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Aberrant EVI1 splicing contributes to EVI1-rearranged leukemia

Detailed genomic and epigenomic analyses of MECOM (the MDS1 and EVI1 complex locus) have revealed that inversion or translocation of chromosome 3 drives inv(3)/t(3;3) myeloid leukemias via structural rearrangement of an enhancer that upregulates transcription of EVI1. Here, we identify a novel, prev...

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Autores principales: Tanaka, Atsushi, Nakano, Taizo A., Nomura, Masaki, Yamazaki, Hiromi, Bewersdorf, Jan P., Mulet-Lazaro, Roger, Hogg, Simon, Liu, Bo, Penson, Alex, Yokoyama, Akihiko, Zang, Weijia, Havermans, Marije, Koizumi, Miho, Hayashi, Yasutaka, Cho, Hana, Kanai, Akinori, Lee, Stanley C., Xiao, Muran, Koike, Yui, Zhang, Yifan, Fukumoto, Miki, Aoyama, Yumi, Konuma, Tsuyoshi, Kunimoto, Hiroyoshi, Inaba, Toshiya, Nakajima, Hideaki, Honda, Hiroaki, Kawamoto, Hiroshi, Delwel, Ruud, Abdel-Wahab, Omar, Inoue, Daichi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Hematology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9412007/
https://www.ncbi.nlm.nih.gov/pubmed/35709354
http://dx.doi.org/10.1182/blood.2021015325
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author Tanaka, Atsushi
Nakano, Taizo A.
Nomura, Masaki
Yamazaki, Hiromi
Bewersdorf, Jan P.
Mulet-Lazaro, Roger
Hogg, Simon
Liu, Bo
Penson, Alex
Yokoyama, Akihiko
Zang, Weijia
Havermans, Marije
Koizumi, Miho
Hayashi, Yasutaka
Cho, Hana
Kanai, Akinori
Lee, Stanley C.
Xiao, Muran
Koike, Yui
Zhang, Yifan
Fukumoto, Miki
Aoyama, Yumi
Konuma, Tsuyoshi
Kunimoto, Hiroyoshi
Inaba, Toshiya
Nakajima, Hideaki
Honda, Hiroaki
Kawamoto, Hiroshi
Delwel, Ruud
Abdel-Wahab, Omar
Inoue, Daichi
author_facet Tanaka, Atsushi
Nakano, Taizo A.
Nomura, Masaki
Yamazaki, Hiromi
Bewersdorf, Jan P.
Mulet-Lazaro, Roger
Hogg, Simon
Liu, Bo
Penson, Alex
Yokoyama, Akihiko
Zang, Weijia
Havermans, Marije
Koizumi, Miho
Hayashi, Yasutaka
Cho, Hana
Kanai, Akinori
Lee, Stanley C.
Xiao, Muran
Koike, Yui
Zhang, Yifan
Fukumoto, Miki
Aoyama, Yumi
Konuma, Tsuyoshi
Kunimoto, Hiroyoshi
Inaba, Toshiya
Nakajima, Hideaki
Honda, Hiroaki
Kawamoto, Hiroshi
Delwel, Ruud
Abdel-Wahab, Omar
Inoue, Daichi
author_sort Tanaka, Atsushi
collection PubMed
description Detailed genomic and epigenomic analyses of MECOM (the MDS1 and EVI1 complex locus) have revealed that inversion or translocation of chromosome 3 drives inv(3)/t(3;3) myeloid leukemias via structural rearrangement of an enhancer that upregulates transcription of EVI1. Here, we identify a novel, previously unannotated oncogenic RNA-splicing derived isoform of EVI1 that is frequently present in inv(3)/t(3;3) acute myeloid leukemia (AML) and directly contributes to leukemic transformation. This EVI1 isoform is generated by oncogenic mutations in the core RNA splicing factor SF3B1, which is mutated in >30% of inv(3)/t(3;3) myeloid neoplasm patients and thereby represents the single most commonly cooccurring genomic alteration in inv(3)/t(3;3) patients. SF3B1 mutations are statistically uniquely enriched in inv(3)/t(3;3) myeloid neoplasm patients and patient-derived cell lines compared with other forms of AML and promote mis-splicing of EVI1 generating an in-frame insertion of 6 amino acids at the 3′ end of the second zinc finger domain of EVI1. Expression of this EVI1 splice variant enhanced the self-renewal of hematopoietic stem cells, and introduction of mutant SF3B1 in mice bearing the humanized inv(3)(q21q26) allele resulted in generation of this novel EVI1 isoform in mice and hastened leukemogenesis in vivo. The mutant SF3B1 spliceosome depends upon an exonic splicing enhancer within EVI1 exon 13 to promote usage of a cryptic branch point and aberrant 3′ splice site within intron 12 resulting in the generation of this isoform. These data provide a mechanistic basis for the frequent cooccurrence of SF3B1 mutations as well as new insights into the pathogenesis of myeloid leukemias harboring inv(3)/t(3;3).
