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1.
Nat Commun ; 15(1): 2796, 2024 Mar 30.
Article in English | MEDLINE | ID: mdl-38555298

ABSTRACT

The Y-linked SRY gene initiates mammalian testis-determination. However, how the expression of SRY is regulated remains elusive. Here, we demonstrate that a conserved steroidogenic factor-1 (SF-1)/NR5A1 binding enhancer is required for appropriate SRY expression to initiate testis-determination in humans. Comparative sequence analysis of SRY 5' regions in mammals identified an evolutionary conserved SF-1/NR5A1-binding motif within a 250 bp region of open chromatin located 5 kilobases upstream of the SRY transcription start site. Genomic analysis of 46,XY individuals with disrupted testis-determination, including a large multigenerational family, identified unique single-base substitutions of highly conserved residues within the SF-1/NR5A1-binding element. In silico modelling and in vitro assays demonstrate the enhancer properties of the NR5A1 motif. Deletion of this hemizygous element by genome-editing, in a novel in vitro cellular model recapitulating human Sertoli cell formation, resulted in a significant reduction in expression of SRY. Therefore, human NR5A1 acts as a regulatory switch between testis and ovary development by upregulating SRY expression, a role that may predate the eutherian radiation. We show that disruption of an enhancer can phenocopy variants in the coding regions of SRY that cause human testis dysgenesis. Since disease causing variants in enhancers are currently rare, the regulation of gene expression in testis-determination offers a paradigm to define enhancer activity in a key developmental process.


Subject(s)
Gonadal Dysgenesis , Testis , Animals , Female , Humans , Male , Cell Line , Mammals/genetics , Regulatory Sequences, Nucleic Acid , Sertoli Cells/metabolism , Sex-Determining Region Y Protein/genetics , Steroidogenic Factor 1/genetics , Steroidogenic Factor 1/metabolism , Testis/metabolism
2.
Sci Adv ; 9(1): eabn9793, 2023 01 04.
Article in English | MEDLINE | ID: mdl-36598988

ABSTRACT

During embryonic development, mutually antagonistic signaling cascades determine gonadal fate toward a testicular or ovarian identity. Errors in this process result in disorders of sex development (DSDs), characterized by discordance between chromosomal, gonadal, and anatomical sex. The absence of an appropriate, accessible in vitro system is a major obstacle in understanding mechanisms of sex-determination/DSDs. Here, we describe protocols for differentiation of mouse and human pluripotent cells toward gonadal progenitors. Transcriptomic analysis reveals that the in vitro-derived murine gonadal cells are equivalent to embryonic day 11.5 in vivo progenitors. Using similar conditions, Sertoli-like cells derived from 46,XY human induced pluripotent stem cells (hiPSCs) exhibit sustained expression of testis-specific genes, secrete anti-Müllerian hormone, migrate, and form tubular structures. Cells derived from 46,XY DSD female hiPSCs, carrying an NR5A1 variant, show aberrant gene expression and absence of tubule formation. CRISPR-Cas9-mediated variant correction rescued the phenotype. This is a robust tool to understand mechanisms of sex determination and model DSDs.


Subject(s)
Gonadal Dysgenesis, 46,XY , Induced Pluripotent Stem Cells , Male , Animals , Mice , Humans , Female , Cellular Reprogramming/genetics , Gonads , Gonadal Dysgenesis, 46,XY/genetics
3.
Proc Natl Acad Sci U S A ; 117(24): 13680-13688, 2020 06 16.
Article in English | MEDLINE | ID: mdl-32493750

