Cite

Russell DL, Robker RL. Molecular mechanisms of ovulation: co-ordination through the cumulus complex. Hum Reprod Update. n.d.13(3):289– 312; DOI:10.1093/humupd/dml062.RussellDLRobkerRLMolecular mechanisms of ovulation: co-ordination through the cumulus complexHum Reprod Updaten.d13328931210.1093/humupd/dml06217242016Open DOISearch in Google Scholar

Al-Edani T, Assou S, Ferrières A, Bringer Deutsch S, Gala A, Lecellier C-H, Aït-Ahmed O, Hamamah S. Female Aging Alters Expression of Human Cumulus Cells Genes that Are Essential for Oocyte Quality. Biomed Res Int. 2014;2014; DOI:10.1155/2014/964614.Al-EdaniTAssouSFerrièresABringer DeutschSGalaALecellierC-HAït-AhmedOHamamahSFemale Aging Alters Expression of Human Cumulus Cells Genes that Are Essential for Oocyte QualityBiomed Res Int2014201410.1155/2014/964614416802825276836Open DOISearch in Google Scholar

Eppig JJ. Oocyte control of ovarian follicular development and function in mammals. Reproduction. 2001;122(6):829–38.EppigJJOocyte control of ovarian follicular development and function in mammalsReproduction200112268293810.1530/rep.0.122082911732978Search in Google Scholar

Yeo CX, Gilchrist RB, Lane M. Disruption of Bidirectional Oocyte-Cumulus Paracrine Signaling During In Vitro Maturation Reduces Subsequent Mouse Oocyte Developmental Competence1. Biol Reprod. 2009;80(5):1072–80; DOI:10.1095/biolreprod.108.073908.YeoCXGilchristRBLaneMDisruption of Bidirectional Oocyte-Cumulus Paracrine Signaling During In Vitro Maturation Reduces Subsequent Mouse Oocyte Developmental Competence1Biol Reprod200980510728010.1095/biolreprod.108.073908284983319144958Open DOISearch in Google Scholar

Parrish EM, Siletz A, Xu M, Woodruff TK, Shea LD. Gene expression in mouse ovarian follicle development in vivo versus an ex vivo alginate culture system. Reproduction. 2011;142(2):309–18; DOI:10.1530/REP-10-0481.ParrishEMSiletzAXuMWoodruffTKSheaLDGene expression in mouse ovarian follicle development in vivo versus an ex vivo alginate culture systemReproduction201114223091810.1530/REP-10-0481314524621610168Open DOISearch in Google Scholar

Dzafic E, Stimpfel M, Novakovic S, Cerkovnik P, Virant-Klun I. Expression of mesenchymal stem cells-related genes and plasticity of aspirated follicular cells obtained from infertile women. Biomed Res Int. 2014;2014:508216; DOI:10.1155/2014/508216.DzaficEStimpfelMNovakovicSCerkovnikPVirant-KlunIExpression of mesenchymal stem cells-related genes and plasticity of aspirated follicular cells obtained from infertile womenBiomed Res Int2014201450821610.1155/2014/508216395878424724084Open DOISearch in Google Scholar

Elvin JA, Clark AT, Wang P, Wolfman NM, Matzuk MM. Paracrine actions of growth differentiation factor-9 in the mammalian ovary. Mol Endocrinol. 1999;13(6):1035–48; DOI:10.1210/mend.13.6.0310.ElvinJAClarkATWangPWolfmanNMMatzukMMParacrine actions of growth differentiation factor-9 in the mammalian ovaryMol Endocrinol199913610354810.1210/mend.13.6.031010379900Open DOISearch in Google Scholar

Tanghe S, Van Soom A, Nauwynck H, Coryn M, de Kruif A. Minireview: Functions of the cumulus oophorus during oocyte maturation, ovulation, and fertilization. Mol Reprod Dev. 2002;61(3):414–24; DOI:10.1002/mrd.10102.TangheSVan SoomANauwynckHCorynMde KruifAMinireview: Functions of the cumulus oophorus during oocyte maturation, ovulation, and fertilizationMol Reprod Dev20026134142410.1002/mrd.1010211835587Open DOISearch in Google Scholar

Chung M-K, Chiu PCN, Lee C-L, Pang RTK, Ng EHY, Lee K-F, Koistinen R, Koistinen H, Seppala M, Yeung WSB. Cumulus-associated alpha2-macroglobulin derivative retains proconceptive glycodelin-C in the human cumulus matrix. Hum Reprod. 2009;24(11):2856–67; DOI:10.1093/humrep/dep265.ChungM-KChiuPCNLeeC-LPangRTKNgEHYLeeK-FKoistinenRKoistinenHSeppalaMYeungWSBCumulus-associated alpha2-macroglobulin derivative retains proconceptive glycodelin-C in the human cumulus matrixHum Reprod2009241128566710.1093/humrep/dep26519625311Open DOISearch in Google Scholar

