Chinese General Practice ›› 2020, Vol. 23 ›› Issue (30): 3888-3894.DOI: 10.12114/j.issn.1007-9572.2020.00.467
Special Issue: 脑健康最新研究合辑
• Monographic Research • Previous Articles
Published:
2020-10-20
Online:
2020-10-20
基金资助:
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.chinagp.net/EN/10.12114/j.issn.1007-9572.2020.00.467
[1]HAN X,SUN S,SUN Y,et al.Small molecule-driven NLRP3 inflammation inhibition via interplay between ubiquitination and autophagy:implications for Parkinson disease[J].Autophagy,2019,12(11):1860-1881.DOI:10.1080/15548627.2019.1596481.
[2]YOU T,CHENG Y,ZHONG J,et al.Roflupram,a phosphodiesterase 4 inhibitior,suppresses inflammasome activation through autophagy in microglial cells[J].ACS Chem Neurosci,2017,8(11):2381-2392.DOI:10.1021/acschemneuro.7b00065. [3]LAN X,HAN X,LI Q,et al.Pinocembrin protects hemorrhagic brain primarily by inhibiting toll-like receptor 4 and reducing M1 phenotype microglia[J].Brain Behav Immun,2017,61:326-339.DOI:10.1016/j.bbi.2016.12.012. [4]SHAO A,ZHU Z,LI L,et al.Emerging therapeutic targets associated with the immune system in patients with intracerebral haemorrhage(ICH):from mechanisms to translation[J].EBioMedicine,2019,45:615-623.DOI:10.1016/j.ebiom.2019.06.012. [5]TSCHOE C,BUSHNELL C D,DUNCAN P W,et al.Neuroinflammation after intracerebral hemorrhage and potential therapeutic targets[J].J Stroke,2020,22(1):29-46.DOI:10.5853/jos.2019.02236. [6]SHAO Z,TU S,SHAO A.Pathophysiological mechanisms and potential therapeutic targets in intracerebral hemorrhage[J].Front Pharmacol,2019,10:1079.DOI:10.3389/fphar.2019.01079. [7]SU P,ZHANG J,WANG D,et al.The role of autophagy in modulation of neuroinflammation in microglia[J].Neuroscience,2016,319:155-67.DOI:10.1016/j.neuroscience.2016.01.035. [8]YIM W W,MIZUSHIMA N.Lysosome biology in autophagy[J].Cell Discov,2020,6:6.DOI:10.1038/s41421-020-0141-7. [9]DOSSOU A S,BASU A.The emerging roles of mTORC1 in macromanaging autophagy[J].Cancers(Basel),2019,11(10).pii:E1422.DOI:10.3390/cancers11101422. [10]DUROCHER M,ANDER B P,JICKLING G,et al.Inflammatory,regulatory,and autophagy co-expression modules and hub genes underlie the peripheral immune response to human intracerebral hemorrhage[J].J Neuroinflammation,2019,16(1):56.DOI:10.1186/s12974-019-1433-4. [11]ABADA A,LEVIN-ZAIDMAN S,PORAT Z,et al.SNARE priming is essential for maturation of autophagosomes but not for their formation[J].Proc Natl Acad Sci USA,2017,114(48):12749-12754.DOI:10.1073/pnas.1705572114. [12]HE Y,WAN S,HUA Y,et al.Autophagy after experimental intracerebral hemorrhage[J].J Cereb Blood Flow Metab,2008,28(5):897-905.DOI:10.1038/sj.jcbfm.9600578. [13]YUAN B,SHEN H,LIN L,et al.Autophagy promotes microglia activation through Beclin-1-Atg5 pathway in intracerebral hemorrhage[J].Mol Neurobiol,2017,54(1):115-124.DOI:10.1007/s12035-015-9642-z. [14]陆梦茹,朱祖福,张慧萍,等.TLR4介导小鼠小胶质细胞自噬在脑出血后炎症反应的作用机制研究[J].