OBJECTIVES:Matrix metalloproteinases (MMPs) regulated by ets transcription factors facilitate carcinoma cell invasion. An ets family member, ESE-1, is expressed specifically in epithelial tissues, but its association with MMPs is obscure. In this study, we investigated whether ESE-1 regulates invasion of oral squamous cell carcinoma (SCC) via transcriptional activity of MMP-9.METHODS:HSC-3 and KB were used as human oral SCC lines. The expression of ESE-1 and MMP-9 was detected by in situ hybridization and immunohistochemistry. Invasion assay, gelatin zymography and Northern blotting were used to detect the invasion activity, the gelatinolytic activity and the expression of MMP-9 in the ESE-1 transfectants. Luciferase assays and mutation analysis were used for the transcriptional analysis of MMP-9 promoter region by ESE-1.RESULTS:ESE-1 was expressed in the intermediate layer but not in the invasive area, in which MMP-9 was expressed, in the oral SCC tissues. ESE-1 suppressed invasion activity and 92 kDa gelatinolytic activity in HSC-3 as a result of transfection. ESE-1 regulates MMP-9 expression in a negative manner and the ets binding site on the MMP-9 promoter contributed to suppression by ESE-1.CONCLUSIONS:These findings indicate that ESE-1 negatively regulates the invasion of oral SCC via transcriptional suppression of MMP-9.
We carried out single nucleotide polymorphism (SNP) and mutation analyses of haploid germ cell-specific genes. An analysis of 13 genes associated with male infertility in approximately 300 infertile male patients and approximately 300 male volunteers with proven fertility revealed two mutations that might produce male infertility, and three SNP/mutations associated with male infertility in 13 germ cell-specific genes. These findings strongly support the hypothesis that dysfunction of germ cell-specific genes causes idiopathic human male infertility.
Development of spermatozoa is a complex process involving specific morphological formation of flagella, mitochondria and nucleus. Although detailed morphological observations of these events are available, the molecular mechanisms remain to be fully elucidated. We cloned here a gene expressing in germ cells that encodes a histone H1-like, haploid germ cell-specific nuclear protein designated HANP1/H1T2, and analyzed in mouse and human.
You have accessJournal of UrologyModerated Poster, Wednesday, May 24, 2006, 1:00 - 3:00 pm1 Apr 20061622: The Clinical Significance of Pol Ymorphisms in the Protamine & Transition Nuclear Protain Genes in Male Infertility Daniel H. Williams, Yasushi Miyagawa, Hiromitsu Tanaka, Yasuhiro Matsuoka, Tomohiro Ueda, Hiroshi Kiuchi, Phanu Tanjapatkul, Kazutoshi Fujita, Tetsuya Takao, Shingo Takada, Akira Tsujimura, Yoshitake Nishimune, and Akihiko Okuyama Daniel H. WilliamsDaniel H. Williams More articles by this author , Yasushi MiyagawaYasushi Miyagawa More articles by this author , Hiromitsu TanakaHiromitsu Tanaka More articles by this author , Yasuhiro MatsuokaYasuhiro Matsuoka More articles by this author , Tomohiro UedaTomohiro Ueda More articles by this author , Hiroshi KiuchiHiroshi Kiuchi More articles by this author , Phanu TanjapatkulPhanu Tanjapatkul More articles by this author , Kazutoshi FujitaKazutoshi Fujita More articles by this author , Tetsuya TakaoTetsuya Takao More articles by this author , Shingo TakadaShingo Takada More articles by this author , Akira TsujimuraAkira Tsujimura More articles by this author , Yoshitake NishimuneYoshitake Nishimune More articles by this author , and Akihiko OkuyamaAkihiko Okuyama More articles by this author View All Author Informationhttps://doi.org/10.1016/S0022-5347(18)33814-XAboutPDF ToolsAdd to favoritesDownload CitationsTrack CitationsPermissionsReprints ShareFacebookLinked InTwitterEmail "1622: The Clinical Significance of Pol Ymorphisms in the Protamine & Transition Nuclear Protain Genes in Male Infertility." The Journal of Urology, 175(4S), pp. 522–523 © 2016 by American Urological AssociationFiguresReferencesRelatedDetails Volume 175Issue 4SApril 2006Page: 522-523 Advertisement Copyright & Permissions© 2016 by American Urological AssociationMetricsAuthor Information Daniel H. Williams More articles by this author Yasushi Miyagawa More articles by this author Hiromitsu Tanaka More articles by this author Yasuhiro Matsuoka More articles by this author Tomohiro Ueda More articles by this author Hiroshi Kiuchi More articles by this author Phanu Tanjapatkul More articles by this author Kazutoshi Fujita More articles by this author Tetsuya Takao More articles by this author Shingo Takada More articles by this author Akira Tsujimura More articles by this author Yoshitake Nishimune More articles by this author Akihiko Okuyama More articles by this author Expand All Advertisement Loading ...
