Candidate genes for polycystic ovary syndrome are regulated by TGFβ in the bovine foetal ovary.

PCOS PCOS candidate genes RNA-seq TGFβ extracellular matrix gene expression ovary development regulation signalling molecules stroma

Journal

Human reproduction (Oxford, England)
ISSN: 1460-2350
Titre abrégé: Hum Reprod
Pays: England
ID NLM: 8701199

Informations de publication

Date de publication:
30 05 2022
Historique:
received: 14 10 2021
revised: 04 01 2022
pubmed: 13 4 2022
medline: 3 6 2022
entrez: 12 4 2022
Statut: ppublish

Résumé

Could changes in transforming growth factor β (TGFβ) signalling during foetal ovary development alter the expression of polycystic ovary syndrome (PCOS) candidate genes leading to a predisposition to PCOS? TGFβ signalling molecules are dynamically expressed during foetal ovary development and TGFβ1 inhibits expression of the androgen receptor (AR) and 7 (INSR, C8H9orf3, RAD50, ERBB3, NEIL2, IRF1 and ZBTB16) of the 25 PCOS candidate genes in foetal ovarian fibroblasts in vitro, whilst increasing expression of the AR cofactor TGFβ-induced transcript 1 (TGFB1I1 or Hic5). The ovarian stroma arises from the mesonephros during foetal ovary development. Changes in the morphology of the ovarian stroma are cardinal features of PCOS. The ovary is more fibrous and has more tunica and cortical and subcortical stroma. It is not known why this is and when this arises. PCOS has a foetal origin and perhaps ovarian stroma development is altered during foetal life to determine the formation of a polycystic ovary later in life. PCOS also has a genetic origin with 19 loci containing 25 PCOS candidate genes. In many adult tissues, TGFβ is known to stimulate fibroblast replication and collagen deposition in stroma, though it has the opposite effect in the non-scaring foetal tissues. Our previous studies showed that TGFβ signalling molecules [TGFβs and their receptors, latent TGFβ binding proteins (LTBPs) and fibrillins, which are extracellular matrix proteins that bind LTBPs] are expressed in foetal ovaries. Also, we previously showed that TGFβ1 inhibited expression of AR and 3 PCOS candidate genes (INSR, C8H9orf3 and RAD50) and stimulated expression of TGFB1I1 in cultured foetal ovarian fibroblasts. We used Bos taurus for this study as we can ethically collect foetal ovaries from across the full 9-month gestational period. Foetal ovaries (62-276 days, n = 19) from across gestation were collected from pregnant B. taurus cows for RNA-sequencing (RNA-seq) analyses. Foetal ovaries from B. taurus cows were collected (160-198 days, n = 6) for culture of ovarian fibroblasts. RNA-seq transcriptome profiling was performed on foetal ovaries and the data on genes involved in TGFβ signalling were extracted. Cells were dispersed from foetal ovaries and fibroblasts cultured and treated with TGFβ1. The effects of TGFβ regulation on the remaining eight PCOS candidate genes not previously studied (ERBB3, MAPRE1, FDFT1, NEIL2, ARL14EP, PLGRKT, IRF1 and ZBTB16) were examined. Many TGFβ signalling molecules are expressed in the foetal ovary, and for most, their expression levels increased accross gestation (LTBP1/2/3/4, FBN1, TGFB2/3, TGFBR2/3 and TGFB1I1), while a few decreased (FBN3, TGFBR3L, TGFBI and TGFB1) and others remained relatively constant (TGFBRAP1, TGFBR1 and FBN2). TGFβ1 significantly decreased expression of PCOS candidate genes ERBB3, NEIL2, IRF1 and ZBTB16 in cultured foetal ovarian fibroblasts. The FASTQ files, normalized data and experimental information have been deposited in the Gene Expression Omnibus (GEO) accessible by accession number GSE178450. Regulation of PCOS candidate genes by TGFβ was carried out in vitro and further studies in vivo are required. This study was carried out in bovine where foetal ovaries from across all of the 9-month gestational period were available, unlike in the human where it is not ethically possible to obtain ovaries from the second half of gestation. From our current and previous results we speculate that inhibition of TGFβ signalling in the foetal ovary is likely to (i) increase androgen sensitivity by enhancing expression of AR, (ii) increase stromal activity by stimulating expression of COL1A1 and COL3A1 and (iii) increase the expression of 7 of the 25 PCOS candidate genes. Thus inhibition of TGFβ signalling could be part of the aetiology of PCOS or at least the aetiology of polycystic ovaries. Funding was received from Adelaide University China Fee Scholarship (M.L.), Australian Research Training Program (R.A.) and the Faculty of Health and Medical Science Divisional Scholarship (R.A.), Adelaide Graduate Research Scholarships (R.A. and N.A.B.), Australia Awards Scholarship (M.D.H.), Robinson Research Institute Career Development Fellowship (K.H.) and Building On Ideas Grant (K.H.), National Health and Medical Research Council of Australia Centre for Research Excellence in the Evaluation, Management and Health Care Needs of Polycystic Ovary Syndrome (N.A.B., M.D.H. and R.J.R.; GTN1078444) and the Centre for Research Excellence on Women's Health in Reproductive life (R.A., R.J.R. and K.H.; GTN1171592) and the UK Medical Research Council (R.A.A.; grant no. G1100357). The funders did not play any role in the study design, data collection and analysis, decision to publish or preparation of the manuscript. The authors of this manuscript have nothing to declare and no conflict of interest that could be perceived as prejudicing the impartiality of the research reported.

