TR
EN
Interaction Prediction on BACE-1 Inhibitors Data for Alzheimer Disease using Message Passing Neural Network
Öz
The medical condition that develops as memory loss, dementia, and a general decrease in cognitive functions due to the death of brain cells over time is called Alzheimer's disease. This disease can lead to a gradual decline in cognitive functions and eventually severe memory losses that affect a person's daily life. Although the exact mechanism that causes Alzheimer's disease is not fully understood, it has been associated with certain structural changes in the brain, such as plaques and neurofibrillary bundles. This study investigates the use of geometric deep learning methods for the discovery of BACE-1 inhibitors that are promising in addressing Alzheimer's disease. Our study builds on these advancements by integrating GDL with pharmacological criteria, such as the QED criterion and Lipinski's rule, to predict BACE-1 inhibitors with enhanced accuracy and drug-like properties. Our model, which combines message-passing neural networks (MPNNs) and fully connected network (FCN) architectures, achieved a success rate of 87.7%. This performance not only surpasses that of previous studies but also ensures the practical applicability of our findings in drug discovery for Alzheimer's disease. The dual focus on prediction accuracy and drug likeness sets our work apart, providing a more comprehensive approach to identifying effective therapeutic agents.
Anahtar Kelimeler
Destekleyen Kurum
TUBITAK
Proje Numarası
123E098
Etik Beyan
There is no need for an ethics committee approval in the prepared paper. There is no conflict of interest with any person/institution in the prepared paper.
Kaynakça
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- Y. Nomura, M. Kaneko, R. Saito, Y. Okuma, Y. Kitamura, K. Takata, A. Nish, "A novel therapeutic target against Alzheimer’s disease: HRD1 as endoplasmic reticulum stress-related ubiquitin ligase," Neurobiol. Aging, vol. 35, p. S17, Mar. 2014.
- Z. Wang, J. Zhou, B. Zhang, Z. Xu, H. Wang, Q. Sun, N. Wang, "Inhibitory effects of β-asarone on lncRNA BACE1-mediated induction of autophagy in a model of Alzheimer’s disease," Behav. Brain Res., vol. 463, p. 114896, Apr. 2024.
- Z. Chang, B. Zhu, J. Liu, H. Dong, Y. Hao, Y. Zhou, J. Travas-Sejdic, and M. Xu, "‘Signal-on’ electrochemical detection of BACE1 for early detection of Alzheimer’s disease," Cell Rep. Phys. Sci., p. 101632, Oct. 2023.
- P. Gehlot, S. Kumar, V. Kumar Vyas, B. Singh Choudhary, M. Sharma, and R. Malik, "Guanidine-based β amyloid precursor protein cleavage enzyme 1 (BACE-1) inhibitors for the Alzheimer’s disease (AD): A review," Bioorg. Med. Chem., vol. 74, p. 117047, Nov. 2022.
- S. M. Roy, B. R. Mehta, S. Trivedi, B. K. Sharma, and D. R. Roy, "Biological activity of some thiazolyl‐thiadiazines as BACE‐1 inhibitors for Alzheimer's disease in the light of density functional theory based quantum descriptors," J. Phys. Org. Chem., 2022.
- C. Shen, J. Luo, and K. Xia, "Molecular geometric deep learning," Cell Rep. Methods, vol. 3, no. 11, p. 100621, Nov. 2023.
- J. Gilmer, S. S. Schoenholz, P. F. Riley, O. Vinyals, and G. E. Dahl, "Neural message passing for quantum chemistry," in Proc. 34th Int. Conf. Mach. Learn., vol. 70, pp. 1263–1272, 2017.
Ayrıntılar
Birincil Dil
İngilizce
Konular
Bilgisayar Yazılımı
Bölüm
Araştırma Makalesi
Yayımlanma Tarihi
18 Şubat 2025
Gönderilme Tarihi
8 Nisan 2024
Kabul Tarihi
30 Temmuz 2024
Yayımlandığı Sayı
Yıl 2025 Cilt: 4 Sayı: 1
APA
Toraman, S., & Daş, B. (2025). Interaction Prediction on BACE-1 Inhibitors Data for Alzheimer Disease using Message Passing Neural Network. Firat University Journal of Experimental and Computational Engineering, 4(1), 72-84. https://doi.org/10.62520/fujece.1466902
AMA
1.Toraman S, Daş B. Interaction Prediction on BACE-1 Inhibitors Data for Alzheimer Disease using Message Passing Neural Network. Firat University Journal of Experimental and Computational Engineering. 2025;4(1):72-84. doi:10.62520/fujece.1466902
Chicago
Toraman, Suat, ve Bihter Daş. 2025. “Interaction Prediction on BACE-1 Inhibitors Data for Alzheimer Disease using Message Passing Neural Network”. Firat University Journal of Experimental and Computational Engineering 4 (1): 72-84. https://doi.org/10.62520/fujece.1466902.
EndNote
Toraman S, Daş B (01 Şubat 2025) Interaction Prediction on BACE-1 Inhibitors Data for Alzheimer Disease using Message Passing Neural Network. Firat University Journal of Experimental and Computational Engineering 4 1 72–84.
IEEE
[1]S. Toraman ve B. Daş, “Interaction Prediction on BACE-1 Inhibitors Data for Alzheimer Disease using Message Passing Neural Network”, Firat University Journal of Experimental and Computational Engineering, c. 4, sy 1, ss. 72–84, Şub. 2025, doi: 10.62520/fujece.1466902.
ISNAD
Toraman, Suat - Daş, Bihter. “Interaction Prediction on BACE-1 Inhibitors Data for Alzheimer Disease using Message Passing Neural Network”. Firat University Journal of Experimental and Computational Engineering 4/1 (01 Şubat 2025): 72-84. https://doi.org/10.62520/fujece.1466902.
JAMA
1.Toraman S, Daş B. Interaction Prediction on BACE-1 Inhibitors Data for Alzheimer Disease using Message Passing Neural Network. Firat University Journal of Experimental and Computational Engineering. 2025;4:72–84.
MLA
Toraman, Suat, ve Bihter Daş. “Interaction Prediction on BACE-1 Inhibitors Data for Alzheimer Disease using Message Passing Neural Network”. Firat University Journal of Experimental and Computational Engineering, c. 4, sy 1, Şubat 2025, ss. 72-84, doi:10.62520/fujece.1466902.
Vancouver
1.Suat Toraman, Bihter Daş. Interaction Prediction on BACE-1 Inhibitors Data for Alzheimer Disease using Message Passing Neural Network. Firat University Journal of Experimental and Computational Engineering. 01 Şubat 2025;4(1):72-84. doi:10.62520/fujece.1466902