[1]Lankisch PG, Apte M, Banks PA. Acute pancreatitis[J]. Lancet, 2015,386(9988):85-96.
[2]李非, 曹锋. 中国急性胰腺炎诊治指南(2021)[J]. 中国实用外科杂志, 2021,41(7):739-746.
[3]吴璟奕, 费健, 毛恩强. 急性胰腺炎流行病学的研究进展[J]. 外科理论与实践, 2015,20(3):270-273.
[4]Cruz AF, Rohban R, Esni F. Macrophages in the pancreas: Villains by circumstances, not necessarily by actions[J]. Immun Inflamm Dis, 2020,8(4):807-824.
[5]郭志国, 辛毅. 急性胰腺炎发病机制研究新观点[J]. 中国全科医学, 2018,21(20):2400-2403.
[6]Das A, Sinha M, Datta S, et al. Monocyte and macrophage plasticity in tissue repair and regeneration[J]. Am J Pathol, 2015,185(10):2596-606.
[7]王万朋, 程波, 杨舒珺, 等. 敲除巨噬细胞移动抑制因子基因可减轻小鼠重症急性胰腺炎相关肺损伤[J]. 中华急诊医学杂志, 2021,30(5):551-556.
[8]Liu W, Du JJ, Li ZH, et al. Liver injury associated with acute pancreatitis: The current status of clinical evaluation and involved mechanisms[J]. World J Clin Cases, 2021,9(34):10418-10429.
[9]何阳寰, 徐萍, 杨志文, 等. 急性坏死性胰腺炎大鼠腹腔巨噬细胞胱天蛋白酶募集域蛋白9、Toll样受体4的作用机制[J]. 中华胰腺病杂志, 2019,(3):204-207.
[10]Cavaillon JM. The historical milestones in the understanding of leukocyte biology initiated by Elie Metchnikoff[J]. J Leukoc Biol, 2011,90(3):413-424.
[11]Lavin Y, Winter D, Blecher-Gonen R, et al. Tissue-resident macrophage enhancer landscapes are shaped by the local microenvironment[J]. Cell, 2014,159(6):1312-1326.
[12]McWhorter FY, Davis CT, Liu WF. Physical and mechanical regulation of macrophage phenotype and function[J]. Cell Mol Life Sci, 2015,72(7):1303-1316.
[13]Funes SC,Rios M,Escobar-Vera J, et al.Implications of macrophage polarization in autoimmunity[J].Immunology,2018,154(2):186-195.
[14]Zhuang Z, Yoshizawa-Smith S, Glowacki A, et al. Induction of M2 macrophages prevents bone loss in murine periodontitis models[J]. J Dent Res, 2019,98(2):200-208.
[15]Zhang H, Cai D, Bai X. Macrophages regulate the progression of osteoarthritis[J]. Osteoarthritis Cartilage, 2020,28(5):555-561.
[16]Tang DS, Cao F, Yan CS, et al. Acinar Cell-Derived extracellular vesicle MiRNA-183-5p aggravates acute pancreatitis by promoting M1 macrophage polarization through downregulation of FoxO1[J]. Front Immunol, 2022,13:869207.
[17]Vitale I, Manic G, Coussens LM, et al. Macrophages and metabolism in the tumor microenvironment[J]. Cell Metab, 2019,30(1):36-50.
[18]Mantovani A, Sica A, Sozzani S, et al. The chemokine system in diverse forms of macrophage activation and polarization[J]. Trends Immunol, 2004,25(12):677-686.
[19]Swain SM, Romac JM, Shahid RA, et al. TRPV4 channel opening mediates pressure-induced pancreatitis initiated by Piezo1 activation[J]. J Clin Invest, 2020,130(5):2527-2541.
[20]Jakkampudi A, Jangala R, Reddy BR, et al. NF-κB in acute pancreatitis: Mechanisms and therapeutic potential[J]. Pancreatology, 2016,16(4):477-488.
[21]Wynn TA, Vannella KM. Macrophages in tissue repair, regeneration, and fibrosis[J]. Immunity, 2016,44(3):450-462.
[22]Lee PJ, Papachristou GI. New insights into acute pancreatitis[J]. Nat Rev Gastroenterol Hepatol, 2019,16(8):479-496.
[23]Sendler M, Weiss FU, Golchert J, et al. Cathepsin B-Mediated activation of trypsinogen in endocytosing macrophages increases severity of pancreatitis in mice[J]. Gastroenterology, 2018,154(3):704-718.e10.
