In Silico Identification of Critical Proteins Associated With Learning Process and Immune System for Down Syndrome

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Date

2019

Authors

Kulan, Handan
Dağ, Tamer

Journal Title

Journal ISSN

Volume Title

Publisher

Public Library Science

Open Access Color

GOLD

Green Open Access

Yes

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Publicly Funded

No
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Average
Influence
Average
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Top 10%

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Abstract

Understanding expression levels of proteins and their interactions is a key factor to diagnose and explain the Down syndrome which can be considered as the most prevalent reason of intellectual disability in human beings. In the previous studies the expression levels of 77 proteins obtained from normal genotype control mice and from trisomic Ts65Dn mice have been analyzed after training in contextual fear conditioning with and without injection of the memantine drug using statistical methods and machine learning techniques. Recent studies have also pointed out that there may be a linkage between the Down syndrome and the immune system. Thus the research presented in this paper aim at in silico identification of proteins which are significant to the learning process and the immune system and to derive the most accurate model for classification of mice. In this paper the features are selected by implementing forward feature selection method after preprocessing step of the dataset. Later deep neural network gradient boosting tree support vector machine and random forest classification methods are implemented to identify the accuracy. It is observed that the selected feature subsets not only yield higher accuracy classification results but also are composed of protein responses which are important for the learning and memory process and the immune system.

Description

Keywords

Support Vector Machine, Science, Q, R, Gene Expression, Bayes Theorem, Nerve Tissue Proteins, Trisomy, Disease Models, Animal, Immune System Phenomena, Mice, N/A, Memantine, Medicine, Animals, Humans, Learning, Computer Simulation, Neural Networks, Computer, Down Syndrome, Research Article

Fields of Science

03 medical and health sciences, 0302 clinical medicine

Citation

WoS Q

Q2

Scopus Q

Q1
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OpenCitations Citation Count
4

Source

PLOS ONE

Volume

14

Issue

1

Start Page

e0210954

End Page

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Citations

Scopus : 5

PubMed : 2

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Mendeley Readers : 26

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5

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Web of Science™ Citations

3

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Page Views

4

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Downloads

135

checked on Feb 15, 2026

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