中西医结合心脑血管病杂志,2019,17(5):689-693.DOI:10.12102/j.issn.1672-1349.2019.05.011. LU M R,ZHU Z F,ZHANG H P,et al.Mechanism of TLR4-mediated autophagy of microglia in the inflammation after cerebral hemorrhage in mice[J].Chinese Journal of Integrative Medicine on Cardio/Cerebrovascular Disease,2019,17(5):689-693.DOI:10.12102/j.issn.1672-1349.2019.05.011. [15]LEE J W,NAM H,KIM L E,et al.TLR4(toll-like receptor 4)activation suppresses autophagy through inhibition of FOXO3 and impairs phagocytic capacity of microglia[J].Autophagy,2019,15(5):753-770.DOI:10.1080/15548627.2018.1556946. [16]SHEN X,MA L,DONG W,et al.Autophagy regulates intracerebral hemorrhage induced neural damage via apoptosis and NF-κB pathway[J].Neurochem Int,2016,96:100-112.DOI:10.1016/j.neuint.2016.03.004. [17]YU A,DUAN H,ZHANG T,et al.IL-17A promotes microglial activation and neuroinflammation in mouse models of intracerebral haemorrhage[J].Mol Immunol,2016,73:151-157.DOI:10.1016/j.molimm.2016.04.003. [18]SHI H,WANG J,WANG J,et al.IL-17A induces autophagy and promotes microglial neuroinflammation through ATG5 and ATG7 in intracerebral hemorrhage[J].J Neuroimmunol,2018,323:143-151.DOI:10.1016/j.jneuroim.2017.07.015. [19]刘婷,韩松,张颖,等.脑缺血/再灌注损伤中产生IL-17A的神经细胞类型鉴定[J].基础医学与临床,2016,36(12):1618-1623.DOI:10.3969/j.issn.1001-6325.2016.12.002. LIU T,HAN S,ZHANG Y,et al.Identification of neural cell-type as a source of IL-17A during cerebral ischemia/reperfusion injuries[J].Basic & Clinical Medicine,2016,36(12):1618-1623.DOI:10.3969/j.issn.1001-6325.2016.12.002. [20]苏志强,辛亭,孟德龙.血红素对小胶质细胞TLR2介导IL23/IL17炎性通路影响[C].//中华医学会.中华医学会第十八次全国神经病学学术会议论文汇编,2015:707. [21]WANG Z,YUAN B,FU F,et al.Hemoglobin enhances miRNA-144 expression and autophagic activation mediated inflammation of microglia via mTOR pathway[J].Sci Rep,2017,7(1):11861.DOI:10.1038/s41598-017-12067-2. [22]LI Y,ZHOU D,REN Y,et al.Mir223 restrains autophagy and promotes CNS inflammation by targeting ATG16L1[J].Autophagy,2019,15(3):478-492.DOI:10.1080/15548627.2018.1522467. [23]WANG J P,ZHANG M Y.Role for target of rapamycin(mTOR)signal pathway in regulating neuronal injury after intracerebral hemorrhage[J].Cell Physiol Biochem,2017,41(1):145-153.DOI:10.1159/000455983. [24]GUO D,XIE J,ZHAO J,et al.Resveratrol protects early brain injury after subarachnoid hemorrhage by activating autophagy and inhibiting apoptosis mediated by the Akt/mTOR pathway[J].Neuroreport,2018,29(5):368-379.DOI:10.1097/WNR.0000000000000975. [25]WANG L,TIAN M,HAO Y.Role of p75 neurotrophin receptor in neuronal autophagy in intracerebral hemorrhage in rats through the mTOR signaling pathway[J].Cell Cycle,2020,19(3):376-389.DOI:10.1080/15384101.2019.1711318. [26]LIU L,AN D,XU J,et al.Ac2-26 induces IKKβ degradation through chaperone-mediated autophagy via HSPB1 in NCM-treated microglia[J].Front Mol Neurosci,2018,11:76.DOI:10.3389/fnmol.2018.00076. [27]叶亮,袁淼,肖文峰.脑损伤模型大鼠Pink1/Parkin介导的线粒体自噬作用[J].