Proteomic Analysis of Resistance o Gram-Negative Bacteria to Chlorhexidine and Impacts on Susceptibility to Colistin, Antimicrobial Peptides, and Ceragenins

被引:41
|
作者
Hashemi, Marjan M. [1 ]
Holden, Brett S. [1 ]
Coburn, Jordan [1 ]
Taylor, Maddison F. [1 ]
Weber, Scott [1 ]
Hilton, Brian [1 ]
Zaugg, Aaron L. [1 ]
McEwan, Colten [1 ]
Carson, Richard [1 ]
Andersen, Joshua L. [1 ]
Price, John C. [1 ]
Deng, Shenglou [1 ]
Savage, Paul B. [1 ]
机构
[1] Brigham Young Univ, Dept Chem & Biochem, Provo, UT 84602 USA
来源
FRONTIERS IN MICROBIOLOGY | 2019年 / 10卷
关键词
chlorhexidine; ceragenins; colistine; proteomic; cross-resistance; Pseudomonas aeruginosa; Gramnegative bacteria; PSEUDOMONAS-AERUGINOSA; ACINETOBACTER-BAUMANNII; TWITCHING MOTILITY; MEMBRANE; DETERMINANTS; EXPRESSION; REQUIRES; COMPLEX; SYSTEM; OPRF;
D O I
10.3389/fmicb.2019.00210
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Use of chlorhexidine in clinical settings has led to concerns that repeated exposure of bacteria to sub-lethal doses of chlorhexidine might result in chlorhexidine resistance and cross resistance with other cationic antimicrobials including colistin, endogenous antimicrobial peptides (AMPs) and their mimics, ceragenins. We have previously shown that colistin-resistant Gram-negative bacteria remain susceptible to AMPs and ceragenins. Here, we investigated the potential for cross resistance between chlorhexidine, colistin, AMPs and ceragenins by serial exposure of standard strains of Gram-negative bacteria to chlorhexidine to generate resistant populations of organisms. Furthermore, we performed a proteomics study on the chlorhexidine-resistant strains and compared them to the wild-type strains to find the pathways by which bacteria develop resistance to chlorhexidine. Serial exposure of Gram-negative bacteria to chlorhexidine resulted in four- to eight-fold increases in minimum inhibitory concentrations (MICs). Chlorhexidine-resistant organisms showed decreased susceptibility to colistin (8- to 32-fold increases in MICs) despite not being exposed to colistin. In contrast, chlorhexidine-resistant organisms had the same MICs as the original strains when tested with representative AMPs (LL-37 and magainin I) and ceragenins (CSA-44 and CSA-131). These results imply that there may be a connection between the emergence of highly colistin-resistant Gram-negative pathogens and the prevalence of chlorhexidine usage. Yet, use of chlorhexidine may not impact innate immune defenses (e.g., AMPs) and their mimics (e.g., ceragenins). Here, we also show that chlorhexidine resistance is associated with upregulation of proteins involved in the assembly of LPS for outer membrane biogenesis and virulence factors in Pseudomonas aeruginosa. Additionally, resistance to chlorhexidine resulted in elevated expression levels of proteins associated with chaperones, efflux pumps, flagella and cell metabolism. This study provides a comprehensive overview of the evolutionary proteomic changes in P aeruginosa following exposure to chlorhexidine and colistin. These results have important clinical implications considering the continuous application of chlorhexidine in hospitals that could influence the emergence of colistin-resistant strains.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] Transfer dynamics of antimicrobial resistance among gram-negative bacteria
    Wang, Bangjuan
    Farhan, Muhammad Haris Raza
    Yuan, Linlin
    Sui, Yuxin
    Chu, Jinhua
    Yang, Xiaohan
    Li, Yuxin
    Huang, Lingli
    Cheng, Guyue
    SCIENCE OF THE TOTAL ENVIRONMENT, 2024, 954
  • [22] The role of bacterial transport systems in the removal of host antimicrobial peptides in Gram-negative bacteria
    Blair, Jessica M. A.
    Zeth, Kornelius
    Bavro, Vassiliy N.
    Sancho-Vaello, Enea
    FEMS MICROBIOLOGY REVIEWS, 2022, 46 (06)
  • [23] Can Gram-Negative Bacteria Develop Resistance to Antimicrobial Blue Light Treatment?
    Rapacka-Zdonczyk, Aleksandra
    Wozniak, Agata
    Kruszewska, Beata
    Waleron, Krzysztof
    Grinholc, Mariusz
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (21)
  • [24] Species distribution and antimicrobial susceptibility of gram-negative aerobic bacteria in hospitalized cancer patients
    Ashour, Hossam M.
    El-Sharif, Amany
    JOURNAL OF TRANSLATIONAL MEDICINE, 2009, 7
  • [25] Correlation between Identification of β-Lactamase Resistance Genes and Antimicrobial Susceptibility Profiles in Gram-Negative Bacteria: a Laboratory Data Analysis
    Mushtaq, Ammara
    Chasan, Rachel
    Nowak, Michael D.
    Rana, Meenakshi
    Ilyas, Sahrish
    Paniz-Mondolfi, Alberto E.
    Sordillo, Emilia M.
    Patel, Gopi
    Gitman, Melissa R.
    MICROBIOLOGY SPECTRUM, 2022, 10 (02):
  • [26] Minocycline and Omadacycline Resistance Among Carbapenem-Resistant Gram-Negative Bacteria: Antimicrobial Susceptibility Testing and Molecular Characterization
    Sinha, Richa
    Jyoti, Jyoti
    Pathak, Ashutosh
    Sahu, Chinmoy
    Mishra, Prabhaker
    Marak, Rungmei S. K.
    Ghoshal, Ujjala
    MICROBIAL DRUG RESISTANCE, 2025, : 107 - 112
  • [27] A systematic review and meta-analysis: rising prevalence of colistin resistance in ICU-acquired Gram-negative bacteria
    Li, Na
    Ebrahimi, Elaheh
    Sholeh, Mohammad
    Dousti, Reyhane
    Kouhsari, Ebrahim
    APMIS, 2025, 133 (01)
  • [28] Evaluation of an expanded antibiotic resistance gene panel on prediction of antimicrobial susceptibility results for Gram-negative bacteria in blood cultures
    Manuel, Carmila
    Maynard, Richard
    Simpkins, Synthia
    Haro, Michelle
    Humphries, Romney
    JOURNAL OF CLINICAL MICROBIOLOGY, 2024, 62 (10)
  • [29] Antimicrobial resistance among non-fermenting Gram-negative bacteria in Saudi Arabia
    Memish, Ziad A.
    Shibl, Atef M.
    Kambal, Abdelmageed M.
    Ohaly, Yazid A.
    Ishaq, Abdulrahman
    Livermore, David M.
    JOURNAL OF ANTIMICROBIAL CHEMOTHERAPY, 2012, 67 (07) : 1701 - 1705
  • [30] Combining Colistin with Furanone C-30 Rescues Colistin Resistance of Gram-Negative Bacteria in Vitro and in Vivo
    Zhang, Ying
    Lin, Yishuai
    Zhang, Xiaodong
    Chen, Liqiong
    Xu, Chunyan
    Liu, Shixing
    Cao, Jianming
    Zheng, Xiangkuo
    Jia, Huaiyu
    Chen, Lijiang
    Zhou, Tieli
    MICROBIOLOGY SPECTRUM, 2021, 9 (03):