[1] MCMAHON E,EL-SAYED S,GREEN J,et al.Brazilin is a natural product inhibitor of the NLRP3 inflammasome[J].iScience,2024,27(2):108968. [2] FU J N,WU H.Structural mechanisms of NLRP3 inflammasome assembly and activation[J].Annual Review of Immunology,2023,41:301-316. [3] ZHEN Y,ZHANG H.NLRP3 inflammasome and inflammatory bowel disease[J].Frontiers in Immunology,2019,10:276. [4] PAIK S,KIM J K,SILWAL P,et al.An update on the regulatory mechanisms of NLRP3 inflammasome activation[J]. Cellular & Molecular Immunology,2021,18(5):1141-1160. [5] 张坦,王茹,丁树哲.糖脂代谢参与NLRP3炎症小体活化的研究进展[J].生命科学,2022,34(4):385-391.ZHANG T,WANG R,DING S Z.Research progress on the involvement of glucose and lipid metabolism in NLRP3 inflammasome activation[J].Life Sciences,2022,34(4):385-391.(in Chinese) [6] SEOK J K,KANG H C,CHO Y Y,et al.Regulation of the NLRP3 inflammasome by post-translational modifications and small molecules[J]. Frontiers in Immunology,2021,11:618231. [7] CHEN M Y,YE X J,HE X H,et al.The signaling pathways regulating NLRP3 inflammasome activation[J].Inflammation,2021,44(4):1229-1245. [8] OZAKI E,CAMPBELL M,DOYLE S L.Targeting the NLRP3 inflammasome in chronic inflammatory diseases:Current perspectives[J].Journal of Inflammation Research,2015,8:15-27. [9] BAUERNFEIND F G,HORVATH G,STUTZ A,et al.Cutting edge:NF-κB activating pattern recognition and cytokine receptors license NLRP3 inflammasome activation by regulating NLRP3 expression[J].Journal of Immunology,2009,183(2):787-791. [10] FRANCHI L,EIGENBROD T,NÚÑEZ G.Cutting edge:TNF-α mediates sensitization to ATP and silica via the NLRP3 inflammasome in the absence of microbial stimulation[J].Journal of Immunology,2009,183(2):792-796. [11] XING Y,YAO X M,LI H,et al.Cutting edge:TRAF6 mediates TLR/IL-1R signaling-induced nontranscriptional priming of the NLRP3 inflammasome[J].Journal of Immunology,2017,199(5):1561-1566. [12] SWANSON K V,DENG M,TING J P Y.The NLRP3 inflammasome:Molecular activation and aregulation to therapeutics[J].Nature Reviews Immunology,2019,19(8):477-489. [13] SHI J J,ZHAO Y,WANG K,et al.Cleavage of GSDMD by inflammatory caspases determines pyroptotic cell death[J].Nature,2015,526(7575):660-665. [14] 焦雪,黄树宣.基于NLRP3炎症小体复合物为靶点的帕金森病治疗研究新进展[J].中国临床新医学,2022,15(12):1123-1129.JIAO X,HUANG S X.New progress in the treatment of Parkinson’s disease based on NLRP3 inflammasome complex as a target[J]. Chinese Journal of New Clinical Medicine,2022,15(12):1123-1129.(in Chinese) [15] 李俊玫.布鲁氏菌BtpB缺失株构建及其对山羊肺泡巨噬细胞NLRP3炎性体的影响[D].杨凌:西北农林科技大学,2019.LI J M.Construction of Brucella BtpB deficient strain and its effect on NLRP3 inflammasome in goat alveolar macrophages[D].Yangling:Northwest A&F University,2019.