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Näsvall, J.

Publications and source records attributed to Näsvall, J..

2 recordsLinked to original sources

Experimental evolution reveals bifunctional genetic solutions to loss of trpF in Salmonella enterica

How new gene functions arise while maintaining ancestral biological roles remains a central question in evolutionary genetics. To investigate genetic solutions to disruption of a biosynthetic pathway without prior genetic bias, we used experimental evolution to study restoration of tryptophan biosynthesis in Salmonella enterica strains lacking the trpF gene. Populations were founded from bacteria carrying wild-type alleles of all relevant genes in their native genomic and regulatory contexts and evolved under conditions selecting for growth without exogenous tryptophan. Across independent populations, mutations in either hisA or trpA enabled growth of {Delta}trpF strains in the absence of added tryptophan while retaining sufficient ancestral function to support growth under the same conditions. Whole-genome sequencing and genetic reconstruction showed that these mutant alleles were sufficient to confer the growth-rescue phenotype. Duplication of the target gene was detected in only a single population and showed no evidence of functional divergence. Mutational paths differed between genes: hisA-based solutions arose primarily in mutator backgrounds and were associated with stronger trade-offs with ancestral function, whereas trpA-based solutions were more frequent and often retained native function. Together, these results demonstrate that bifunctional genetic solutions can arise through point mutations in multiple genes during experimental adaptation, illustrating how gene-level multifunctionality can evolve without gene duplication.

evolutionary biology↗

Life with only 28 tRNAs: Reduced translation accuracy compensates for the lack of twelve tRNAs in Salmonella enterica

Despite the link between codon usage bias and the composition of the tRNA pool, the evolutionary forces shaping codon usage and tRNA pools remain largely untested by experiment. This study investigates the relationship between tRNA pool composition and synonymous codon usage (SCU) by deleting twelve nonessential tRNAs in Salmonella enterica, generating an organism ({Delta}T12) with 28 essential tRNAs left, and a severe imbalance between its tRNA pool and SCU. Mutations selected during the construction of {Delta}T12 and in subsequent evolution experiments, suggest two key mechanisms for compensating the fitness effects of this imbalance: (i) Near-cognate tRNA adaptation: mutations or gene copy number variations allowed remaining tRNAs to better read codons originally assigned to missing tRNAs. (ii) Reduced translation accuracy: mutations in ribosomal proteins (S3, S4, S5, L7/L12) and EF-Tu likely increased the rate of near-cognate decoding, prioritizing translation speed over accuracy. These findings suggest that translation rate may be a stronger evolutionary pressure than maintaining perfect accuracy when there is a mismatch between the tRNA pool and SCU. The {Delta}T12 strain provides a valuable tool for further exploring the co-evolution of the tRNA pool and SCU.

microbiology↗