Pincus G, Enzmann E V. The comparative behavior of mammalian eggs in vivo and in vitro. J Exp Med. 1935;62(5):665–76; DOI:10.1084/jem.62.5.665.PincusGEnzmannE VThe comparative behavior of mammalian eggs in vivo and in vitroJ Exp Med19356256657610.1084/jem.62.5.665213329919870440Open DOISearch in Google Scholar

Kölle S, Dubielzig S, Reese S, Wehrend A, König P, Kummer W. Ciliary Transport, Gamete Interaction, and Effects of the Early Embryo in the Oviduct: Ex Vivo Analyses Using a New Digital Videomicroscopic System in the Cow1. Biol Reprod. 2009;81(2):267–74; DOI:10.1095/biolreprod.108.073874.KölleSDubielzigSReeseSWehrendAKönigPKummerWCiliary Transport, Gamete Interaction, and Effects of the Early Embryo in the Oviduct: Ex Vivo Analyses Using a New Digital Videomicroscopic System in the Cow1Biol Reprod20098122677410.1095/biolreprod.108.073874Open DOISearch in Google Scholar

Host E, Gabrielsen A, Lindenberg S, Smidt-Jensen S. Apoptosis in human cumulus cells in relation to zona pellucida thickness variation, maturation stage, and cleavage of the corresponding oocyte after intracytoplasmic sperm injection. Fertil Steril. 2002;77(3):511–5; DOI:10.1016/S0015-0282(01)03006-0.HostEGabrielsenALindenbergSSmidt-JensenSApoptosis in human cumulus cells in relation to zona pellucida thickness variation, maturation stage, and cleavage of the corresponding oocyte after intracytoplasmic sperm injectionFertil Steril2002773511510.1016/S0015-0282(01)03006-0Open DOISearch in Google Scholar

Ullah I, Subbarao RB, Rho GJ. Human mesenchymal stem cells - current trends and future prospective. Biosci Rep. 2015;35(2); DOI:10.1042/BSR20150025.UllahISubbaraoRBRhoGJHuman mesenchymal stem cells - current trends and future prospectiveBiosci Rep201535210.1042/BSR20150025Open DOISearch in Google Scholar

Russell DL, Gilchrist RB, Brown HM, Thompson JG. Bidirectional communication between cumulus cells and the oocyte: Old hands and new players? Theriogenology. 2016;86(1):62–8; DOI:10.1016/j. theriogenology.2016.04.019.RussellDLGilchristRBBrownHMThompsonJGBidirectional communication between cumulus cells and the oocyte: Old hands and new players?Theriogenology201686162810.1016/j.theriogenology.2016.04.01927160446Open DOISearch in Google Scholar

Matos L, Stevenson D, Gomes F, Silva-Carvalho JL, Almeida H. Superoxide dismutase expression in human cumulus oophorus cells. Mol Hum Reprod. 2009;15(7):411–9; DOI:10.1093/molehr/gap034.MatosLStevensonDGomesFSilva-CarvalhoJLAlmeidaHSuperoxide dismutase expression in human cumulus oophorus cellsMol Hum Reprod2009157411910.1093/molehr/gap034Open DOISearch in Google Scholar

Klein NA, Battaglia DE, Fujimoto VY, Davis GS, Bremner WJ, Soules MR. Reproductive aging: accelerated ovarian follicular development associated with a monotropic follicle-stimulating hormone rise in normal older women. J Clin Endocrinol Metab. 1996;81(3):1038–45; DOI:10.1210/jcem.81.3.8772573.KleinNABattagliaDEFujimotoVYDavisGSBremnerWJSoulesMRReproductive aging: accelerated ovarian follicular development associated with a monotropic follicle-stimulating hormone rise in normal older womenJ Clin Endocrinol Metab199681310384510.1210/jcem.81.3.8772573Open DOISearch in Google Scholar

Seino T, Saito H, Kaneko T, Takahashi T, Kawachiya S, Kurachi H. Eighthydroxy-2’-deoxyguanosine in granulosa cells is correlated with the quality of oocytes and embryos in an in vitro fertilization-embryo transfer program. Fertil Steril. 2002;77(6):1184–90; DOI:10.1016/s0015-0282(02)03103-5.SeinoTSaitoHKanekoTTakahashiTKawachiyaSKurachiHEighthydroxy-2’-deoxyguanosine in granulosa cells is correlated with the quality of oocytes and embryos in an in vitro fertilization-embryo transfer programFertil Steril200277611849010.1016/s0015-0282(02)03103-5Open DOISearch in Google Scholar

Freimann S, Ben-Ami I, Dantes A, Ron-El R, Amsterdam A. EGF-like factor epiregulin and amphiregulin expression is regulated by gonadotropins/cAMP in human ovarian follicular cells. Biochem Biophys Res Commun. 2004;324(2):829–34; DOI:10.1016/j.bbrc.2004.09.129.FreimannSBen-AmiIDantesARon-ElRAmsterdamAEGF-like factor epiregulin and amphiregulin expression is regulated by gonadotropins/cAMP in human ovarian follicular cellsBiochem Biophys Res Commun200432428293410.1016/j.bbrc.2004.09.12915474502Open DOISearch in Google Scholar

