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System for Efficacy and Cytotoxicity Screening of Inhibitors Targeting Intracellular Mycobacterium tuberculosis
Published on: April 5, 2017
Targeting intracellular nontuberculous mycobacteria and M. tuberculosis with a bactericidal enzymatic cocktail
Helen P Bartlett1, Clinton C Dawson1, Cody M Glickman1
1Endolytix Technology Inc., Beverly, Massachusetts, USA.
Abstract:
To address intracellular mycobacterial infections, we developed a cocktail of four enzymes that catalytically attack three layers of the mycobacterial envelope. This cocktail is delivered to macrophages, through a targeted liposome presented here as ENTX_001. Endolytix Cocktail 1 (EC1) leverages mycobacteriophage lysin enzymes LysA and LysB, while also including α-amylase and isoamylase for degradation of the mycobacterial envelope from outside of the cell. The LysA family of proteins from mycobacteriophages has been shown to cleave the peptidoglycan layer, whereas LysB is an esterase that hydrolyzes the linkage between arabinogalactan and mycolic acids of the mycomembrane. The challenge of gaining access to the substrates of LysA and LysB provided exogenously was addressed by adding amylase enzymes that degrade the extracellular capsule shown to be present in Mycobacterium tuberculosis. This enzybiotic approach avoids antimicrobial resistance, specific receptor-mediated binding, and intracellular DNA surveillance pathways that limit many bacteriophage applications. We show this cocktail of enzymes is bactericidal in vitro against both rapid- and slow-growing nontuberculous mycobacteria (NTM) as well as M. tuberculosis strains. The EC1 cocktail shows superior killing activity when compared to previously characterized LysB alone. EC1 is also powerfully synergistic with standard-of-care antibiotics. In addition to in vitro killing of NTM, ENTX_001 demonstrates the rescue of infected macrophages from necrotic death by Mycobacteroides abscessus and Mycobacterium avium. Here, we demonstrate shredding of mycobacterial cells by EC1 into cellular debris as a mechanism of bactericide.IMPORTANCEThe world needs entirely new forms of antibiotics as resistance to chemical antibiotics is a critical problem facing society. We addressed this need by developing a targeted enzyme therapy for a broad range of species and strains within mycobacteria and highly related genera including nontuberculous mycobacteria such as Mycobacteroides abscessus, Mycobacterium avium, Mycobacterium intracellulare, as well as Mycobacterium tuberculosis. One advantage of this approach is the ability to drive our lytic enzymes through encapsulation into macrophage-targeted liposomes resulting in attack of mycobacteria in the cells that harbor them where they hide from the adaptive immune system and grow. Furthermore, this approach shreds mycobacteria independent of cell physiology as the drug targets the mycobacterial envelope while sidestepping the host range limitations observed with phage therapy and resistance to chemical antibiotics.
Insights
A novel enzyme cocktail, ENTX_001, effectively targets and destroys mycobacteria, including drug-resistant strains. This enzybiotic therapy offers a new approach to combat intracellular mycobacterial infections by breaking down the bacterial envelope.
Area of Science:
- Microbiology
- Drug Discovery
- Biotechnology
Background:
- Antimicrobial resistance is a critical global health challenge, necessitating novel therapeutic strategies.
- Intracellular mycobacterial infections, particularly those caused by Mycobacterium tuberculosis and nontuberculous mycobacteria (NTM), are difficult to treat due to the bacteria's ability to reside within host cells.
- Current treatments face limitations including emerging resistance and challenges in reaching intracellular pathogens.
Purpose of the Study:
- To develop and evaluate a novel enzyme-based therapy (enzybiotic) for intracellular mycobacterial infections.
- To assess the efficacy of a targeted liposomal enzyme cocktail (ENTX_001) against various mycobacterial species and strains.
- To investigate the mechanism of action and synergistic potential of the enzyme cocktail with existing antibiotics.
Main Methods:
- Development of a four-enzyme cocktail (Endolytix Cocktail 1 - EC1) comprising mycobacteriophage lysins (LysA, LysB) and amylase enzymes (α-amylase, isoamylase).
- Encapsulation of the EC1 cocktail into macrophage-targeted liposomes (ENTX_001) for enhanced delivery.
- In vitro testing of EC1's bactericidal activity against Mycobacterium tuberculosis and NTM strains, including assessment of synergy with standard antibiotics.
- Evaluation of ENTX_001's ability to protect infected macrophages from cell death caused by M. abscessus and M. avium.
Main Results:
- The EC1 enzyme cocktail demonstrated potent in vitro bactericidal activity against rapid- and slow-growing NTM and M. tuberculosis strains.
- EC1 exhibited superior killing activity compared to LysB alone and showed powerful synergy with standard-of-care antibiotics.
- ENTX_001 successfully rescued infected macrophages from necrotic cell death induced by M. abscessus and M. avium.
- The mechanism of bactericide involves the shredding of mycobacterial cells into cellular debris by the enzyme cocktail.
Conclusions:
- The targeted enzyme therapy ENTX_001 represents a promising new approach to combat a broad spectrum of mycobacterial infections, including those caused by drug-resistant strains.
- This enzybiotic strategy bypasses common resistance mechanisms and effectively targets intracellular bacteria within macrophages.
- The combination of lytic enzymes and targeted delivery offers a potent and synergistic therapeutic option for challenging mycobacterial diseases.
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