Precision antimicrobial therapeutics: the path of least resistance?
Caitlin N Spaulding1,2,3, Roger D Klein2,3, Henry L Schreiber2,3
11Department of Immunology and Infectious Disease, Harvard T.H. Chan School of Public Health, Boston, MA 02115 USA.
Abstract:
The emergence of drug-resistant pathogens has led to a decline in the efficacy of traditional antimicrobial therapy. The rise in resistance has been driven by widespread use, and in some cases misuse, of antibacterial agents in treating a variety of infections. A growing body of research has begun to elucidate the harmful effects of broad-spectrum antibiotic therapy on the beneficial host microbiota. To combat these threats, increasing effort is being directed toward the development of precision antimicrobial therapeutics that target key virulence determinants of specific pathogens while leaving the remainder of the host microbiota undisturbed. This includes the recent development of small molecules termed "mannosides" that specifically target uropathogenic E. coli (UPEC). Mannosides are glycomimetics of the natural mannosylated host receptor for type 1 pili, extracellular appendages that promotes UPEC colonization in the intestine. Type 1 pili are also critical for colonization and infection in the bladder. In both cases, mannosides act as molecular decoys which potently prevent bacteria from binding to host tissues. In mice, oral treatment with mannosides simultaneously clears active bladder infection and removes intestinal UPEC while leaving the gut microbiota structure relatively unchanged. Similar treatment strategies successfully target other pathogens, like adherent-invasive E. coli (AIEC), an organism associated with Crohn's disease (CD), in mouse models. While not without its challenges, antibiotic-sparing therapeutic approaches hold great promise in a variety of disease systems, including UTI, CD, otitis media (OM), and others. In this perspective we highlight the benefits, progress, and roadblocks to the development of precision antimicrobial therapeutics.
Insights
New mannoside therapeutics offer precision antimicrobial action against pathogens like UPEC, sparing beneficial gut bacteria. This approach shows promise for treating infections such as UTIs and Crohn's disease without broad-spectrum antibiotics.
Area of Science:
- Microbiology
- Infectious Diseases
- Drug Discovery
Background:
- Rising antimicrobial resistance threatens traditional therapies.
- Broad-spectrum antibiotics disrupt beneficial host microbiota.
- Need for targeted antimicrobial strategies is critical.
Purpose of the Study:
- To explore precision antimicrobial therapeutics.
- To highlight mannosides as a novel therapeutic class.
- To discuss challenges and promise of antibiotic-sparing approaches.
Main Methods:
- Development of small molecule mannosides.
- Utilizing glycomimetics to target pathogen-specific receptors (type 1 pili).
- Testing mannoside efficacy in mouse models for UPEC and AIEC infections.
Main Results:
- Mannosides act as decoys, preventing bacterial adhesion to host tissues.
- Oral mannoside treatment cleared UPEC from bladder and intestines in mice.
- Gut microbiota structure remained largely unchanged after mannoside treatment.
- Similar efficacy observed against adherent-invasive E. coli (AIEC) in mouse models.
Conclusions:
- Mannoside therapeutics demonstrate targeted efficacy against specific pathogens.
- This approach offers a promising antibiotic-sparing alternative for various infections.
- Further development is needed to overcome challenges in precision antimicrobial therapy.
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