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Stem Cells and Development|September 20, 2012
Derivation and characterization of sleeping beauty transposon-mediated porcine induced pluripotent stem cellsWilfried A Kues, Doris Herrmann, Brigitte Barg-Kues, et al.Frontiers in Veterinary Science|November 22, 2021
Neural Derivates of Canine Induced Pluripotent Stem Cells-Like Cells From a Mild Cognitive Impairment DogAbinaya Chandrasekaran, Barbara Blicher Thomsen, Jørgen Steen Agerholm, et al.Experimental Cell Research|May 1, 2019
Modelling the neuropathology of lysosomal storage disorders through disease-specific human induced pluripotent stem cellsJulianna Kobolák, Kinga Molnár, Eszter Varga, et al.Molecular Reproduction and Development|January 4, 2017
Systematic in vitro and in vivo characterization of Leukemia-inhibiting factor- and Fibroblast growth factor-derived porcine induced pluripotent stem cellsJan O Secher, Ahmet Ceylan, Gianluca Mazzoni, et al.Frontiers in Cell and Developmental Biology|September 1, 2022
Production of human entorhinal stellate cell-like cells by forward programming shows an important role of Foxp1 in reprogrammingTobias Bergmann, Yong Liu, Jonathan Skov, et al.Biology Open|July 21, 2018
Mammalian embryo comparison identifies novel pluripotency genes associated with the naïve or primed stateAndreia S Bernardo, Alice Jouneau, Hendrik Marks, et al.Stem Cell Reports|October 22, 2021
Astrocytic reactivity triggered by defective autophagy and metabolic failure causes neurotoxicity in frontotemporal dementia type 3Abinaya Chandrasekaran, Katarina Stoklund Dittlau, Giulia I Corsi, et al.Stem Cell Reports|February 21, 2017
Patient iPSC-Derived Neurons for Disease Modeling of Frontotemporal Dementia with Mutation in CHMP2BYu Zhang, Benjamin Schmid, Nanett K Nikolaisen, et al.Frontiers in Neuroscience|March 6, 2023
Golgi fragmentation - One of the earliest organelle phenotypes in Alzheimer's disease neuronsHenriette Haukedal, Giulia I Corsi, Veerendra P Gadekar, et al.Pageof 12