
CLC number: S858.94; Q78
On-line Access: 2024-08-27
Received: 2023-10-17
Revision Accepted: 2024-05-08
Crosschecked: 2019-12-25
Cited: 0
Clicked: 4982
Wei Yang, Wu-You Wang, Wei Zhao, Jian-Guo Cheng, Yin Wang, Xue-Ping Yao, Ze-Xiao Yang, Dong Yu, Yan Luo. Preliminary study on the role of novel LysR family gene kp05372 in Klebsiella pneumoniae of forest musk deer[J]. Journal of Zhejiang University Science B,in press.Frontiers of Information Technology & Electronic Engineering,in press.https://doi.org/10.1631/jzus.B1900440 @article{title="Preliminary study on the role of novel LysR family gene kp05372 in Klebsiella pneumoniae of forest musk deer", %0 Journal Article TY - JOUR
LysR家族新基因kp05372对林麝肺炎克雷伯氏菌的作用的初步研究创新点:解析了LysR家族新基因kp05372对林麝肺炎克雷伯氏菌生物表型的影响. 方法:通过基因敲除和回补技术构建了kp05372的基因缺失株和基因回补株,比较了kp05372基因缺失前后,林麝肺炎克雷伯氏菌在生长曲线、药敏试验、生物被膜、抗逆性、细菌半数致死量、定殖能力、病理形态学等生物学特性所表现出的差异. 结论:成功构建了kp05372基因的缺失株及回补株.kp05372基因的缺失导致林麝肺炎克雷伯氏菌耐药性和耐酸性发生了变化,毒力、生物膜和定殖能力降低,并且调控了上游临近区域的基因表达. 关键词组: Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article
Reference[1]Anderl JN, Franklin MJ, Stewart PS, 2000. Role of antibiotic penetration limitation in Klebsiella pneumoniae biofilm resistance to ampicillin and ciprofloxacin. Antimicrob Agents Chemother, 44(7):1818-1824. ![]() [2]Balestrino D, Haagensen JAJ, Rich C, et al., 2005. Characterization of type 2 quorum sensing in Klebsiella pneumoniae and relationship with biofilm formation. J Bacteriol, 187(8):2870-2880. ![]() [3]Bliss CI, 1935. The calculation of the dosage-mortality curve. Ann Appl Biol, 22(1):134-167. ![]() [4]Bujanda L, Cosme A, Beguiristaín A, et al., 1996. Multiple liver abscesses, peritonitis and acute enteritis caused by Klebsiella pneumoniae. Gastroenterol Hepatol, 19(6):336-337. ![]() [5]Cai SS, Batra S, Shen L, et al., 2009. Both TRIF- and MyD88-dependent signaling contribute to host defense against pulmonary Klebsiella infection. J Immunol, 183(10):6629-6638. ![]() [6]Cao H, Krishnan G, Goumnerov B, et al., 2001. A quorum sensing-associated virulence gene of Pseudomonas aeruginosa encodes a LysR-like transcription regulator with a unique self-regulatory mechanism. Proc Natl Acad Sci USA, 98(25):14613-14618. ![]() [7]CLSI (Clinical and Laboratory Standards Institute), 2019. Drug Sensitivity Test Implementation Standards; Twenty-Ninth Edition Information Supplement. CLSI Document M100, p.93-96. ![]() [8]Cramton SE, Gerke C, Schnell NF, et al., 1999. The intercellular adhesion (ica) locus is present in Staphylococcus aureus and is required for biofilm formation. Infect Immun, 67(10):5427-5433. ![]() [9]da Silva DP, Schofield MC, Parsek MR, et al., 2017. An update on the sociomicrobiology of quorum sensing in Gram-negative biofilm development. Pathogens, 6(4):51. ![]() [10]de Araujo C, Balestrino D, Roth L, et al., 2010. Quorum sensing affects biofilm formation through lipopolysaccharide synthesis in Klebsiella pneumoniae. Res Microbiol, 161(7):595-603. ![]() [11]Diago-Navarro E, Chen L, Passet V, et al., 2014. Carbapenem-resistant Klebsiella pneumoniae exhibit variability in capsular polysaccharide and capsule associated virulence traits. J Infect Dis, 210(5):803-813. ![]() [12]Dos Santos Goncalves M, Delattre C, Balestrino D, et al., 2014. Anti-biofilm activity: a function of Klebsiella pneumoniae capsular polysaccharide. PLoS ONE, 9(6):e99995. ![]() [13]Fang CT, Chuang YP, Shun CT, et al., 2004. A novel virulence gene in Klebsiella pneumoniae strains causing primary liver abscess and septic metastatic complications. J Exp Med, 199(5):697-705. ![]() [14]Frisch RL, Bender RA, 2010. Expanded