Antibiotic Resistance Mechanisms in Bacteria: Relationships Between Resistance Determinants of Antibiotic Producers, Environmental Bacteria, and Clinical Pathogens

被引:614
作者
Peterson, Elizabeth [1 ]
Kaur, Parjit [1 ]
机构
[1] Georgia State Univ, Dept Biol, POB 4010, Atlanta, GA 30302 USA
关键词
self-resistance mechanisms; antibiotic resistance; Streptomyces; clinical pathogens; horizontal gene transfer; resistance gene dissemination; environmental bacteria; producer bacteria; PENICILLIN-BINDING PROTEINS; BIOSYNTHETIC GENE-CLUSTER; MACROLIDE-LINCOSAMIDE-STREPTOGRAMIN; BETA-LACTAM ANTIBIOTICS; MULTIDRUG EFFLUX PUMPS; STAPHYLOCOCCUS-AUREUS; VANCOMYCIN-RESISTANCE; ESCHERICHIA-COLI; MOLECULAR-BASIS; TETRACYCLINE RESISTANCE;
D O I
10.3389/fmicb.2018.02928
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Emergence of antibiotic resistant pathogenic bacteria poses a serious public health challenge worldwide. However, antibiotic resistance genes are not confined to the clinic; instead they are widely prevalent in different bacterial populations in the environment. Therefore, to understand development of antibiotic resistance in pathogens, we need to consider important reservoirs of resistance genes, which may include determinants that confer self-resistance in antibiotic producing soil bacteria and genes encoding intrinsic resistance mechanisms present in all or most non-producer environmental bacteria. While the presence of resistance determinants in soil and environmental bacteria does not pose a threat to human health, their mobilization to new hosts and their expression under different contexts, for example their transfer to plasmids and integrons in pathogenic bacteria, can translate into a problem of huge proportions, as discussed in this review. Selective pressure brought about by human activities further results in enrichment of such determinants in bacterial populations. Thus, there is an urgent need to understand distribution of resistance determinants in bacterial populations, elucidate resistance mechanisms, and determine environmental factors that promote their dissemination. This comprehensive review describes the major known self-resistance mechanisms found in producer soil bacteria of the genus Streptomyces and explores the relationships between resistance determinants found in producer soil bacteria, non-producer environmental bacteria, and clinical isolates. Specific examples highlighting potential pathways by which pathogenic clinical isolates might acquire these resistance determinants from soil and environmental bacteria are also discussed. Overall, this article provides a conceptual framework for understanding the complexity of the problem of emergence of antibiotic resistance in the clinic. Availability of such knowledge will allow researchers to build models for dissemination of resistance genes and for developing interventions to prevent recruitment of additional or novel genes into pathogens.
引用
收藏
页数:21
相关论文
共 228 条
[1]   Functional metagenomics reveals diverse β-lactamases in a remote Alaskan soil [J].
Allen, Heather K. ;
Moe, Luke A. ;
Rodbumrer, Jitsupang ;
Gaarder, Andra ;
Handelsman, Jo .
ISME JOURNAL, 2009, 3 (02) :243-251
[2]   Resistance to ketolide antibiotics by coordinated expression of rRNA methyltransferases in a bacterial producer of natural ketolides [J].
Almutairi, Mashal M. ;
Park, Sung Ryeol ;
Rose, Simon ;
Hansen, Douglas A. ;
Vazquez-Laslop, Nora ;
Douthwaite, Stephen ;
Sherman, David H. ;
Mankin, Alexander S. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2015, 112 (42) :12956-12961
[3]   Evolution and ecology of antibiotic resistance genes [J].
Aminov, Rustam I. ;
Mackie, Roderick I. .
FEMS MICROBIOLOGY LETTERS, 2007, 271 (02) :147-161
[4]   A brief history of the antibiotic era: lessons learned and challenges for the future [J].
Aminov, Rustam I. .
FRONTIERS IN MICROBIOLOGY, 2010, 1
[5]   Multilevel populations and the evolution of antibiotic resistance through horizontal gene transfer [J].
Andam, Cheryl P. ;
Fournier, Gregory P. ;
Gogarten, Johann Peter .
FEMS MICROBIOLOGY REVIEWS, 2011, 35 (05) :756-767
[6]   Selection and Transmission of Antibiotic-Resistant Bacteria [J].
Andersson, Dan I. ;
Hughes, Diarmaid .
MICROBIOLOGY SPECTRUM, 2017, 5 (04)
[7]   GENETICS AND MECHANISMS OF GLYCOPEPTIDE RESISTANCE IN ENTEROCOCCI [J].
ARTHUR, M ;
COURVALIN, P .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 1993, 37 (08) :1563-1571
[8]   Human Health Risk Assessment (HHRA) for Environmental Development and Transfer of Antibiotic Resistance [J].
Ashbolt, Nicholas J. ;
Amezquita, Alejandro ;
Backhaus, Thomas ;
Borriello, Peter ;
Brandt, Kristian K. ;
Collignon, Peter ;
Coors, Anja ;
Finley, Rita ;
Gaze, William H. ;
Heberer, Thomas ;
Lawrence, John R. ;
Larsson, D. G. Joakim ;
McEwen, Scott A. ;
Ryan, James J. ;
Schoenfeld, Jens ;
Silley, Peter ;
Snape, Jason R. ;
Van den Eede, Christel ;
Topp, Edward .
ENVIRONMENTAL HEALTH PERSPECTIVES, 2013, 121 (09) :993-1001
[9]   SITE-SPECIFIC METHYLATION OF 16S RIBOSOMAL-RNA CAUSED BY PCT, A PACTAMYCIN RESISTANCE DETERMINANT FROM THE PRODUCING ORGANISM, STREPTOMYCES-PACTUM [J].
BALLESTA, JPG ;
CUNDLIFFE, E .
JOURNAL OF BACTERIOLOGY, 1991, 173 (22) :7213-7218
[10]   CD Taxonomy, Physiology, and Natural Products of Actinobacteria [J].
Barka, Essaid Ait ;
Vatsa, Parul ;
Sanchez, Lisa ;
Gaveau-Vaillant, Nathalie ;
Jacquard, Cedric ;
Klenk, Hans-Peter ;
Clement, Christophe ;
Ouhdouch, Yder ;
van Wezel, Gilles P. .
MICROBIOLOGY AND MOLECULAR BIOLOGY REVIEWS, 2016, 80 (01) :1-43