The acrosome reaction in sperm is an exocytotic event required for fertilization. Previously, we isolated a novel haploid-germ-cell-specific gene in the mouse; this gene, named haprin, encodes the RING-finger, B-box-type zinc finger and coiled-coil domain (RBCC) motif protein and may be involved in the acrosome reaction. Here we report the molecular cloning and characterization of a human haprin ortholog. The deduced amino acid sequence of human HAPRIN had 91% identity with the mouse ortholog. Transcripts of human HAPRIN were detected exclusively in the testes. Western blot and immunocytochemical analyses detected HAPRIN protein in the testes and sperm. The protein was localized in the acrosomal region of sperm and disappeared after the acrosome reaction. Our results indicate that the function of HAPRIN is highly conserved in humans and mice and that the protein could play an important role in the regulation of the acrosome reaction.
Recently we cloned the Hanp1 cDNA that encodes a histone H1-like haploid germ cell-specific nuclear protein in the mouse. Homozygous Hanp1 mutant male mice were infertile, while females were fertile. Although a substantial number of sperm were recovered from the epididymis, their shape and function were abnormal. Hanp1 protein is essential for nuclear formation in functional spermatozoa, and is specifically involved in the replacement of histones with protamines during spermiogenesis. To investigate the roles of human HANP1 (h-HANP1) and its relation to male infertility, we isolated h-HANP1 cDNA from a human cDNA plasmid library using mouse Hanp1 cDNA as a probe. h-HANP1 is expressed in the testes and its genomic construct also intronless as mouse Hanp1. We found that the h-HANP1 coding region have 5 single-nucleotide polymorphisms in Japanese men.
We cloned a testis-specific cDNA from mice that encodes a histone H1-like, haploid germ cell-specific nuclear protein designated HANP1/H1T2. The HANP1/H1T2 protein was specifically localized to the nuclei of murine spermatids during differentiation steps 5 to 13 but not to the nuclei of mature sperm. HANP1/H1T2 contains an arginine-serine-rich domain and an ATP/GTP binding site, and it binds to DNA, ATP, and protamine. To investigate the physiological role of HANP1/H1T2, we generated Hanp1/H1T2-disrupted mutant mice. Homozygous Hanp1/H1T2 mutant males were infertile, but females were fertile. Although a substantial number of sperm were recovered from the epididymides, their shape and function were abnormal. During sperm morphogenesis, the formation of nuclei was disturbed and protamine-1 and -2 were only weakly detectable in the nuclei. The chromatin packaging was aberrant, as demonstrated by electron microscopy and biochemical analysis. The mutant sperm exhibited deficient motility and were not competent to fertilize eggs under in vitro fertilization conditions; however, they were capable of fertilizing eggs via intracytoplasmic sperm injection that resulted in the birth of healthy progeny. Thus, we found that HANP1/H1T2 is essential for nuclear formation in functional spermatozoa and is specifically involved in the replacement of histones with protamines during spermiogenesis. At the time of submission of the manuscript, we found an independent publication by Martianov et al. (I. Martianov, S. Brancorsini, R. Catena, A. Gansmuller, N. Kotaja, M. Parvinen, P. Sassone-Corsi, and I. Davidson, Proc. Natl. Acad. Sci. USA 102:2808-2813, 2005) that reported similar results.
