Vesicle biogenesis, trafficking and signaling via Endoplasmic reticulum-Golgi network support essential developmental processes and their disruption lead to neurodevelopmental disorders and neurodegeneration. We report that de novo missense variants in ARF3, encoding a small GTPase regulating Golgi dynamics, cause a developmental disease in humans impairing nervous system and skeletal formation. Microcephaly-associated ARF3 variants affect residues within the guanine nucleotide binding pocket and variably perturb protein stability and GTP/GDP binding. Functional analysis demonstrates variably disruptive consequences of ARF3 variants on Golgi morphology, vesicles assembly and trafficking. Disease modeling in zebrafish validates further the dominant behavior of the mutants and their differential impact on brain and body plan formation, recapitulating the variable disease expression. In-depth in vivo analyses traces back impaired neural precursors' proliferation and planar cell polarity-dependent cell movements as the earliest detectable effects. Our findings document a key role of ARF3 in Golgi function and demonstrate its pleiotropic impact on development.

Fasano, G., Muto, V., Radio, F.c., Venditti, M., Mosaddeghzadeh, N., Coppola, S., et al. (2022). Dominant ARF3 variants disrupt Golgi integrity and cause a neurodevelopmental disorder recapitulated in zebrafish. NATURE COMMUNICATIONS, 13(1), 1-29 [10.1038/s41467-022-34354-x].

Dominant ARF3 variants disrupt Golgi integrity and cause a neurodevelopmental disorder recapitulated in zebrafish

Chillemi, Giovanni;
2022-01-01

Abstract

Vesicle biogenesis, trafficking and signaling via Endoplasmic reticulum-Golgi network support essential developmental processes and their disruption lead to neurodevelopmental disorders and neurodegeneration. We report that de novo missense variants in ARF3, encoding a small GTPase regulating Golgi dynamics, cause a developmental disease in humans impairing nervous system and skeletal formation. Microcephaly-associated ARF3 variants affect residues within the guanine nucleotide binding pocket and variably perturb protein stability and GTP/GDP binding. Functional analysis demonstrates variably disruptive consequences of ARF3 variants on Golgi morphology, vesicles assembly and trafficking. Disease modeling in zebrafish validates further the dominant behavior of the mutants and their differential impact on brain and body plan formation, recapitulating the variable disease expression. In-depth in vivo analyses traces back impaired neural precursors' proliferation and planar cell polarity-dependent cell movements as the earliest detectable effects. Our findings document a key role of ARF3 in Golgi function and demonstrate its pleiotropic impact on development.
2022
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore AGR/17 - Zootecnica Generale e Miglioramento Genetico
Settore AGRI-09/A - Zootecnia generale e miglioramento genetico
English
Con Impact Factor ISI
https://www.nature.com/articles/s41467-022-34354-x
Fasano, G., Muto, V., Radio, F.c., Venditti, M., Mosaddeghzadeh, N., Coppola, S., et al. (2022). Dominant ARF3 variants disrupt Golgi integrity and cause a neurodevelopmental disorder recapitulated in zebrafish. NATURE COMMUNICATIONS, 13(1), 1-29 [10.1038/s41467-022-34354-x].
Fasano, G; Muto, V; Radio, Fc; Venditti, M; Mosaddeghzadeh, N; Coppola, S; Paradisi, G; Zara, E; Bazgir, F; Ziegler, A; Chillemi, G; Bertuccini, L; Ti...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/396209
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