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spelling pubmed-94120072022-11-16 Aberrant EVI1 splicing contributes to EVI1-rearranged leukemia Tanaka, Atsushi Nakano, Taizo A. Nomura, Masaki Yamazaki, Hiromi Bewersdorf, Jan P. Mulet-Lazaro, Roger Hogg, Simon Liu, Bo Penson, Alex Yokoyama, Akihiko Zang, Weijia Havermans, Marije Koizumi, Miho Hayashi, Yasutaka Cho, Hana Kanai, Akinori Lee, Stanley C. Xiao, Muran Koike, Yui Zhang, Yifan Fukumoto, Miki Aoyama, Yumi Konuma, Tsuyoshi Kunimoto, Hiroyoshi Inaba, Toshiya Nakajima, Hideaki Honda, Hiroaki Kawamoto, Hiroshi Delwel, Ruud Abdel-Wahab, Omar Inoue, Daichi Blood Myeloid Neoplasia Detailed genomic and epigenomic analyses of MECOM (the MDS1 and EVI1 complex locus) have revealed that inversion or translocation of chromosome 3 drives inv(3)/t(3;3) myeloid leukemias via structural rearrangement of an enhancer that upregulates transcription of EVI1. Here, we identify a novel, previously unannotated oncogenic RNA-splicing derived isoform of EVI1 that is frequently present in inv(3)/t(3;3) acute myeloid leukemia (AML) and directly contributes to leukemic transformation. This EVI1 isoform is generated by oncogenic mutations in the core RNA splicing factor SF3B1, which is mutated in >30% of inv(3)/t(3;3) myeloid neoplasm patients and thereby represents the single most commonly cooccurring genomic alteration in inv(3)/t(3;3) patients. SF3B1 mutations are statistically uniquely enriched in inv(3)/t(3;3) myeloid neoplasm patients and patient-derived cell lines compared with other forms of AML and promote mis-splicing of EVI1 generating an in-frame insertion of 6 amino acids at the 3′ end of the second zinc finger domain of EVI1. Expression of this EVI1 splice variant enhanced the self-renewal of hematopoietic stem cells, and introduction of mutant SF3B1 in mice bearing the humanized inv(3)(q21q26) allele resulted in generation of this novel EVI1 isoform in mice and hastened leukemogenesis in vivo. The mutant SF3B1 spliceosome depends upon an exonic splicing enhancer within EVI1 exon 13 to promote usage of a cryptic branch point and aberrant 3′ splice site within intron 12 resulting in the generation of this isoform. These data provide a mechanistic basis for the frequent cooccurrence of SF3B1 mutations as well as new insights into the pathogenesis of myeloid leukemias harboring inv(3)/t(3;3). American Society of Hematology 2022-08-25 /pmc/articles/PMC9412007/ /pubmed/35709354 http://dx.doi.org/10.1182/blood.2021015325 Text en © 2022 by The American Society of Hematology. https://creativecommons.org/licenses/by-nc-nd/4.0/Licensed under Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0), permitting only noncommercial, nonderivative use with attribution. All other rights reserved.
spellingShingle Myeloid Neoplasia
Tanaka, Atsushi
Nakano, Taizo A.
Nomura, Masaki
Yamazaki, Hiromi
Bewersdorf, Jan P.
Mulet-Lazaro, Roger
Hogg, Simon
Liu, Bo
Penson, Alex
Yokoyama, Akihiko
Zang, Weijia
Havermans, Marije
Koizumi, Miho
Hayashi, Yasutaka
Cho, Hana
Kanai, Akinori
Lee, Stanley C.
Xiao, Muran
Koike, Yui
Zhang, Yifan
Fukumoto, Miki
Aoyama, Yumi
Konuma, Tsuyoshi
Kunimoto, Hiroyoshi
Inaba, Toshiya
Nakajima, Hideaki
Honda, Hiroaki
Kawamoto, Hiroshi
Delwel, Ruud
Abdel-Wahab, Omar
Inoue, Daichi
Aberrant EVI1 splicing contributes to EVI1-rearranged leukemia
title Aberrant EVI1 splicing contributes to EVI1-rearranged leukemia
title_full Aberrant EVI1 splicing contributes to EVI1-rearranged leukemia
title_fullStr Aberrant EVI1 splicing contributes to EVI1-rearranged leukemia
title_full_unstemmed Aberrant EVI1 splicing contributes to EVI1-rearranged leukemia
title_short Aberrant EVI1 splicing contributes to EVI1-rearranged leukemia
title_sort aberrant evi1 splicing contributes to evi1-rearranged leukemia
topic Myeloid Neoplasia
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9412007/
https://www.ncbi.nlm.nih.gov/pubmed/35709354
http://dx.doi.org/10.1182/blood.2021015325
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