Mohammed EE, Yilmaz S, Akcin OA, Nalbantoglu B, Ficicioglu C, Sahin F, et al. Cumulus cells are potential candidates for cell therapy. In Vivo (Brooklyn). 2019;33(6):1921–7; DOI:10.21873/invivo.11686.MohammedEEYilmazSAkcinOANalbantogluBFiciciogluCSahinFet alCumulus cells are potential candidates for cell therapyIn Vivo (Brooklyn)20193361921710.21873/invivo.11686689910731662520Open DOISearch in Google Scholar

Russell DL, Gilchrist RB, Brown HM, Thompson JG. Bidirectional communication between cumulus cells and the oocyte: Old hands and new players? Theriogenology. 2016;86(1):62–8; DOI:10.1016/j. theriogenology.2016.04.019.RussellDLGilchristRBBrownHMThompsonJGBidirectional communication between cumulus cells and the oocyte: Old hands and new players?Theriogenology201686162810.1016/j.theriogenology.2016.04.019Open DOISearch in Google Scholar

Ben-Meir A, Kim K, McQuaid R, Esfandiari N, Bentov Y, Casper R, Jurisicova A. Co-Enzyme Q10 Supplementation Rescues Cumulus Cells Dysfunction in a Maternal Aging Model. Antioxidants. 2019;8(3):58; DOI:10.3390/antiox8030058.Ben-MeirAKimKMcQuaidREsfandiariNBentovYCasperRJurisicovaACo-Enzyme Q10 Supplementation Rescues Cumulus Cells Dysfunction in a Maternal Aging ModelAntioxidants2019835810.3390/antiox8030058Open DOISearch in Google Scholar

Ciesiółka S, Budna J, Jopek K, Bryja A, Kranc W, Chachuła A, Borys S, Dyszkiewicz Konwińska M, Ziółkowska A, Antosik P, Bukowska D, Brüssow KP, Bruska M, Nowicki M, Zabel M, Kempisty B. Influence of Estradiol-17beta on Progesterone and Estrogen Receptor mRNA Expression in Porcine Follicular Granulosa Cells during Short-Term, In Vitro Real-Time Cell Proliferation. Biomed Res Int. 2016;2016:1–8; DOI:10.1155/2016/8431018.CiesiółkaSBudnaJJopekKBryjaAKrancWChachułaABorysSDyszkiewicz KonwińskaMZiółkowskaAAntosikPBukowskaDBrüssowKPBruskaMNowickiMZabelMKempistyBInfluence of Estradiol-17beta on Progesterone and Estrogen Receptor mRNA Expression in Porcine Follicular Granulosa Cells during Short-Term, In Vitro Real-Time Cell ProliferationBiomed Res Int201620161810.1155/2016/8431018Open DOISearch in Google Scholar

Chomczynski P, Sacchi N. Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction. Anal Biochem. 1987;162(1):156–9; DOI:10.1016/0003-2697(87)90021-2.ChomczynskiPSacchiNSingle-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extractionAnal Biochem19871621156910.1016/0003-2697(87)90021-2Open DOISearch in Google Scholar

Walter W, Sánchez-Cabo F, Ricote M. GOplot: an R package for visually combining expression data with functional analysis: Fig. 1. Bioinformatics. 2015;31(17):2912–4; DOI:10.1093/bioinformatics/btv300.WalterWSánchez-CaboFRicoteMGOplot: an R package for visually combining expression data with functional analysis: Fig. 1Bioinformatics201531172912410.1093/bioinformatics/btv30025964631Open DOISearch in Google Scholar

Sun M-H, Zheng J, Xie F-Y, Shen W, Yin S, Ma J-Y. Cumulus Cells Block Oocyte Meiotic Resumption via Gap Junctions in Cumulus Oocyte Complexes Subjected to DNA Double-Strand Breaks. PLoS One. 2015;10(11):e0143223; DOI:10.1371/journal.pone.0143223.SunM-HZhengJXieF-YShenWYinSMaJ-YCumulus Cells Block Oocyte Meiotic Resumption via Gap Junctions in Cumulus Oocyte Complexes Subjected to DNA Double-Strand BreaksPLoS One20151011e014322310.1371/journal.pone.0143223464848626575642Open DOISearch in Google Scholar

Kempisty B, Ziółkowska A, Piotrowska H, Zawierucha P, Antosik P, Bukowska D, Ciesiółka S, Jaśkowski JM, Brüssow KP, Nowicki M, Zabel M. Real-time proliferation of porcine cumulus cells is related to the protein levels and cellular distribution of Cdk4 and Cx43. Theriogenology. 2013;80(4):411–20; DOI:10.1016/j.theriogenology.2013.05.016.KempistyBZiółkowskaAPiotrowskaHZawieruchaPAntosikPBukowskaDCiesiółkaSJaśkowskiJMBrüssowKPNowickiMZabelMReal-time proliferation of porcine cumulus cells is related to the protein levels and cellular distribution of Cdk4 and Cx43Theriogenology20138044112010.1016/j.theriogenology.2013.05.01623827822Open DOISearch in Google Scholar