Identifiants

pubmed: 35413103
pii: 6567568
doi: 10.1093/humrep/deac049
pmc: PMC9156849
doi:

Substances chimiques

Transforming Growth Factor beta 0

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

1244-1254

Subventions

Organisme : Medical Research Council
ID : G1100357
Pays : United Kingdom

Informations de copyright

© The Author(s) 2022. Published by Oxford University Press on behalf of European Society of Human Reproduction and Embryology.

Références

Mol Endocrinol. 1989 Oct;3(10):1515-22
pubmed: 2608047
Curr Opin Endocrinol Diabetes Obes. 2016 Jun;23(3):257-63
pubmed: 26866639
FASEB J. 2011 Jul;25(7):2256-65
pubmed: 21411746
Obstet Gynecol Surv. 1982 Feb;37(2):59-77
pubmed: 7033852
Reprod Sci. 2014 Jan;21(1):20-31
pubmed: 23585338
Nucleic Acids Res. 2009 Jan;37(Database issue):D885-90
pubmed: 18940857
Endocr Rev. 2020 Jul 1;41(4):
pubmed: 32310267
Endocr Connect. 2020 Apr;9(4):346-359
pubmed: 32229703
Aging (Albany NY). 2020 Dec 13;12(23):23598-23608
pubmed: 33310972
Nat Genet. 2011 Jan;43(1):55-9
pubmed: 21151128
Lancet. 2007 Aug 25;370(9588):685-97
pubmed: 17720020
J Endocrinol. 2020 Jun;245(3):381-395
pubmed: 32229702
Wound Repair Regen. 2007 Nov-Dec;15(6):897-906
pubmed: 18028139
Reprod Domest Anim. 2019 Jan;54(1):46-54
pubmed: 30120850
BMC Med. 2010 Jun 30;8:41
pubmed: 20591140
Endocrinology. 2021 Feb 1;162(2):
pubmed: 33294922
In Vitro Cell Dev Biol Anim. 2014 Sep;50(8):688-99
pubmed: 24879083
J Clin Endocrinol Metab. 2021 Aug 18;106(9):e3369-e3380
pubmed: 34061968
J Clin Endocrinol Metab. 1994 Nov;79(5):1328-33
pubmed: 7962325
Endocrinology. 1988 Oct;123(4):2124-31
pubmed: 2901342
Sci Rep. 2021 May 6;11(1):9644
pubmed: 33958649
Cell Signal. 2004 Aug;16(8):873-80
pubmed: 15157666
Reproduction. 2016 Aug;152(2):127-37
pubmed: 27222596
Nat Med. 2018 Jun;24(6):834-846
pubmed: 29760445
Int J Mol Sci. 2012;13(8):10461-77
pubmed: 22949874
Sci Adv. 2021 Dec 17;7(51):eabl4391
pubmed: 34910520
J Clin Endocrinol Metab. 2019 Nov 1;104(11):5372-5381
pubmed: 30938770
Reproduction. 2006 Aug;132(2):191-206
pubmed: 16885529
Endocrinology. 2020 Jul 1;161(7):
pubmed: 32301482
J Cell Sci. 2002 Jul 15;115(Pt 14):2817-28
pubmed: 12082143
Hum Reprod. 2012 Dec;27(12):3523-30
pubmed: 22951915
Nat Med. 2019 Dec;25(12):1894-1904
pubmed: 31792459
Bioessays. 2002 Oct;24(10):904-14
pubmed: 12325123
ISRN Dermatol. 2012;2012:698034
pubmed: 22675640
Nat Rev Dis Primers. 2016 Aug 11;2:16057
pubmed: 27510637
Nat Genet. 2012 Sep;44(9):1020-5
pubmed: 22885925
PLoS One. 2019 Mar 11;14(3):e0213575
pubmed: 30856218
J Biol Chem. 1999 Mar 19;274(12):8316-21
pubmed: 10075738
PLoS One. 2019 Mar 22;14(3):e0214130
pubmed: 30901367
Endocrinology. 2007 Aug;148(8):4032-43
pubmed: 17478551
Int J Biochem Cell Biol. 2007;39(12):2183-94
pubmed: 17659994
Mol Cell Endocrinol. 2008 Nov 6;294(1-2):70-80
pubmed: 18790002
Endocrinology. 1987 Feb;120(2):512-6
pubmed: 3026778
Anim Reprod Sci. 2010 Jul;120(1-4):84-94
pubmed: 20378284
Mech Dev. 2003 Aug;120(8):851-64
pubmed: 12963107
PLoS One. 2020 Feb 20;15(2):e0229351
pubmed: 32078641
Mol Reprod Dev. 2003 Nov;66(3):237-46
pubmed: 14502602
Reprod Fertil Dev. 2019 Mar;31(3):482-495
pubmed: 30501845
J Clin Endocrinol Metab. 2019 Jun 1;104(6):2171-2183
pubmed: 30649347
J Clin Endocrinol Metab. 2013 Dec;98(12):E2006-12
pubmed: 24106282
Bibl Anat. 1983;24:77-92
pubmed: 6847603
Eur Rev Med Pharmacol Sci. 2020 Jul;24(13):7294-7302
pubmed: 32706067
Cold Spring Harb Perspect Biol. 2018 Jun 1;10(6):
pubmed: 28600394
Int J Biochem Cell Biol. 2005 Jan;37(1):38-41
pubmed: 15381147
J Med Genet. 2012 Feb;49(2):90-5
pubmed: 22180642
J Biol Chem. 2002 Jan 11;277(2):1240-8
pubmed: 11707452
PLoS One. 2013;8(2):e55578
pubmed: 23409002
Biol Reprod. 2020 Oct 5;103(4):840-853
pubmed: 32678441
Proc Natl Acad Sci U S A. 1998 Dec 8;95(25):14956-60
pubmed: 9843997
Hum Reprod. 2010 Feb;25(2):544-51
pubmed: 19910321
Endocr Connect. 2019 Mar;8(3):R71-R75
pubmed: 30763275
Mol Cell Endocrinol. 2013 Jul 5;373(1-2):29-38
pubmed: 23079471
Hum Mutat. 2005 Mar;25(3):322
pubmed: 15712349
Hum Reprod. 2012 May;27(5):1475-80
pubmed: 22373955
Nat Clin Pract Endocrinol Metab. 2007 Feb;3(2):103-11
pubmed: 17237837
Endocrinology. 1989 Oct;125(4):1951-8
pubmed: 2791974
Cytokine Growth Factor Rev. 2009 Jun;20(3):233-9
pubmed: 19497778
BMC Dev Biol. 2015 Jan 21;15:4
pubmed: 25605128
Endocr Rev. 2015 Feb;36(1):65-91
pubmed: 25541635
Endocrinology. 2006 Feb;147(2):835-45
pubmed: 16269452
Endocrinology. 1992 Mar;130(3):1707-15
pubmed: 1537318
Biochem J. 2008 Dec 15;416(3):453-62
pubmed: 18651839

