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Published on: January 26, 2016
Advancements in peptide-based antimicrobials: A possible option for emerging drug-resistant infections
Nitin Yadav1, Virander S Chauhan1
1Gandhi Institute of Technology and Management, Gandhi Nagar, Rushikonda, Visakhapatnam, Andhra Pradesh 530045, India; Molecular Medicine, International Centre for Genetic Engineering & Biotechnology, Aruna Asaf Ali Marg, New Delhi 110067, India; Biotide Solutions LLP, B-23, Geetanjali Enclave, Malviya Nagar, New Delhi 110017, India.
Abstract:
In recent years, multidrug-resistant pathogenic microorganisms (MDROs) have emerged as a severe threat to human health, exhibiting robust resistance to traditional antibiotics. This has created a formidable challenge in modern medicine as we grapple with limited options to combat these resilient bacteria. Despite extensive efforts by scientists to develop new antibiotics targeting these pathogens, the quest for novel antibacterial molecules has become increasingly arduous. Fortunately, nature offers a potential solution in the form of cationic antimicrobial peptides (AMPs) and their synthetic counterparts. AMPs, naturally occurring peptides, have displayed promising efficacy in fighting bacterial infections by disrupting bacterial cell membranes, hindering their survival and reproduction. These peptides, along with their synthetic mimics, present an exciting alternative in combating antibiotic resistance. They hold the potential to emerge as a formidable tool against MDROs, offering hope for improved strategies to protect communities. Extensive research has explored the diversity, history, and structure-properties relationship of AMPs, investigating their amphiphilic nature for membrane disruption and mechanisms of action. However, despite their therapeutic promise, AMPs face several documented limitations. Among these challenges, poor pharmacokinetic properties stand out, impeding the attainment of therapeutic levels in the body. Additionally, some AMPs exhibit toxicity and susceptibility to protease cleavage, leading to a short half-life and reduced efficacy in animal models. These limitations pose obstacles in developing effective treatments based on AMPs. Furthermore, the high manufacturing costs associated with AMPs could significantly hinder their widespread use. In this review, we aim to present experimental and theoretical insights into different AMPs, focusing specifically on antibacterial peptides (ABPs). Our goal is to offer a concise overview of peptide-based drug candidates, drawing from a wide array of literature and peer-reviewed studies. We also explore recent advancements in AMP development and discuss the challenges researchers face in moving these molecules towards clinical trials. Our main objective is to offer a comprehensive overview of current AMP and ABP research to guide the development of more precise and effective therapies for bacterial infections.
Insights
Cationic antimicrobial peptides (AMPs) show promise against multidrug-resistant pathogens by disrupting bacterial membranes. However, challenges like poor pharmacokinetics and high costs hinder their clinical use, necessitating further research for effective therapies.
Area of Science:
- Biochemistry
- Microbiology
- Pharmacology
Background:
- Multidrug-resistant microorganisms (MDROs) pose a significant global health threat due to resistance to conventional antibiotics.
- The development of novel antibacterial agents is challenging, creating an urgent need for alternative therapeutic strategies.
- Cationic antimicrobial peptides (AMPs) and their synthetic analogs offer a promising avenue, acting by disrupting bacterial cell membranes.
Purpose of the Study:
- To provide a comprehensive overview of current research on AMPs and antibacterial peptides (ABPs).
- To explore experimental and theoretical insights into AMPs, focusing on their structure-activity relationships and mechanisms of action.
- To discuss recent advancements and challenges in developing AMPs for clinical applications against MDROs.
Main Methods:
- Review of extensive literature, including peer-reviewed studies and experimental/theoretical data on AMPs.
- Analysis of AMP properties, including amphiphilicity, membrane disruption capabilities, and mechanisms of action.
- Investigation into the limitations of AMPs, such as pharmacokinetic issues, toxicity, protease susceptibility, and manufacturing costs.
Main Results:
- AMPs demonstrate efficacy against bacteria by targeting and disrupting their cell membranes.
- Despite therapeutic potential, AMPs face significant hurdles including poor pharmacokinetics, potential toxicity, and short half-lives.
- High production costs represent a substantial barrier to the widespread clinical adoption of AMP-based treatments.
Conclusions:
- AMPs and ABPs represent a vital area of research for combating antibiotic resistance.
- Overcoming limitations in pharmacokinetics, toxicity, and cost is crucial for advancing AMPs towards clinical trials.
- Further research and development are essential to harness the full potential of peptide-based therapies against challenging bacterial infections.
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