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Adaptation through the lense of single-cell multi-omics data Comment on "Dynamic and thermodynamic models of adaptation" by A.N. Gorban et al.

Andrei Zinovyev


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    <dct:title>Adaptation through the lense of single-cell multi-omics data Comment on "Dynamic and thermodynamic models of adaptation" by A.N. Gorban et al.</dct:title>
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    <dcat:keyword>single-cell data</dcat:keyword>
    <dcat:keyword>omics data</dcat:keyword>
    <dcat:keyword>adaptation</dcat:keyword>
    <dcat:keyword>stress</dcat:keyword>
    <dcat:keyword>cancer</dcat:keyword>
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    <dct:description>&lt;p&gt;A.N.Gorban and his colleagues in their inspiring review described several theoretical models of adaptation and&amp;nbsp;highlighted multiple examples convincing us in the existence of surprising at first thought phenomenon: the pattern&amp;nbsp;of dynamical changes of basic statistical measures (correlation between features, their variance) can diagnose and&amp;nbsp;prognose crises in the populations of objects exposed to stress (1). The surprise is caused by the universality of this&amp;nbsp;observation. Firstly, it is manifested in many different situations. Secondly and even more surprising, the features used&amp;nbsp;do not have to be specifically designed to measure stress, even though the feature selection is still important. This&amp;nbsp;suggests that the proposed models can serve as an insightful approach for Big Data analysis and interpretation.&amp;nbsp;One can note that all provided examples deal with macroscopic objects (people, patients, mice, plants, companies&amp;nbsp;at the stock market). What if we will change the focus of the middle-out approach to a significantly smaller scale, e.g.&amp;nbsp;from a tumor or a patient to a single cell? Would the suggested principles of adaptation thermodynamics still hold and&amp;nbsp;what specific problems will arise?&lt;/p&gt;</dct:description>
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