ABSTRACT

Sex determination in mammals is governed by antagonistic interactions of two genetic pathways, imbalance in which may lead to disorders/differences of sex development (DSD) in human. Among 46,XX individuals with testicular DSD (TDSD) or ovotesticular DSD (OTDSD), testicular tissue is present in the gonad. Although the testis-determining gene SRY is present in many cases, the etiology is unknown in most SRY-negative patients. We performed exome sequencing on 78 individuals with 46,XX TDSD/OTDSD of unknown genetic etiology and identified seven (8.97%) with heterozygous variants affecting the fourth zinc finger (ZF4) of Wilms' tumor 1 (WT1) (p.Ser478Thrfs*17, p.Pro481Leufs*15, p.Lys491Glu, p.Arg495Gln [x3], p.Arg495Gly). The variants were de novo in six families (P = 4.4 × 10-6), and the incidence of WT1 variants in 46,XX DSD is enriched compared to control populations (P < 1.8 × 10-4). The introduction of ZF4 mutants into a human granulosa cell line resulted in up-regulation of endogenous Sertoli cell transcripts and Wt1Arg495Gly/Arg495Gly XX mice display masculinization of the fetal gonads. The phenotype could be explained by the ability of the mutated proteins to physically interact with and sequester a key pro-ovary factor ß-CATENIN, which may lead to up-regulation of testis-specific pathway. Our data show that unlike previous association of WT1 and 46,XY DSD, ZF4 variants of WT1 are a relatively common cause of 46,XX TDSD/OTDSD. This expands the spectrum of phenotypes associated with WT1 variants and shows that the WT1 protein affecting ZF4 can function as a protestis factor in an XX chromosomal context.


Subject(s)
46, XX Testicular Disorders of Sex Development/metabolism , Testis/metabolism , WT1 Proteins/metabolism , 46, XX Testicular Disorders of Sex Development/genetics , 46, XX Testicular Disorders of Sex Development/pathology , Animals , Child, Preschool , Female , Humans , Infant , Male , Mice , Ovary/growth & development , Ovary/metabolism , Testis/growth & development , Testis/pathology , WT1 Proteins/chemistry , WT1 Proteins/genetics , Zinc Fingers , beta Catenin/genetics , beta Catenin/metabolism
4.
Int J Mol Sci ; 21(4)2020 Feb 21.
Article in English | MEDLINE | ID: mdl-32098259

ABSTRACT

Forkhead Box L2 (FOXL2) is a member of the FOXL class of transcription factors, which are essential for ovarian differentiation and function. In the endometrium, FOXL2 is also thought to be important in cattle; however, it is not clear how its expression is regulated. The maternal recognition of pregnancy signal in cattle, interferon-Tau, does not regulate FOXL2 expression. Therefore, in the present study, we examined whether the ovarian steroid hormones that orchestrate implantation regulate FOXL2 gene expression in ruminants. In sheep, we confirmed that FOXL2 mRNA and protein was expressed in the endometrium across the oestrous cycle (day 4 to day 15 post-oestrus). Similar to the bovine endometrium, ovine FOXL2 endometrial expression was low during the luteal phase of the oestrous cycle (4 to 12 days post-oestrus) and at implantation (15 days post-oestrus) while mRNA and protein expression significantly increased during the luteolytic phase (day 15 post-oestrus in cycle). In pregnant ewes, inhibition of progesterone production by trilostane during the day 5 to 16 period prevented the rise in progesterone concentrations and led to a significant increase of FOXL2 expression in caruncles compared with the control group (1.4-fold, p < 0.05). Ovariectomized ewes or cows that were supplemented with exogenous progesterone for 12 days or 6 days, respectively, had lower endometrial FOXL2 expression compared with control ovariectomized females (sheep, mRNA, 1.8-fold; protein, 2.4-fold; cattle; mRNA, 2.2-fold; p < 0.05). Exogenous oestradiol treatments for 12 days in sheep or 2 days in cattle did not affect FOXL2 endometrial expression compared with control ovariectomized females, except at the protein level in both endometrial areas in the sheep. Moreover, treating bovine endometrial explants with exogenous progesterone for 48h reduced FOXL2 expression. Using in vitro assays with COS7 cells we also demonstrated that progesterone regulates the FOXL2 promoter activity through the progesterone receptor. Collectively, our findings imply that endometrial FOXL2 is, as a direct target of progesterone, involved in early pregnancy and implantation.