De los Santos MJ, Gámiz P, de los Santos JM, Romero JL, Prados N, Alonso C, Remohí J, Dominguez F. The Metabolomic Profile of Spent Culture Media from Day-3 Human Embryos Cultured under Low Oxygen Tension. PLoS One. 2015;10(11):e0142724; DOI:10.1371/journal. pone.0142724.De los SantosMJGámizPde los SantosJMRomeroJLPradosNAlonsoCRemohíJDominguezFThe Metabolomic Profile of Spent Culture Media from Day-3 Human Embryos Cultured under Low Oxygen TensionPLoS One20151011e014272410.1371/journal.pone.0142724464301126562014Open DOISearch in Google Scholar

Uhde K, Van Tol HTA, Stout TAE, Roelen BAJ. Metabolomic profiles of bovine cumulus cells and cumulus-oocyte-complex-conditioned medium during maturation in vitro. Sci Rep. 2018;8(1):1–14; DOI:10.1038/s41598-018-27829-9.UhdeKVan TolHTAStoutTAERoelenBAJMetabolomic profiles of bovine cumulus cells and cumulus-oocyte-complex-conditioned medium during maturation in vitroSci Rep20188111410.1038/s41598-018-27829-9601344629930262Open DOISearch in Google Scholar

Zhu J, Zhang J, Li H, Wang TY, Zhang CX, Luo MJ, Tan JH. Cumulus cells accelerate oocyte aging by releasing soluble Fas Ligand in mice. Sci Rep. 2015;5(1):1–8; DOI:10.1038/srep08683.ZhuJZhangJLiHWangTYZhangCXLuoMJTanJHCumulus cells accelerate oocyte aging by releasing soluble Fas Ligand in miceSci Rep2015511810.1038/srep08683434679225731893Open DOISearch in Google Scholar

Franco HL, Dai D, Lee KY, Rubel CA, Roop D, Boerboom D, Jeong J-W, Lydon JP, Bagchi IC, Bagchi MK, DeMayo FJ. WNT4 is a key regulator of normal postnatal uterine development and progesterone signaling during embryo implantation and decidualization in the mouse. FASEB J. 2011;25(4):1176–87; DOI:10.1096/fj.10-175349.FrancoHLDaiDLeeKYRubelCARoopDBoerboomDJeongJ-WLydonJPBagchiICBagchiMKDeMayoFJWNT4 is a key regulator of normal postnatal uterine development and progesterone signaling during embryo implantation and decidualization in the mouseFASEB J201125411768710.1096/fj.10-175349305869721163860Open DOISearch in Google Scholar

Satterfield MC, Song G, Hayashi K, Bazer FW, Spencer TE. Progesterone regulation of the endometrial WNT system in the ovine uterus. Reprod Fertil Dev. 2008;20(8):935–46; DOI:10.1071/rd08069.SatterfieldMCSongGHayashiKBazerFWSpencerTEProgesterone regulation of the endometrial WNT system in the ovine uterusReprod Fertil Dev20082089354610.1071/rd0806919007558Open DOISearch in Google Scholar

Sato N, Meijer L, Skaltsounis L, Greengard P, Brivanlou AH. Maintenance of pluripotency in human and mouse embryonic stem cells through activation of Wnt signaling by a pharmacological GSK-3-specific inhibitor. Nat Med. 2004;10(1):55–63; DOI:10.1038/nm979.SatoNMeijerLSkaltsounisLGreengardPBrivanlouAHMaintenance of pluripotency in human and mouse embryonic stem cells through activation of Wnt signaling by a pharmacological GSK-3-specific inhibitorNat Med2004101556310.1038/nm97914702635Open DOISearch in Google Scholar

Hernandez Gifford JA. The role of WNT signaling in adult ovarian folliculogenesis. Reproduction. 2015;150(4):R137-48; DOI:10.1530/REP-14-0685.Hernandez GiffordJAThe role of WNT signaling in adult ovarian folliculogenesisReproduction20151504R1374810.1530/REP-14-0685456066826130815Open DOISearch in Google Scholar

Tulac S, Nayak NR, Kao LC, Van Waes M, Huang J, Lobo S, Germeyer A, Lessey BA, Taylor R.N, Suchanek E, Giudice LC. Identification, characterization, and regulation of the canonical Wnt signaling pathway in human endometrium. J Clin Endocrinol Metab. 2003;88(8):3860–6; DOI:10.1210/jc.2003-030494.TulacSNayakNRKaoLCVan WaesMHuangJLoboSGermeyerALesseyBATaylorR.NSuchanekEGiudiceLCIdentification, characterization, and regulation of the canonical Wnt signaling pathway in human endometriumJ Clin Endocrinol Metab20038883860610.1210/jc.2003-03049412915680Open DOISearch in Google Scholar

Minten MA, Bilby TR, Bruno RGS, Allen CC, Madsen CA, Wang Z, Sawyer, Jason E, Tibary A, Neibergs HL, Geary TW, Bauersachs S, Spencer TE. Effects of Fertility on Gene Expression and Function of the Bovine Endometrium. PLoS One. 2013;8(8):e69444; DOI:10.1371/journal. pone.0069444.MintenMABilbyTRBrunoRGSAllenCCMadsenCAWangZSawyer, JasonETibaryANeibergsHLGearyTWBauersachsSSpencerTEEffects of Fertility on Gene Expression and Function of the Bovine EndometriumPLoS One201388e6944410.1371/journal.pone.0069444373418123940519Open DOISearch in Google Scholar

