;BECN1:Beclin 1;BHT:丁羟甲苯;BSA:牛血清白蛋白;DAG:二酰基甘油;ECL:增强化学发光;EDTA:乙二胺四乙酸;ELISA:酶联免疫吸附测定;GALC/GCDase:半乳糖脑苷脂酶;GAPDH:甘油醛-3-磷酸脱氢酶;GBA/GluSDase:β-葡萄糖脑苷脂酶;GPI:糖基磷脂酰肌醇;HO:过氧化氢;HMDB:人类代谢组数据库;HRP:辣根过氧化物酶;IF:免疫荧光;IgG:免疫球蛋白 G;KEGG:京都基因和基因组百科全书;LAMP1:溶酶体相关膜蛋白 1;LC-MS/MS:液相色谱-串联质谱;mAb:单克隆抗体;MAP1LC3/LC3:微管相关蛋白 1 轻链 3;MPV:平均血小板体积;MTOR:雷帕霉素靶蛋白激酶;ox-LDL:氧化低密度脂蛋白;pAb:多克隆抗体;PC:磷脂酰胆碱;PCR:聚合酶链反应;PI3K:磷酸肌醇 3-激酶;PLS-DA:偏最小二乘判别分析;PRP:血小板富血浆;Q-TOF:四极杆-飞行时间;RBC:红细胞;ROS:活性氧;RPS6KB/p70S6K:核糖体蛋白 S6 激酶 B;SDS:十二烷基硫酸钠;SEM:平均值的标准误差;SEM:扫描电子显微镜;SGMS:鞘氨醇合酶;SM:鞘磷脂;SMPD/SMase:鞘磷脂磷酸二酯酶;SQSTM1/p62:自噬相关蛋白 1;TEM:透射电子显微镜;UGT8/CGT:UDP 糖基转移酶 8;UGCG/GCS:UDP-葡萄糖神经酰胺葡萄糖基转移酶;ULK1:UNC-51 样自噬激活激酶 1;UPLC:超高效液相色谱;PI3C3/VPS34:磷脂酰肌醇 3-激酶催化亚基 3;PtdIns3P:磷脂酰肌醇-3-磷酸;WBC:白细胞;WT:野生型。

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