Auteurs

Rafiatu Azumah (R)

Robinson Research Institute, School of Biomedicine, The University of Adelaide, Adelaide, SA, Australia.

Menghe Liu (M)

Robinson Research Institute, School of Biomedicine, The University of Adelaide, Adelaide, SA, Australia.

Katja Hummitzsch (K)

Robinson Research Institute, School of Biomedicine, The University of Adelaide, Adelaide, SA, Australia.

Nicole A Bastian (NA)

Robinson Research Institute, School of Biomedicine, The University of Adelaide, Adelaide, SA, Australia.

Monica D Hartanti (MD)

Robinson Research Institute, School of Biomedicine, The University of Adelaide, Adelaide, SA, Australia.
Faculty of Medicine, Universitas Trisakti, Jakarta, Indonesia.

Helen F Irving-Rodgers (HF)

Robinson Research Institute, School of Biomedicine, The University of Adelaide, Adelaide, SA, Australia.
School of Medical Science, Griffith University, Gold Coast Campus, Southport, QLD, Australia.

Richard A Anderson (RA)

MRC Centre for Reproductive Health, Queen's Medical Research Institute, University of Edinburgh, Edinburgh, UK.

Raymond J Rodgers (RJ)

Robinson Research Institute, School of Biomedicine, The University of Adelaide, Adelaide, SA, Australia.

Articles similaires

[Redispensing of expensive oral anticancer medicines: a practical application].

Lisanne N van Merendonk, Kübra Akgöl, Bastiaan Nuijen
1.00
Humans Antineoplastic Agents Administration, Oral Drug Costs Counterfeit Drugs

Smoking Cessation and Incident Cardiovascular Disease.

Jun Hwan Cho, Seung Yong Shin, Hoseob Kim et al.
1.00
Humans Male Smoking Cessation Cardiovascular Diseases Female
Humans United States Aged Cross-Sectional Studies Medicare Part C
1.00
Humans Yoga Low Back Pain Female Male

Classifications MeSH