role for the nitrogen assimilation control protein in the response of Klebsiella pneumoniae to nitrogen stress. J Bacteriol, 192(19):4812-4280. ![]() [15]He K, Xin YP, Shan Y, et al., 2019. Phosphorylation residue T175 in RsbR protein is required for efficient induction of sigma B factor and survival of listeria monocytogenes under acidic stress. J Zhejiang Univ-Sci B (Biomed & Biotechnol), 20(8):660-669. ![]() [16]Henikoff S, Haughn GW, Calvo JM, et al., 1988. A large family of bacterial activator proteins. Proc Natl Acad Sci USA, 85(18):6602-6606. ![]() [17]Hennequin C, Forestier C, 2009. OxyR, a LysR-type regulator involved in Klebsiella pneumoniae mucosal and abiotic colonization. Infect Immun, 77(12):5449-5457. ![]() [18]Huang FY, Ding XM, Lin YL, et al., 2016. Study on the influence of environmental factors on the growth of Klebsiella pneumoniae. Med Forum, 20(36):5136-5137 (in Chinese). ![]() [19]Kim J, Kim JG, Kang Y, et al., 2004. Quorum sensing and the LysR-type transcriptional activator ToxR regulate toxoflavin biosynthesis and transport in Burkholderia glumae. Mol Microbiol, 54(4):921-934. ![]() [20]Lavender HF, Jagnow JR, Clegg S, 2004. Biofilm formation in vitro and virulence in vivo of mutants of Klebsiella pneumoniae. Infect Immun, 72(8):4888-4890. ![]() [21]Lederman ER, Crum NF, 2005. Pyogenic liver abscess with a focus on Klebsiella pneumoniae as a primary pathogen: an emerging disease with unique clinical characteristics. Am J Gastroenterol, 100(2):322-331. ![]() [22]Lee S, Kim B, Jeong D, et al., 2013. Observation of 2,3-butanediol biosynthesis in Lys regulator mutated Klebsiella pneumoniae at gene transcription level. J Biotechnol, 168(4):520-526. ![]() [23]Li J, Ji JL, 2017. Liver macrophages: role in liver injury. World Chin J Digestol, 25(14):1223-1230 (in Chinese). ![]() [24]Liu L, Gui M, Wu RY, et al., 2016. Progress in research on biofilm formation regulated by Luxs/AI-2 quorum sensing. Food Sci, 37(19):254-262 (in Chinese). ![]() [25]Macfarlane S, 2008. Microbial biofilm communities in the gastrointestinal tract. J Clin Gastroenterol, 42(S3):S142-S143. ![]() [26]Maddocks SE, Oyston PCF, 2008. Structure and function of the LysR-type transcriptional regulator (LTTR) family proteins. Microbiology, 154(12):3609-3623. ![]() [27]Murphy TF, Kirkham C, 2002. Biofilm formation by nontypeable Haemophilus influenzae: strain variability, outer membrane antigen expression and role of pili. BMC Microbiol, 2:7. ![]() [28]O'Toole G, Kaplan HB, Kolter R, 2000. Biofilm formation as microbial development. Ann Rev Microbiol, 54:49-79. ![]() [29]Pfaffl MW, 2001. A new mathematical model for relative quantification in real-time RT-PCR. Nucleic Acids Res, 29(9):e45. ![]() [30]Pollak CN, Wanke MM, Estein SM, et al., 2015. Immunization with Brucella virB proteins reduces organ colonization in mice through a Th1-type immune response and elicits a similar immune response in dogs. Clin Vaccine Immunol, 22(3):274-281. ![]() [31]Roberts DE, McClain HM, Hansen DS, et al., 2000. An outbreak of Klebsiella pneumoniae infection in dogs with severe enteritis and septicemia. J Vet Diagn Invest, 12(2):168-173. ![]() [32]Sperandio V, Li CC, Kaper JB, 2002. Quorum-sensing Escherichia coli regulator A: a regulator of the LysR family involved in the regulation of the locus of enterocyte effacement pathogenicity island in enterohemorrhagic E. coli. Infect Immun, 70(6):3085-3093. ![]() [33]Srinivasan VB, Mondal A, Venkataramaiah M, et al., 2013. Role of oxyRKP, a novel LysR-family transcriptional regulator, in antimicrobial resistance