Gad A, Hoelker M, Besenfelder U, Havlicek V, Cinar U, Rings F, Held E, Dufort I, Sirard M-A, Schellander K, Tesfaye D. Molecular Mechanisms and Pathways Involved in Bovine Embryonic Genome Activation and Their Regulation by Alternative In Vivo and In Vitro Culture Conditions1. Biol Reprod. 2012;87(4); DOI:10.1095/biolreprod.112.099697.GadAHoelkerMBesenfelderUHavlicekVCinarURingsFHeldEDufortISirardM-ASchellanderKTesfayeDMolecular Mechanisms and Pathways Involved in Bovine Embryonic Genome Activation and Their Regulation by Alternative In Vivo and In Vitro Culture Conditions1Biol Reprod201287410.1095/biolreprod.112.09969722811576Open DOISearch in Google Scholar

Denicol AC, Block J, Kelley DE, Pohler KG, Dobbs KB, Mortensen CJ, Ortega MS, Hansen PJ. The WNT signaling antagonist Dickkopf-1 directs lineage commitment and promotes survival of the preimplantation embryo. FASEB J. 2014;28(9):3975–86; DOI:10.1096/fj.14-253112.DenicolACBlockJKelleyDEPohlerKGDobbsKBMortensenCJOrtegaMSHansenPJThe WNT signaling antagonist Dickkopf-1 directs lineage commitment and promotes survival of the preimplantation embryoFASEB J201428939758610.1096/fj.14-253112539572724858280Open DOISearch in Google Scholar

Macdonald LJ, Sales KJ, Grant V, Brown P, Jabbour HN, Catalano RD. Prokineticin 1 induces Dickkopf 1 expression and regulates cell proliferation and decidualization in the human endometrium. Mol Hum Reprod. 2011;17(10):626–36; DOI:10.1093/molehr/gar031.MacdonaldLJSalesKJGrantVBrownPJabbourHNCatalanoRDProkineticin 1 induces Dickkopf 1 expression and regulates cell proliferation and decidualization in the human endometriumMol Hum Reprod201117106263610.1093/molehr/gar031317203621546446Open DOISearch in Google Scholar

Kelly KF, Ng DY, Jayakumaran G, Wood GA, Koide H, Doble BW. β-catenin enhances Oct-4 activity and reinforces pluripotency through a TCF-independent mechanism. Cell Stem Cell. 2011;8(2):214–27; DOI:10.1016/j. stem.2010.12.010.KellyKFNgDYJayakumaranGWoodGAKoideHDobleBWβ-catenin enhances Oct-4 activity and reinforces pluripotency through a TCF-independent mechanismCell Stem Cell2011822142710.1016/j.stem.2010.12.010346536821295277Open DOISearch in Google Scholar

Kao LC, Tulac S, Lobo S, Imani B, Yang JP, Germeyer A, Osteen K, Taylor RN, Lessey BA, Giudice LC. Global gene profiling in human endometrium during the window of implantation. Endocrinology. 2002;143(6):2119– 38; DOI:10.1210/endo.143.6.8885.KaoLCTulacSLoboSImaniBYangJPGermeyerAOsteenKTaylorRNLesseyBAGiudiceLCGlobal gene profiling in human endometrium during the window of implantationEndocrinology2002143621193810.1210/endo.143.6.888512021176Open DOISearch in Google Scholar

Zhang RJ, Zou LB, Zhang D, Tan YJ, Wang TT, Liu AX, Qu F, Meng Y, Ding GL, Lu YC, Lv PP Sheng JZ, Huang HF. Functional expression of large-conductance calcium-activated potassium channels in human endometrium: A novel mechanism involved in endometrial receptivity and embryo implantation. J Clin Endocrinol Metab. 2012;97(2):543–53; DOI:10.1210/jc.2011-2108.ZhangRJZouLBZhangDTanYJWangTTLiuAXQuFMengYDingGLLuYCLvPPShengJZHuangHFFunctional expression of large-conductance calcium-activated potassium channels in human endometrium: A novel mechanism involved in endometrial receptivity and embryo implantationJ Clin Endocrinol Metab20129725435310.1210/jc.2011-2108Open DOISearch in Google Scholar

Spate LD, Brown AN, Redel BK, Whitworth KM, Murphy CN, Prather RS. Dickkopf-Related Protein 1 Inhibits the WNT Signaling Pathway and Improves Pig Oocyte Maturation. PLoS One. 2014;9(4):e95114; DOI:10.1371/journal.pone.0095114.SpateLDBrownANRedelBKWhitworthKMMurphyCNPratherRSDickkopf-Related Protein 1 Inhibits the WNT Signaling Pathway and Improves Pig Oocyte MaturationPLoS One201494e9511410.1371/journal.pone.0095114Open DOISearch in Google Scholar

