Literature DB >> 34170319

Expanding the phenotype of NUP85 mutations beyond nephrotic syndrome to primary autosomal recessive microcephaly and Seckel syndrome spectrum disorders.

Ethiraj Ravindran1,2,3, Ramona Jühlen4, Carlos H Vieira-Vieira5,6, Thuong Ha7,8, Yuval Salzberg9, Boris Fichtman9, Lena Luise-Becker1,2,3, Nuno Martins4, Sylvie Picker-Minh1,2,3, Paraskevi Bessa1, Peer Arts7, Matilda R Jackson7,10, Ajay Taranath11, Benjamin Kamien12, Christopher Barnett10,13,14, Na Li15, Victor Tarabykin1,16, Gisela Stoltenburg-Didinger1, Amnon Harel9, Matthias Selbach5, Achim Dickmanns17, Birthe Fahrenkrog4, Hao Hu15,18, Hamish Scott7,8,10,14,19,20, Angela M Kaindl1,2,3.   

Abstract

Primary autosomal recessive microcephaly and Seckel syndrome spectrum disorders (MCPH-SCKS) include a heterogeneous group of autosomal recessive inherited diseases characterized by primary (congenital) microcephaly, the absence of visceral abnormalities, and a variable degree of cognitive impairment, short stature and facial dysmorphism. Recently, biallelic variants in the nuclear pore complex (NPC) component nucleoporin 85 gene (NUP85) were reported to cause steroid-resistant nephrotic syndrome (SRNS). Here, we report biallelic variants in NUP85 in two pedigrees with an MCPH-SCKS phenotype spectrum without SRNS, thereby expanding the phenotypic spectrum of NUP85-linked diseases. Structural analysis predicts the identified NUP85 variants cause conformational changes that could have an effect on NPC architecture or on its interaction with other NUPs. We show that mutant NUP85 is, however, associated with a reduced number of NPCs but unaltered nucleocytoplasmic compartmentalization, abnormal mitotic spindle morphology, and decreased cell viability and proliferation in one patient's cells. Our results also indicate the link of common cellular mechanisms involved in MCPH-SCKS spectrum disorders and NUP85-associated diseases. In addition to the previous studies, our results broaden the phenotypic spectrum of NUP85-linked human disease and propose a role for NUP85 in nervous system development.
© The Author(s) 2021. Published by Oxford University Press. All rights reserved. For Permissions, please email: journals.permissions@oup.com.

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Year:  2021        PMID: 34170319      PMCID: PMC8837815          DOI: 10.1093/hmg/ddab160

Source DB:  PubMed          Journal:  Hum Mol Genet        ISSN: 0964-6906            Impact factor:   5.121


  43 in total

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6.  Loss-of-function mutations in WDR73 are responsible for microcephaly and steroid-resistant nephrotic syndrome: Galloway-Mowat syndrome.

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Review 3.  Autosomal Recessive Primary Microcephaly: Not Just a Small Brain.

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