Subject(s)
Endometrium/metabolism , Estrous Cycle/physiology , Forkhead Box Protein L2/biosynthesis , Gene Expression Regulation/physiology , Progesterone/metabolism , Animals , COS Cells , Cattle , Chlorocebus aethiops , Female , Pregnancy/metabolism , Sheep
5.
Genet Med ; 22(1): 150-159, 2020 01.
Article in English | MEDLINE | ID: mdl-31337883

ABSTRACT

PURPOSE: XY individuals with disorders/differences of sex development (DSD) are characterized by reduced androgenization caused, in some children, by gonadal dysgenesis or testis regression during fetal development. The genetic etiology for most patients with 46,XY gonadal dysgenesis and for all patients with testicular regression syndrome (TRS) is unknown. METHODS: We performed exome and/or Sanger sequencing in 145 individuals with 46,XY DSD of unknown etiology including gonadal dysgenesis and TRS. RESULTS: Thirteen children carried heterozygous missense pathogenic variants involving the RNA helicase DHX37, which is essential for ribosome biogenesis. Enrichment of rare/novel DHX37 missense variants in 46,XY DSD is highly significant compared with controls (P value = 5.8 × 10-10). Five variants are de novo (P value = 1.5 × 10-5). Twelve variants are clustered in two highly conserved functional domains and were specifically associated with gonadal dysgenesis and TRS. Consistent with a role in early testis development, DHX37 is expressed specifically in somatic cells of the developing human and mouse testis. CONCLUSION: DHX37 pathogenic variants are a new cause of an autosomal dominant form of 46,XY DSD, including gonadal dysgenesis and TRS, showing that these conditions are part of a clinical spectrum. This raises the possibility that some forms of DSD may be a ribosomopathy.


Subject(s)
Gonadal Dysgenesis, 46,XY/genetics , Mutation, Missense , RNA Helicases/genetics , Sequence Analysis, DNA/methods , Testis/growth & development , Adolescent , Animals , Child, Preschool , Female , Genetic Predisposition to Disease , Heterozygote , Humans , Infant, Newborn , Male , Mice , Mutagenesis, Site-Directed , Mutation Rate , Protein Domains , RNA Helicases/chemistry , Testis/metabolism , Young Adult
6.
Hum Mutat ; 40(8): 1071-1076, 2019 08.
Article in English | MEDLINE | ID: mdl-31058389

ABSTRACT

Human sex-determination is a poorly understood genetic process, where gonad development depends on a cell fate decision that occurs in a somatic cell to commit to Sertoli (male) or granulosa (female) cells. A lack of testis-determination in the human results in 46,XY gonadal dysgenesis. A minority of these cases is explained by mutations in genes known to be involved in sex-determination. Here, we identified a de novo missense mutation, p.Arg235Gln in the highly conserved TALE homeodomain of the transcription factor Pre-B-Cell Leukemia Transcription Factor 1 (PBX1) in a child with 46,XY gonadal dysgenesis and radiocubital synostosis. This mutation, within the nuclear localization signal of the protein, modifies the ability of the PBX1 protein to localize to the nucleus. The mutation abolishes the physical interaction of PBX1 with two proteins known to be involved in testis-determination, CBX2 and EMX2. These results provide a mechanism whereby this mutation results specifically in the absence of testis-determination.


Subject(s)
Gonadal Dysgenesis, 46,XY/genetics , Mutation, Missense , Pre-B-Cell Leukemia Transcription Factor 1/genetics , Synostosis/genetics , Female , HEK293 Cells , Homeodomain Proteins/metabolism , Humans , Models, Molecular , Nuclear Localization Signals , Polycomb Repressive Complex 1/metabolism , Pre-B-Cell Leukemia Transcription Factor 1/chemistry , Pre-B-Cell Leukemia Transcription Factor 1/metabolism , Sex Determination Processes , Transcription Factors/metabolism
7.
Proc Natl Acad Sci U S A ; 115(21): 5474-5479, 2018 05 22.
Article in English | MEDLINE | ID: mdl-29735715