Previously, we examined the relationship between protamine gene variations and human male infertility. In this study, we show specific variability in the transition nuclear protein genes (TNPs) of sterile male patients. Transition nuclear proteins (TPs) are major nuclear proteins that replace nuclear histones, leading to eventual substitution by protamines during human spermiogenesis. Analysis of the human TNP1 and TNP2 gene sequences in 282 sterile male patients and 270 (TNP1) and 266 (TNP2) proven-fertile male volunteers revealed 5 amino acid substitution-causing single nucleotide polymorphisms (SNPs) in the open-reading frame of the TNP2 gene. On the other hand, a deletion of 15 nucleotides, which encompassed the recognition site for the cAMP response element (CRE) transcription factor, was found in the 5'-promoter region of the TNP1 gene in infertile men. This deletion reduces TNP1 expression and may cause human male infertility.
Septins are polymerizing GTP binding proteins required for cortical organization during cytokinesis and other cellular processes. A mammalian septin gene Sept4 is expressed mainly in postmitotic neural cells and postmeiotic male germ cells. In mouse and human spermatozoa, SEPT4 and other septins are found in the annulus, a cortical ring which separates the middle and principal pieces. Sept4(-/-) male mice are sterile due to defective morphology and motility of the sperm flagellum. In Sept4 null spermatozoa, the annulus is replaced by a fragile segment lacking cortical material, beneath which kinesin-mediated intraflagellar transport stalls. The sterility is rescued by injection of sperm into oocytes, demonstrating that each Sept4 null spermatozoon carries an intact haploid genome. The annulus/septin ring is also disorganized in spermatozoa from a subset of human patients with asthenospermia syndrome. Thus, cortical organization based on circular assembly of the septin cytoskeleton is essential for the structural and mechanical integrity of mammalian spermatozoa.
The tumor suppressor protein p53 is specifically expressed during meiosis in spermatocytes. Subsets of p53 knockout mice exhibit testicular giant cell degenerative syndrome, which suggests p53 may be associated with meiotic cell cycle and/or DNA metabolism. Here, we show that p53 binds to the mouse meiosis-specific RecA-like protein Mus musculus DMC1 (MmDMC1). The C-terminal domain (amino acid 234-340) of MmDMC1 binds to DNA-binding domain of p53 protein. p53 might be involved in homologous recombination and/or checkpoint function by directly binding to DMC1 protein to repress genomic instability in meiotic germ cells.
Development of spermatozoa is a complex process involving specific morphological formation of flagella, nucleus and mitochondria. Although detailed morphological observations of these events are available, the molecular mechanisms remain to be fully elucidated. We report here the molecular cloning and characterization of mouse spergen-1 encoding a sperm specific mitochondrial protein, from a haploid germ cell-specific subtracted cDNA library of mouse testis. Isolated cDNA is c. 0.7 kb and contains a 465 bp ORF that encodes mouse spergen-1, a sperm mitochondrial protein consisting of 154 predicted amino acids. Antibodies raised against mouse Spergen-1 identified a testis-specific c. 18 Mr x 10(3) band in Western blot analysis. The protein was localized to the mitochondria of mouse sperm. Comparison of the mouse and human genomic sequences showed that 55 bps of the 5'-upstream region containing a CAAT box and binding sequence for NF-kappa B is conserved and could be important for specific expression of mouse spergen-1 in haploid germ cells.
