[1] |
陈思遐,沈自燕,冯旰珠. 铜绿假单胞菌毒力因子的研究进展[J]. 国际呼吸杂志,2018,38(18):1410-1413.
|
[2] |
郑多金,林淑瑜,殷超, 等. 315株铜绿假单胞菌医院感染的临床分布与耐药性分析[J/CD]. 中华实验和临床感染病杂志(电子版),2015,9(1):61-64.
|
[3] |
中华医学会呼吸病学分会感染学组. 中国铜绿假单胞菌下呼吸道感染诊治专家共识(2022年版)[J]. 中华结核和呼吸杂志,2022,45(8):739-752.
|
[4] |
Zhang Y, Yao Z, Zhan S et al. Disease burdenof intensive care unit-acquired pneumonia in China: a systematic review andmeta-analysis[J]. Int J Infect Dis,2014,29(12):84-90.
|
[5] |
Rodrigo-Troyano A, Sibila O, The respiratory threat posed by multidrug resistant Gram-negative bacteria[J]. Respirology, 2017,22(7):1288-1299.
|
[6] |
Flannagan RS, Cosio G, Grinstein S. Antimicrobial mechanisms of phagocytes and bacterial evasion strategies[J]. Nat Rev Microbiol,2009,7(5):355-366.
|
[7] |
Cheung DO, Halsey K, Speert DP. Role of pulmonary alveolar macrophages indefense of the lung against Pseuonas aeruginosa[J]. Infect Immun,2000,68(8):4585-4592.
|
[8] |
Feng Y, He D, Yao Z, et al. The machinery of macroautophagy[J]. Cell Res,2014;24(1):24-41.
|
[9] |
Deretic V. Autophagy in immunity and cell-autonomous defense against intracellular microbes[J]. Immunol Rev,2011,240(1):92-104.
|
[10] |
Rao L, De La Rosa I, Xu Y, et al. Pseudomonas aeruginosa survives in epithelia by ExoS-mediated inhibition of autophagy and mTOR[J]. EMBO Rep,2021,22(2):e50613.
|
[11] |
Zrieq R, Sana TG, Vergin S, et al. Genome-wide screen of Pseudomonas aeruginosa in saccharomycescerevisiae identifies new virulence factors[J]. Front Cell Infect Microbiol,2015,5(11):81.
|
[12] |
Jain N, Moeller J, Vogel V. Mechanobiology of macrophages: how physical factors coregulate macrophage plasticity and phagocytosis[J]. Annu Rev Biomed Eng,2019,21(6):267-297.
|
[13] |
Marriott HM, Dockrell DH. The role of the macrophage in lung disease mediated by bacteria[J]. Exp Lung Res,2007,33(10):493-505.
|
[14] |
Liu C, Qi J, Shan B, et al. Pretreatment with cathelicidin-BF ameliorates Pseudomonas aeruginosa pneumonia in mice by enhancing NETosis and the autophagy of recruited neutrophils and macrophages[J]. Int Immunopharmacol,2018,65(12):382-391.
|
[15] |
Yuan K, Huang C, Fox J, et al. Autophagy plays an essential role in the clearance of Pseudomonas aeruginosa by alveolar macrophages[J]. J Cell Sci,2012,125(Pt 2):507-515.
|
[16] |
Deng Q, Wang Y, Zhang Y, et al. Pseudomonas aeruginosa triggers macrophage autophagy to escape intracellular killing by activation of the NLRP3 inflammasome[J]. Infect Immun,2015,14,84(1):56-66.
|
[17] |
Wu Y, Li D, Wang Y, et al. Pseudomonas aeruginosa promotes autophagy to suppress macrophage-mediated bacterial eradication[J]. Int Immunopharmacol,2016,38(9):214-222.
|
[18] |
Yu L, Chen Y, Tooze SA. Autophagy pathway: cellular and molecular mechanisms[J]. Autophagy,2018,14(2):207-215.
|
[19] |
Burman C, Ktistakis NT. Autophagosome formation in mammalian cells[J]. Semin Immunopathol,2010,32(4):397-413.
|
[20] |
Jabir MS, Ritchie ND, Li D, et al. Caspase-1 cleavage of the TLR adaptor TRIF inhibits autophagy and β-interferon production during Pseudomonas aeruginosa infection[J]. Cell Host Microbe,2014,15(2): 214-227.
|
[21] |
林少清,舒磊,杜兴冉, 等. 铜绿假单胞菌分泌蛋白Pec1抑制肺巨噬细胞吞噬功能的初步研究[J]. 南京医科大学学报(自然科学版),2021,41(9):1304-1309.
|
[22] |
He C, Klionsky DJ. Regulation mechanisms and signaling pathways of autophagy[J]. Annu Rev Genet,2009,43(11):67-93.
|
[23] |
Bressan C, Saghatelyan A. AMPK-induced autophagyas a key regulator of cell migration[J]. Autophagy,2021,17(3):828-829.
|
[24] |
Wan G, Xie W, Liu Z, et al. Hypoxia-induced MIR155 is a potent autophagy inducer by targeting multiple players in the MTOR pathway[J]. Autophagy,2014,10(1):70-79.
|
[25] |
Ferreira-Marques M, Carvalho A, Cavadas C, et al. PI3K/AKT/MTOR and ERK1/2-MAPK signaling pathways are involved in autophagy stimulation induced by caloric restriction or caloric restriction mimetics in cortical neurons[J]. Aging (Albany NY),2021,13(6):7872-7882.
|