ABSTRACT

Mammalian sex determination is controlled by the antagonistic interactions of two genetic pathways: The SRY-SOX9-FGF9 network promotes testis determination partly by opposing proovarian pathways, while RSPO1/WNT-ß-catenin/FOXL2 signals control ovary development by inhibiting SRY-SOX9-FGF9. The molecular basis of this mutual antagonism is unclear. Here we show that ZNRF3, a WNT signaling antagonist and direct target of RSPO1-mediated inhibition, is required for sex determination in mice. XY mice lacking ZNRF3 exhibit complete or partial gonadal sex reversal, or related defects. These abnormalities are associated with ectopic WNT/ß-catenin activity and reduced Sox9 expression during fetal sex determination. Using exome sequencing of individuals with 46,XY disorders of sex development, we identified three human ZNRF3 variants in very rare cases of XY female presentation. We tested two missense variants and show that these disrupt ZNRF3 activity in both human cell lines and zebrafish embryo assays. Our data identify a testis-determining function for ZNRF3 and indicate a mechanism of direct molecular interaction between two mutually antagonistic organogenetic pathways.


Subject(s)
Disorders of Sex Development/genetics , Sex Differentiation , Ubiquitin-Protein Ligases/genetics , Ubiquitin-Protein Ligases/physiology , Wnt Proteins/antagonists & inhibitors , beta Catenin/antagonists & inhibitors , Adolescent , Adult , Animals , Cells, Cultured , Disorders of Sex Development/pathology , Embryo, Nonmammalian/cytology , Embryo, Nonmammalian/metabolism , Female , Gene Expression Regulation, Developmental , Gonads/metabolism , Gonads/pathology , Humans , Male , Mice , Mutation, Missense , SOX9 Transcription Factor/genetics , SOX9 Transcription Factor/metabolism , Testis/metabolism , Testis/pathology , Thrombospondins/genetics , Thrombospondins/metabolism , Wnt Proteins/genetics , Wnt Proteins/metabolism , Young Adult , Zebrafish , beta Catenin/genetics , beta Catenin/metabolism
8.
Am J Hum Genet ; 102(3): 487-493, 2018 03 01.
Article in English | MEDLINE | ID: mdl-29478779

ABSTRACT

Emerging evidence from murine studies suggests that mammalian sex determination is the outcome of an imbalance between mutually antagonistic male and female regulatory networks that canalize development down one pathway while actively repressing the other. However, in contrast to testis formation, the gene regulatory pathways governing mammalian ovary development have remained elusive. We performed exome or Sanger sequencing on 79 46,XX SRY-negative individuals with either unexplained virilization or with testicular/ovotesticular disorders/differences of sex development (TDSD/OTDSD). We identified heterozygous frameshift mutations in NR2F2, encoding COUP-TF2, in three children. One carried a c.103_109delGGCGCCC (p.Gly35Argfs∗75) mutation, while two others carried a c.97_103delCCGCCCG (p.Pro33Alafs∗77) mutation. In two of three children the mutation was de novo. All three children presented with congenital heart disease (CHD), one child with congenital diaphragmatic hernia (CDH), and two children with blepharophimosis-ptosis-epicanthus inversus syndrome (BPES). The three children had androgen production, virilization of external genitalia, and biochemical or histological evidence of testicular tissue. We demonstrate a highly significant association between the NR2F2 loss-of-function mutations and this syndromic form of DSD (p = 2.44 × 10-8). We show that COUP-TF2 is highly abundant in a FOXL2-negative stromal cell population of the fetal human ovary. In contrast to the mouse, these data establish COUP-TF2 as a human "pro-ovary" and "anti-testis" sex-determining factor in female gonads. Furthermore, the data presented here provide additional evidence of the emerging importance of nuclear receptors in establishing human ovarian identity and indicate that nuclear receptors may have divergent functions in mouse and human biology.


