Rifabutin, a lesser-known cousin of the frontline tuberculosis drug rifampicin, may hold new life as a treatment option for multidrug-resistant tuberculosis—but only for patients carrying specific genetic signatures in the bacterium. That is the central finding of a new whole-genome sequencing study from Shenzhen, China, which maps for the first time in detail how mutations in the bacterial RNA polymerase gene rpoB determine whether multidrug-resistant tuberculosis (MDR-TB) isolates remain vulnerable to rifabutin. The research, published in BMC Infectious Diseases, offers a potential route to precision prescribing in a disease where treatment options are narrowing and drug resistance continues to spread.
Multidrug-resistant tuberculosis, defined by resistance to at least isoniazid and rifampicin, remains one of the most formidable challenges in global infectious disease control. Rifampicin resistance alone effectively disqualifies the standard short-course regimens and forces patients onto longer, more toxic, and more expensive therapies. Yet rifampicin resistance does not always mean cross-resistance to every drug in the rifamycin class. Rifabutin, which shares its target with rifampicin—the beta subunit of bacterial DNA-dependent RNA polymerase, encoded by the rpoB gene—can retain activity against some rifampicin-resistant strains of Mycobacterium tuberculosis. The clinical problem has been that no reliable genetic markers existed to tell clinicians which resistant infections would still respond to rifabutin and which would not. The new study directly addresses that gap by pairing systematic minimum inhibitory concentration (MIC) testing with whole-genome sequencing across a substantial panel of clinical isolates.
The research team, led by Jing Gui, Jinli Li, Feng Wang, and Chuangyue Hong of the Shenzhen Center for Chronic Disease Control, analyzed 183 MDR-TB isolates collected between 2013 and 2019 from patients in Shenzhen. For each isolate, the researchers determined the rifabutin MIC using broth microdilution carried out according to Clinical and Laboratory Standards Institute guideline M24-A2, with susceptibility defined as an MIC below 0.5 micrograms per milliliter. This quantitative approach goes beyond the simple resistant-or-susceptible binary of conventional drug susceptibility testing: by measuring exactly how much drug is needed to inhibit each strain, the researchers could grade resistance levels and correlate them with specific mutations. In parallel, whole-genome sequencing revealed each isolate’s rpoB mutation profile, its phylogenetic lineage, and the presence of compensatory mutations—secondary genetic changes that can restore bacterial fitness after resistance-conferring mutations impose a cost.
The statistical framework was deliberately layered. The team used Kruskal-Wallis tests to compare log2-transformed rifabutin MIC values across groups of isolates defined by their rpoB mutation type, Fisher’s exact tests for categorical comparisons of susceptibility proportions, and multivariable linear regression models to disentangle the independent effects of rpoB genotype, bacterial lineage, and compensatory mutations. This design allowed the investigators to ask not merely which mutations correlate with rifabutin resistance, but which ones independently drive it.
The answer was unambiguous. The type of rpoB mutation emerged as the primary determinant of rifabutin susceptibility, but the devil lay in the details of which amino acid was altered. Isolates carrying the D435V mutation—the substitution of valine for aspartic acid at position 435 of the RNA polymerase beta subunit—consistently preserved susceptibility to rifabutin, with 66.7 percent of such isolates (4 of 6, 95 percent confidence interval 22.3 to 95.7 percent) falling below the susceptibility threshold. At the opposite end of the spectrum, the two most common rifampicin-resistance mutations worldwide, S450L and H445Y, conferred high-level rifabutin resistance: only 26.4 percent and 25.0 percent of isolates carrying these mutations, respectively, remained susceptible. Isolates harboring multiple rpoB mutations showed an intermediate phenotype, with 48.8 percent susceptible.
These findings carry substantial mechanistic logic. The rpoB mutations that confer rifampicin resistance cluster in a short region of the gene known as the rifampicin resistance-determining region, where amino acid substitutions alter the geometry of the drug-binding pocket. Different substitutions reshape that pocket in different ways. S450L, the single most frequent rifampicin-resistance mutation globally, replaces a serine with a bulky leucine, distorting the binding site in a manner that disrupts both rifampicin and rifabutin. H445Y produces a similar effect through a different chemical route. D435V, by contrast, appears to alter the pocket enough to block rifampicin while leaving sufficient structural compatibility for rifabutin, whose chemical structure differs subtly from that of its better-known relative. The quantitative MIC data now put hard numbers on what had previously been scattered clinical observations.
Perhaps the most clinically consequential finding concerned the two mutations that dominate the global rifampicin-resistance landscape. Because S450L and H445Y reliably predict high-level rifabutin resistance, the study suggests that a positive molecular test for rifampicin resistance should not automatically be interpreted as rifabutin eligibility. Instead, the specific mutation matters enormously. A patient whose isolate carries D435V may still benefit from rifabutin-containing therapy, while a patient with S450L almost certainly will not. In settings where whole-genome sequencing is already deployed for tuberculosis diagnosis and surveillance, this information comes essentially free of charge—an added layer of therapeutic intelligence extracted from data already being generated.