and virulence in Klebsiella pneumoniae. Microbiology, 159(7):1301-1314. ![]() [34]Viswanathan P, Ueki T, Inouye S, et al., 2007. Combinatorial regulation of genes essential for Myxococcus xanthus development involves a response regulator and a LysR-type regulator. Proc Natl Acad Sci USA, 104(19):7969-7974. ![]() [35]Vuotto C, Longo F, Pascolini C, et al., 2017. Biofilm formation and antibiotic resistance in Klebsiella pneumoniae urinary strains. J Appl Microbiol, 123(4):1003-1018. ![]() [36]Wang WD, Zhang NN, Chanda W, et al., 2018. Antibacterial and anti-biofilm activity of the lipid extract from Mantidis ootheca on Pseudomonas aeruginosa. J Zhejiang Univ-Sci B (Biomed & Biotechnol), 19(5):364-371. ![]() [37]Wang XL, Zhu XC, Wang YS, et al., 2010. Isolation and identification of 8 strains of Bacillus and comparison of their resistance. Vet Sci China, 40(10):1017-1022 (in Chinese). ![]() [38]Whitchurch BC, Tolker-Nielsen T, Ragas PC, et al., 2002. Extracellular DNA required for bacterial biofilm formation. Science, 295(5559):1487. ![]() [39]Yang D, Zhang Z, 2008. Biofilm-forming Klebsiella pneumoniae strains have greater likelihood of producing extended-spectrum β-lactamases. J Hosp Infect, 68(4):369-371. ![]() [40]Yang F, Deng BG, Wei JD, et al., 2017. Drug-resistant and molecular characteristic of Klebsiella pneumoniae isolated from nosocomial and animal origins. Chin J Zoonoses, 33(10):888-892 (in Chinese). ![]() [41]Yang QS, Meng XX, Xia L, et al., 2003. Conservation status and causes of decline of musk deer (Moschus spp.) in China. Biol Conserv, 109(3):333-342. ![]() [42]Yao X, Feng L, Zhu GM, 2018. Molecular epidemiology and resistant mechanisms of carbapenem-resistant Klebsiella pneumoniae. Chin J Antibiot, 43(1):85-90 (in Chinese). ![]() [43]https://doi.org/10.13461/j.cnki.cja.006161 ![]() [44]Yuan JY, Xu XG, Hu FP, et al., 2018. Fluoroquinolone resistance profile of Klebsiella pneumoniae isolates and the mechanisms conferring antibiotic resistance in ST494 strains. Chin J Infect Chemother, 18(3):286-291 (in Chinese). ![]() [45]https://doi.org/10.16718/j.1009-7708.2018.03.008 ![]() [46]Zhai HL, Wang YF, 2017. Pathological changes of reactive thrombocytosis induced by recombinant human thrombopoietin in mice. J Chongqing Med Univ, 42(9):1161-1166 (in Chinese). ![]() [47]https://doi.org/10.13406/j.cnki.cyxb.001018 ![]() [48]Zhao W, Tian Q, Luo Y, et al., 2017a. Isolation, identification, and genome analysis of lung pathogenic Klebsiella pneumoniae (LPKP) in forest musk deer. J Zoo Wildl Med, 48(4):1039-1048. ![]() [49]Zhao W, Wang WY, Cheng JG, et al., 2017b. Isolation and identification of Klebsiella pneumoniae from forest musk deer and bioinformatics analysis of its kp05372 gene. J Northwest A&F Univ (Nat Sci Ed), 45(12):23-30 (in Chinese). ![]() [50]https://doi.org/10.13207/j.cnki.jnwafu.2017.12.004 ![]() [51]Zhou XX, He TM, Peng GN, et al., 2013. Isolation, identification and resistance analysis of 7 Bacillus strains from the intestinal tract of giant panda. Chin Vet Sci, 43(11):1115-1121 (in Chinese). ![]() [52]https://doi.org/10.16656/j.issn.1673-4696.2013.11.011 ![]() [53]Zhu H, Liu HJ, Ning SJ, et al., 2012. The response of type 2 quorum sensing in Klebsiella pneumoniae to a fluctuating culture environment. DNA Cell Biol, 31(4):455-459. ![]() Journal of Zhejiang University-SCIENCE, 38 Zheda Road, Hangzhou
310027, China
Tel: +86-571-87952783; E-mail: cjzhang@zju.edu.cn Copyright © 2000 - 2026 Journal of Zhejiang University-SCIENCE | ||||||||||||||


Open peer comments: Debate/Discuss/Question/Opinion
<1>