Subject(s)
46, XX Disorders of Sex Development/genetics , COUP Transcription Factor II/genetics , Loss of Function Mutation/genetics , Testis/abnormalities , Testis/growth & development , Amino Acid Sequence , Base Sequence , COUP Transcription Factor II/chemistry , Child , Female , Forkhead Box Protein L2/metabolism , Frameshift Mutation/genetics , Heterozygote , Humans , Male , Ovary/growth & development , Ovary/metabolism , Phenotype
9.
Hum Mol Genet ; 27(7): 1228-1240, 2018 04 01.
Article in English | MEDLINE | ID: mdl-29373757

ABSTRACT

SOX8 is an HMG-box transcription factor closely related to SRY and SOX9. Deletion of the gene encoding Sox8 in mice causes reproductive dysfunction but the role of SOX8 in humans is unknown. Here, we show that SOX8 is expressed in the somatic cells of the early developing gonad in the human and influences human sex determination. We identified two individuals with 46, XY disorders/differences in sex development (DSD) and chromosomal rearrangements encompassing the SOX8 locus and a third individual with 46, XY DSD and a missense mutation in the HMG-box of SOX8. In vitro functional assays indicate that this mutation alters the biological activity of the protein. As an emerging body of evidence suggests that DSDs and infertility can have common etiologies, we also analysed SOX8 in a cohort of infertile men (n = 274) and two independent cohorts of women with primary ovarian insufficiency (POI; n = 153 and n = 104). SOX8 mutations were found at increased frequency in oligozoospermic men (3.5%; P < 0.05) and POI (5.06%; P = 4.5 × 10-5) as compared with fertile/normospermic control populations (0.74%). The mutant proteins identified altered SOX8 biological activity as compared with the wild-type protein. These data demonstrate that SOX8 plays an important role in human reproduction and SOX8 mutations contribute to a spectrum of phenotypes including 46, XY DSD, male infertility and 46, XX POI.


Subject(s)
46, XX Disorders of Sex Development/genetics , Disorder of Sex Development, 46,XY/genetics , Mutation, Missense , Oligospermia/genetics , Primary Ovarian Insufficiency/genetics , SOXE Transcription Factors/genetics , Adolescent , Child , Female , Humans , Male
10.
PLoS One ; 12(12): e0189942, 2017.
Article in English | MEDLINE | ID: mdl-29281695

ABSTRACT

Intensive selection for milk production has led to reduced reproductive efficiency in high-producing dairy cattle. The impact of intensive milk production on oocyte quality as well as early embryo development has been established but few analyses have addressed this question at the initiation of implantation, a critical milestone ensuring a successful pregnancy and normal post-natal development. Our study aimed to determine if contrasted maternal metabolism affects the previously described sensory properties of the endometrium to the conceptus in cattle. Following embryo transfer at Day 7 post-oestrus, endometrial caruncular (CAR) and intercaruncular (ICAR) areas were collected at Day 19 from primiparous postpartum Holstein-Friesian cows that were dried-off immediately after parturition (i.e., never milked; DRY) or milked twice daily (LACT). Gene quantification indicated no significant impact of lactation on endometrial expression of transcripts previously reported as conceptus-regulated (PLET1, PTGS2, SOCS6) and interferon-tau stimulated (RSAD2, SOCS1, SOCS3, STAT1) factors or known as female hormone-regulated genes (FOXL2, SCARA5, PTGS2). Compared with LACT cows, DRY cows exhibited mRNA levels with increased expression for FOXL2 transcription factor and decreased expression for oxidative stress-related genes (CAT, SOD1, SOD2). In vivo and in vitro experiments highlighted that neither interferon-tau nor FOXL2 were involved in transcriptional regulation of CAT, SOD1 and SOD2. In addition, our data showed that variations in maternal metabolism had a higher impact on gene expression in ICAR areas. Collectively, our findings prompt the need to fully understand the extent to which modifications in endometrial physiology drive the trajectory of conceptus development from implantation onwards when maternal metabolism is altered.