(in Chinese) [16] WOUTERS F,BOGIE J,WULLAERT A,et al.Recent insights in pyrin inflammasome activation:Identifying potential novel therapeutic approaches in prin-associated autoinflammatory syndromes[J].Journal of Clinical Immunology,2024,44(1):8. [17] COMPAN V,BAROJA-MAZO A,LÓPEZ-CASTEJÓN G,et al.Cell volume regulation modulates NLRP3 inflammasome activation[J]. Immunity,2012,37(3):487-500. [18] BARKEMA H W,SCHUKKEN Y H,ZADOKS R N.Invited review:The role of cow,pathogen,and treatment regimen in the therapeutic success of bovine Staphylococcus aureus mastitis[J].Journal of Dairy Science,2006,89(6):1877-1895. [19] DING J J,WANG K,LIU W,et al.Pore-forming activity and structural autoinhibition of the gasdermin family[J]. Nature,2016,540(7631):111-116. [20] WANG X Z,LIU M C,GENG N,et al.Staphylococcus aureus mediates pyroptosis in bovine mammary epithelial cell via activation of NLRP3 inflammasome[J]. Veterinary Research,2022,53(1):10. [21] GUAN L J,XUE Y,DING W W,et al.Biosynthesis and regulation mechanisms of the Pasteurella multocida capsule[J].Research in Veterinary Science,2019,127:82-90. [22] HARPER M,BOYCE J D.The myriad properties of pasteurella multocida lipopolysaccharide[J].Toxins,2017,9(8):254. [23] KELLEY N,JELTEMA D,DUAN Y H,et al.The NLRP3 inflammasome:An overview of mechanisms of activation and regulation[J].International Journal of Molecular Sciences,2019,20(13):3328. [24] RAN J R,YIN H,XU Y T,et al.RACK1 mediates NLRP3 inflammasome activation during Pasteurella multocida infection[J].Veterinary Research,2023,54(1):73. [25] 王玉飞.Ⅳ型分泌系统调控布鲁氏菌胞内生存的分子机制研究[D].北京:中国人民解放军军事科学院,2008.WANG Y F.Molecular mechanism of type Ⅳ secretion system regulating intracellular survival of Brucella [D].Beijing:Academy of Military Sciences,2008.(in Chinese) [26] 刘弘知,熊丹,潘志明,等.非洲猪瘟病毒逃逸天然免疫的研究进展[J].中国兽医科学,2022,52(10):1323-1327.LIU H Z,XIONG D,PAN Z M,et al.Research progress on the escape of African swine fever virus from natural immunity[J].Chinese Veterinary Science,2022,52(10):1323-1327.(in Chinese) [27] ZHAO D M,LIU R Q,ZHANG X F,et al.Replication and virulence in pigs of the first African swine fever virus isolated in China[J].Emerging Microbes & Infections,2019,8(1):438-447. [28] SUN E C,ZHANG Z J,WANG Z L,et al.Emergence and prevalence of naturally occurring lower virulent African swine fever viruses in domestic pigs in China in 2020[J].Science China-Life Sciences,2021,64(5):752-765. [29] GAO X,LIU T,LIU Y X,et al.Transmission of African swine fever in China through legal trade of live pigs[J].Transboundary and Emerging Diseases,2021,68(2):355-360. [30] HUANG L,LIU H Y,YE G Q,et al.Deletion of African swine fever virus (ASFV) H240R gene attenuates the virulence of ASFV by enhancing NLRP3-mediated inflammatory responses[J].Journal of Virology,2023,97(2):e0122722. [31] LIU J K,LIU C,XU Y,et al.Molecular characteristics and pathogenicity of a novel recombinant Porcine reproductive and respiratory syndrome virus strain from NADC30-,NADC34-,and JXA1-like strains that emerged in China[J]. Microbiology Spectrum,2022,10(6):e0266722. [32] BI J,SONG S,FANG L R,et al.Porcine reproductive and respiratory syndrome virus induces IL-1β production depending on TLR4/MyD88 pathway and NLRP3 inflammasome in primary porcine alveolar macrophages[J].Mediators of Inflammation,2014,2014:403515. [33] 李鸿喜,章蓓雯,唐歆,等.NLRP3炎症小体在PRRSV调控机体炎症中的作用[J].中国兽医杂志,2024,60(6):93-100.LI H X,ZHANG B W,TANG X,et al.The role of NLRP3 inflammasome in PRRSV regulation of inflammation in the body[J].Chinese Journal of Veterinary Medicine,2024,60(6):93-100.