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Biallelic mutations in the death domain of PIDD1 impair caspase-2 activation and are associated with intellectual disability

PIDD1 encodes p53-Induced Death Domain protein 1, which acts as a sensor surveilling centrosome numbers and p53 activity in mammalian cells. Early results also suggest a role in DNA damage response where PIDD1 may act as a cell-fate switch, through interaction with RIP1 and NEMO/IKKg, activating NF-...

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Autores principales: Sheikh, Taimoor I., Vasli, Nasim, Pastore, Stephen, Kharizi, Kimia, Harripaul, Ricardo, Fattahi, Zohreh, Pande, Shruti, Naeem, Farooq, Hussain, Abrar, Mir, Asif, Islam, Omar, Girisha, Katta Mohan, Irfan, Muhammad, Ayub, Muhammad, Schwarzer, Christoph, Najmabadi, Hossein, Shukla, Anju, Sladky, Valentina C., Braun, Vincent Zoran, Garcia-Carpio, Irmina, Villunger, Andreas, Vincent, John B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7791037/
https://www.ncbi.nlm.nih.gov/pubmed/33414379
http://dx.doi.org/10.1038/s41398-020-01158-w
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author Sheikh, Taimoor I.
Vasli, Nasim
Pastore, Stephen
Kharizi, Kimia
Harripaul, Ricardo
Fattahi, Zohreh
Pande, Shruti
Naeem, Farooq
Hussain, Abrar
Mir, Asif
Islam, Omar
Girisha, Katta Mohan
Irfan, Muhammad
Ayub, Muhammad
Schwarzer, Christoph
Najmabadi, Hossein
Shukla, Anju
Sladky, Valentina C.
Braun, Vincent Zoran
Garcia-Carpio, Irmina
Villunger, Andreas
Vincent, John B.
author_facet Sheikh, Taimoor I.
Vasli, Nasim
Pastore, Stephen
Kharizi, Kimia
Harripaul, Ricardo
Fattahi, Zohreh
Pande, Shruti
Naeem, Farooq
Hussain, Abrar
Mir, Asif
Islam, Omar
Girisha, Katta Mohan
Irfan, Muhammad
Ayub, Muhammad
Schwarzer, Christoph
Najmabadi, Hossein
Shukla, Anju
Sladky, Valentina C.
Braun, Vincent Zoran
Garcia-Carpio, Irmina
Villunger, Andreas
Vincent, John B.
author_sort Sheikh, Taimoor I.
collection PubMed
description PIDD1 encodes p53-Induced Death Domain protein 1, which acts as a sensor surveilling centrosome numbers and p53 activity in mammalian cells. Early results also suggest a role in DNA damage response where PIDD1 may act as a cell-fate switch, through interaction with RIP1 and NEMO/IKKg, activating NF-κB signaling for survival, or as an apoptosis-inducing protein by activating caspase-2. Biallelic truncating mutations in CRADD—the protein bridging PIDD1 and caspase-2—have been reported in intellectual disability (ID), and in a form of lissencephaly. Here, we identified five families with ID from Iran, Pakistan, and India, with four different biallelic mutations in PIDD1, all disrupting the Death Domain (DD), through which PIDD1 interacts with CRADD or RIP1. Nonsense mutations Gln863* and Arg637* directly disrupt the DD, as does a missense mutation, Arg815Trp. A homozygous splice mutation in the fifth family is predicted to disrupt splicing upstream of the DD, as confirmed using an exon trap. In HEK293 cells, we show that both Gln863* and Arg815Trp mutants fail to co-localize with CRADD, leading to its aggregation and mis-localization, and fail to co-precipitate CRADD. Using genome-edited cell lines, we show that these three PIDD1 mutations all cause loss of PIDDosome function. Pidd1 null mice show decreased anxiety, but no motor abnormalities. Together this indicates that PIDD1 mutations in humans may cause ID (and possibly lissencephaly) either through gain of function or secondarily, due to altered scaffolding properties, while complete loss of PIDD1, as modeled in mice, may be well tolerated or is compensated for.
