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Cited by in CrossRef
For: Hawkins KE, Duchen M. Modelling mitochondrial dysfunction in Alzheimer’s disease using human induced pluripotent stem cells. World J Stem Cells 2019; 11(5): 236-253 [PMID: 31171953 DOI: 10.4252/wjsc.v11.i5.236]
URL: https://www.wjgnet.com/1948-0210/full/v11/i5/236.htm
Number Citing Articles
1
Patricia Mateos-Martínez, Deanira Patrone, Milagros González-Flores, Cristina Soriano-Amador, Rosa González-Sastre, Sabela Martín-Benito, Andreea Rosca, Raquel Coronel, Victoria López-Alonso, Isabel Liste. Understanding Alzheimer’s Disease Through Neurodevelopment: Insights from Human Cerebral OrganoidsOrganoids 2026; 5(1): 8 doi: 10.3390/organoids5010008
2
Faizan Ahmad, Punya Sachdeva. Critical appraisal on mitochondrial dysfunction in Alzheimer’s diseaseAGING MEDICINE 2022; 5(4): 272 doi: 10.1002/agm2.12217
3
Sydney Bartman, Giuseppe Coppotelli, Jaime M. Ross. Mitochondrial Dysfunction: A Key Player in Brain Aging and DiseasesCurrent Issues in Molecular Biology 2024; 46(3): 1987 doi: 10.3390/cimb46030130
4
Azime Berna Özçelik, Mevlüt Akdağ, Muhammed Ergün, Mehtap UYSAL. Alzheimer Hastalığının Tedavisinde Kullanılan İlaçlar ve Yeni YaklaşımlarErzincan Üniversitesi Fen Bilimleri Enstitüsü Dergisi 2019; 12(2): 1149 doi: 10.18185/erzifbed.591088
5
Vivek Kumar Sharma, Thakur Gurjeet Singh. Navigating Alzheimer’s Disease via Chronic Stress: The Role of GlucocorticoidsCurrent Drug Targets 2020; 21(5): 433 doi: 10.2174/1389450120666191017114735
6
Amelia L. Taylor, Don E. Davis, Simona G. Codreanu, Fiona E. Harrison, Stacy D. Sherrod, John A. McLean. Targeted and Untargeted Mass Spectrometry Reveals the Impact of High-Fat Diet on Peripheral Amino Acid Regulation in a Mouse Model of Alzheimer’s DiseaseJournal of Proteome Research 2021; 20(9): 4405 doi: 10.1021/acs.jproteome.1c00344
7
Yiran Xu, Shuxia Wang, Ping Zhu. Advances in the Application of Induced Pluripotent Stem Cells in Alzheimer’s Disease and Parkinson's DiseaseCurrent Stem Cell Research & Therapy 2023; 18(2): 154 doi: 10.2174/1574888X17666220426114050
8
Kevin Zambrano, Diego Barba, Karina Castillo, Paola Robayo, Dariana Argueta-Zamora, Serena Sanon, Eduardo Arizaga, Andres Caicedo, Antonio W.D. Gavilanes. The war against Alzheimer, the mitochondrion strikes back!Mitochondrion 2022; 64: 125 doi: 10.1016/j.mito.2022.03.003
9
Qiao Liu, Hong Wang, Jiayu Ge, Lisen Li, Jie Luo, Kuo He, Haoxiao Yan, Xin Zhang, Rabia Tahir, Wei Luo, Shiyi Chen, Zhang Cheng, Liulan Zhao, Song Yang. Chronic hypoxia and Cu2+ exposure induce gill remodeling of largemouth bass through endoplasmic reticulum stress, mitochondrial damage and apoptosisAquatic Toxicology 2023; 255: 106373 doi: 10.1016/j.aquatox.2022.106373
10
Manjusha Vaidya, Sandeep Sreerama, Mariana Gaviria, Kiminobu Sugaya, Ashis Basu. Exposure to a Pathological Condition May Be Required for the Cells to Secrete Exosomes Containing mtDNA AberrationJournal of Nucleic Acids 2022; 2022: 1 doi: 10.1155/2022/7960198
11
Priscila Chiavellini, Martina Canatelli-Mallat, Marianne Lehmann, RodolfoG Goya, GustavoR Morel. Therapeutic potential of glial cell line-derived neurotrophic factor and cell reprogramming for hippocampal-related neurological disordersNeural Regeneration Research 2022; 17(3): 469 doi: 10.4103/1673-5374.320966
12
Tando Maduna, Ben Loos. Health Communication and Disease in Africa2021; : 63 doi: 10.1007/978-981-16-2546-6_4
13
Miao Zhang, Liangliang Zhu, Yusu Wang, Weijia Chen, Zhongmei He. A Nasal Taxifolin Hydrogel Targets the TLR4/NF-κB/HIF-1α Axis to Suppress Ferroptosis in Alzheimer’s DiseaseAntioxidants 2026; 15(3): 316 doi: 10.3390/antiox15030316
14
César Cáceres, Bernardita Heusser, Alexandra Garnham, Ewa Moczko. The Major Hypotheses of Alzheimer’s Disease: Related Nanotechnology-Based Approaches for Its Diagnosis and TreatmentCells 2023; 12(23): 2669 doi: 10.3390/cells12232669
15
Qiaowen Zhao, Liyi Ma, Siwei Chen, Lushan Huang, Guangwei She, Yongan Sun, Wensheng Shi, Lixuan Mu. Tracking mitochondrial Cu(I) fluctuations through a ratiometric fluorescent probe in AD model cells: Towards understanding how AβOs induce mitochondrial Cu(I) dyshomeostasisTalanta 2024; 271: 125716 doi: 10.1016/j.talanta.2024.125716