(in Chinese) [34] CHEN X X,GUO Z H,JIN Q Y,et al.Porcine reproductive and respiratory syndrome virus induces interleukin-1β through MyD88/ERK/AP-1 and NLRP3 inflammasome in microglia[J].Veterinary Microbiology,2018,227:82-89. [35] SUN P P,SUN N,YIN W,et al.Matrine inhibits IL-1β secretion in primary porcine alveolar macrophages through the MyD88/NF-κB pathway and NLRP3 inflammasome[J].Veterinary Research,2019,50(1):53. [36] GAO P,CHEN L B,FAN L,et al.Newcastle disease virus RNA-induced IL-1β expression via the NLRP3/Caspase-1 inflammasome[J].Veterinary Research,2020,51(1):53. [37] HUANG X Y,ZHAO Z C,ZHU C,et al.Species-specific IL-1β is an inflammatory sensor of Seneca valley virus 3C protease[J].PLoS Pathogens,2024,20(7):e1012398. [38] MARUGAN-HERNANDEZ V.Neospora caninum and bovine neosporosis:Current vaccine research[J].Journal of Comparative Pathology,2017,157(2-3):193-200. [39] WANG X C,GONG P T,ZHANG X,et al.NLRP3 inflammasome activation in murine macrophages caused by Neospora caninum infection[J].Parasites & Vectors,2017,10(1):266. [40] WANG X C,GONG P T,ZHANG X,et al.NLRP3 inflammasome participates in host response to Neospora caninum infection[J]. Frontiers in Immunology,2018,9:1791. [41] WANG X C,GONG P T,ZHANG N,et al.Inflammasome activation restrains the intracellular Neospora caninum proliferation in bovine macrophages[J].Veterinary Parasitology,2019,268:16-20. [42] SHIO M T,EISENBARTH S C,SAVARIA M,et al.Malarial hemozoin activates the NLRP3 inflammasome through Lyn and Syk kinases[J].PLoS Pathogens,2009,5(8):e1000599. [43] DOSTERT C,GUARDA G,ROMERO J F,et al.Malarial hemozoin is a NLRP3 inflammasome activating danger signal[J].PLoS One,2009,4(8):e6510. [44] ATAIDE M A,ANDRADE W A,ZAMBONI D S,et al.Malaria-induced NLRP12/NLRP3-dependent Caspase-1 activation mediates inflammation and hypersensitivity to bacterial superinfection[J].PLoS Pathogens,2014,10(1):e1003885. [45] VALLEAU D,SIDIK S M,GODOY L C,et al.A conserved complex of microneme proteins mediates rhoptry discharge in Toxoplasma[J]. EMBO Journal,2023,42(23):e113155. [46] ATTIAS M,TEIXEIRA D E,BENCHIMOL M,et al.The life-cycle of Toxoplasma gondii reviewed using animations[J]. Parasites & Vectors,2020,13(1):588. [47] 王安琪,孔琳.NLRP3在抗寄生虫感染中的作用研究现状[J].黑龙江科学,2022,13(10):88-89.WANG A Q,KONG L.The current research status of the role of NLRP3 in anti-parasitic infections[J].Heilongjiang Science,2022,13(10):88-89.(in Chinese) [48] GORFU G,CIRELLI K M,MELO M B,et al.Dual role for inflammasome sensors NLRP1 and NLRP3 in murine resistance to Toxoplasma gondii[J].mBio,2014,5(1):e01117-13. [49] 王贵平,李君佩,罗广,等.猪肺炎支原体对猪肺泡巨噬细胞外源性抗原递呈加工功能相关因子mRNA表达量的影响[J].中国兽医学报,2017,37(11):2101-2107.WANG G P,LI J P,LUO G,et al.The effect of Mycoplasma hyopneumoniae on the mRNA expression levels of exogenous antigen presentation and processing related factors in porcine alveolar macrophages[J].Chinese Journal of Veterinary Medicine,2017,37(11):2101-2107.