中国组织工程研究,2020,24(11):1695-1700.DOI:10.3969/j.issn.2095-4344.2524. YE L,YUAN M,XIAO W F.Role of Pink1/Parkin-mediated mitochondrial autophagy in a rat model of brain injury[J].Chinese Journal of Tissue Engineering Research,2020,24(11):1695-1700.DOI:10.3969/j.issn.2095-4344.2524. [28]YE J,JIANG Z,CHEN X,et al.The role of autophagy in pro-inflammatory responses of microglia activation via mitochondrial reactive oxygen species in vitro[J].J Neurochem,2017,142(2):215-230.DOI:10.1111/jnc.14042. [29]KELLEY N,JELTEMA D,DUAN Y,et al.The NLRP3 inflammasome:an overview of mechanisms of activation and regulation[J].Int J Mol Sci,2019,20(13).pii:E3328.DOI:10.3390/ijms20133328. [30]SHI K,TIAN D C,LI Z G,et al.Global brain inflammation in stroke[J].Lancet Neurol,2019,18(11):1058-1066.DOI:10.1016/S1474-4422(19)30078-X. [31]TAN Y,TAN S W,FAN B Y,et al.Hemin induces the activation of NLRP3 inflammasome in N9 microglial cells[J].Iran J Immunol,2018,15(2):122-132.DOI:IJIv15i2A5. [32]YE X,ZUO D,YU L,et al.ROS/TXNIP pathway contributes to thrombin induced NLRP3 inflammasome activation and cell apoptosis in microglia[J].Biochem Biophys Res Commun,2017,485(2):499-505.DOI:10.1016/j.bbrc.2017.02.019. [33]LEE S W,DE RIVERO VACCARI J P,TRUETTNER J S,et al. The role of microglial inflammasome activation in pyroptotic cell death following penetrating traumatic brain injury[J].J Neuroinflammation,2019,16(1):27.DOI:10.1186/s12974-019-1423-6. [34]NAMBAYAN R J T,SANDIN S I,QUINT D A,et al.The inflammasome adapter ASC assembles into filaments with integral participation of its two Death Domains,PYD and CARD[J].J Biol Chem,2019,294(2):439-452.DOI:10.1074/jbc.RA118.004407. [35]FANG R,UCHIYAMA R,SAKAI S,et al.ASC and NLRP3 maintain innate immune homeostasis in the airway through an inflammasome-independent mechanism[J].Mucosal Immunol,2019,12(5):1092-1103.DOI:10.1038/s41385-019-0181-1. [36]YUAN B,SHEN H,LIN L,et al.Recombinant adenovirus encoding NLRP3 RNAi attenuate inflammation and brain injury after intracerebral hemorrhage[J].J Neuroimmunol,2015,287:71-75.DOI:10.1016/j.jneuroim.2015.08.002. [37]YANG X,SUN J,KIM T J,et al.Pretreatment with low-dose fimasartan ameliorates NLRP3 inflammasome-mediated neuroinflammation and brain injury after intracerebral hemorrhage[J].Exp Neurol,2018,310:22-32.DOI:10.1016/j.expneurol.2018.08.013. [38]XU F,SHEN G,SU Z,et al.Glibenclamide ameliorates the disrupted blood-brain barrier in experimental intracerebral hemorrhage by inhibiting the activation of NLRP3 inflammasome[J].Brain Behav,2019,9(4):e01254.DOI:10.1002/brb3.1254. [39]FENG L,CHEN Y,DING R,et al.P2X7R blockade prevents NLRP3 inflammasome activation and brain injury in a rat model of intracerebral hemorrhage:involvement of peroxynitrite[J].J Neuroinflammation,2015,12:190.DOI:10.1186/s12974-015-0409-2. [40]HU L,ZHANG H,WANG B,et al.MicroRNA-152 attenuates neuroinflammation in intracerebral hemorrhage by inhibiting thioredoxin interacting protein(TXNIP)-mediated NLRP3 inflammasome activation[J].Int Immunopharmacol,2020,80:106141.DOI:10.1016/j.intimp.2019.106141. [41]YANG Z,ZHONG L,XIAN R,et al.MicroRNA-223 regulates inflammation and brain injury via feedback to NLRP3 inflammasome after intracerebral hemorrhage[J].Mol Immunol,2015,65(2):267-276.DOI:10.1016/j.molimm.2014.12.018. [42]LAN X,HAN X,LI Q,et al.Modulators of microglial activation and polarization