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Research Square|May 22, 2023
Longitudinal modeling of human neuronal aging identifies RCAN1-TFEB pathway contributing to neurodegeneration of Huntington's diseaseSeong Won Lee, Young Mi Oh, Matheus B Victor, et al.Nano Letters|March 20, 2020
Monolithic Interface Contact Engineering to Boost Optoelectronic Performances of 2D Semiconductor Photovoltaic HeterojunctionsSeunghoon Yang, Janghwan Cha, Jong Chan Kim, et al.Nature Neuroscience|September 4, 2020
Author Correction: 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 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 Communications|November 19, 2014
Modification of DBC1 by SUMO2/3 is crucial for p53-mediated apoptosis in response to DNA damageJong Ho Park, Seong Won Lee, Seung Wook Yang, 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.Nature Nanotechnology|November 20, 2019
Substrate-directed synthesis of MoS2 nanocrystals with tunable dimensionality and optical propertiesTomojit Chowdhury, Jungkil Kim, Erick C Sadler, 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.Neurobiology of Aging|June 5, 2013
Improvement of cognitive function and physical activity of aging mice by human neural stem cells over-expressing choline acetyltransferaseDongsun Park, Yun-Hui Yang, Dae Kwon Bae, et al.Pageof 4