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Author: Sutirth Dey

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  • All-time downloads: 14,228 (rank: 4,747 out of 384,173)
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    • ecology: 4,582 (rank: 186 out of 16,504)
    • evolutionary biology: 9,646 (rank: 128 out of 19,679)

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Preprints

Niche construction in evolutionary theory: the construction of an academic niche?

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Simultaneous evolution of multiple dispersal components and kernel

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Rethinking inheritance, yet again: inheritomes, contextomes and dynamic phenotypes

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Complex interaction of resource availability, life-history and demography determines the dynamics and stability of stage-structured populations

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E. coli populations in unpredictably fluctuating environments evolve to face novel stresses through enhanced efflux activity

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Environmental fluctuations do not select for increased variation or population-based resistance in Escherichia coli

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Larger Numbers can Impede Adaptation in Asexual Populations despite Entailing Greater Genetic Variation

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Escherichia coli populations adapt to complex, unpredictable fluctuations without any trade-offs across environments

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Evolution of dispersal syndrome and its corresponding metabolomic changes

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Pre-dispersal conditions and presence of opposite sex modulate density dependence and sex bias of dispersal

ecology more details view paper
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Stabilizing the dynamics of laboratory populations of Drosophila melanogaster through upper and lower limiter controls

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Adapting in larger numbers can increase the vulnerability of Escherichia coli populations to environmental changes

evolutionary biology more details view paper
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Simultaneous enhancement of multiple stability properties using two-parameter control methods in Drosophila melanogaster

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Extent of adaptation is not limited by unpredictability of the environment in laboratory populations of Escherichia coli

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Mate-finding dispersal reduces local mate limitation and sex bias in dispersal

ecology more details view paper
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Adult crowding induces sexual dimorphism in chronic stress-response in Drosophila melanogaster

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Larger bacterial populations evolve heavier fitness trade-offs and undergo greater ecological specialization

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Escherichia coli populations adapt to complex, unpredictable fluctuations by minimizing trade-offs across environments

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Dispersal evolution diminishes the negative density dependence in dispersal

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