The regression models added nuance beyond the rpoB story. After adjusting for rpoB genotype, the researchers found that bacterial lineage exerted a modest but statistically significant independent effect on rifabutin MIC. Isolates belonging to lineages other than Lineage 2—the so-called Beijing lineage, which dominates in East Asia—had lower rifabutin MICs, with an adjusted beta coefficient of −0.90 (95 percent confidence interval −1.77 to −0.04, p = 0.041). Expressed differently, Lineage 2 strains tended to show higher ratios of rifampicin to rifabutin MIC values, hinting at lineage-specific differences in how the rifamycin-binding pocket tolerates each drug. While the effect size is small compared with the dominant influence of rpoB mutation type, it suggests that population-level genetic background can fine-tune resistance phenotypes, a phenomenon increasingly recognized across bacterial pathogens.
Compensatory mutations, by contrast, told a simpler story. These secondary changes, which arise to restore the transcriptional efficiency of a drug-resistant RNA polymerase, did not show any independent association with rifabutin MIC after adjustment for rpoB genotype (adjusted beta = −0.34, 95 percent confidence interval −1.02 to 0.33, p = 0.323). This null result is itself informative: it indicates that compensatory evolution in rifampicin-resistant tuberculosis does not inadvertently alter rifabutin susceptibility, and that clinicians and genomic surveillance systems can focus their predictive attention on the primary resistance mutations themselves rather than tracking a broader constellation of genetic changes.
The study also probed whether the level of rifabutin resistance correlated with transmission dynamics, using molecular clustering of whole-genome sequences as a proxy for recent transmission. It did not: the odds ratio linking high-level resistance to clustering was 1.95 (95 percent confidence interval 0.84 to 4.80, p = 0.129), falling short of statistical significance. While the point estimate raises the possibility that highly resistant strains might transmit somewhat more readily, the data do not support a firm conclusion, and the authors treat this as exploratory.
The implications reach well beyond Shenzhen. Rifabutin has long occupied an awkward position in tuberculosis therapeutics—chemically capable of activity against some rifampicin-resistant strains, but rarely used against MDR-TB because susceptibility could not be predicted. The demonstration that rpoB genotype, particularly D435V, functions as a robust biomarker of rifabutin susceptibility opens the door to genotype-guided rifabutin prescribing within existing genomic surveillance infrastructure. As whole-genome sequencing becomes more affordable and more widespread in high-burden countries, the marginal cost of applying these findings approaches zero. The study also strengthens the case for building rifamycin cross-resistance prediction into international drug-resistance databases and treatment guidelines, where such nuance is currently absent.
Important caveats remain. The D435V group was small—only six isolates—which is reflected in the wide confidence interval around the susceptibility estimate, and the findings derive from a single Chinese city where Lineage 2 predominates. Validation in other geographic and lineage contexts will be needed before rpoB genotype can formally guide rifabutin use in clinical trials and treatment programs. Still, the study delivers what precision medicine for tuberculosis has lacked for this drug class: a clear, quantitatively grounded map of which resistance mutations preserve rifabutin activity and which destroy it. In a field where every additional effective drug matters, that map may help squeeze renewed clinical value from an old rifamycin.
Subject of Research: Medicine
Subject of Research: Medicine
Article Title: Whole-genome sequencing reveals genetic predictors of rifabutin susceptibility in multidrug-resistant tuberculosis
Article References: Gui, J., Li, J., Wang, F., & Hong, C. (2026). Genetic determinants of rifabutin susceptibility in multidrug-resistant tuberculosis: insights from whole-genome sequencing. BMC Infectious Diseases. https://doi.org/10.1186/s12879-026-14264-9
Image Credits: AI Generated
DOI: 10.1186/s12879-026-14264-9
Keywords: genetic markers for rifabutin susceptibility, genetic predictors of antibiotic resistance, MDR-TB treatment options, multidrug-resistant tuberculosis, personalized TB therapy, precision medicine in tuberculosis, rifabutin susceptibility, rifamycin class drug cross-resistance, rpoB gene mutations, tuberculosis drug resistance mechanisms, tuberculosis genomics research, whole-genome sequencing in TB
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Juliet Wilcox. (September 6, 2026). Whole-genome sequencing reveals genetic predictors of rifabutin susceptibility in multidrug-resistant tuberculosis. Scienmag. https://scienmag.com/whole-genome-sequencing-reveals-genetic-predictors-of-rifabutin-susceptibility-in-multidrug-resistant-tuberculosis/
Juliet Wilcox. “Whole-genome sequencing reveals genetic predictors of rifabutin susceptibility in multidrug-resistant tuberculosis.” Scienmag, 6 September 2026, https://scienmag.com/whole-genome-sequencing-reveals-genetic-predictors-of-rifabutin-susceptibility-in-multidrug-resistant-tuberculosis/. Accessed 6 September 2026.
Juliet Wilcox. “Whole-genome sequencing reveals genetic predictors of rifabutin susceptibility in multidrug-resistant tuberculosis.” Scienmag. September 6, 2026. https://scienmag.com/whole-genome-sequencing-reveals-genetic-predictors-of-rifabutin-susceptibility-in-multidrug-resistant-tuberculosis/
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