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Related Concept Videos

Protein Networks02:26

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An organism can have thousands of different proteins, and these proteins must cooperate to ensure the health of an organism. Proteins bind to other proteins and form complexes to carry out their functions. Many proteins interact with multiple other proteins creating a complex network of protein interactions.
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The important convolution properties include width, area, differentiation, and integration properties.
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The basic reaction of homologous recombination (HR) involves two chromatids that contain DNA sequences sharing a significant stretch of identity. One of these sequences uses a strand from another as a template to synthesize DNA in an enzyme-catalyzed reaction. The final product is a novel amalgamation of the two substrates. To ensure an accurate recombination of sequences, HR is restricted to the S and G2 phases of the cell cycle. At these stages, the DNA has been replicated already and the...
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Because the DNA segments are cut and reorganized in a direction-specific manner, site-specific recombination has emerged as an efficient genetic engineering technique. Flippase and Cyclization recombinases or Flp and Cre, respectively, are two members of the tyrosine recombinase family derived from bacteriophages, that are used to mediate site-specific DNA insertions, deletions, and targeted expression of proteins in mammalian cell lines.
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Convolution computations can be simplified by utilizing their inherent properties.
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Peptide-based Identification of Functional Motifs and their Binding Partners
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An equivariant Bayesian convolutional network predicts recombination hotspots and accurately resolves binding motifs.

Richard C Brown, Gerton Lunter

    Bioinformatics (Oxford, England)
    |November 28, 2018
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    Summary

    This study introduces a novel deep learning model combining equivariant networks and Bayesian dropout for improved DNA sequence analysis. The model enhances prediction accuracy and identifies novel protein binding motifs, outperforming existing methods.

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    Area of Science:

    • Genomics
    • Bioinformatics
    • Computational Biology

    Background:

    • Convolutional neural networks (CNNs) excel with abundant data but struggle with limited, noisy biological sequence data.
    • Predicting phenotypes from DNA sequences requires methods that optimally utilize limited training data and inherent sequence structure.

    Purpose of the Study:

    • To develop a robust deep learning model for analyzing DNA sequences with limited and noisy data.
    • To improve prediction consistency and accuracy in genomic sequence analysis.

    Main Methods:

    • Integration of equivariant networks with Bayesian dropout for enhanced CNNs.
    • Implementation of a model with exact reverse-complement symmetry for DNA sequence analysis.
    • Application of the model to predict recombination hotspots and identify protein binding motifs.

    Main Results:

    • The novel model demonstrates improved prediction consistency and accuracy over standard CNNs and motif finders.
    • Accurate prediction of recombination hotspots from DNA sequence data.
    • Identification of previously unobserved binding motifs for the PRDM9 protein, validated by experimental assays.

    Conclusions:

    • The developed model offers a powerful approach for analyzing complex genomic data, particularly in low-signal or limited-data scenarios.
    • This method advances the identification of functional elements in DNA sequences, such as protein binding sites.