Literature DB >> 19399438

Model-based global analysis of heterogeneous experimental data using gfit.

Mikhail K Levin1, Manju M Hingorani, Raquell M Holmes, Smita S Patel, John H Carson.   

Abstract

Regression analysis is indispensible for quantitative understanding of biological systems and for developing accurate computational models. By applying regression analysis, one can validate models and quantify components of the system, including ones that cannot be observed directly. Global (simultaneous) analysis of all experimental data available for the system produces the most informative results. To quantify components of a complex system, the dataset needs to contain experiments of different types performed under a broad range of conditions. However, heterogeneity of such datasets complicates implementation of the global analysis. Computational models continuously evolve to include new knowledge and to account for novel experimental data, creating the demand for flexible and efficient analysis procedures. To address these problems, we have developed gfit software to globally analyze many types of experiments, to validate computational models, and to extract maximum information from the available experimental data.

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Year:  2009        PMID: 19399438      PMCID: PMC2850822          DOI: 10.1007/978-1-59745-525-1_12

Source DB:  PubMed          Journal:  Methods Mol Biol        ISSN: 1064-3745


  11 in total

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  7 in total

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2.  Substrate selectivity by the exonuclease Rrp6p.

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5.  Mechanism of ATP-driven PCNA clamp loading by S. cerevisiae RFC.

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6.  Mechanism of cadmium-mediated inhibition of Msh2-Msh6 function in DNA mismatch repair.

Authors:  Markus Wieland; Mikhail K Levin; Karan S Hingorani; F Noah Biro; Manju M Hingorani
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