Aktan TM, Görkemli H, Gezginç K, Saylan A, Duman S, Yilmaz FY. Improvement in embryo quality and pregnancy rates by using autologous cumulus body during icsi cycles. J Turkish Ger Gynecol Assoc. 2011;12(3):162–7; DOI:10.5152/jtgga.2011.38.AktanTMGörkemliHGezginçKSaylanADumanSYilmazFYImprovement in embryo quality and pregnancy rates by using autologous cumulus body during icsi cyclesJ Turkish Ger Gynecol Assoc2011123162710.5152/jtgga.2011.38Open DOISearch in Google Scholar

Dreier R, Schmid KW, Gerke V, Riehemann K. Differential expression of annexins I, II and IV in human tissues: An immunohistochemical study. Histochem Cell Biol. 1998;110(2):137–48; DOI:10.1007/s004180050275.DreierRSchmidKWGerkeVRiehemannKDifferential expression of annexins I, II and IV in human tissues: An immunohistochemical studyHistochem Cell Biol199811021374810.1007/s004180050275Open DOISearch in Google Scholar

Hamatani T, Carter MG, Sharov AA, Ko MSH. Dynamics of global gene expression changes during mouse preimplantation development. Dev Cell. 2004;6(1):117–31; DOI:10.1016/S1534-5807(03)00373-3.HamataniTCarterMGSharovAAKoMSHDynamics of global gene expression changes during mouse preimplantation developmentDev Cell2004611173110.1016/S1534-5807(03)00373-3Open DOISearch in Google Scholar

Sopkova J, Raguenes-Nicol C, Vincent M, Chevalier A, Lewit-Bentley A, Russo-Marie F, Gallay J. Ca2+ and membrane binding to annexin 3 modulate the structure and dynamics of its N terminus and domain III. Protein Sci. 2009;11(7):1613–25; DOI:10.1110/ps.4230102.SopkovaJRaguenes-NicolCVincentMChevalierALewit-BentleyARusso-MarieFGallayJCa2+ and membrane binding to annexin 3 modulate the structure and dynamics of its N terminus and domain IIIProtein Sci200911716132510.1110/ps.4230102Open DOISearch in Google Scholar

Le Cabec V, Maridonneau-Parini I. Annexin 3 is associated with cytoplasmic granules in neutrophils and monocytes and translocates to the plasma membrane in activated cells. Biochem J. 1994;303(2):481–7; DOI:10.1042/bj3030481.Le CabecVMaridonneau-PariniIAnnexin 3 is associated with cytoplasmic granules in neutrophils and monocytes and translocates to the plasma membrane in activated cellsBiochem J19943032481710.1042/bj3030481Open DOISearch in Google Scholar

Le Cabec V, Russo-Marie F, Maridonneau-Parini I. Differential expression of two forms of annexin 3 in human neutrophils and monocytes and along their differentiation. Biochem Biophys Res Commun. 1992;189(3):1471–6; DOI:10.1016/0006-291x(92)90240-l.Le CabecVRusso-MarieFMaridonneau-PariniIDifferential expression of two forms of annexin 3 in human neutrophils and monocytes and along their differentiationBiochem Biophys Res Commun199218931471610.1016/0006-291x(92)90240-lOpen DOISearch in Google Scholar

Afify A, McNiel MA, Braggin J, Bailey H, Paulino AF. Expression of CD44s, CD44v6, and hyaluronan across the spectrum of normal-hyperplasia-carcinoma in breast. Appl Immunohistochem Mol Morphol. 2008;16(2):121–7; DOI:10.1097/PAI.0b013e318047df6d.AfifyAMcNielMABragginJBaileyHPaulinoAFExpression of CD44s, CD44v6, and hyaluronan across the spectrum of normal-hyperplasia-carcinoma in breastAppl Immunohistochem Mol Morphol2008162121710.1097/PAI.0b013e318047df6d18227732Open DOISearch in Google Scholar

Akgul Y, Holt R, Mummert M, Word A, Mahendroo M. Dynamic Changes in Cervical Glycosaminoglycan Composition during Normal Pregnancy and Preterm Birth. Endocrinology. 2012;153(7):3493–503; DOI:10.1210/en.2011-1950.AkgulYHoltRMummertMWordAMahendrooMDynamic Changes in Cervical Glycosaminoglycan Composition during Normal Pregnancy and Preterm BirthEndocrinology20121537349350310.1210/en.2011-1950338030322529214Open DOISearch in Google Scholar

Kimura M, Kim E, Kang W, Yamashita M, Saigo M, Yamazaki T, Nakanishi T, Kashiwabara S-I, Baba T. Functional Roles of Mouse Sperm Hyaluronidases, HYAL5 and SPAM1, in Fertilization1. Biol Reprod. 2009;81(5):939–47; DOI:10.1095/biolreprod.109.078816.KimuraMKimEKangWYamashitaMSaigoMYamazakiTNakanishiTKashiwabaraS-IBabaTFunctional Roles of Mouse Sperm Hyaluronidases, HYAL5 and SPAM1, in Fertilization1Biol Reprod20098159394710.1095/biolreprod.109.07881619605784Open DOISearch in Google Scholar

