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Poly(GR) in C9ORF72-Related ALS/FTD Compromises Mitochondrial Function and Increases Oxidative Stress and DNA Damage in iPSC-Derived Motor Neurons
Journal article   Open access

Poly(GR) in C9ORF72-Related ALS/FTD Compromises Mitochondrial Function and Increases Oxidative Stress and DNA Damage in iPSC-Derived Motor Neurons

R. Lopez-Gonzalez, Y. Lu, T.F. Gendron, A. Karydas, H. Tran, D. Yang, L. Petrucelli, B.L. Miller, S. Almeida and F.-B. Gao
Neuron, Vol.92(2), pp.383-391
2016
PMID: 27720481

Abstract

Amyotrophic Lateral Sclerosis Arginine Blotting, Western Cell Line Dipeptides DNA Damage DNA Repeat Expansion Frontotemporal Dementia Glycine Humans Induced Pluripotent Stem Cells Mitochondria Motor Neurons Oxidative Stress Proteins Tumor Suppressor Protein p53 peptides and proteins protein C9ORF72 protein poly(GR)80 ribosome protein unclassified drug arginine C9orf72 protein, human dipeptide glycine protein protein p53 repetitive DNA TP53 protein, human aging amyotrophic lateral sclerosis Article case report cell differentiation controlled study cytotoxicity disorders of mitochondrial functions DNA damage frontotemporal dementia human human cell induced pluripotent stem cell molecular pathology motoneuron nonhuman oxidative stress priority journal protein binding protein expression protein protein interaction amyotrophic lateral sclerosis cell line frontotemporal dementia genetics metabolism mitochondrion oxidative stress Western blotting
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https://www.scopus.com/inward/record.uri?eid=2-s2.0-84992058801&doi=10.1016%2fj.neuron.2016.09.015&partnerID=40&md5=1863685562d2d877fae7a17b7025b18cView
url
https://doi.org/10.1016/j.neuron.2016.09.015View
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