Strategies and molecular tools to fight antimicrobial resistance: resistome, transcriptome, and antimicrobial peptides

被引:51
|
作者
Tavares, Leticia S. [1 ]
Silva, Carolina S. F. [2 ]
de Souza, Vinicius C. [1 ]
da Silva, Vania L. [2 ]
Diniz, Claudio G. [2 ]
Santos, Marcelo O. [1 ]
机构
[1] Univ Juiz de Fora, Dept Biol, BR-36036900 Martelos, Juiz De Fora, Brazil
[2] Univ Juiz de Fora, Dept Microbiol Immunol & Infect Dis, BR-36036900 Martelos, Juiz De Fora, Brazil
关键词
resistome; transcription; genetic; molecular modeling; antimicrobial peptides; NGS applications; NONTYPABLE HAEMOPHILUS-INFLUENZAE; 2-COMPONENT REGULATORY SYSTEM; PROTEIN-STRUCTURE PREDICTION; ALANYL-LIPOTEICHOIC ACID; STAPHYLOCOCCUS-AUREUS; PSEUDOMONAS-AERUGINOSA; HUMAN DEFENSINS; OUTER-MEMBRANE; HOST-DEFENSE; SUSCEPTIBILITY;
D O I
10.3389/fmicb.2013.00412
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The increasing number of antibiotic resistant bacteria motivates prospective research toward discovery of new antimicrobial active substances. There are, however, controversies concerning the cost-effectiveness of such research with regards to the description of new substances with novel cellular interactions, or description of new uses of existing substances to overcome resistance. Although examination of bacteria isolated from remote locations with limited exposure to humans has revealed an absence of antibiotic resistance genes, it is accepted that these genes were both abundant and diverse in ancient living organisms, as detected in DNA recovered from Pleistocene deposits (30,000 years ago). Indeed, even before the first clinical use of antibiotics more than 60 years ago, resistant organisms had been isolated. Bacteria can exhibit different strategies for resistance against antibiotics. New genetic information may lead to the modification of protein structure affecting the antibiotic carriage into the cell, enzymatic inactivation of drugs, or even modification of cellular structure interfering in the drug-bacteria interaction. There are still plenty of new genes out there in the environment that can be appropriated by putative pathogenic bacteria to resist antimicrobial agents. On the other hand, there are several natural compounds with antibiotic activity that may be used to oppose them. Antimicrobial peptides (AMPs) are molecules which are wide-spread in all forms of life, from multi-cellular organisms to bacterial cells used to interfere with microbial growth. Several AMPs have been shown to be effective against multi-drug resistant bacteria and have low propensity to resistance development, probably due to their unique mode of action, different from well-known antimicrobial drugs. These substances may interact in different ways with bacterial cell membrane, protein synthesis, protein modulation, and protein folding. The analysis of bacterial transcriptome may contribute to the understanding of microbial strategies under different environmental stresses and allows the understanding of their interaction with novel AM Ps.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] ANTIMICROBIAL PEPTIDES AS POTENTIAL TOOL TO FIGHT BACTERIAL BIOFILM
    Dawgul, Malgorzata
    Maciejewska, Magdalena
    Jaskiewicz, Maciej
    Karafova, Anna
    Kamysz, Wojciech
    ACTA POLONIAE PHARMACEUTICA, 2014, 71 (01): : 39 - 47
  • [32] Antimicrobial Peptides: A Promising Therapeutic Strategy in Tackling Antimicrobial Resistance
    Nuti, Ramya
    Goud, Nerella S.
    Saraswati, A. Prasanth
    Alvala, Ravi
    Alvala, Mallika
    CURRENT MEDICINAL CHEMISTRY, 2017, 24 (38) : 4303 - 4314
  • [33] Tools in the Era of Multidrug Resistance in Bacteria: Applications for New Antimicrobial Peptides Discovery
    Moretta, Antonio
    Scieuzo, Carmen
    Salvia, Rosanna
    Popovic, Zeljko D.
    Sgambato, Alessandro
    Falabella, Patrizia
    CURRENT PHARMACEUTICAL DESIGN, 2022, 28 (35) : 2856 - 2866
  • [34] A Review of Antimicrobial Peptides: Structure, Mechanism of Action, and Molecular Optimization Strategies
    Ma, Xu
    Wang, Qiang
    Ren, Kexin
    Xu, Tongtong
    Zhang, Zigang
    Xu, Meijuan
    Rao, Zhiming
    Zhang, Xian
    FERMENTATION-BASEL, 2024, 10 (11):
  • [35] UN Leaders Commit to Fight Antimicrobial Resistance
    Friedrich, M. J.
    JAMA-JOURNAL OF THE AMERICAN MEDICAL ASSOCIATION, 2016, 316 (19): : 1956 - 1956
  • [36] Medicines quality assurance to fight antimicrobial resistance
    Nwokike, Jude
    Clark, Aubrey
    Nguyen, Phillip P.
    BULLETIN OF THE WORLD HEALTH ORGANIZATION, 2018, 96 (02) : 135 - 137
  • [37] Antimicrobial resistance: one world, one fight!
    Stephan Harbarth
    Hanan H. Balkhy
    Herman Goossens
    Vincent Jarlier
    Jan Kluytmans
    Ramanan Laxminarayan
    Mirko Saam
    Alex Van Belkum
    Didier Pittet
    Antimicrobial Resistance and Infection Control, 4
  • [38] Antimicrobial resistance: one world, one fight!
    Harbarth, Stephan
    Balkhy, Hanan H.
    Goossens, Herman
    Jarlier, Vincent
    Kluytmans, Jan
    Laxminarayan, Ramanan
    Saam, Mirko
    Van Belkum, Alex
    Pittet, Didier
    ANTIMICROBIAL RESISTANCE AND INFECTION CONTROL, 2015, 4
  • [39] A review on antimicrobial peptides databases and the computational tools
    Ramazi, Shahin
    Mohammadi, Neda
    Allahverdi, Abdollah
    Khalili, Elham
    Abdolmaleki, Parviz
    DATABASE-THE JOURNAL OF BIOLOGICAL DATABASES AND CURATION, 2022, 2022
  • [40] Nanostructures as Promising Tools for Delivery of Antimicrobial Peptides
    Brandelli, A.
    MINI-REVIEWS IN MEDICINAL CHEMISTRY, 2012, 12 (08) : 731 - 741