[24]Xia W, Lu Z, Chen W, et al. Excess fatty acids induce pancreatic acinar cell pyroptosis through macrophage M1 polarization[J]. BMC Gastroenterol, 2022,22(1):72.
[25]Liou GY, Dppler H, Necela B, et al. Macrophage-secreted cytokines drive pancreatic acinar-to-ductal metaplasia through NF-κB and MMPs[J]. J Cell Biol, 2013,202(3):563-577.
[26]Zhang Y, Yan W, Mathew E, et al. Epithelial-Myeloid cell crosstalk regulates acinar cell plasticity and pancreatic remodeling in mice[J]. Elife, 2017,6:e27388.
[27]Tessem JS, Jensen JN, Pelli H, et al. Critical roles for macrophages in islet angiogenesis and maintenance during pancreatic degeneration[J]. Diabetes, 2008,57(6):1605-1617.
[28]Brissova M, Aamodt K, Brahmachary P, et al. Islet microenvironment, modulated by vascular endothelial growth factor-A signaling, promotes β cell regeneration[J]. Cell Metab, 2014,19(3):498-511.
[29]Gjessing J. Peritoneal dialysis in severe acute hemorrhagic pancreatitis[J]. Acta Chir Scand, 1967,133(8):645-647.
[30]Bain CC, Gibson DA, Steers NJ, et al. Rate of replenishment and microenvironment contribute to the sexually dimorphic phenotype and function of peritoneal macrophages[J]. Sci Immunol, 2020,5(48):eabc4466. .
[31]Bain CC, Jenkins SJ. The biology of serous cavity macrophages[J]. Cell Immunol, 2018,330:126-135.
[32]Gea-Sorlí S, Closa D. In vitro, but not in vivo, reversibility of peritoneal macrophages activation during experimental acute pancreatitis[J]. BMC Immunol, 2009,10:42.
[33]Gutierrez PT, Folch-Puy E, Bulbena O, et al. Oxidised lipids present in ascitic fluid interfere with the regulation of the macrophages during acute pancreatitis, promoting an exacerbation of the inflammatory response[J]. Gut, 2008,57(5):642-648.
[34]陈莎燕, 施继禹, 崔云峰, 等. 急性胰腺炎中腹腔巨噬细胞相关研究进展[J]. 中国中西医结合外科杂志, 2021,27(6):913-916.
[35]Takeyama Y, Nishikawa J, Ueda T, et al. Involvement of peritoneal macrophage in the induction of cytotoxicity due to apoptosis in ascitic fluid associated with severe acute pancreatitis[J]. J Surg Res, 1999,82(2):163-171.
[36]Li P, He K, Li J, et al. The role of Kupffer cells in hepatic diseases[J]. Mol Immunol, 2017,85:222-229.
[37]Shrivastava P, Bhatia M. Essential role of monocytes and macrophages in the progression of acute pancreatitis[J]. World J Gastroenterol, 2010,16(32):3995-4002.
[38]Folch E, Prats N, Hotter G, et al. P-selectin expression and Kupffer cell activation in rat acute pancreatitis[J]. Dig Dis Sci, 2000,45(8):1535-1544.
[39]Koyasu S, Isoda H, Tsuji Y, et al. Hepatic arterial perfusion increases in the early stage of severe acute pancreatitis patients: evaluation by perfusion computed tomography[J]. Eur J Radiol, 2012,81(1):43-46.
[40]Closa D, Bardají M, Hotter G, et al. Hepatic involvement in pancreatitis-induced lung damage[J]. Am J Physiol, 1996,270(1 Pt 1):G6-13.
[41]Bonjoch L, Casas V, Carrascal M, et al. Involvement of exosomes in lung inflammation associated with experimental acute pancreatitis[J]. J Pathol, 2016,240(2):235-245.
[42]Akbarshahi H, Rosendahl AH, Westergren-Thorsson G, et al. Acute lung injury in acute pancreatitis--awaiting the big leap[J]. Respir Med, 2012,106(9):1199-1210.
[43]Bharat A, Bhorade SM, Morales-Nebreda L, et al. Flow cytometry reveals similarities between lung macrophages in humans and mice[J]. Am J Respir Cell Mol Biol, 2016,54(1):147-149.
[44]Leach SM, Gibbings SL, Tewari AD, et al. Human and mouse transcriptome profiling identifies cross-species homology in pulmonary and lymph node mononuclear phagocytes[J]. Cell Rep, 2020,33(5):108337.
[45]Vrolyk V, Singh B. Animal models to study the role of pulmonary intravascular macrophages in spontaneous and induced acute pancreatitis[J]. Cell Tissue Res, 2020,380(2):207-222.
