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Biology subjects

Ahlawat, N.

Publications and source records attributed to Ahlawat, N..

3 recordsLinked to original sources

Resource presentation dictates genetic and phenotypic adaptation in yeast.

Environments shape adaptive trajectories of populations, often leading to adaptive parallelism in identical, and divergence in different environments. However, how does the likelihood of these possibilities change with minute changes in the environment? In this study, we evolve Saccharomyces cerevisiae in environments which only differed in how sugar source is presented to the population. In one set of populations, carbon was presented as a mixture of glucose-galactose, and in the other, as melibiose, a glucose-galactose disaccharide. Since the two environments only differ in how the two monosaccharides are packaged, we call these environments "synonymous". Our results show that subtle changes in environments change the targets of selection between the two sets of evolved populations. However, despite different adaptive responses, pleiotropic effects of adaptation are largely predictable. Genome sequencing results demonstrate that small changes in the environment also strongly dictates the genetic basis of adaptation.

evolutionary biology↗

Synonymous and single nucleotide changes facilitate the adaptation of a horizontally transferred gene.

The movement of genes between microbial species, or horizontal gene transfer, is common. While this process speeds up adaptation, the functionality of horizontally transferred genes is highly constrained in the new hosts due to several reasons, and protein localization is one of them. In this study, we ask what is the minimum number of mutations that can resolve a localization problem faced by a horizontally transferred protein in a new host. Using a directed-evolution approach, we show that SNPs and a synonymous mutation can change the localization patterns of an ammonia transporter (AmtA) moved from Dictyostelium discoideum to Saccharomyces cerevisiae. Interestingly, the mutations that cause this change in localization, confer different fitness effects, are spread throughout the gene, and do not cause a uniform change in amino acids. In a novel attempt, we show how SNPs or a synonymous mutation can alter the membrane affinity of proteins, and as a result, aiding protein evolution and functional diversification.

evolutionary biology↗

Adaptive and pleiotropic effects of evolution in synonymous sugar environments.

Adaptation to an environment is enabled by the accumulation of beneficial mutations. When adapted populations are shifted to other environments, the byproduct or pleiotropic fitness effects of these mutations can be wide-ranged. Since there exists no molecular framework to quantify relatedness of environments, predicting pleiotropic effects based on adaptation has been challenging. In this work, we ask if evolution in highly similar environments elicits correlated adaptive and pleiotropic responses. We evolve replicate populations of Escherichia coli in non-stressful environments that contain either a mixture of glucose and galactose, lactose, or melibiose as the source of carbon. We term these similar sugars as "synonymous", since lactose and melibiose are disaccharides made up of glucose and galactose. Therefore, the evolution environments differed only in the way carbon was presented to the bacterial population. After 300 generations of evolution, we see that the adaptive responses of these populations are not predictable. We investigate the pleiotropic effects of adaptation in a range of non-synonymous environments, and show that despite uncorrelated adaptive changes, the nature of pleiotropic effects is largely predictable based on the fitness of the ancestor in the non-home environments. Overall, our results highlight how subtle changes in the environment can alter adaptation, but despite sequence-level variations, pleiotropy is qualitatively predictable. Lay SummaryIn nature, evolution in "similar" environments is believed to elicit identical responses. For example, the arctic fox and ptarmigan, which are two unrelated species living in the arctic, have evolved to turn white in the winters. They did not evolve this ability because they from the common ancestor, but because the environment favoured this trait. In this work, we ask what happens to evolving populations if there are minute changes in the environment, and what are the consequences of adapting in these environments that are "almost identical", or as we call them, "synonymous". We evolve replicate populations of the bacteria E. coli in three synonymous environments, and quantify their ability to grow in both synonymous and non-synonymous environments. We see that evolution does not proceed in an identical fashion in these populations, and that each environment favours a different trait. However, interestingly, in non-synonymous environments, these three sets of populations perform almost identically, and their growth is qualitatively predictable. Our results show that even simple and subtle changes in the environment can act as drivers of biodiversity.

evolutionary biology↗