EventsMOL2NET'22, Conference on Molecular, Biomed., Comput. & Network Science and Engineering, 8th ed.
Published
This submission belongs to the session 02. CHEMBIO.ORG-08: Org. Chem., Med. Chem., Mol. Biol., & Pharm. Industry Congress, Paris, France-Galveston, USA, 2022. of the event MOL2NET'22, Conference on Molecular, Biomed., Comput. & Network Science and Engineering, 8th ed.
Published date
26 Jul, 2022
Academic Editor
author-avatarHumbert G. Díaz
Citation
Ha Nguyen, Nhung Nguyen, Quang Le, Nghia Tran, Uyen Tu BUI, Study of telomerase-related gene analysis for potential drug target prediction in breast cancer, in Proceedings of MOL2NET'22, Conference on Molecular, Biomed., Comput. & Network Science and Engineering, 8th ed., 1 January–15 January 2023, MDPI: Basel, Switzerland, doi: 10.3390/mol2net-08-12857
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Study of telomerase-related gene analysis for potential drug target prediction in breast cancer

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Nhung Nguyen 2
Nghia Tran 2
Uyen Tu BUI 3
1. Hanoi University of Pharmacy, Vietnam
2. Hanoi University of Pharmacy
3. Hanoi Amsterdam High School for the Gifted
Abstract

The protein-protein interaction network (PPIN) is essential for functional processing and mechanism of multiple complex diseases. Recently, control theory has applied to protein interaction with the aims of identify the minimum set of nodes that can drive the whole network to the desired state. Here, we use different statistic network inference methods to generate the highest-scored re-ranking gene list as the source for constructing protein-protein interaction network. Then we characterize structural controllability of directed and weighted PPINs for breast cancer stages. The maximum matching approach for controllability analysis allows classifying nodes into three categories: critical, intermittent and redundant. This leads to identifying the most important proteins as critical nodes for each stage of breast cancer. In total, 70 critical nodes as drug targets have been revealed across stages in this study.

Keywords
control theory
breast cancer
drug targets
maximum matching
protein-protein interaction network
critical
intermittent and redundant nodes
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