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The histone H4K20 methyltransferase SUV4-20H1/KMT5B is required for multiciliated cell differentiation in Xenopus

H4 lysine 20 dimethylation (H4K20me2) is the most abundant histone modification in vertebrate chromatin. It arises from sequential methylation of unmodified histone H4 proteins by the mono-methylating enzyme PR-SET7/KMT5A, followed by conversion to the dimethylated state by SUV4-20H (KMT5B/C) enzyme...

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Autores principales: Angerilli, Alessandro, Tait, Janet, Berges, Julian, Shcherbakova, Irina, Pokrovsky, Daniil, Schauer, Tamas, Smialowski, Pawel, Hsam, Ohnmar, Mentele, Edith, Nicetto, Dario, Rupp, Ralph AW
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Life Science Alliance LLC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10147948/
https://www.ncbi.nlm.nih.gov/pubmed/37116939
http://dx.doi.org/10.26508/lsa.202302023
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author Angerilli, Alessandro
Tait, Janet
Berges, Julian
Shcherbakova, Irina
Pokrovsky, Daniil
Schauer, Tamas
Smialowski, Pawel
Hsam, Ohnmar
Mentele, Edith
Nicetto, Dario
Rupp, Ralph AW
author_facet Angerilli, Alessandro
Tait, Janet
Berges, Julian
Shcherbakova, Irina
Pokrovsky, Daniil
Schauer, Tamas
Smialowski, Pawel
Hsam, Ohnmar
Mentele, Edith
Nicetto, Dario
Rupp, Ralph AW
author_sort Angerilli, Alessandro
collection PubMed
description H4 lysine 20 dimethylation (H4K20me2) is the most abundant histone modification in vertebrate chromatin. It arises from sequential methylation of unmodified histone H4 proteins by the mono-methylating enzyme PR-SET7/KMT5A, followed by conversion to the dimethylated state by SUV4-20H (KMT5B/C) enzymes. We have blocked the deposition of this mark by depleting Xenopus embryos of SUV4-20H1/H2 methyltransferases. In the larval epidermis, this results in a severe loss of cilia in multiciliated cells (MCC), a key component of mucociliary epithelia. MCC precursor cells are correctly specified, amplify centrioles, but ultimately fail in ciliogenesis because of the perturbation of cytoplasmic processes. Genome-wide transcriptome profiling reveals that SUV4-20H1/H2-depleted ectodermal explants preferentially down-regulate the expression of several hundred ciliogenic genes. Further analysis demonstrated that knockdown of SUV4-20H1 alone is sufficient to generate the MCC phenotype and that its catalytic activity is needed for axoneme formation. Overexpression of the H4K20me1-specific histone demethylase PHF8/KDM7B also rescues the ciliogenic defect in a significant manner. Taken together, this indicates that the conversion of H4K20me1 to H4K20me2 by SUV4-20H1 is critical for the formation of cilia tufts.
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spelling pubmed-101479482023-04-30 The histone H4K20 methyltransferase SUV4-20H1/KMT5B is required for multiciliated cell differentiation in Xenopus Angerilli, Alessandro Tait, Janet Berges, Julian Shcherbakova, Irina Pokrovsky, Daniil Schauer, Tamas Smialowski, Pawel Hsam, Ohnmar Mentele, Edith Nicetto, Dario Rupp, Ralph AW Life Sci Alliance Research Articles H4 lysine 20 dimethylation (H4K20me2) is the most abundant histone modification in vertebrate chromatin. It arises from sequential methylation of unmodified histone H4 proteins by the mono-methylating enzyme PR-SET7/KMT5A, followed by conversion to the dimethylated state by SUV4-20H (KMT5B/C) enzymes. We have blocked the deposition of this mark by depleting Xenopus embryos of SUV4-20H1/H2 methyltransferases. In the larval epidermis, this results in a severe loss of cilia in multiciliated cells (MCC), a key component of mucociliary epithelia. MCC precursor cells are correctly specified, amplify centrioles, but ultimately fail in ciliogenesis because of the perturbation of cytoplasmic processes. Genome-wide transcriptome profiling reveals that SUV4-20H1/H2-depleted ectodermal explants preferentially down-regulate the expression of several hundred ciliogenic genes. Further analysis demonstrated that knockdown of SUV4-20H1 alone is sufficient to generate the MCC phenotype and that its catalytic activity is needed for axoneme formation. Overexpression of the H4K20me1-specific histone demethylase PHF8/KDM7B also rescues the ciliogenic defect in a significant manner. Taken together, this indicates that the conversion of H4K20me1 to H4K20me2 by SUV4-20H1 is critical for the formation of cilia tufts. Life Science Alliance LLC 2023-04-28 /pmc/articles/PMC10147948/ /pubmed/37116939 http://dx.doi.org/10.26508/lsa.202302023 Text en © 2023 Angerilli et al. https://creativecommons.org/licenses/by/4.0/This article is available under a Creative Commons License (Attribution 4.0 International, as described at https://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Articles
Angerilli, Alessandro
Tait, Janet
Berges, Julian
Shcherbakova, Irina
Pokrovsky, Daniil
Schauer, Tamas
Smialowski, Pawel
Hsam, Ohnmar
Mentele, Edith
Nicetto, Dario
Rupp, Ralph AW
The histone H4K20 methyltransferase SUV4-20H1/KMT5B is required for multiciliated cell differentiation in Xenopus
title The histone H4K20 methyltransferase SUV4-20H1/KMT5B is required for multiciliated cell differentiation in Xenopus
title_full The histone H4K20 methyltransferase SUV4-20H1/KMT5B is required for multiciliated cell differentiation in Xenopus
title_fullStr The histone H4K20 methyltransferase SUV4-20H1/KMT5B is required for multiciliated cell differentiation in Xenopus
title_full_unstemmed The histone H4K20 methyltransferase SUV4-20H1/KMT5B is required for multiciliated cell differentiation in Xenopus
title_short The histone H4K20 methyltransferase SUV4-20H1/KMT5B is required for multiciliated cell differentiation in Xenopus
title_sort histone h4k20 methyltransferase suv4-20h1/kmt5b is required for multiciliated cell differentiation in xenopus
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10147948/
https://www.ncbi.nlm.nih.gov/pubmed/37116939
http://dx.doi.org/10.26508/lsa.202302023
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