Sophie Guillier, Christine Lazennec-Schurdevin, Lou Mondange, Véronique Sarilar, Mélissa Marchandeau, Chloé Lemoigne, Ombeline Lamer, Mathilde Lescat, Emmanuelle Schmitt, Yves Mechulam, Julian Garrec, Fabrice Biot
Trimethoprim-sulfamethoxazole (SXT) remains central to melioidosis eradication therapy, yet the genetic basis of resistance evolution in Burkholderia pseudomallei is not fully defined. Using Burkholderia thailandensis as a biosafe surrogate, we subjected populations to stepwise in vitro evolution under increasing SXT concentrations. Whole-genome sequencing revealed rapid population diversification followed by selective sweeps leading to fixation of fitter resistant variants. Early adaptation involved mutations in regulators of RND efflux systems and folate-associated genes, consistent with multifactorial resistance. Despite this heterogeneity, all evolutionary trajectories converged on a single nonsynonymous substitution, I99L, in dihydrofolate reductase (DHFR/FolA), which rose to fixation at high SXT concentrations. This substitution mirrors changes reported in SXT-resistant B. pseudomallei isolates from chronic infections. Allelic reconstruction demonstrated that Bt-DHFR(I99L) is sufficient to confer a 4- to 16-fold increase in trimethoprim MIC. Biochemical and structural analyses showed preserved catalytic activity but reduced trimethoprim binding, consistent with an allosteric resistance mechanism. Together, these findings establish DHFR as a dominant evolutionary target under SXT pressure and support B. thailandensis as a robust model for dissecting resistance evolution in B. pseudomallei.