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Updated: Dec 27, 2025

Author Spotlight: Advancing Antibiotic Resistance Research Using an Efflux-Deficient Bacterial Strain and a Single-Copy Gene Expression System
Published on: January 5, 2024
Efflux Pumps Contribute to Intrinsic Clarithromycin Resistance in Clinical, Mycobacterium abscessus Isolates
Qi Guo1,2, Jianhui Chen1,2, Shaoyan Zhang1
1Department of Respiratory Medicine, Shanghai Pulmonary Hospital, Tongji University School of Medicine, Shanghai 200433, People's Republic of China.
Purpose:
The emergence of clarithromycin resistance is a challenge in treating Mycobacterium abscessus infections. Known mechanisms that contribute to intrinsic clarithromycin resistance focus on rrl gene-related mutations, but resistant clinical isolates often exhibit an inconsistent rrl genotype.
Patients And Methods:
In this study, 194 clinical Mycobacterium abscessus isolates were collected from patients with lung infections and the whole genome of each isolate was sequenced. A comprehensive examination of the molecular mechanisms underlying intrinsic clarithromycin resistance was performed, combining MIC determination, comparative genome sequence analysis and qRT-PCR.
Results:
Of the 194 isolates, 13 (6.7%) were clarithromycin resistant; only seven of these harbored a rrl 2270/2271 mutation. The remaining six resistant isolates did not exhibit a specific resistance-associated mutation in the clarithromycin target-site genes, rrl, rplC, rplD and rplV, or in the rrl modification gene erm(41). qRT-PCR analysis showed that the increased expression of the efflux pump genes, MAB_2355c, MAB_1409c and MAB_1846, as well as their positive regulatory gene whiB7, consistently correlated with increased clarithromycin resistance. The presence of efflux pump inhibitors significantly decreased the MIC of clarithromycin for nonsusceptible isolates, especially the intrinsic resistant isolates that exhibited no rrl 2270/2271 mutation.
Conclusion:
These findings indicate that efflux pumps play a prominent role in the intrinsic resistance of M. abscessus to clarithromycin, complementing other known resistance mechanisms.
Insights
Clarithromycin resistance in Mycobacterium abscessus is often linked to efflux pumps, not just rrl gene mutations. This finding highlights a key mechanism for treating these challenging infections.
Area of Science:
- Microbiology
- Genomics
- Antimicrobial Resistance
Background:
- Clarithromycin resistance in *Mycobacterium abscessus* poses a significant clinical challenge.
- Existing knowledge attributes intrinsic resistance primarily to *rrl* gene mutations, but clinical isolates show inconsistent genotypes.
Purpose of the Study:
- To investigate the molecular mechanisms of intrinsic clarithromycin resistance in *Mycobacterium abscessus*.
- To identify resistance mechanisms beyond *rrl* gene mutations.
Main Methods:
- Whole genome sequencing of 194 clinical *M. abscessus* isolates.
- MIC determination, comparative genomic analysis, and qRT-PCR.
- Evaluation of efflux pump inhibitors.
Main Results:
- Only 7 of 13 resistant isolates had *rrl* mutations; 6 showed no mutations in target or modification genes.
- Increased expression of efflux pump genes (MAB_2355c, MAB_1409c, MAB_1846) and *whiB7* correlated with resistance.
- Efflux pump inhibitors reduced clarithromycin MICs, particularly in isolates lacking *rrl* mutations.
Conclusions:
- Efflux pumps are a major contributor to intrinsic clarithromycin resistance in *M. abscessus*.
- These findings complement known resistance mechanisms and offer new therapeutic insights.
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