Subject(s)
Endometrium/metabolism , Forkhead Box Protein L2/genetics , Oxidative Stress , Animals , Catalase/genetics , Cattle , Female , Gene Expression , Interferon Type I/physiology , Pregnancy Proteins/physiology , Principal Component Analysis , RNA, Messenger/genetics , Real-Time Polymerase Chain Reaction , Superoxide Dismutase/genetics
11.
Theriogenology ; 90: 301-308, 2017 Mar 01.
Article in English | MEDLINE | ID: mdl-28166983

ABSTRACT

Maternal recognition of pregnancy (MRP) and implantation involve appropriate interactions between the elongating conceptus and the receptive endometrium that will condition development of the feto-placental unit to term. Molecular mechanisms that take place at the conceptus-endometrium interface during early pregnancy have been extensively investigated in domestic ungulates but they are still poorly understood in camelids including the dromedary camel (Camelus dromedarius), a domestic species with important economic and social roles in arid and semi-arid areas. In order to better understand how MRP and implantation take place in the left horn of this species, we investigated expression levels of genes encoding steroid hormones (PGR, ESR1), transcription factors (STAT1, FOXL2), interferon stimulated genes (MX1, MX2, OAS1, RSAD2) including SOCS genes (SOCS1, SOCS2, SOCS3 and CISH), previously identified as conceptus regulated genes in the endometrium of other domestic animals. Using endometrial tissue collected from left and right uterine horns of dromedary camel females that were non pregnant or early pregnant, gene expression of these genes was detected and our results provided first insights on their regulation, showing that (i) conceptus implantation is not associated with an IFN response in the pregnant uterine horn (ii) when regulation of classical interferon-stimulated genes (ISG) occurs, it takes place during the formation of the feto-placental unit, and (iii) gene expression can differ between the left and right uterine horns during implantation and early placentation phase. Additional experiments will be required in dromedary camels to understand the unusual regulation of ISG during implantation as well as to determine the molecular processes that drive the systematic implantation of the elongating conceptus in the left uterine horn.


Subject(s)
Camelus/physiology , Embryo Implantation/physiology , Embryo, Mammalian/physiology , Endometrium/metabolism , Interferons/metabolism , Animals , Camelus/genetics , Embryo Implantation/genetics , Endometrium/cytology , Female , Gene Expression Regulation, Developmental , Placentation/physiology , Pregnancy , Suppressor of Cytokine Signaling Proteins/genetics , Suppressor of Cytokine Signaling Proteins/metabolism
13.
Hum Mol Genet ; 25(16): 3446-3453, 2016 08 15.
Article in English | MEDLINE | ID: mdl-27378692

ABSTRACT

Cell lineages of the early human gonad commit to one of the two mutually antagonistic organogenetic fates, the testis or the ovary. Some individuals with a 46,XX karyotype develop testes or ovotestes (testicular or ovotesticular disorder of sex development; TDSD/OTDSD), due to the presence of the testis-determining gene, SRY Other rare complex syndromic forms of TDSD/OTDSD are associated with mutations in pro-ovarian genes that repress testis development (e.g. WNT4); however, the genetic cause of the more common non-syndromic forms is unknown. Steroidogenic factor-1 (known as NR5A1) is a key regulator of reproductive development and function. Loss-of-function changes in NR5A1 in 46,XY individuals are associated with a spectrum of phenotypes in humans ranging from a lack of testis formation to male infertility. Mutations in NR5A1 in 46,XX women are associated with primary ovarian insufficiency, which includes a lack of ovary formation, primary and secondary amenorrhoea as well as early menopause. Here, we show that a specific recurrent heterozygous missense mutation (p.Arg92Trp) in the accessory DNA-binding region of NR5A1 is associated with variable degree of testis development in 46,XX children and adults from four unrelated families. Remarkably, in one family a sibling raised as a girl and carrying this NR5A1 mutation was found to have a 46,XY karyotype with partial testicular dysgenesis. These unique findings highlight how a specific variant in a developmental transcription factor can switch organ fate from the ovary to testis in mammals and represents the first missense mutation causing isolated, non-syndromic 46,XX testicular/ovotesticular DSD in humans.


