
Ben Lopman
Professor
Emory University Continue Reading Ben Lopman
Social mixing and clinical features linked with transmission in a network of extensively drug-resistant (XDR) tuberculosis cases in KwaZulu-Natal, South Africa.
Tuberculosis (TB) is the leading infectious cause of death globally and drug-resistant TB strains pose a serious threat to controlling the global TB epidemic. The clinical features, locations, and social factors driving transmission in settings with a high incidence of drug-resistant TB are poorly understood.
We measured a network of genomic links using Mycobacterium tuberculosis (Mtb) whole genome sequences.
Cases with 2-3 months of cough or who spent time in urban locations, were more likely to be linked in the network, while cases with sputum smear-positive disease were less likely to be linked than those with smear-negative disease. Associations persisted using different thresholds to define genomic links and irrespective of assumptions about the direction of transmission.
Identifying factors that lead to many transmissions, including contact with urban areas, can suggest settings instrumental in transmission and indicate optimal locations and groups to target with interventions.
Clinical infectious diseases : an official publication of the Infectious Diseases Society of America
Nelson KN, Jenness SM, Mathema B, Lopman BA, Auld SC, Shah NS, Brust JCM, Ismail N, Omar SV, Brown TS, Allana S, Campbell A, Moodley P, Mlisana K, Gandhi NR. (2019). Social mixing and clinical features linked with transmission in a network of extensively drug-resistant (XDR) tuberculosis cases in KwaZulu-Natal, South Africa. Clinical infectious diseases : an official publication of the Infectious Diseases Society of America

Professor
Emory University Continue Reading Ben Lopman

Assistant Professor
Emory University Continue Reading Kristin N. Nelson

Assistant Professor
Emory University Continue Reading Samuel Jenness

Postdoctoral Research Fellow
Harvard University Continue Reading Tyler Brown