(in Chinese) [50] MUNETA Y,UENISHI H,KIKUMA R,et al.Porcine TLR2 and TLR6:Identification and their involvement in Mycoplasma hyopneumoniae infection[J]. Journal of Interferon & Cytokine Research,2003,23(10):583-590. [51] ZHANG Y, LIU B, SAID A, et al. Regulatory functional role of NLRP3 inflammasome during Mycoplasma hyopneumoniae infection in swine[J]. Journal of Animal Science, 2023,101:216. [52] LIU W,JIANG P C,YANG K L,et al.Mycoplasma hyopneumoniae:Infection activates the NOD1 signaling pathway to modulate inflammation[J].Frontiers in Cellular and Infection Microbiology,2022,12:927840. [53] SUZUKI K,SHINKAI H,YOSHIOKA G,et al.Polymorphisms in pattern recognition receptor genes are associated with respiratory disease severity in pig farms[J].Animals,2022,12(22):3163. [54] CHEN X X,GAO Y Q,XIE J F,et al.Identification of FCN1 as a novel macrophage infiltration-associated biomarker for diagnosis of pediatric inflammatory bowel diseases[J].Journal of Translational Medicine,2023,21(1):203. [55] 李妍,蓝婷英,庞博,等.NLRP3炎症小体及其下游炎症因子在犬乳腺肿瘤组织中的表达[J].畜牧兽医学报,2022,53(4):1252-1258.LI Y,LAN T Y,PANG B,et al.Expression of NLRP3 inflammasome and its downstream inflammatory factors in canine breast tumor tissue[J].Acta Veterinaria et Zootechnica Sinica,2022,53(4):1252-1258.(in Chinese) [56] 李国丽,许海霞,岑岚,等.NLRP3炎症小体的活化水平与急性缺血性脑卒中患者认知功能改变的关系[J].脑与神经疾病杂志,2022,30(2):67-71.LI G L,XU H X,CEN L,et al.The relationship between the activation level of NLRP3 inflammasome and cognitive function changes in patients with acute ischemic stroke[J].Journal of Brain and Neurological Diseases,2022,30(2):67-71.(in Chinese) [57] KLUGHAMMER B,PIALI L,NICA A,et al.A randomized,double-blind phase 1b study evaluating the safety,tolerability,pharmacokinetics and pharmacodynamics of the NLRP3 inhibitor selnoflast in patients with moderate to severe active ulcerative colitis[J]. Clinical and Translational Medicine,2023,13(11):e1471. [58] LIU Q J,JIAO L J,YE M S,et al.GSNOR negatively regulates the NLRP3 inflammasome via S-nitrosation of MAPK14[J].Cellular & Molecular Immunology,2024,21(6):561-574. [59] RAN L Y,CHEN M,YE J H,et al.UK5099 inhibits the NLRP3 inflammasome independently of its long-established target mitochondrial pyruvate carrier[J].Advanced Science,2024:e2307224. [60] JIANG H,HE H B,CHEN Y,et al.Identification of a selective and direct NLRP3 inhibitor to treat inflammatory disorders[J].Journal of Experimental Medicine,2017,214(11):3219-3238. [61] WU X X,YANG J H,WU J J,et al.Therapeutic potential of MCC950,a specific inhibitor of NLRP3 inflammasome in systemic lupus erythematosus[J]. Biomedicine & Pharmacotherapy,2024,172:116216. [62] JAVAID H M A,KO E,JOO E J,et al.TNFα-induced NLRP3 inflammasome mediates adipocyte dysfunction and activates macrophages through adipocyte-derived lipocalin 2[J].Metabolism-Clinical and Experimental,2023,142:155527. [63] LI W J,SHI L,ZHUANG Z P,et al.Engineered pigs carrying a gain-of-function NLRP3 homozygous mutation can survive to adulthood and accurately recapitulate human systemic spontaneous inflammatory responses[J].Journal of Immunology,2021,207(9):2385-2386. |