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Novel dominant-negative FOXJ1 mutation in a family with heterotaxy plus mouse model

BACKGROUND: Primary ciliary dyskinesia (PCD) is a clinically heterogeneous group of autosomal or, less frequently, X-chromosomal recessive inheritance syndrome of motile cilia dysfunction characterized by neonatal respiratory distress, oto-sino-pulmonary disease, infertility and situs inversus. Rece...

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Autores principales: Li, Lulu, Shi, Guocheng, Zhang, Xingyu, Wang, Teng, Wang, Bo, Gao, Yunqian, You, Guoling, Fu, Qihua, Xiang, Ying, Zhang, Xiaoqing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AME Publishing Company 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10485651/
https://www.ncbi.nlm.nih.gov/pubmed/37692537
http://dx.doi.org/10.21037/tp-23-27
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author Li, Lulu
Shi, Guocheng
Zhang, Xingyu
Wang, Teng
Wang, Bo
Gao, Yunqian
You, Guoling
Fu, Qihua
Xiang, Ying
Zhang, Xiaoqing
author_facet Li, Lulu
Shi, Guocheng
Zhang, Xingyu
Wang, Teng
Wang, Bo
Gao, Yunqian
You, Guoling
Fu, Qihua
Xiang, Ying
Zhang, Xiaoqing
author_sort Li, Lulu
collection PubMed
description BACKGROUND: Primary ciliary dyskinesia (PCD) is a clinically heterogeneous group of autosomal or, less frequently, X-chromosomal recessive inheritance syndrome of motile cilia dysfunction characterized by neonatal respiratory distress, oto-sino-pulmonary disease, infertility and situs inversus. Recently, type 43 PCD (CILD43, OMIM#618699) was established by autosomal-dominant loss-of-function mutations identified in Forkhead box J1 (FOXJ1). However, the functional validation of FOXJ1 mutations in humans and mice has not been fully performed. Here we studied a three-generation family with heterotaxy and proband with complex congenital heart disease (CHD). METHODS: We performed whole-exome sequencing to investigate the causative variant of this family and generated gene knock-in mice carrying the human equivalent mutation by homologous recombination. Then, microscopy analysis was used to characterize the phenotype and ciliary ultrastructure of the model. Effects of the variant on heart anomaly were preliminarily explored through transcriptome sequencing. RESULTS: A novel heterozygous deletion variant (c.1129delC/p.Leu377Trpfs*76) of FOXJ1 was discovered that exerts a dominant-negative effect (DNE) in vitro. Notably, both homozygous (Foxj1(c.1129delT/c.1129delT)) and heterozygous (Foxj1(+/c.1129delT)) mice developed situs inversus, hydrocephalus and showed a disruption of trachea cilia structure, whereas these abnormalities were only observed in previously reported Foxj1(−/−), not Foxj1(+/−) mice. Thus, a more severe phenotype and higher expressivity of our mouse model further indicated the DNE of this mutation. Meanwhile, several cardiomyopathy-related genes were differentially expressed in the homozygous Foxj1 knock-in mouse hearts, pointing to a probable function in cardiac pathology. CONCLUSIONS: Overall, our study results showed that c.1129delC mutation in FOXJ1 was regarded as the cause of situs inversus in this family and this mutant showed a capacity of DNE over wild-type FOXJ1, causing more serious consequences than the allelic deletion of Foxj1.
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spelling pubmed-104856512023-09-09 Novel dominant-negative FOXJ1 mutation in a family with heterotaxy plus mouse model Li, Lulu Shi, Guocheng Zhang, Xingyu Wang, Teng Wang, Bo Gao, Yunqian You, Guoling Fu, Qihua Xiang, Ying Zhang, Xiaoqing Transl Pediatr Original Article BACKGROUND: Primary ciliary dyskinesia (PCD) is a clinically heterogeneous group of autosomal or, less frequently, X-chromosomal recessive inheritance syndrome of motile cilia dysfunction characterized by neonatal respiratory distress, oto-sino-pulmonary disease, infertility and situs inversus. Recently, type 43 PCD (CILD43, OMIM#618699) was established by autosomal-dominant loss-of-function mutations identified in Forkhead box J1 (FOXJ1). However, the functional validation of FOXJ1 mutations in humans and mice has not been fully performed. Here we studied a three-generation family with heterotaxy and proband with complex congenital heart disease (CHD). METHODS: We performed whole-exome sequencing to investigate the causative variant of this family and generated gene knock-in mice carrying the human equivalent mutation by homologous recombination. Then, microscopy analysis was used to characterize the phenotype and ciliary ultrastructure of the model. Effects of the variant on heart anomaly were preliminarily explored through transcriptome sequencing. RESULTS: A novel heterozygous deletion variant (c.1129delC/p.Leu377Trpfs*76) of FOXJ1 was discovered that exerts a dominant-negative effect (DNE) in vitro. Notably, both homozygous (Foxj1(c.1129delT/c.1129delT)) and heterozygous (Foxj1(+/c.1129delT)) mice developed situs inversus, hydrocephalus and showed a disruption of trachea cilia structure, whereas these abnormalities were only observed in previously reported Foxj1(−/−), not Foxj1(+/−) mice. Thus, a more severe phenotype and higher expressivity of our mouse model further indicated the DNE of this mutation. Meanwhile, several cardiomyopathy-related genes were differentially expressed in the homozygous Foxj1 knock-in mouse hearts, pointing to a probable function in cardiac pathology. CONCLUSIONS: Overall, our study results showed that c.1129delC mutation in FOXJ1 was regarded as the cause of situs inversus in this family and this mutant showed a capacity of DNE over wild-type FOXJ1, causing more serious consequences than the allelic deletion of Foxj1. AME Publishing Company 2023-08-28 2023-08-30 /pmc/articles/PMC10485651/ /pubmed/37692537 http://dx.doi.org/10.21037/tp-23-27 Text en 2023 Translational Pediatrics. All rights reserved. https://creativecommons.org/licenses/by-nc-nd/4.0/Open Access Statement: This is an Open Access article distributed in accordance with the Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International License (CC BY-NC-ND 4.0), which permits the non-commercial replication and distribution of the article with the strict proviso that no changes or edits are made and the original work is properly cited (including links to both the formal publication through the relevant DOI and the license). See: https://creativecommons.org/licenses/by-nc-nd/4.0 (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Original Article
Li, Lulu
Shi, Guocheng
Zhang, Xingyu
Wang, Teng
Wang, Bo
Gao, Yunqian
You, Guoling
Fu, Qihua
Xiang, Ying
Zhang, Xiaoqing
Novel dominant-negative FOXJ1 mutation in a family with heterotaxy plus mouse model
title Novel dominant-negative FOXJ1 mutation in a family with heterotaxy plus mouse model
title_full Novel dominant-negative FOXJ1 mutation in a family with heterotaxy plus mouse model
title_fullStr Novel dominant-negative FOXJ1 mutation in a family with heterotaxy plus mouse model
title_full_unstemmed Novel dominant-negative FOXJ1 mutation in a family with heterotaxy plus mouse model
title_short Novel dominant-negative FOXJ1 mutation in a family with heterotaxy plus mouse model
title_sort novel dominant-negative foxj1 mutation in a family with heterotaxy plus mouse model
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10485651/
https://www.ncbi.nlm.nih.gov/pubmed/37692537
http://dx.doi.org/10.21037/tp-23-27
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