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The effect of Dnaaf5 gene dosage on primary ciliary dyskinesia phenotypes

DNAAF5 is a dynein motor assembly factor associated with the autosomal heterogenic recessive condition of motile cilia, primary ciliary dyskinesia (PCD). The effects of allele heterozygosity on motile cilia function are unknown. We used CRISPR-Cas9 genome editing in mice to recreate a human missense...

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Autores principales: Horani, Amjad, Gupta, Deepesh Kumar, Xu, Jian, Xu, Huihui, del Carmen Puga-Molina, Lis, Santi, Celia M., Ramagiri, Sruthi, Brennan, Steven K., Pan, Jiehong, Koenitzer, Jeffrey R., Huang, Tao, Hyland, Rachael M., Gunsten, Sean P., Tzeng, Shin-Cheng, Strahle, Jennifer M., Mill, Pleasantine, Mahjoub, Moe R., Dutcher, Susan K., Brody, Steven L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10393236/
https://www.ncbi.nlm.nih.gov/pubmed/37104040
http://dx.doi.org/10.1172/jci.insight.168836
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author Horani, Amjad
Gupta, Deepesh Kumar
Xu, Jian
Xu, Huihui
del Carmen Puga-Molina, Lis
Santi, Celia M.
Ramagiri, Sruthi
Brennan, Steven K.
Pan, Jiehong
Koenitzer, Jeffrey R.
Huang, Tao
Hyland, Rachael M.
Gunsten, Sean P.
Tzeng, Shin-Cheng
Strahle, Jennifer M.
Mill, Pleasantine
Mahjoub, Moe R.
Dutcher, Susan K.
Brody, Steven L.
author_facet Horani, Amjad
Gupta, Deepesh Kumar
Xu, Jian
Xu, Huihui
del Carmen Puga-Molina, Lis
Santi, Celia M.
Ramagiri, Sruthi
Brennan, Steven K.
Pan, Jiehong
Koenitzer, Jeffrey R.
Huang, Tao
Hyland, Rachael M.
Gunsten, Sean P.
Tzeng, Shin-Cheng
Strahle, Jennifer M.
Mill, Pleasantine
Mahjoub, Moe R.
Dutcher, Susan K.
Brody, Steven L.
author_sort Horani, Amjad
collection PubMed
description DNAAF5 is a dynein motor assembly factor associated with the autosomal heterogenic recessive condition of motile cilia, primary ciliary dyskinesia (PCD). The effects of allele heterozygosity on motile cilia function are unknown. We used CRISPR-Cas9 genome editing in mice to recreate a human missense variant identified in patients with mild PCD and a second, frameshift-null deletion in Dnaaf5. Litters with Dnaaf5 heteroallelic variants showed distinct missense and null gene dosage effects. Homozygosity for the null Dnaaf5 alleles was embryonic lethal. Compound heterozygous animals with the missense and null alleles showed severe disease manifesting as hydrocephalus and early lethality. However, animals homozygous for the missense mutation had improved survival, with partially preserved cilia function and motor assembly observed by ultrastructure analysis. Notably, the same variant alleles exhibited divergent cilia function across different multiciliated tissues. Proteomic analysis of isolated airway cilia from mutant mice revealed reduction in some axonemal regulatory and structural proteins not previously reported in DNAAF5 variants. Transcriptional analysis of mouse and human mutant cells showed increased expression of genes coding for axonemal proteins. These findings suggest allele-specific and tissue-specific molecular requirements for cilia motor assembly that may affect disease phenotypes and clinical trajectory in motile ciliopathies.
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spelling pubmed-103932362023-08-02 The effect of Dnaaf5 gene dosage on primary ciliary dyskinesia phenotypes Horani, Amjad Gupta, Deepesh Kumar Xu, Jian Xu, Huihui del Carmen Puga-Molina, Lis Santi, Celia M. Ramagiri, Sruthi Brennan, Steven K. Pan, Jiehong Koenitzer, Jeffrey R. Huang, Tao Hyland, Rachael M. Gunsten, Sean P. Tzeng, Shin-Cheng Strahle, Jennifer M. Mill, Pleasantine Mahjoub, Moe R. Dutcher, Susan K. Brody, Steven L. JCI Insight Technical Advance DNAAF5 is a dynein motor assembly factor associated with the autosomal heterogenic recessive condition of motile cilia, primary ciliary dyskinesia (PCD). The effects of allele heterozygosity on motile cilia function are unknown. We used CRISPR-Cas9 genome editing in mice to recreate a human missense variant identified in patients with mild PCD and a second, frameshift-null deletion in Dnaaf5. Litters with Dnaaf5 heteroallelic variants showed distinct missense and null gene dosage effects. Homozygosity for the null Dnaaf5 alleles was embryonic lethal. Compound heterozygous animals with the missense and null alleles showed severe disease manifesting as hydrocephalus and early lethality. However, animals homozygous for the missense mutation had improved survival, with partially preserved cilia function and motor assembly observed by ultrastructure analysis. Notably, the same variant alleles exhibited divergent cilia function across different multiciliated tissues. Proteomic analysis of isolated airway cilia from mutant mice revealed reduction in some axonemal regulatory and structural proteins not previously reported in DNAAF5 variants. Transcriptional analysis of mouse and human mutant cells showed increased expression of genes coding for axonemal proteins. These findings suggest allele-specific and tissue-specific molecular requirements for cilia motor assembly that may affect disease phenotypes and clinical trajectory in motile ciliopathies. American Society for Clinical Investigation 2023-06-08 /pmc/articles/PMC10393236/ /pubmed/37104040 http://dx.doi.org/10.1172/jci.insight.168836 Text en © 2023 Horani et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Technical Advance
Horani, Amjad
Gupta, Deepesh Kumar
Xu, Jian
Xu, Huihui
del Carmen Puga-Molina, Lis
Santi, Celia M.
Ramagiri, Sruthi
Brennan, Steven K.
Pan, Jiehong
Koenitzer, Jeffrey R.
Huang, Tao
Hyland, Rachael M.
Gunsten, Sean P.
Tzeng, Shin-Cheng
Strahle, Jennifer M.
Mill, Pleasantine
Mahjoub, Moe R.
Dutcher, Susan K.
Brody, Steven L.
The effect of Dnaaf5 gene dosage on primary ciliary dyskinesia phenotypes
title The effect of Dnaaf5 gene dosage on primary ciliary dyskinesia phenotypes
title_full The effect of Dnaaf5 gene dosage on primary ciliary dyskinesia phenotypes
title_fullStr The effect of Dnaaf5 gene dosage on primary ciliary dyskinesia phenotypes
title_full_unstemmed The effect of Dnaaf5 gene dosage on primary ciliary dyskinesia phenotypes
title_short The effect of Dnaaf5 gene dosage on primary ciliary dyskinesia phenotypes
title_sort effect of dnaaf5 gene dosage on primary ciliary dyskinesia phenotypes
topic Technical Advance
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10393236/
https://www.ncbi.nlm.nih.gov/pubmed/37104040
http://dx.doi.org/10.1172/jci.insight.168836
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