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March 29, 2026SHILAP Revista de lepidopterología1 citationsOpen Access

Advanced diagnostic methods for nontuberculous mycobacterial infections

SSSneha SinghASArpana SinghSKSushil Kumar

Key Points

  • The aim is to evaluate advanced diagnostic methods for accurately identifying nontuberculous mycobacterial infections.
  • Utilized molecular and genomic techniques for rapid identification.
  • Implemented multiplex PCR and line probe assays for species differentiation.
  • Employed MALDI-TOF mass spectrometry for direct identification from cultures.
  • Integrated next-generation sequencing for strain typing and drug resistance prediction.
  • Employed metagenomics and MIRU-VNTR genotyping for outbreak surveillance.
  • Advanced diagnostics provided faster identification of NTM species.
  • MALDI-TOF enabled high-resolution identification from cultures.
  • Next-generation sequencing offered insights into drug resistance patterns.
  • New methods improved sensitivity in detecting infections even at low levels.
  • Accurate species identification supports better treatment strategies.

Abstract

Nontuberculous mycobacteria (NTM) represent an increasingly significant cause of pulmonary and extrapulmonary infections, but are sometimes misinterpreted as tuberculosis (TB) owing to overlapping clinical and microbiological characteristics. Conventional diagnostic approaches, such as Ziehl-Neelsen staining and culture in a Mycobacterial Growth Indicator Tube (MGIT) system, are constrained by extended incubation times, are insufficient for accurate species differentiation, and are limited by prolonged incubation periods. Recent molecular and genomic advances have transformed NTM diagnostics by enabling rapid, specific, and high-resolution identification. Line probe assays (e.g., GenoType Mycobacterium CM/AS assay) and multiplex PCR have enhanced the ability to distinguish between NTM species such as Mycobacterium absessus, M. fortuitum , and M. avium complex and M. tuberculosis complex, which is essential for proper treatment and epidemiological mapping. Among newer proteomic platforms, matrix-assisted laser desorption/ionization time-of-flight (MALDI-TOF) mass spectrometry has emerged as a transformative, cost-effective technology capable of identifying Mycobacterium species directly from culture isolates through protein fingerprinting. It provides rapid, reproducible, and highly discriminatory identification between closely related species. Next-generation sequencing (NGS) and whole genome sequencing approaches now offer unprecedented insight into species identification, strain typing, and drug-resistance prediction, complementing traditional culture-based susceptibility testing. Newer techniques such as metagenomics NGS (mNGS), targeted NGS (tNGS) multilocus sequence typing, and mycobacterial interspersed repetitive unit-variable number tandem repeats ( MIRU-VNTR) genotyping facilitate subspecies-level resolution and real-time outbreak surveillance. Moreover, molecular beacons, insertion sequence analysis, and repetitive sequence-based polymerase chain reaction (Rep-PCR) enhance detection sensitivity even in paucibacillary samples. The integration of genomic data with automated diagnostic system promises earlier intervention, accurate species delineation, and improved patient outcome.

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Cite This Study

Singh et al. (2026) studied this question.

synapsesocial.com/papers/69c8c0b0de0f0f753b39b818https://doi.org/10.3389/ftubr.2026.1760581
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