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Failure of SOX9 Regulation in 46XY Disorders of Sex Development with SRY, SOX9 and SF1 Mutations

BACKGROUND: In human embryogenesis, loss of SRY (sex determining region on Y), SOX9 (SRY-related HMG box 9) or SF1 (steroidogenic factor 1) function causes disorders of sex development (DSD). A defining event of vertebrate sex determination is male-specific upregulation and maintenance of SOX9 expre...

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Autores principales: Knower, Kevin C., Kelly, Sabine, Ludbrook, Louisa M., Bagheri-Fam, Stefan, Sim, Helena, Bernard, Pascal, Sekido, Ryohei, Lovell-Badge, Robin, Harley, Vincent R.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3055899/
https://www.ncbi.nlm.nih.gov/pubmed/21412441
http://dx.doi.org/10.1371/journal.pone.0017751
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author Knower, Kevin C.
Kelly, Sabine
Ludbrook, Louisa M.
Bagheri-Fam, Stefan
Sim, Helena
Bernard, Pascal
Sekido, Ryohei
Lovell-Badge, Robin
Harley, Vincent R.
author_facet Knower, Kevin C.
Kelly, Sabine
Ludbrook, Louisa M.
Bagheri-Fam, Stefan
Sim, Helena
Bernard, Pascal
Sekido, Ryohei
Lovell-Badge, Robin
Harley, Vincent R.
author_sort Knower, Kevin C.
collection PubMed
description BACKGROUND: In human embryogenesis, loss of SRY (sex determining region on Y), SOX9 (SRY-related HMG box 9) or SF1 (steroidogenic factor 1) function causes disorders of sex development (DSD). A defining event of vertebrate sex determination is male-specific upregulation and maintenance of SOX9 expression in gonadal pre-Sertoli cells, which is preceded by transient SRY expression in mammals. In mice, Sox9 regulation is under the transcriptional control of SRY, SF1 and SOX9 via a conserved testis-specific enhancer of Sox9 (TES). Regulation of SOX9 in human sex determination is however poorly understood. METHODOLOGY/PRINCIPAL FINDINGS: We show that a human embryonal carcinoma cell line (NT2/D1) can model events in presumptive Sertoli cells that initiate human sex determination. SRY associates with transcriptionally active chromatin in NT2/D1 cells and over-expression increases endogenous SOX9 expression. SRY and SF1 co-operate to activate the human SOX9 homologous TES (hTES), a process dependent on phosphorylated SF1. SOX9 also activates hTES, augmented by SF1, suggesting a mechanism for maintenance of SOX9 expression by auto-regulation. Analysis of mutant SRY, SF1 and SOX9 proteins encoded by thirteen separate 46,XY DSD gonadal dysgenesis individuals reveals a reduced ability to activate hTES. CONCLUSIONS/SIGNIFICANCE: We demonstrate how three human sex-determining factors are likely to function during gonadal development around SOX9 as a hub gene, with different genetic causes of 46,XY DSD due a common failure to upregulate SOX9 transcription.
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spelling pubmed-30558992011-03-16 Failure of SOX9 Regulation in 46XY Disorders of Sex Development with SRY, SOX9 and SF1 Mutations Knower, Kevin C. Kelly, Sabine Ludbrook, Louisa M. Bagheri-Fam, Stefan Sim, Helena Bernard, Pascal Sekido, Ryohei Lovell-Badge, Robin Harley, Vincent R. PLoS One Research Article BACKGROUND: In human embryogenesis, loss of SRY (sex determining region on Y), SOX9 (SRY-related HMG box 9) or SF1 (steroidogenic factor 1) function causes disorders of sex development (DSD). A defining event of vertebrate sex determination is male-specific upregulation and maintenance of SOX9 expression in gonadal pre-Sertoli cells, which is preceded by transient SRY expression in mammals. In mice, Sox9 regulation is under the transcriptional control of SRY, SF1 and SOX9 via a conserved testis-specific enhancer of Sox9 (TES). Regulation of SOX9 in human sex determination is however poorly understood. METHODOLOGY/PRINCIPAL FINDINGS: We show that a human embryonal carcinoma cell line (NT2/D1) can model events in presumptive Sertoli cells that initiate human sex determination. SRY associates with transcriptionally active chromatin in NT2/D1 cells and over-expression increases endogenous SOX9 expression. SRY and SF1 co-operate to activate the human SOX9 homologous TES (hTES), a process dependent on phosphorylated SF1. SOX9 also activates hTES, augmented by SF1, suggesting a mechanism for maintenance of SOX9 expression by auto-regulation. Analysis of mutant SRY, SF1 and SOX9 proteins encoded by thirteen separate 46,XY DSD gonadal dysgenesis individuals reveals a reduced ability to activate hTES. CONCLUSIONS/SIGNIFICANCE: We demonstrate how three human sex-determining factors are likely to function during gonadal development around SOX9 as a hub gene, with different genetic causes of 46,XY DSD due a common failure to upregulate SOX9 transcription. Public Library of Science 2011-03-11 /pmc/articles/PMC3055899/ /pubmed/21412441 http://dx.doi.org/10.1371/journal.pone.0017751 Text en Knower et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Knower, Kevin C.
Kelly, Sabine
Ludbrook, Louisa M.
Bagheri-Fam, Stefan
Sim, Helena
Bernard, Pascal
Sekido, Ryohei
Lovell-Badge, Robin
Harley, Vincent R.
Failure of SOX9 Regulation in 46XY Disorders of Sex Development with SRY, SOX9 and SF1 Mutations
title Failure of SOX9 Regulation in 46XY Disorders of Sex Development with SRY, SOX9 and SF1 Mutations
title_full Failure of SOX9 Regulation in 46XY Disorders of Sex Development with SRY, SOX9 and SF1 Mutations
title_fullStr Failure of SOX9 Regulation in 46XY Disorders of Sex Development with SRY, SOX9 and SF1 Mutations
title_full_unstemmed Failure of SOX9 Regulation in 46XY Disorders of Sex Development with SRY, SOX9 and SF1 Mutations
title_short Failure of SOX9 Regulation in 46XY Disorders of Sex Development with SRY, SOX9 and SF1 Mutations
title_sort failure of sox9 regulation in 46xy disorders of sex development with sry, sox9 and sf1 mutations
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3055899/
https://www.ncbi.nlm.nih.gov/pubmed/21412441
http://dx.doi.org/10.1371/journal.pone.0017751
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