after intracerebral haemorrhage[J].Nat Rev Neurol,2017,13(7):420-433.DOI:10.1038/nrneurol.2017.69. [43]CHANG C F,WAN J,LI Q,et al.Alternative activation-skewed microglia/macrophages promote hematoma resolution in experimental intracerebral hemorrhage[J].Neurobiol Dis,2017,103:54-69.DOI:10.1016/j.nbd.2017.03.016. [44]CHERRY J D,OLSCHOWKA J A,O'BANION M K.Neuroinflammation and M2 microglia:the good,the bad,and the inflamed[J].J Neuroinflammation,2014,11:98.DOI:10.1186/1742-2094-11-98. [45]LIN X,YE H,SIAW-DEBRAH F,et al.AC-YVAD-CMK inhibits pyroptosis and improves functional outcome after intracerebral hemorrhage[J].Biomed Res Int,2018,2018:3706047.DOI:10.1155/2018/3706047. [46]HAN C,XIA X,JIAO S,et al.Tripartite motif containing protein 37 involves in thrombin stimulated BV-2 microglial cell apoptosis and interleukin 1β release[J].Biochem Biophys Res Commun,2019,516(4):1252-1257.DOI:10.1016/j.bbrc.2019.06.158. [47]NETEA-MAIER R T,PLANTINGA T S,VAN DE VEERDONK F L,et al.Modulation of inflammation by autophagy:consequences for human disease[J].Autophagy,2016,12(2):245-260.DOI:10.1080/15548627.2015.1071759. [48]TAKAHAMA M,AKIRA S,SAITOH T,et al.Autophagy limits activation of the inflammasomes[J].Immunol Rev,2018,281(1):62-73.DOI:10.1111/imr.12613. [49]BOBINGER T,BURKARDT P,B HUTTNER H,et al.Programmed cell death after intracerebral hemorrhage[J].Curr Neuropharmacol,2018,16(9):1267-1281.DOI:10.2174/1570159X15666170602112851. [50]JI J,XUE T F,GUO X D,et al.Antagonizing peroxisome proliferator-activated receptor γ facilitates M1-to-M2 shift of microglia by enhancing autophagy via the LKB1-AMPK signaling pathway[J].Aging Cell,2018,17(4):e12774.DOI:10.1111/acel.12774. [51]LUO R,SU L Y,LI G,et al.Activation of PPARA-mediated autophagy reduces Alzheimer disease-like pathology and cognitive decline in a murine model[J].Autophagy,2020,16(1):52-59.DOI:10.1080/15548627.2019.1596488. [52]ZHONG J,GONG W,CHEN J,et al.Micheliolide alleviates hepatic steatosis in db/db mice by inhibiting inflammation and promoting autophagy via PPAR-γ-mediated NF-кB and AMPK/mTOR signaling[J].Int Immunopharmacol,2018,59:197-208.DOI:10.1016/j.intimp.2018.03.036. |
[1] | LU Donglei, YANG Fengying, FENG Zhanpeng, CAO Liquan, TAN Sijie. Conccurent Training Can Improve the Physical Health in Diabesity Individuals: a Meta-analysis [J]. Chinese General Practice, 2025, 28(27): 3410-3421. |
[2] | GAO Guiying, HU Yang, ZHANG Shiyi, MENG Yi, DENG Jie. Research Progress on the Mechanism of Exercise Rehabilitation in Improving Coronary Microcirculation Disorder [J]. Chinese General Practice, 2025, 28(20): 2570-2576. |
[3] | ZHU Ziyi, HE Guixin, QIN Weibin, SONG Hui, ZHANG Liwen, TANG Weizhi, YANG Feifei, LIU Lingyun, OUYANG Bin. Research Progress of Mitochondrial Autophagy in Improving Myocardial Fibrosis after Myocardial Infarction and Intervention of Traditional Chinese Medicine [J]. Chinese General Practice, 2025, 28(18): 2294-2300. |
