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Computational and Experimental Analyses for Pathogenicity Prediction of ACVRL1 Missense Variants in Hereditary Hemorrhagic Telangiectasia

Hereditary hemorrhagic telangiectasia (HHT) is a vascular disease caused by the defects of ALK1/ACVRL1 receptor signaling. In this study, we evaluated 25 recently identified ACVRL1 missense variants using multiple computational pathogenicity classifiers and experimentally characterized their signal...

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Autores principales: Iwasa, Toru, Urasaki, Akihiro, Kakihana, Yuki, Nagata-Akaho, Nami, Harada, Yukihiro, Takeda, Soichi, Kawamura, Teruhisa, Shiraishi, Isao, Kurosaki, Kenichi, Morisaki, Hiroko, Yamada, Osamu, Nakagawa, Osamu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10419700/
https://www.ncbi.nlm.nih.gov/pubmed/37568404
http://dx.doi.org/10.3390/jcm12155002
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author Iwasa, Toru
Urasaki, Akihiro
Kakihana, Yuki
Nagata-Akaho, Nami
Harada, Yukihiro
Takeda, Soichi
Kawamura, Teruhisa
Shiraishi, Isao
Kurosaki, Kenichi
Morisaki, Hiroko
Yamada, Osamu
Nakagawa, Osamu
author_facet Iwasa, Toru
Urasaki, Akihiro
Kakihana, Yuki
Nagata-Akaho, Nami
Harada, Yukihiro
Takeda, Soichi
Kawamura, Teruhisa
Shiraishi, Isao
Kurosaki, Kenichi
Morisaki, Hiroko
Yamada, Osamu
Nakagawa, Osamu
author_sort Iwasa, Toru
collection PubMed
description Hereditary hemorrhagic telangiectasia (HHT) is a vascular disease caused by the defects of ALK1/ACVRL1 receptor signaling. In this study, we evaluated 25 recently identified ACVRL1 missense variants using multiple computational pathogenicity classifiers and experimentally characterized their signal transduction capacity. Three extracellular residue variants showed no detectable cell surface expression and impairment of bone morphogenetic protein 9 (BMP9) responsiveness of SMAD-dependent transcription in luciferase assays. Four variants with amino acid replacement in the motifs essential for the intracellular kinase function lost SMAD-dependent signaling. Most of other variations in the kinase domain also caused marked downregulation of signaling; however, two variants behaved as the wild-type ACVRL1 did, while computational classifiers predicted their functional abnormalities. Three-dimensional structure prediction using the ColabFold program supported the significance of the L45 loop and NANDOR domain of ACVRL1 for its association with SMAD1 and BMPR2, respectively, and the variations in these motifs resulted in the reduction of SMAD signaling. On the other hand, two of the GS domain variants maintained high signal transduction capacity, which did not accord with their computational pathogenicity prediction. These results affirm the requirement of a combinatory approach using computational and experimental analyses to accurately predict the pathogenicity of ACVRL1 missense variants in the HHT patients.
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spelling pubmed-104197002023-08-12 Computational and Experimental Analyses for Pathogenicity Prediction of ACVRL1 Missense Variants in Hereditary Hemorrhagic Telangiectasia Iwasa, Toru Urasaki, Akihiro Kakihana, Yuki Nagata-Akaho, Nami Harada, Yukihiro Takeda, Soichi Kawamura, Teruhisa Shiraishi, Isao Kurosaki, Kenichi Morisaki, Hiroko Yamada, Osamu Nakagawa, Osamu J Clin Med Article Hereditary hemorrhagic telangiectasia (HHT) is a vascular disease caused by the defects of ALK1/ACVRL1 receptor signaling. In this study, we evaluated 25 recently identified ACVRL1 missense variants using multiple computational pathogenicity classifiers and experimentally characterized their signal transduction capacity. Three extracellular residue variants showed no detectable cell surface expression and impairment of bone morphogenetic protein 9 (BMP9) responsiveness of SMAD-dependent transcription in luciferase assays. Four variants with amino acid replacement in the motifs essential for the intracellular kinase function lost SMAD-dependent signaling. Most of other variations in the kinase domain also caused marked downregulation of signaling; however, two variants behaved as the wild-type ACVRL1 did, while computational classifiers predicted their functional abnormalities. Three-dimensional structure prediction using the ColabFold program supported the significance of the L45 loop and NANDOR domain of ACVRL1 for its association with SMAD1 and BMPR2, respectively, and the variations in these motifs resulted in the reduction of SMAD signaling. On the other hand, two of the GS domain variants maintained high signal transduction capacity, which did not accord with their computational pathogenicity prediction. These results affirm the requirement of a combinatory approach using computational and experimental analyses to accurately predict the pathogenicity of ACVRL1 missense variants in the HHT patients. MDPI 2023-07-29 /pmc/articles/PMC10419700/ /pubmed/37568404 http://dx.doi.org/10.3390/jcm12155002 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Iwasa, Toru
Urasaki, Akihiro
Kakihana, Yuki
Nagata-Akaho, Nami
Harada, Yukihiro
Takeda, Soichi
Kawamura, Teruhisa
Shiraishi, Isao
Kurosaki, Kenichi
Morisaki, Hiroko
Yamada, Osamu
Nakagawa, Osamu
Computational and Experimental Analyses for Pathogenicity Prediction of ACVRL1 Missense Variants in Hereditary Hemorrhagic Telangiectasia
title Computational and Experimental Analyses for Pathogenicity Prediction of ACVRL1 Missense Variants in Hereditary Hemorrhagic Telangiectasia
title_full Computational and Experimental Analyses for Pathogenicity Prediction of ACVRL1 Missense Variants in Hereditary Hemorrhagic Telangiectasia
title_fullStr Computational and Experimental Analyses for Pathogenicity Prediction of ACVRL1 Missense Variants in Hereditary Hemorrhagic Telangiectasia
title_full_unstemmed Computational and Experimental Analyses for Pathogenicity Prediction of ACVRL1 Missense Variants in Hereditary Hemorrhagic Telangiectasia
title_short Computational and Experimental Analyses for Pathogenicity Prediction of ACVRL1 Missense Variants in Hereditary Hemorrhagic Telangiectasia
title_sort computational and experimental analyses for pathogenicity prediction of acvrl1 missense variants in hereditary hemorrhagic telangiectasia
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10419700/
https://www.ncbi.nlm.nih.gov/pubmed/37568404
http://dx.doi.org/10.3390/jcm12155002
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