SpliceViNCI: Visualizing the splicing of non-canonical introns through recurrent neural networks

Author:

Dutta Aparajita1ORCID,Singh Kusum Kumari2,Anand Ashish1

Affiliation:

1. Department of CSE, Indian Institute of Technology, Guwahati, India

2. Department of BSBE, Indian Institute of Technology, Guwahati, India

Abstract

Most of the current computational models for splice junction prediction are based on the identification of canonical splice junctions. However, it is observed that the junctions lacking the consensus dimers GT and AG also undergo splicing. Identification of such splice junctions, called the non-canonical splice junctions, is also essential for a comprehensive understanding of the splicing phenomenon. This work focuses on the identification of non-canonical splice junctions through the application of a bidirectional long short-term memory (BLSTM) network. Furthermore, we apply a back-propagation-based (integrated gradient) and a perturbation-based (occlusion) visualization techniques to extract the non-canonical splicing features learned by the model. The features obtained are validated with the existing knowledge from the literature. Integrated gradient extracts features that comprise contiguous nucleotides, whereas occlusion extracts features that are individual nucleotides distributed across the sequence.

Funder

Science and Engineering Research Board

the grant from SERB

the Department of Biotechnology, Government of India

Publisher

World Scientific Pub Co Pte Lt

Subject

Computer Science Applications,Molecular Biology,Biochemistry

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