TY - JOUR
T1 - Defective metabolic programming impairs early neuronal morphogenesis in neural cultures and an organoid model of Leigh syndrome
AU - Inak, Gizem
AU - Rybak-Wolf, Agnieszka
AU - Lisowski, Pawel
AU - Pentimalli, Tancredi M.
AU - Jüttner, René
AU - Glažar, Petar
AU - Uppal, Karan
AU - Bottani, Emanuela
AU - Brunetti, Dario
AU - Secker, Christopher
AU - Zink, Annika
AU - Meierhofer, David
AU - Henke, Marie Thérèse
AU - Dey, Monishita
AU - Ciptasari, Ummi
AU - Mlody, Barbara
AU - Hahn, Tobias
AU - Berruezo-Llacuna, Maria
AU - Karaiskos, Nikos
AU - Di Virgilio, Michela
AU - Mayr, Johannes A.
AU - Wortmann, Saskia B.
AU - Priller, Josef
AU - Gotthardt, Michael
AU - Jones, Dean P.
AU - Mayatepek, Ertan
AU - Stenzel, Werner
AU - Diecke, Sebastian
AU - Kühn, Ralf
AU - Wanker, Erich E.
AU - Rajewsky, Nikolaus
AU - Schuelke, Markus
AU - Prigione, Alessandro
N1 - Publisher Copyright:
© 2021, The Author(s).
PY - 2021/12/1
Y1 - 2021/12/1
N2 - Leigh syndrome (LS) is a severe manifestation of mitochondrial disease in children and is currently incurable. The lack of effective models hampers our understanding of the mechanisms underlying the neuronal pathology of LS. Using patient-derived induced pluripotent stem cells and CRISPR/Cas9 engineering, we developed a human model of LS caused by mutations in the complex IV assembly gene SURF1. Single-cell RNA-sequencing and multi-omics analysis revealed compromised neuronal morphogenesis in mutant neural cultures and brain organoids. The defects emerged at the level of neural progenitor cells (NPCs), which retained a glycolytic proliferative state that failed to instruct neuronal morphogenesis. LS NPCs carrying mutations in the complex I gene NDUFS4 recapitulated morphogenesis defects. SURF1 gene augmentation and PGC1A induction via bezafibrate treatment supported the metabolic programming of LS NPCs, leading to restored neuronal morphogenesis. Our findings provide mechanistic insights and suggest potential interventional strategies for a rare mitochondrial disease.
AB - Leigh syndrome (LS) is a severe manifestation of mitochondrial disease in children and is currently incurable. The lack of effective models hampers our understanding of the mechanisms underlying the neuronal pathology of LS. Using patient-derived induced pluripotent stem cells and CRISPR/Cas9 engineering, we developed a human model of LS caused by mutations in the complex IV assembly gene SURF1. Single-cell RNA-sequencing and multi-omics analysis revealed compromised neuronal morphogenesis in mutant neural cultures and brain organoids. The defects emerged at the level of neural progenitor cells (NPCs), which retained a glycolytic proliferative state that failed to instruct neuronal morphogenesis. LS NPCs carrying mutations in the complex I gene NDUFS4 recapitulated morphogenesis defects. SURF1 gene augmentation and PGC1A induction via bezafibrate treatment supported the metabolic programming of LS NPCs, leading to restored neuronal morphogenesis. Our findings provide mechanistic insights and suggest potential interventional strategies for a rare mitochondrial disease.
UR - https://www.scopus.com/pages/publications/85103394405
U2 - 10.1038/s41467-021-22117-z
DO - 10.1038/s41467-021-22117-z
M3 - Article
C2 - 33771987
AN - SCOPUS:85103394405
SN - 2041-1723
VL - 12
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 1929
ER -