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review · Probiotics and Antimicrobial Proteins

Harnessing the Microbiome: CRISPR-Based Gene Editing and Antimicrobial Peptides in Combating Antibiotic Resistance and Cancer

In plain language

This review explores how the human microbiome, gene editing, and antimicrobial peptides (AMPs) can combat antibiotic resistance and cancer. The microbiome is vital for health, influencing metabolism, immunity, and pathogen resistance. CRISPR technology offers new ways to engineer the microbiome to address multidrug-resistant pathogens and cancer. The review highlights the microbiome's role in modulating microbial communities against antibiotic resistance and its contribution to cancer management. AMPs help maintain bodily balance and exhibit emerging anticancer properties, supported by preclinical and clinical evidence. Integrating metagenomics and proteomics has led to discovering novel AMPs with targeted anticancer effects. Engineered probiotics and CRISPR-based microbiome engineering show promise for future therapies, though clinical translation faces ethical, regulatory, and ecological hurdles.

Key takeaways

  • The human microbiome is integral to health, disease, and therapeutic development, influencing metabolic pathways and immune function.
  • CRISPR-based gene editing offers new avenues to leverage the microbiome against multidrug-resistant pathogens and cancer.
  • Antimicrobial peptides (AMPs) help maintain homeostasis and demonstrate emerging anticancer properties, supported by research.
  • Innovative strategies like engineered probiotics and CRISPR-based microbiome engineering show promise for next-generation therapies.
  • Translating microbiome-based therapies into clinical settings faces significant ethical, regulatory, and ecological challenges.

Why it matters

Antibiotic resistance and cancer are major global health crises. This research highlights how understanding and manipulating the human microbiome, using tools like CRISPR gene editing and antimicrobial peptides, could lead to innovative treatments. It offers a new perspective on developing therapies that leverage the body's own microbial ecosystem.

Commercialisation angle

This research explores early-stage therapeutic development, focusing on novel interventions for antibiotic resistance and cancer. Potential applications include engineered probiotics and microbiome-based therapies. While preclinical findings and some clinical evidence exist for AMPs, the abstract indicates significant ethical, regulatory, and ecological hurdles for clinical translation. This suggests the work is currently at a research and development stage, far from market readiness.

AI-generated from the published abstract. Always read the original work before citing.

Abstract

The growing crisis of antibiotic resistance and the increasing incidence of cancer have prompted the exploration of innovative approaches, such as gene editing and antimicrobial peptides (AMPs). The human microbiome is integral to various aspects of health, disease, and therapeutic development, influencing metabolic pathways, immune function, and pathogen resistance. Recent advances in gene editing technologies, particularly CRISPR (clustered regularly interspaced short palindromic repeats), have opened new avenues for leveraging the microbiome to address complex medical challenges, including combating multidrug-resistant pathogens and cancer. The microbiome plays a crucial role in combating antibiotic resistance by modulating microbial communities, influencing pathogen survival and susceptibility to treatments. This review explores the microbiome's dynamic role in metabolic regulation, its contribution to cancer management, and how AMPs help maintain homeostasis and exhibit emerging anticancer properties, supported by both preclinical findings and clinical evidence. Additionally, CRISPR-based microbiome engineering offers potential to enhance host-microbiome interactions, optimizing therapeutic outcomes. The integration of microbiome metagenomics and proteomics has led to the discovery of novel AMPs with targeted anticancer effects. Innovative strategies, such as engineered probiotics and CRISPR-based microbiome engineering, present exciting prospects for next-generation therapies. Despite these advances, the translation of microbiome-based therapies into clinical settings remains challenging due to ethical, regulatory, and ecological hurdles. This review underscores the transformative potential of microbiome-based interventions, emphasizing the role of personalized medicine in maximizing therapeutic efficacy. Furthermore, we also address critical research gaps, limitations, and future directions, including optimizing AMP stability, delivery, and bioavailability, as well as overcoming the regulatory and ethical challenges in clinical translation.

Research topics

  • Antimicrobial Peptides and Activities
  • CRISPR and Genetic Engineering
  • Bacteriophages and microbial interactions

Read the original research

This page summarises published work. The authoritative version sits with the publisher.

DOI: 10.1007/s12602-025-10573-8

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