Subject(s)
DNA-Binding Proteins/genetics , Disorder of Sex Development, 46,XY/genetics , Primary Ovarian Insufficiency/genetics , Sexual Development/genetics , Steroidogenic Factor 1/genetics , Adult , Androgen-Insensitivity Syndrome/genetics , Androgen-Insensitivity Syndrome/pathology , Cell Lineage/genetics , Child , Disorder of Sex Development, 46,XY/pathology , Female , Gonads/growth & development , Gonads/pathology , Humans , Karyotype , Male , Mutation, Missense , Ovary/growth & development , Ovary/pathology , Pedigree , Primary Ovarian Insufficiency/pathology , Sex Determination Processes , Testis/growth & development , Testis/pathology
14.
J Reprod Immunol ; 108: 105-13, 2015 Apr.
Article in English | MEDLINE | ID: mdl-25617112

ABSTRACT

In terms of contribution to pregnancy, the mother not only produces gametes, but also hosts gestation, whose progression in the uterus is conditioned by early events during implantation. In ruminants, this period is associated with elongation of the extra-embryonic tissues, gastrulation of the embryonic disk and cross-talk with the endometrium. Recent data have prompted the need for accurate staging of the bovine conceptus and shown that asynchrony between elongation and gastrulation processes may account for pregnancy failure. Data mining of endometrial gene signatures has allowed the identification of molecular pathways and new factors regulated by the conceptus (e.g. FOXL2, SOCS6). Interferon-tau has been recognised to be the major signal of pregnancy recognition, but prostaglandins and lysophospholipids have also been demonstrated to be critical players at the conceptus-endometrium interface. Interestingly, up-regulation of interferon-regulated gene expression has been identified in circulating immune cells during implantation, making these factors a potential source of non-invasive biomarkers for early pregnancy. Distinct endometrial responses have been shown to be elicited by embryos produced by artificial insemination, in vitro fertilisation or somatic cell nuclear transfer. These findings have led to the concept that endometrium is an early biosensor of embryo quality. This biological property first demonstrated in cattle has been recently extended and associated with embryo selection in humans. Hence, compromised or suboptimal endometrial quality can subtly or deeply affect embryo development, with visible and sometimes severe consequences for placentation, foetal development, pregnancy outcome and the long-term health of the offspring.


Subject(s)
Abortion, Spontaneous/diagnosis , Biomarkers/metabolism , Endometrium/immunology , Interferon Type I/metabolism , Pregnancy Proteins/metabolism , Abortion, Spontaneous/immunology , Animals , Cattle , Embryo Implantation , Female , Humans , Maternal-Fetal Exchange , Mothers , Pregnancy , Pregnancy Outcome , Ruminants
15.
Biol Reprod ; 87(2): 32, 2012 Aug.
Article in English | MEDLINE | ID: mdl-22623620

ABSTRACT

FOXL2, a winged-helix/forkhead domain transcription factor, is a key gene involved in the differentiation and biological functions of the ovary. In a recent transcriptomic analysis, we found that FOXL2 expression in bovine caruncular endometrium was different from that in intercaruncular endometrium. In order to gain new insights into FOXL2 in this tissue, we determined the expression of this transcription factor during the estrous cycle and the establishment of pregnancy in cattle. The endometrial expression of FOXL2 did not vary during maternal recognition of pregnancy (Days 16-20). Using an in vivo bovine model and primary cell cultures, we showed that FOXL2 was not an interferon-tau target gene. Both FOXL2 transcript and protein were expressed from Day 5 to Day 20 of the estrous cycle, and their levels showed a significant increase during the luteolytic phase. A 2-day progesterone supplementation in heifers led to a clear down-regulation of FOXL2 protein levels, suggesting the negative impact of progesterone on FOXL2 expression. Immunohistochemistry data revealed the localization of FOXL2 in endometrial stromal and glandular cells. FOXL2 subcellular distribution was shown to be nuclear in endometrial samples collected during the luteolytic period, while it was not detected in nuclei during the luteal phase and at implantation. Collectively, our findings provide the first evidence that FOXL2 is involved in the regulation of endometrial tissue physiology.


Subject(s)
Cattle/physiology , Endometrium/metabolism , Estrous Cycle , Forkhead Transcription Factors/metabolism , Animals , Embryo Implantation , Female , Interferon Type I/physiology , Pregnancy , Pregnancy Proteins/physiology , Progesterone/pharmacology
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