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spelling pubmed-77910372021-01-15 Biallelic mutations in the death domain of PIDD1 impair caspase-2 activation and are associated with intellectual disability Sheikh, Taimoor I. Vasli, Nasim Pastore, Stephen Kharizi, Kimia Harripaul, Ricardo Fattahi, Zohreh Pande, Shruti Naeem, Farooq Hussain, Abrar Mir, Asif Islam, Omar Girisha, Katta Mohan Irfan, Muhammad Ayub, Muhammad Schwarzer, Christoph Najmabadi, Hossein Shukla, Anju Sladky, Valentina C. Braun, Vincent Zoran Garcia-Carpio, Irmina Villunger, Andreas Vincent, John B. Transl Psychiatry Article PIDD1 encodes p53-Induced Death Domain protein 1, which acts as a sensor surveilling centrosome numbers and p53 activity in mammalian cells. Early results also suggest a role in DNA damage response where PIDD1 may act as a cell-fate switch, through interaction with RIP1 and NEMO/IKKg, activating NF-κB signaling for survival, or as an apoptosis-inducing protein by activating caspase-2. Biallelic truncating mutations in CRADD—the protein bridging PIDD1 and caspase-2—have been reported in intellectual disability (ID), and in a form of lissencephaly. Here, we identified five families with ID from Iran, Pakistan, and India, with four different biallelic mutations in PIDD1, all disrupting the Death Domain (DD), through which PIDD1 interacts with CRADD or RIP1. Nonsense mutations Gln863* and Arg637* directly disrupt the DD, as does a missense mutation, Arg815Trp. A homozygous splice mutation in the fifth family is predicted to disrupt splicing upstream of the DD, as confirmed using an exon trap. In HEK293 cells, we show that both Gln863* and Arg815Trp mutants fail to co-localize with CRADD, leading to its aggregation and mis-localization, and fail to co-precipitate CRADD. Using genome-edited cell lines, we show that these three PIDD1 mutations all cause loss of PIDDosome function. Pidd1 null mice show decreased anxiety, but no motor abnormalities. Together this indicates that PIDD1 mutations in humans may cause ID (and possibly lissencephaly) either through gain of function or secondarily, due to altered scaffolding properties, while complete loss of PIDD1, as modeled in mice, may be well tolerated or is compensated for. Nature Publishing Group UK 2021-01-05 /pmc/articles/PMC7791037/ /pubmed/33414379 http://dx.doi.org/10.1038/s41398-020-01158-w Text en © The Author(s) 2021 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Sheikh, Taimoor I.
Vasli, Nasim
Pastore, Stephen
Kharizi, Kimia
Harripaul, Ricardo
Fattahi, Zohreh
Pande, Shruti
Naeem, Farooq
Hussain, Abrar
Mir, Asif
Islam, Omar
Girisha, Katta Mohan
Irfan, Muhammad
Ayub, Muhammad
Schwarzer, Christoph
Najmabadi, Hossein
Shukla, Anju
Sladky, Valentina C.
Braun, Vincent Zoran
Garcia-Carpio, Irmina
Villunger, Andreas
Vincent, John B.
Biallelic mutations in the death domain of PIDD1 impair caspase-2 activation and are associated with intellectual disability
title Biallelic mutations in the death domain of PIDD1 impair caspase-2 activation and are associated with intellectual disability
title_full Biallelic mutations in the death domain of PIDD1 impair caspase-2 activation and are associated with intellectual disability
title_fullStr Biallelic mutations in the death domain of PIDD1 impair caspase-2 activation and are associated with intellectual disability
title_full_unstemmed Biallelic mutations in the death domain of PIDD1 impair caspase-2 activation and are associated with intellectual disability
title_short Biallelic mutations in the death domain of PIDD1 impair caspase-2 activation and are associated with intellectual disability
title_sort biallelic mutations in the death domain of pidd1 impair caspase-2 activation and are associated with intellectual disability
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7791037/
https://www.ncbi.nlm.nih.gov/pubmed/33414379
http://dx.doi.org/10.1038/s41398-020-01158-w
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