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Unique Mechanism by Which TGFBR1 Variants Cause 2 Distinct System Diseases ― Loeys-Dietz Syndrome and Multiple Self-Healing Squamous Epithelioma ―

Variant types and sites in a single gene could influence the age of onset, severity, and pattern of affected organs of the genetic disease, such as in Marfan syndrome (MFS)-causing FBN1, and understanding the genotype-phenotype relationship could aid in determining the treatment strategy. In contras...

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Autores principales: Fujiwara, Takayuki, Takeda, Norifumi, Ishii, Satoshi, Morita, Hiroyuki, Komuro, Issei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Japanese Circulation Society 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7897567/
https://www.ncbi.nlm.nih.gov/pubmed/33693090
http://dx.doi.org/10.1253/circrep.CR-19-0098
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author Fujiwara, Takayuki
Takeda, Norifumi
Ishii, Satoshi
Morita, Hiroyuki
Komuro, Issei
author_facet Fujiwara, Takayuki
Takeda, Norifumi
Ishii, Satoshi
Morita, Hiroyuki
Komuro, Issei
author_sort Fujiwara, Takayuki
collection PubMed
description Variant types and sites in a single gene could influence the age of onset, severity, and pattern of affected organs of the genetic disease, such as in Marfan syndrome (MFS)-causing FBN1, and understanding the genotype-phenotype relationship could aid in determining the treatment strategy. In contrast, completely distinct system and/or organ diseases induced by 1 gene mutation have been rarely reported. Transforming growth factor-β (TGF-β) type I receptor-encoding TGFBR1 is such a gene, causing Loeys-Dietz syndrome (LDS) closely related to MFS, and also multiple self-healing squamous epithelioma (MSSE) without clinical overlap. The detailed mechanisms underlying this effect, however, remain elusive. We recently reported the significance of 2 distinct intronic variants (c.973+1G>A and c.806-2A>C) of TGFBR1, which were both predicted to mediate in-frame exon 5 skipping but caused LDS and MSSE, respectively. On ex vivo minigene splicing assay analysis we demonstrated that 2 different cryptic splice sites were activated, and in-frame and out-of-frame transcripts were produced in LDS and MSSE, respectively, supporting the previously proposed but not yet approved mechanism that loss-of-function and haploinsufficiency-causing variants in serine/threonine kinase domains induce LDS and MSSE, respectively. In this review, we briefly summarize the recent findings and unresolved problems for the pathogenesis of LDS, including the TGF-β signaling paradox: most variants have been verified or predicted to be loss of function in vitro, but these variants enhanced TGF-β signaling in vivo.
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spelling pubmed-78975672021-03-09 Unique Mechanism by Which TGFBR1 Variants Cause 2 Distinct System Diseases ― Loeys-Dietz Syndrome and Multiple Self-Healing Squamous Epithelioma ― Fujiwara, Takayuki Takeda, Norifumi Ishii, Satoshi Morita, Hiroyuki Komuro, Issei Circ Rep Review Variant types and sites in a single gene could influence the age of onset, severity, and pattern of affected organs of the genetic disease, such as in Marfan syndrome (MFS)-causing FBN1, and understanding the genotype-phenotype relationship could aid in determining the treatment strategy. In contrast, completely distinct system and/or organ diseases induced by 1 gene mutation have been rarely reported. Transforming growth factor-β (TGF-β) type I receptor-encoding TGFBR1 is such a gene, causing Loeys-Dietz syndrome (LDS) closely related to MFS, and also multiple self-healing squamous epithelioma (MSSE) without clinical overlap. The detailed mechanisms underlying this effect, however, remain elusive. We recently reported the significance of 2 distinct intronic variants (c.973+1G>A and c.806-2A>C) of TGFBR1, which were both predicted to mediate in-frame exon 5 skipping but caused LDS and MSSE, respectively. On ex vivo minigene splicing assay analysis we demonstrated that 2 different cryptic splice sites were activated, and in-frame and out-of-frame transcripts were produced in LDS and MSSE, respectively, supporting the previously proposed but not yet approved mechanism that loss-of-function and haploinsufficiency-causing variants in serine/threonine kinase domains induce LDS and MSSE, respectively. In this review, we briefly summarize the recent findings and unresolved problems for the pathogenesis of LDS, including the TGF-β signaling paradox: most variants have been verified or predicted to be loss of function in vitro, but these variants enhanced TGF-β signaling in vivo. The Japanese Circulation Society 2019-11-02 /pmc/articles/PMC7897567/ /pubmed/33693090 http://dx.doi.org/10.1253/circrep.CR-19-0098 Text en Copyright © 2019, THE JAPANESE CIRCULATION SOCIETY This article is licensed under a Creative Commons [Attribution-NonCommercial-NoDerivatives 4.0 International] license.https://creativecommons.org/licenses/by-nc-nd/4.0/
spellingShingle Review
Fujiwara, Takayuki
Takeda, Norifumi
Ishii, Satoshi
Morita, Hiroyuki
Komuro, Issei
Unique Mechanism by Which TGFBR1 Variants Cause 2 Distinct System Diseases ― Loeys-Dietz Syndrome and Multiple Self-Healing Squamous Epithelioma ―
title Unique Mechanism by Which TGFBR1 Variants Cause 2 Distinct System Diseases ― Loeys-Dietz Syndrome and Multiple Self-Healing Squamous Epithelioma ―
title_full Unique Mechanism by Which TGFBR1 Variants Cause 2 Distinct System Diseases ― Loeys-Dietz Syndrome and Multiple Self-Healing Squamous Epithelioma ―
title_fullStr Unique Mechanism by Which TGFBR1 Variants Cause 2 Distinct System Diseases ― Loeys-Dietz Syndrome and Multiple Self-Healing Squamous Epithelioma ―
title_full_unstemmed Unique Mechanism by Which TGFBR1 Variants Cause 2 Distinct System Diseases ― Loeys-Dietz Syndrome and Multiple Self-Healing Squamous Epithelioma ―
title_short Unique Mechanism by Which TGFBR1 Variants Cause 2 Distinct System Diseases ― Loeys-Dietz Syndrome and Multiple Self-Healing Squamous Epithelioma ―
title_sort unique mechanism by which tgfbr1 variants cause 2 distinct system diseases ― loeys-dietz syndrome and multiple self-healing squamous epithelioma ―
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7897567/
https://www.ncbi.nlm.nih.gov/pubmed/33693090
http://dx.doi.org/10.1253/circrep.CR-19-0098
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