[46]Tsukahara Y, Horita Y, Anan K, et al. Role of nitric oxide derived from alveolar macrophages in the early phase of acute pancreatitis[J]. J Surg Res, 1996,66(1):43-50.
[47]Sailai Y, Yu X, Baiheti P, et al. Influence of nuclear factor kappaB activation on inflammatory mediators of alveolar macrophages in rats with acute necrotizing pancreatitis[J]. J Investig Med, 2010,58(1):38-42.
[48]Ricote M, Huang JT, Welch JS, et al. The peroxisome proliferator-activated receptor(PPARgamma) as a regulator of monocyte/macrophage function[J]. J Leukoc Biol, 1999,66(5):733-739.
[49]Vidal-Puig AJ, Considine RV, Jimenez-Lian M, et al. Peroxisome proliferator-activated receptor gene expression in human tissues. Effects of obesity, weight loss, and regulation by insulin and glucocorticoids[J]. J Clin Invest, 1997,99(10):2416-2422.
[50]Vrolyk V, Schneberger D, Le K, et al. Mouse model to study pulmonary intravascular macrophage recruitment and lung inflammation in acute necrotizing pancreatitis[J]. Cell Tissue Res, 2019,378(1):97-111.
[51]Barth ND, Van Dalen FJ, Karmakar U, et al. Enzyme-Activatable chemokine conjugates for In vivo targeting of tumor-associated macrophages[J]. Angew Chem Int Ed Engl, 2022:e202207508.
[52]Closa D, Sabater L, Fernández-Cruz L, et al. Activation of alveolar macrophages in lung injury associated with experimental acute pancreatitis is mediated by the liver[J]. Ann Surg, 1999,229(2):230-236.
[53]Bhatia M, Ramnath RD, Chevali L, et al. Treatment with bindarit, a blocker of MCP-1 synthesis, protects mice against acute pancreatitis[J]. Am J Physiol Gastrointest Liver Physiol, 2005,288(6):G1259-1265.
[54]Bhatia M, Proudfoot AE, Wells TN, et al. Treatment with Met-RANTES reduces lung injury in caerulein-induced pancreatitis[J]. Br J Surg, 2003,90(6):698-704.
[55]Yang J, Tang X, Wu Q, et al. Heparin protects severe acute pancreatitis by inhibiting HMGB-1 active secretion from macrophages[J]. Polymers (Basel), 2022,14(12):2470.
[56]Dang SC, Wang H, Zhang JX, et al. Are gastric mucosal macrophages responsible for gastric injury in acute pancreatitis?[J]. World J Gastroenterol, 2015,21(9):2651-2657.
[57]Pastor CM, Vonlaufen A, Georgi F, et al. Neutrophil depletion--but not prevention of Kupffer cell activation--decreases the severity of cerulein-induced acute pancreatitis[J]. World J Gastroenterol, 2006,12(8):1219-1224.
[58]Wu X, Yao J, Hu Q, et al. Emodin ameliorates acute pancreatitis-associated lung injury through inhibiting the alveolar macrophages pyroptosis[J]. Front Pharmacol, 2022,13:873053.
[59]Yuan C, Xu X, Wang N, et al. Paeonol protects against acute pancreatitis by inhibiting M1 macrophage polarization via the NLRP3 inflammasomes pathway[J]. Biochem Biophys Res Commun, 2022,600:35-43.
[60]Sun K, He SB, Qu JG, et al. IRF5 regulates lung macrophages M2 polarization during severe acute pancreatitis in vitro[J]. World J Gastroenterol, 2016,22(42):9368-9377.
[61]Hu N, Zhang X, Zhang X, et al. Inhibition of Notch activity suppresses hyperglycemia-augmented polarization of macrophages to the M1 phenotype and alleviates acute pancreatitis[J]. Clin Sci (Lond), 2022,136(7):455-471.
[62]Pan LL, Deng YY, Wang R, et al. Lactose induces phenotypic and functional changes of neutrophils and macrophages to alleviate acute pancreatitis in mice[J]. Front Immunol, 2018,9:751.
[63]Duan F, Wang X, Wang H, et al. GDF11 ameliorates severe acute pancreatitis through modulating macrophage M1 and M2 polarization by targeting the TGFβR1/SMAD-2 pathway[J]. Int Immunopharmacol, 2022,108:108777.
[64]Taguchi K, Nagao S, Maeda H, et al. Biomimetic carbon monoxide delivery based on hemoglobin vesicles ameliorates acute pancreatitis in mice via the regulation of macrophage and neutrophil activity[J]. Drug Deliv, 2018,25(1):1266-1274.