[4] | LIU Rong, LI Guoxin, LI Yunze, LIANG Lizhe, LU Fei, DANG Shijing, WU Hongjiang, LIU Xiaoyi. Study on the Correlation and Diagnostic Value of Multiple Inflammatory and Oxidative Stress Indices in Lower Extremity Arteriosclerotic Obliteration [J]. Chinese General Practice, 2025, 28(18): 2234-2240. |
[5] | HAN Chao, ZHAN Xiaofei, YAN Qin, YU Xin, TONG Yan, PANG Zhenzhen, XIE Hongxiang. Analysis of the Clinical Application Value of Systemic Inflammatory Index in Assisting the Diagnosis of Subacute Thyroiditis [J]. Chinese General Practice, 2025, 28(18): 2241-2246. |
[6] | CHEN Yijing, XU Qi, LIU Zhongdian, QIN Lingqiao, CHEN Shuping, TANG Weiting, ZHONG Qiuan. The Regulatory Role of Hexosamine Biosynthesis Pathway in Vascular Endothelial Inflammation [J]. Chinese General Practice, 2025, 28(15): 1871-1877. |
[7] | LI Bing, XI Zhi, WANG Yang, XIU Jiaqi, GUO Qiancheng, YU Chenchen, SUN Siyu, YANG Xiaopeng. Association of Blood Pressure Variability and Systemic Immune-inflammation Index with Intracranial Arterial Negative Remodeling in Patients with Cerebral Small Vessel Disease [J]. Chinese General Practice, 2025, 28(14): 1751-1757. |
[8] | TAN Huihui, MAO Wei, YANG Zihan. Research Progress of Annexin A1 in Respiratory Diseases [J]. Chinese General Practice, 2025, 28(13): 1668-1673. |
[9] | YANG Jianying, ZHANG Yan, CHEN Jiaqi, WU Zihua, HUANG Ziwei, LEI Chunxin, ZHANG Xiya, LUO Jing, TAO Qingwen. The Immune-inflammatory Characteristics of Primary Sjögren's Syndrome with Different Levels of Rheumatoid Factors [J]. Chinese General Practice, 2025, 28(12): 1446-1452. |
[10] | TIAN Ke, LENG Qiufeng, LYU Jing, MIAO Guoying, WANG Xinhui, XIE Hui, LIU Qu, YAO Chunxia. Bidirectional Regulation of Keratinocyte Proliferation and Apoptosis by Metformin via NLRP3 Inflammasome Pathway [J]. Chinese General Practice, 2025, 28(06): 742-750. |
[11] | ZHANG Tianyang, XU Wenxiu, QIN Xinyu, XING Xuexue, BI Meirong. Research Progress on the Mechanism of Ferroptosis in Neonatal Hypoxic-ischemic Brain Damage [J]. Chinese General Practice, 2025, 28(06): 666-672. |
[12] | NIU Di, CHEN Ruifang, PANG Xinxin, XIAO Mingzhi, ZHANG Junshao, ZHANG Xiaowei. Correlation between Systemic Immune-inflammation Index and Erythropoietin Hypo-responsiveness in Patients with Maintenance Hemodialysis [J]. Chinese General Practice, 2024, 27(29): 3635-3640. |
[13] | HU Yuchi, DAI Songyuan, ZHAO Ling, ZHAO Lulu. Advances in the Application of Vagus Nerve Stimulation in Inflammation and Apoptosis Mechanism of Chronic Heart Failure [J]. Chinese General Practice, 2024, 27(24): 3044-3050. |
[14] | HU Guiping, LIN Ping, ZHAO Zhenjuan, WANG Yini, YAN Mingqiang, SUN Xiao. Relationship between Dietary Inflammatory Potential and Severity of Coronary Artery Disease in Acute Coronary Syndrome Patients [J]. Chinese General Practice, 2024, 27(24): 3000-3006. |
[15] | HE Junhui, WAN Daguo, DONG Jing, ZHANG Juan. Correlation Analysis between Pan-immune Inflammatory Value, Systemic Immune-inflammatory Index, and Vulnerable Plaques in Patients with Acute Coronary Syndrome [J]. Chinese General Practice, 2024, 27(24): 2976-2981. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||