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Nature Neuroscience|February 7, 2018
Striatal neurons directly converted from Huntington's disease patient fibroblasts recapitulate age-associated disease phenotypesMatheus B Victor, Michelle Richner, Hannah E Olsen, et al.Nature Aging|December 8, 2023
Longitudinal modeling of human neuronal aging reveals the contribution of the RCAN1-TFEB pathway to Huntington's disease neurodegenerationSeong Won Lee, Young Mi Oh, Matheus B Victor, et al.Neuron|January 4, 2020
Huntington's Disease Pathogenesis Is Modified In Vivo by Alfy/Wdfy3 and Selective MacroautophagyLeora M Fox, Kiryung Kim, Christopher W Johnson, et al.Cell Stem Cell|September 9, 2017
MicroRNAs Induce a Permissive Chromatin Environment that Enables Neuronal Subtype-Specific Reprogramming of Adult Human FibroblastsDaniel G Abernathy, Woo Kyung Kim, Matthew J McCoy, et al.Nature Neuroscience|October 27, 2022
Age-related Huntington's disease progression modeled in directly reprogrammed patient-derived striatal neurons highlights impaired autophagyYoung Mi Oh, Seong Won Lee, Woo Kyung Kim, et al.Cell Stem Cell|September 22, 2020
Deconstructing Stepwise Fate Conversion of Human Fibroblasts to Neurons by MicroRNAsKitra Cates, Matthew J McCoy, Ji-Sun Kwon, et al.Cell Stem Cell|June 6, 2022
Recapitulation of endogenous 4R tau expression and formation of insoluble tau in directly reprogrammed human neuronsLucia S Capano, Chihiro Sato, Elena Ficulle, et al.Human Molecular Genetics|October 15, 2025
Genetic dissection of Huntington's disease modification by variation at RRM2BKiuk Lee, Baehyun Shin, Mingyu Kim, et al.Biorxiv : the Preprint Server for Biology|September 25, 2023
Multi-OMIC analysis of Huntington disease reveals a neuroprotective astrocyte stateFahad Paryani, Ji-Sun Kwon, Chris W Ng, et al.Biorxiv : the Preprint Server for Biology|June 9, 2023
Endogenous recapitulation of Alzheimer's disease neuropathology through human 3D direct neuronal reprogrammingZhao Sun, Ji-Sun Kwon, Yudong Ren, et al.Pageof 7