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Citations to this article

A murine model of hnRNPH2-related neurodevelopmental disorder reveals a mechanism for genetic compensation by Hnrnph1
Ane Korff, … , J. Paul Taylor, Hong Joo Kim
Ane Korff, … , J. Paul Taylor, Hong Joo Kim
Published July 17, 2023
Citation Information: J Clin Invest. 2023;133(14):e160309. https://doi.org/10.1172/JCI160309.
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Research Article Neuroscience Article has an altmetric score of 3

A murine model of hnRNPH2-related neurodevelopmental disorder reveals a mechanism for genetic compensation by Hnrnph1

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Abstract

Mutations in HNRNPH2 cause an X-linked neurodevelopmental disorder with features that include developmental delay, motor function deficits, and seizures. More than 90% of patients with hnRNPH2 have a missense mutation within or adjacent to the nuclear localization signal (NLS) of hnRNPH2. Here, we report that hnRNPH2 NLS mutations caused reduced interaction with the nuclear transport receptor Kapβ2 and resulted in modest cytoplasmic accumulation of hnRNPH2. We generated 2 knockin mouse models with human-equivalent mutations in Hnrnph2 as well as Hnrnph2-KO mice. Knockin mice recapitulated clinical features of the human disorder, including reduced survival in male mice, impaired motor and cognitive functions, and increased susceptibility to audiogenic seizures. In contrast, 2 independent lines of Hnrnph2-KO mice showed no detectable phenotypes. Notably, KO mice had upregulated expression of Hnrnph1, a paralog of Hnrnph2, whereas knockin mice failed to upregulate Hnrnph1. Thus, genetic compensation by Hnrnph1 may counteract the loss of hnRNPH2. These findings suggest that HNRNPH2-related disorder may be driven by a toxic gain of function or a complex loss of HNRNPH2 function with impaired compensation by HNRNPH1. The knockin mice described here are an important resource for preclinical studies to assess the therapeutic benefit of gene replacement or knockdown of mutant hnRNPH2.

Authors

Ane Korff, Xiaojing Yang, Kevin O’Donovan, Abner Gonzalez, Brett J.W. Teubner, Haruko Nakamura, James Messing, Fen Yang, Alexandre F. Carisey, Yong-Dong Wang, Tushar Patni, Heather Sheppard, Stanislav S. Zakharenko, Yuh Min Chook, J. Paul Taylor, Hong Joo Kim

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Total citations by year

Year: 2025 2024 2023 Total
Citations: 1 2 2 5
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Citations to this article (5)

Title and authors Publication Year
Exploratory analysis of a Novel RACK1 mutation and its potential role in epileptic seizures via Microglia activation
Zhang S, Dong Z, Guo J, Li Z, Wu H, Zhang L, Min F, Zeng T
Journal of Neuroinflammation 2025
hnRNPs: roles in neurodevelopment and implication for brain disorders
Tilliole P, Fix S, Godin JD
Frontiers in molecular neuroscience 2024
RNA granules in flux: dynamics to balance physiology and pathology.
Kiebler MA, Bauer KE
Nature reviews. Neuroscience 2024
hnRNPH2 gain-of-function mutations reveal therapeutic strategies and a role for RNA granules in neurodevelopmental disorders
Ted Abel
Journal of Clinical Investigation 2023
A new Karyopherin-β2 binding PY-NLS epitope of HNRNPH2 linked to neurodevelopmental disorders
Gonzalez A, Kim HJ, Freibaum BD, Fung HY, Brautigam CA, Taylor JP, Chook YM
Structure (London, England : 1993) 2023

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