Fouladi-Nashta AA, Raheem KA, Marei WF, Ghafari F, Hartshorne GM. Regulation and roles of the hyaluronan system in mammalian reproduction. Reproduction. 2017;153(2):R43–58; DOI:10.1530/REP-16-0240.Fouladi-NashtaAARaheemKAMareiWFGhafariFHartshorneGMRegulation and roles of the hyaluronan system in mammalian reproductionReproduction20171532R435810.1530/REP-16-024027799626Open DOISearch in Google Scholar

Abe S, Katagiri T, Saito-Hisaminato A, Usami SI, Inoue Y, Tsunoda T, Nakamura Y. Identification of CRYM as a candidate responsible for nonsyndromic deafness, through cDNA microarray analysis of human cochlear and vestibular tissues. Am J Hum Genet. 2003;72(1):73–82; DOI:10.1086/345398.AbeSKatagiriTSaito-HisaminatoAUsamiSIInoueYTsunodaTNakamuraYIdentification of CRYM as a candidate responsible for nonsyndromic deafness, through cDNA microarray analysis of human cochlear and vestibular tissuesAm J Hum Genet2003721738210.1086/34539842001412471561Open DOISearch in Google Scholar

Zhang Y, Jia S, Jiang WG. KIAA1199 and its biological role in human cancer and cancer cells (Review). Oncol Rep. 2014;31(4):1503–8; DOI:10.3892/or.2014.3038.ZhangYJiaSJiangWGKIAA1199 and its biological role in human cancer and cancer cells (Review)Oncol Rep20143141503810.3892/or.2014.303824573670Open DOISearch in Google Scholar

Borgbo T, Povlsen BB, Andersen CY, Borup R, Humaidan P, Grøndahl ML. Comparison of gene expression profiles in granulosa and cumulus cells after ovulation induction with either human chorionic gonadotropin or a gonadotropin-releasing hormone agonist trigger. Fertil Steril. 2013;100(4):994-1001.e2; DOI:10.1016/j.fertnstert.2013.05.038.BorgboTPovlsenBBAndersenCYBorupRHumaidanPGrøndahlMLComparison of gene expression profiles in granulosa and cumulus cells after ovulation induction with either human chorionic gonadotropin or a gonadotropin-releasing hormone agonist triggerFertil Steril201310049941001e210.1016/j.fertnstert.2013.05.03823856575Open DOISearch in Google Scholar

Solano ME, Sander VA, Ho H, Motta AB, Arck PC. Systemic inflammation, cellular influx and up-regulation of ovarian VCAM-1 expression in a mouse model of polycystic ovary syndrome (PCOS). J Reprod Immunol. 2011;92(1–2):33–44; DOI:10.1016/j.jri.2011.09.003.SolanoMESanderVAHoHMottaABArckPCSystemic inflammation, cellular influx and up-regulation of ovarian VCAM-1 expression in a mouse model of polycystic ovary syndrome (PCOS)J Reprod Immunol2011921–2334410.1016/j.jri.2011.09.00322018827Open DOISearch in Google Scholar

Campbell S, Swann HR, Seif MW, Kimber SJ, Aplin JD. Integrins and adhesion mlecules: Cell adhesion molecules on the oocyte and preimplantation human embryo. Hum Reprod. 1995;10(6):1571–8; DOI:10.1093/HUMREP/10.6.1571.CampbellSSwannHRSeifMWKimberSJAplinJDIntegrins and adhesion mlecules: Cell adhesion molecules on the oocyte and preimplantation human embryoHum Reprod19951061571810.1093/HUMREP/10.6.15717593541Open DOISearch in Google Scholar

Campbell S, Swann HR, Seif MW, Kimber SJ, Aplin JD. Cell adhesion molecules on the oocyte and preimplantation human embryo. Hum Reprod. 1995;10(6):1571–8; DOI:10.1093/humrep/10.6.1571.CampbellSSwannHRSeifMWKimberSJAplinJDCell adhesion molecules on the oocyte and preimplantation human embryoHum Reprod19951061571810.1093/humrep/10.6.1571Open DOISearch in Google Scholar

Brown CB, Boyer AS, Runyan RB, Barnett J V. Requirement of type III TGF-β receptor for endocardial cell transformation in the heart. Science (80- ). 1999;283(5410):2080–2; DOI:10.1126/science.283.5410.2080.BrownCBBoyerASRunyanRBBarnettJ VRequirement of type III TGF-β receptor for endocardial cell transformation in the heartScience (80- )199928354102080210.1126/science.283.5410.208010092230Open DOISearch in Google Scholar

Lewis KA, Gray PC, Blount AL, MacConell LA, Wiater E, Bitezikjian LM, Vate W. Betaglycan binds inhibin and can mediate functional antagonism of activin signalling. Nature. 2000;404(6776):411–4; DOI:10.1038/35006129.LewisKAGrayPCBlountALMacConellLAWiaterEBitezikjianLMVateWBetaglycan binds inhibin and can mediate functional antagonism of activin signallingNature20004046776411410.1038/3500612910746731Open DOISearch in Google Scholar

