Resurrecting the intestinal microbiota to combat antibiotic-resistant pathogens

被引:300
|
作者
Pamer, Eric G. [1 ,2 ]
机构
[1] Mem Sloan Kettering Canc Ctr, Infect Dis Serv, Dept Med, Serv Immunol, New York, NY 10035 USA
[2] Mem Sloan Kettering Canc Ctr, Sloan Kettering Inst, Lucille Castor Ctr Microbes Inflammat & Canc, New York, NY 10035 USA
关键词
CLOSTRIDIUM-DIFFICILE; COLONIZATION RESISTANCE; GUT MICROBIOTA; DONOR FECES; INFECTION; MICE; BACTERIOTHERAPY; SUSCEPTIBILITY; ERADICATION; SPECIFICITY;
D O I
10.1126/science.aad9382
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The intestinal microbiota, which is composed of diverse populations of commensal bacterial species, provides resistance against colonization and invasion by pathogens. Antibiotic treatment can damage the intestinal microbiota and, paradoxically, increase susceptibility to infections. Reestablishing microbiota-mediated colonization resistance after antibiotic treatment could markedly reduce infections, particularly those caused by antibiotic-resistant bacteria. Ongoing studies are identifying commensal bacterial species that can be developed into next-generation probiotics to reestablish or enhance colonization resistance. These live medicines are at various stages of discovery, testing, and production and are being subjected to existing regulatory gauntlets for eventual introduction into clinical practice. The development of next-generation probiotics to reestablish colonization resistance and eliminate potential pathogens from the gut is warranted and will reduce health care-associated infections caused by highly antibiotic-resistant bacteria.
引用
收藏
页码:535 / 538
页数:4
相关论文
共 50 条
  • [1] Microbiota-mediated protection against antibiotic-resistant pathogens
    Panwar, Rekha B.
    Sequeira, Richard P.
    Clarke, Thomas B.
    GENES AND IMMUNITY, 2021, 22 (5-6) : 255 - 267
  • [2] Microbiota-mediated protection against antibiotic-resistant pathogens
    Rekha B. Panwar
    Richard P. Sequeira
    Thomas B. Clarke
    Genes & Immunity, 2021, 22 : 255 - 267
  • [3] Selection of antibiotic-resistant pathogens in the community
    Yagupsky, Pablo
    PEDIATRIC INFECTIOUS DISEASE JOURNAL, 2006, 25 (10) : 974 - 976
  • [4] Siderophore conjugates to combat antibiotic-resistant bacteria
    Rayner, Beth
    Verderosa, Anthony D.
    Ferro, Vito
    Blaskovich, Mark A. T.
    RSC MEDICINAL CHEMISTRY, 2023, 14 (05): : 800 - 822
  • [5] A Phage Foundry Framework to Systematically Develop Viral Countermeasures to Combat Antibiotic-Resistant Bacterial Pathogens
    Mutalik, Vivek K.
    Arkin, Adam P.
    ISCIENCE, 2022, 25 (04)
  • [6] The epidemiology of antibiotic-resistant clinical pathogens in Uganda
    Namusoosa, Ritah
    Mugerwa, Ibrahim
    Kasozi, Keneth Iceland
    Muruta, Allan
    Najjuka, Grace
    Atuhaire, Winifred D.
    Nabadda, Susan
    Mwebesa, Henry
    Olaro, Charles
    Ssewanyana, Isaac
    Ssemaganda, Aloysious
    Muwonge, Adrian
    JOURNAL OF GLOBAL HEALTH, 2024, 14
  • [7] Here, there, everywhere: Antibiotic-resistant foodborne pathogens
    Matthews, KR
    FOOD TECHNOLOGY, 2004, 58 (04) : 104 - 104
  • [8] Engineering Synthetic Bacteriophage to Combat Antibiotic-Resistant Bacteria
    Lu, T. K.
    Collins, J. J.
    2009 35TH ANNUAL NORTHEAST BIOENGINEERING CONFERENCE, 2009, : 234 - +
  • [9] Activity of trovafloxacin against antibiotic-resistant bacterial pathogens
    Thomson, KS
    Moland, ES
    Sanders, CC
    INFECTIOUS DISEASES IN CLINICAL PRACTICE, 1999, 8 : S7 - S16
  • [10] Reaction: Alternative Modalities to Address Antibiotic-Resistant Pathogens
    Bagnoli, Fabio
    Payne, David J.
    CHEM, 2017, 3 (03): : 369 - 372