Autism-linked Cullin3 germline haploinsufficiency impacts cytoskeletal dynamics and cortical neurogenesis through RhoA signaling

Megha Amar(University of California San Diego), Akula Bala Pramod(University of California San Diego), Nam‐Kyung Yu(Scripps Research Institute), Victor Munive Herrera(University of California San Diego), Lily R. Qiu(Hospital for Sick Children), Patricia Moran‐Losada(University of California San Diego), Pan Zhang(University of California San Diego), Cleber A. Trujillo(University of California San Diego), Jacob Ellegood(Hospital for Sick Children), Jorge Urresti(University of California San Diego), Kevin Chau(University of California San Diego), Jolene K. Diedrich(Scripps Research Institute), Jiaye Chen(University of California San Diego), Jessica Gutiérrez(University of California San Diego), Jonathan Sebat(University of California San Diego), Dhakshin Ramanathan(University of California San Diego), Jason P. Lerch(Hospital for Sick Children), John R. Yates(Scripps Research Institute), Alysson R. Muotri(Royal Anthropological Institute), Lilia M. Iakoucheva(University of California San Diego)
Molecular Psychiatry
March 16, 2021
Cited by 50Open Access
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Abstract

E3-ubiquitin ligase Cullin3 (Cul3) is a high confidence risk gene for autism spectrum disorder (ASD) and developmental delay (DD). To investigate how Cul3 mutations impact brain development, we generated a haploinsufficient Cul3 mouse model using CRISPR/Cas9 genome engineering. Cul3 mutant mice exhibited social and cognitive deficits and hyperactive behavior. Brain MRI found decreased volume of cortical regions and changes in many other brain regions of Cul3 mutant mice starting from early postnatal development. Spatiotemporal transcriptomic and proteomic profiling of embryonic, early postnatal and adult brain implicated neurogenesis and cytoskeletal defects as key drivers of Cul3 functional impact. Specifically, dendritic growth, filamentous actin puncta, and spontaneous network activity were reduced in Cul3 mutant mice. Inhibition of small GTPase RhoA, a molecular substrate of Cul3 ligase, rescued dendrite length and network activity phenotypes. Our study identified defects in neuronal cytoskeleton and Rho signaling as the primary targets of Cul3 mutation during brain development.


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