Dong M, How T, Kirkbride KC, Gordon KJ, Lee JD, Hempel N, Kelly P, Moeller BJ, Marks JR, Blobe GC. The type III TGF-β receptor suppresses breast cancer progression. J Clin Invest. 2007;117(1):206–17; DOI:10.1172/JCI29293.DongMHowTKirkbrideKCGordonKJLeeJDHempelNKellyPMoellerBJMarksJRBlobeGCThe type III TGF-β receptor suppresses breast cancer progressionJ Clin Invest200711712061710.1172/JCI29293167996517160136Open DOISearch in Google Scholar

Sarraj M, Chua HK, Umbers A, Loveland K, Findlay J, Stenvers KL. Differential expression of TGFBR3 (betaglycan) in mouse ovary and testis during gonadogenesis. Growth Factors. 2007;25(5):334–45; DOI:10.1080/08977190701833619.SarrajMChuaHKUmbersALovelandKFindlayJStenversKLDifferential expression of TGFBR3 (betaglycan) in mouse ovary and testis during gonadogenesisGrowth Factors20072553344510.1080/0897719070183361918236212Open DOISearch in Google Scholar

O’Shea LC, Mehta J, Lonergan P, Hensey C, Fair T. Developmental competence in oocytes and cumulus cells: candidate genes and networks. Syst Biol Reprod Med. 2012;58(2):88–101; DOI:10.3109/19396368.20 12.656217.O’SheaLCMehtaJLonerganPHenseyCFairTDevelopmental competence in oocytes and cumulus cells: candidate genes and networksSyst Biol Reprod Med20125828810110.3109/19396368.2012.65621722313243Open DOISearch in Google Scholar

Li Y, Fortin J, Ongaro L, Zhou X, Boehm U, Schneyer A, Bernard DJ, Lin HY. Betaglycan (TGFBR3) Functions as an Inhibin A, but Not Inhibin B, Coreceptor in Pituitary Gonadotrope Cells in Mice. Endocrinology. 2018;159(12):4077–91; DOI:10.1210/en.2018-00770.LiYFortinJOngaroLZhouXBoehmUSchneyerABernardDJLinHYBetaglycan (TGFBR3) Functions as an Inhibin A, but Not Inhibin B, Coreceptor in Pituitary Gonadotrope Cells in MiceEndocrinology20181591240779110.1210/en.2018-00770637294330364975Open DOISearch in Google Scholar

Salimi M, Salehi M, Masteri Farahani R, Dehghani M, Abadi M, Novin MG, Nourozian M, Hosseini A. The Effect of Melatonin on Maturation, Glutathione Level and Expression of H MGB1 Gene in Brilliant Cresyl Blue (BCB) Stained Immature Oocyte. Cell J. 2014;15(4):294–301.SalimiMSalehiMMasteri FarahaniRDehghaniMAbadiMNovinMGNourozianMHosseiniAThe Effect of Melatonin on Maturation, Glutathione Level and Expression of H MGB1 Gene in Brilliant Cresyl Blue (BCB) Stained Immature OocyteCell J2014154294301Search in Google Scholar

Tang D, Shi Y, Kang R, Li T, Xiao W, Wang H, Xiao X. Hydrogen peroxide stimulates macrophages and monocytes to actively release HMGB1. J Leukoc Biol. 2007;81(3):741–7; DOI:10.1189/jlb.0806540.TangDShiYKangRLiTXiaoWWangHXiaoXHydrogen peroxide stimulates macrophages and monocytes to actively release HMGB1J Leukoc Biol2007813741710.1189/jlb.0806540180849517135572Open DOISearch in Google Scholar

Cui X-S, Shen X-H, Kim N-H. High mobility group box 1 (HMGB1) is implicated in preimplantation embryo development in the mouse. Mol Reprod Dev. 2008;75(8):1290–9; DOI:10.1002/mrd.20694.CuiX-SShenX-HKimN-HHigh mobility group box 1 (HMGB1) is implicated in preimplantation embryo development in the mouseMol Reprod Dev20087581290910.1002/mrd.2069417290427Open DOISearch in Google Scholar

Li SJ, Yin T, Li W, Yang J, Xu WM, Zhou D. Association between follicular fluid levels of HMGB1 protein and outcomes in patients undergoing in vitro fertilization/intracytoplasmic spermLiSJYinTLiWYangJXuWMZhouDAssociation between follicular fluid levels of HMGB1 protein and outcomes in patients undergoing in vitro fertilization/intracytoplasmic spermSearch in Google Scholar

Lotze MT, Tracey KJ. High-mobility group box 1 protein (HMGB1): Nuclear weapon in the immune arsenal. Nat Rev Immunol. 2005;5(4):331– 42; DOI:10.1038/nri1594.LotzeMTTraceyKJHigh-mobility group box 1 protein (HMGB1): Nuclear weapon in the immune arsenalNat Rev Immunol2005543314210.1038/nri159415803152Open DOISearch in Google Scholar

eISSN:
2544-3577
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Life Sciences, Molecular Biology, Biochemistry