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Volume 32, Number 9—September 2026

Letter

Recent Mycobacterium tuberculosis Transmission, United States, 2018–2022

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To the Editor: A recent article published in June 2026 described the characteristics of plausible source cases responsible for recent Mycobacterium tuberculosis transmission in the United States by using national surveillance and whole-genome sequencing data (1). The authors expertly applied molecular epidemiology and machine-learning methods to identify factors associated with tuberculosis (TB) transmission and demonstrated the heterogeneity of transmission events.

The study relied on a plausible source–case algorithm incorporating spatial proximity, temporal linkage, and genomic similarity. Although that information is valuable for surveillance, recent evidence suggests that TB transmission networks are often more complex than can be captured by predefined genomic thresholds and hierarchical source assignment rules. Contemporary transmission-reconstruction approaches integrate genomic, epidemiologic, and spatial data to account for incomplete sampling, undetected intermediaries, and within-host evolution. Consequently, some transmission events might have been misclassified, potentially influencing estimates of source-case characteristics (2,3).

Although the adaptive boosting model demonstrated good discriminatory performance, its generalizability remains uncertain because validation was restricted to the study dataset. Predictive models frequently experience performance degradation when applied to populations with different demographic compositions, healthcare access patterns, and transmission dynamics. External validation across diverse settings is essential before such models are used to prioritize public health interventions (4).

Finally, several social and healthcare-system factors that influence TB transmission, including diagnostic delay, were not included. Untreated disease increases opportunities for transmission and might contribute to highly infectious disease phenotypes, including cavitary disease and sputum smear positivity. Because populations facing barriers to healthcare access often experience longer diagnostic delays, some associations between demographic characteristics, markers of infectiousness, and source-case attribution might reflect prolonged infectious periods rather than independent transmission-promoting effects. Diagnostic delay remains a critical but underrecognized target for tuberculosis control interventions (5).

Despite those considerations, the study provides evidence on persons contributing most to ongoing TB transmission. Future investigations incorporating transmission-reconstruction methods, diagnostic-delay metrics, and external validation of predictive models might strengthen TB prevention and control.

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Rohma ZubairiComments to Author 
Author affiliation: Jinnah Sindh Medical University, Karachi, Pakistan

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References

  1. Kammerer  S, Flanagan  D, Raz  K, Shaw  T, Wortham  J, Talarico  S. Characteristics of plausible source cases responsible for recent Mycobacterium tuberculosis transmission, United States, 2018–2022. Emerg Infect Dis. 2026;32:88093. DOIPubMedGoogle Scholar
  2. Sobkowiak  B, Romanowski  K, Sekirov  I, Gardy  JL, Johnston  JC. Comparing Mycobacterium tuberculosis transmission reconstruction models from whole genome sequence data. Epidemiol Infect. 2023;151:e105. DOIPubMedGoogle Scholar
  3. Lan  Y, Rancu  I, Chitwood  MH, Sobkowiak  B, Nyhan  K, Lin  HH, et al. Integrating genomic and spatial analyses to describe tuberculosis transmission: a scoping review. Lancet Microbe. 2025;6:101094. DOIPubMedGoogle Scholar
  4. Liu  ZZ, Yuan  Q, Zhang  YD, Zhang  XD, Liu  J, Yan  JW, et al. Validation and interpretation of machine-learning models for rapid identification of active tuberculosis infection using routine laboratory indicators. Front Cell Infect Microbiol. 2025;15:1718614. DOIPubMedGoogle Scholar
  5. Getnet  F, Demissie  M, Assefa  N, Mengistie  B, Worku  A. Delay in diagnosis of pulmonary tuberculosis in low-and middle-income settings: systematic review and meta-analysis. BMC Pulm Med. 2017;17:202. DOIPubMedGoogle Scholar

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Suggested citation for this article: Zubairi R. Recent Mycobacterium tuberculosis transmission, United States, 2018–2022. Emerg Infect Dis. 2026 Sep [date cited]. https://doi.org/10.3201/eid3209.261176

DOI: 10.3201/eid3209.261176

Original Publication Date: August 19, 2026

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Table of Contents – Volume 32, Number 9—September 2026

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Please use the form below to submit correspondence to the authors or contact them at the following address:

Rohma Zubairi, Jinnah Sindh Medical University, Rafiqui (H.J.) Shaheed Road, Karachi 75510, Sindh, Pakistan

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Page created: July 23, 2026
Page updated: August 19, 2026
Page reviewed: August 19, 2026
The conclusions, findings, and opinions expressed by authors contributing to this journal do not necessarily reflect the official position of the U.S. Department of Health and Human Services, the Public Health Service, the Centers for Disease Control and Prevention, or the authors' affiliated institutions. Use of trade names is for identification only and does not imply endorsement by any of the groups named above.
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