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Combined clinical, structural and cellular studies discriminate pathogenic and benign TRPV4 variants.

作者信息

Berth Sarah H, Vo Linh, Kwon Do Hoon, Grider Tiffany, Damayanti Yasmine S, Kosmanopoulos Gage, Fox Andrew, Lau Alexander R, Carr Patrice, Donohue Jack K, Hoke Maya, Thomas Simone, Karam Chafic, Fay Alex J, Meltzer Ethan, Crawford Thomas O, Gaudet Rachelle, Shy Michael E, Hellmich Ute A, Lee Seok-Yong, Sumner Charlotte J, McCray Brett A

机构信息

Department of Neurology, Baylor College of Medicine, Houston, TX 77030, USA.

Department of Neurology, University of Michigan Medical School, Ann Arbor, MI 48109, USA.

出版信息

Brain. 2025 Feb 3;148(2):564-579. doi: 10.1093/brain/awae243.


DOI:10.1093/brain/awae243
PMID:39021275
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12054728/
Abstract

Dominant mutations in the calcium-permeable ion channel TRPV4 (transient receptor potential vanilloid 4) cause diverse and largely distinct channelopathies, including inherited forms of neuromuscular disease, skeletal dysplasias and arthropathy. Pathogenic TRPV4 mutations cause gain of ion channel function and toxicity that can be rescued by small molecule TRPV4 antagonists in cellular and animal models, suggesting that TRPV4 antagonism could be therapeutic for patients. Numerous variants in TRPV4 have been detected with targeted and whole exome/genome sequencing, but for the vast majority, their pathogenicity remains unclear. Here, we used a combination of clinical information and experimental structure-function analyses to evaluate 30 TRPV4 variants across various functional protein domains. We report clinical features of seven patients with TRPV4 variants of unknown significance and provide extensive functional characterization of these and an additional 17 variants, including structural position, ion channel function, subcellular localization, expression level, cytotoxicity and protein-protein interactions. We find that gain-of-function mutations within the TRPV4 intracellular ankyrin repeat domain target charged amino acid residues important for RhoA interaction, whereas ankyrin repeat domain residues outside of the RhoA interface have normal or reduced ion channel activity. We further identify a cluster of gain-of-function variants within the intracellular intrinsically disordered region that may cause toxicity via altered interactions with membrane lipids. In contrast, assessed variants in the transmembrane domain and other regions of the intrinsically disordered region do not cause gain of function and are likely benign. Clinical features associated with gain of function and cytotoxicity include congenital onset of disease, vocal cord weakness and motor-predominant disease, whereas patients with likely benign variants often demonstrated late-onset and sensory-predominant disease. These results provide a framework for assessing additional TRPV4 variants with respect to likely pathogenicity, which will yield critical information to inform patient selection for future clinical trials for TRPV4 channelopathies.

摘要

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本文引用的文献

[1]
Gain-of-function mutations of TRPV4 acting in endothelial cells drive blood-CNS barrier breakdown and motor neuron degeneration in mice.

Sci Transl Med. 2024-5-22

[2]
Homozygous TRPV4 Mutation Broadens the Phenotypic Spectrum of Congenital Spinal Muscular Atrophy and Arthrogryposis: A Case Report.

Cureus. 2023-8-13

[3]
Crosstalk between regulatory elements in disordered TRPV4 N-terminus modulates lipid-dependent channel activity.

Nat Commun. 2023-7-13

[4]
TRPV4-Rho GTPase complex structures reveal mechanisms of gating and disease.

Nat Commun. 2023-6-23

[5]
Structure of human TRPV4 in complex with GTPase RhoA.

Nat Commun. 2023-6-23

[6]
Spectrum of white matter abnormalities associated with FOXC1-related disorders in two unrelated cases.

Am J Med Genet C Semin Med Genet. 2023-6

[7]
Skeletal dysplasia-causing TRPV4 mutations suppress the hypertrophic differentiation of human iPSC-derived chondrocytes.

Elife. 2023-2-22

[8]
Human skeletal dysplasia causing L596P-mutant alters the conserved amino acid pattern at the lipid-water-Interface of TRPV4.

Biochim Biophys Acta Biomembr. 2023-2

[9]
Axenfeld-Rieger syndrome: more than meets the eye.

J Med Genet. 2023-4

[10]
Backbone NMR assignments of the extensive human and chicken TRPV4 N-terminal intrinsically disordered regions as important players in ion channel regulation.

Biomol NMR Assign. 2022-10

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