TY - JOUR
T1 - Variants in EXOSC9 Disrupt the RNA Exosome and Result in Cerebellar Atrophy with Spinal Motor Neuronopathy
AU - Burns, David T.
AU - Donkervoort, Sandra
AU - Müller, Juliane S.
AU - Knierim, Ellen
AU - Bharucha-Goebel, Diana
AU - Faqeih, Eissa Ali
AU - Bell, Stephanie K.
AU - AlFaifi, Abdullah Y.
AU - Monies, Dorota
AU - Millan, Francisca
AU - Retterer, Kyle
AU - Dyack, Sarah
AU - MacKay, Sara
AU - Morales-Gonzalez, Susanne
AU - Giunta, Michele
AU - Munro, Benjamin
AU - Hudson, Gavin
AU - Scavina, Mena
AU - Baker, Laura
AU - Massini, Tara C.
AU - Lek, Monkol
AU - Hu, Ying
AU - Ezzo, Daniel
AU - AlKuraya, Fowzan S.
AU - Kang, Peter B.
AU - Griffin, Helen
AU - Foley, A. Reghan
AU - Schuelke, Markus
AU - Horvath, Rita
AU - Bönnemann, Carsten G.
N1 - Publisher Copyright:
© 2018 The Author(s)
PY - 2018/5/3
Y1 - 2018/5/3
N2 - The exosome is a conserved multi-protein complex that is essential for correct RNA processing. Recessive variants in exosome components EXOSC3, EXOSC8, and RBM7 cause various constellations of pontocerebellar hypoplasia (PCH), spinal muscular atrophy (SMA), and central nervous system demyelination. Here, we report on four unrelated affected individuals with recessive variants in EXOSC9 and the effect of the variants on the function of the RNA exosome in vitro in affected individuals’ fibroblasts and skeletal muscle and in vivo in zebrafish. The clinical presentation was severe, early-onset, progressive SMA-like motor neuronopathy, cerebellar atrophy, and in one affected individual, congenital fractures of the long bones. Three affected individuals of different ethnicity carried the homozygous c.41T>C (p.Leu14Pro) variant, whereas one affected individual was compound heterozygous for c.41T>C (p.Leu14Pro) and c.481C>T (p.Arg161∗). We detected reduced EXOSC9 in fibroblasts and skeletal muscle and observed a reduction of the whole multi-subunit exosome complex on blue-native polyacrylamide gel electrophoresis. RNA sequencing of fibroblasts and skeletal muscle detected significant >2-fold changes in genes involved in neuronal development and cerebellar and motor neuron degeneration, demonstrating the widespread effect of the variants. Morpholino oligonucleotide knockdown and CRISPR/Cas9-mediated mutagenesis of exosc9 in zebrafish recapitulated aspects of the human phenotype, as they have in other zebrafish models of exosomal disease. Specifically, portions of the cerebellum and hindbrain were absent, and motor neurons failed to develop and migrate properly. In summary, we show that variants in EXOSC9 result in a neurological syndrome combining cerebellar atrophy and spinal motoneuronopathy, thus expanding the list of human exosomopathies.
AB - The exosome is a conserved multi-protein complex that is essential for correct RNA processing. Recessive variants in exosome components EXOSC3, EXOSC8, and RBM7 cause various constellations of pontocerebellar hypoplasia (PCH), spinal muscular atrophy (SMA), and central nervous system demyelination. Here, we report on four unrelated affected individuals with recessive variants in EXOSC9 and the effect of the variants on the function of the RNA exosome in vitro in affected individuals’ fibroblasts and skeletal muscle and in vivo in zebrafish. The clinical presentation was severe, early-onset, progressive SMA-like motor neuronopathy, cerebellar atrophy, and in one affected individual, congenital fractures of the long bones. Three affected individuals of different ethnicity carried the homozygous c.41T>C (p.Leu14Pro) variant, whereas one affected individual was compound heterozygous for c.41T>C (p.Leu14Pro) and c.481C>T (p.Arg161∗). We detected reduced EXOSC9 in fibroblasts and skeletal muscle and observed a reduction of the whole multi-subunit exosome complex on blue-native polyacrylamide gel electrophoresis. RNA sequencing of fibroblasts and skeletal muscle detected significant >2-fold changes in genes involved in neuronal development and cerebellar and motor neuron degeneration, demonstrating the widespread effect of the variants. Morpholino oligonucleotide knockdown and CRISPR/Cas9-mediated mutagenesis of exosc9 in zebrafish recapitulated aspects of the human phenotype, as they have in other zebrafish models of exosomal disease. Specifically, portions of the cerebellum and hindbrain were absent, and motor neurons failed to develop and migrate properly. In summary, we show that variants in EXOSC9 result in a neurological syndrome combining cerebellar atrophy and spinal motoneuronopathy, thus expanding the list of human exosomopathies.
KW - RNA metabolism
KW - cerebellar atrophy
KW - exosome
KW - neurodegenerative diseases
KW - spinal muscular atrophy
UR - https://www.scopus.com/pages/publications/85046160057
U2 - 10.1016/j.ajhg.2018.03.011
DO - 10.1016/j.ajhg.2018.03.011
M3 - Article
C2 - 29727687
AN - SCOPUS:85046160057
SN - 0002-9297
VL - 102
SP - 858
EP - 873
JO - American Journal of Human Genetics
JF - American Journal of Human Genetics
IS - 5
ER -