[65]Liu RH, Wen Y, Sun HY, et al. Abdominal paracentesis drainage ameliorates severe acute pancreatitis in rats by regulating the polarization of peritoneal macrophages[J]. World J Gastroenterol, 2018,24(45):5131-5143.
[1]李云莉,张 秦综述,管 群,等.妊娠合并急性胰腺炎诊治分析[J].医学研究与战创伤救治(原医学研究生学报),2011,13(05):435.
[2]万水治,胡敢峰,李 琳,等.CT检查急性胰腺炎25例[J].医学研究与战创伤救治(原医学研究生学报),2009,11(03):205.
[3]王 坚,郝立校,焦成文,等.胆管内用药预防内镜下胰胆管逆行造影[J].医学研究与战创伤救治(原医学研究生学报),2009,11(01):17.
WANG Jian,HAO Li-xiao,JIAO Cheng-wen,et al.Injection of medicines in the bile duct to prevent the acute pancreatitis in the ERCP[J].JOURNAL OF MEDICALRESEARCH —COMBAT TRAUMA CARE,2009,11(3):17.
[4]卢小军,郑 伟,周 春,等.老年急性胰腺炎49例临床分析[J].医学研究与战创伤救治(原医学研究生学报),2008,10(03):186.
LU Xiao-jun,ZHENG Wei,ZHOU Chun,et al.Clinical characteristics of acute pancreatitis in elderly patients[J].JOURNAL OF MEDICALRESEARCH —COMBAT TRAUMA CARE,2008,10(3):186.
[5]吴勇,叶芬,葛轶睿,等.SN50对缺血再灌注损伤中TNF-α影响的实验研究[J].医学研究与战创伤救治(原医学研究生学报),2014,16(05):453.[doi:10.3969/j.issn.1672-271X.2014.05.002]
WU Yong,YE Fen,GE Yi-rui,et al.Experimental study of SN50 on TNF-α effects in ischemia-reperfusion injury[J].JOURNAL OF MEDICALRESEARCH —COMBAT TRAUMA CARE,2014,16(3):453.[doi:10.3969/j.issn.1672-271X.2014.05.002]
[6]刘亚萍,徐诺,沈正华,等.1例重症急性胰腺炎多次腹腔大出血的救治与护理[J].医学研究与战创伤救治(原医学研究生学报),2017,19(03):315.[doi:10.3969/j.issn.1672-271X.2017.03.024]
[7]张少波,温春虹,何杰综述,等.巨噬细胞极化分型与创伤修复的研究进展[J].医学研究与战创伤救治(原医学研究生学报),2018,20(04):390.[doi:10.3969/j.issn.1672-271X.2018.04.014]
[8]于先强综述,柯路审校.急性胰腺炎的凝血紊乱研究进展[J].医学研究与战创伤救治(原医学研究生学报),2019,21(02):176.[doi:10.3969/j.issn.1672-271X.2019.02.014]
YUXian-qiang reviewing,KELu checking.Advances in coagulation disorders in acute pancreatitis[J].JOURNAL OF MEDICALRESEARCH —COMBAT TRAUMA CARE,2019,21(3):176.[doi:10.3969/j.issn.1672-271X.2019.02.014]
[9]陈意喆,柯路,李维勤.血栓调节蛋白对于急性胰腺炎患者胰腺坏死及总体预后的早期预测价值[J].医学研究与战创伤救治(原医学研究生学报),2020,22(01):15.[doi:10.3969/j.issn.1672-271X.2020.01.004]
CHENYi-zhe,KELu,LIWei-qin.Thrombomodulin is an early indicator of pancreatic necrosis and overall prognosis in acute pancreatitis patients[J].JOURNAL OF MEDICALRESEARCH —COMBAT TRAUMA CARE,2020,22(3):15.[doi:10.3969/j.issn.1672-271X.2020.01.004]
[10]邓宏彬,于先强,李维勤.低分子肝素治疗重症急性胰腺炎研究进展[J].医学研究与战创伤救治(原医学研究生学报),2022,24(3):289.[doi:10.3969/j.issn.1672-271X.2022.03.014]
DENG Hong-bin,YU Xian-qiang,LI Wei-qin.Research progress of low molecular weight heparin in the treatment of severe acute pancreatitis[J].JOURNAL OF MEDICALRESEARCH —COMBAT TRAUMA CARE,2022,24(3):289.[doi:10.3969/j.issn.1672-271X.2022.03.014]