The perinuclear theca (PT) is a unique cytoskeletal structure that surrounds the nucleus of the sperm. The posterior acrosome segment of the PT (postacrosomal PT) is thought to play roles in shaping the nucleus during differentiation of the spermatid and in activating the oocyte during fertilization. We isolated a cDNA clone that encoded a novel haploid germ cell-specific cysteine-rich perinuclear theca protein, CYPT1. The transcripts were expressed exclusively in testicular germ cells after meiotic division. Sequence analysis revealed that CYPT1 comprised 168 amino acids and that the N-terminal was rich in basic amino acids, including cysteine clusters. Immunohistochemical and biochemical analyses localized CYPT1 to the postacrosomal PT of elongated spermatids and mature sperm. The cypt1 had three paralogs that were expressed in adult testis. A comparison of genomic structure suggested that two of the three cypt1 paralogs were generated by gene triplication on the X chromosome, while one paralog was retrotransposed to an autosome. Interestingly, the 5'-flanking regions of these genes were highly homologous with the promoter region of the spermatid-specific gene Zfy-2. CYPT1 and the proteins of the paralogous genes constitute a novel, basic cysteine-rich sperm protein family that may contribute to the function of the postacrosomal PT during nuclear shaping.
The continuous production of mammalian sperm is maintained by the proliferation and differentiation of spermatogonial stem cells that originate from primordial germ cells (PGCs) in the early embryo. Although spermatogonial stem cells arise from PGCs, it is not clear whether fetal male germ cells function as spermatogonial stem cells able to produce functional sperm. In the present study, we examined the timing and mechanisms of the commitment of fetal germ cells to differentiate into spermatogonial stem cells by transplantation techniques. Transplantation of fetal germ cells into the seminiferous tubules of adult testis showed that donor germ cells, at 14.5 days postcoitum (dpc), were able to initiate spermatogenesis in the adult recipient seminiferous tubules, whereas no germ cell differentiation was observed in the transplantation of 12.5-dpc germ cells. These results indicate that the commitment of fetal germ cells to differentiate into spermatogonial stem cells initiates between embryonic days 12.5 and 14.5. Furthermore, the results suggest the importance of the interaction between germ cells and somatic cells in the determination of fetal germ cell differentiation into spermatogonial stem cells, as normal spermatogenesis was observed when a 12.5-dpc whole gonad was transplanted into adult recipient testis. In addition, sperm obtained from the 12.5- dpc male gonadal explant had the ability to develop normally if injected into the cytoplasm of oocytes, indicating that normal development of fetal germ cells in fetal gonadal explant occurred in the adult testicular environment.
The testicular isoform of the ornithine decarboxylase antizyme (OAZt) gene is expressed exclusively in the haploid spermatids of mice. The 357-bp region, which includes a TATA-less promoter and an untranslated region, is sufficient for OAZt gene expression in the spermatids of transgenic mice. In this study, in vivo transient transfection to living mouse testes was used to define the transcriptional regulatory elements of the OAZt gene promoter. We found that the 10-bp element that contains an initiator (Inr) plays a central role as the core promoter, in combination with a downstream element, while two cyclic adenosine monophosphate-responsive element (CRE)-like sites in the upstream region also contribute to promoter activity. The electrophoretic mobility shift assay showed binding of the testis-specific factors to these elements. Our results show that the in vivo DNA transfer technique enables detailed analysis of haploid germ cell-specific gene regulation in mice.
Mammalian spermiogenesis is a complex process occurring in a highly coordinated fashion within the seminiferous tubules. To elucidate the molecular mechanisms controlling haploid germ cell differentiation, we have isolated haploid germ cell-specific cDNA clones from a subtracted cDNA library of mouse testis. One of these cDNAs, Rosbin, is 3.2 kilobases (kb) long and has an open reading frame of 2385 nucleoticles encoding a putative protein of 795 amino acid residues. A computer-mediated homology search revealed that it contained a domain similar to that of homeobox genes. Northern blot analysis revealed a 3.2-kb mRNA expressed exclusively in male germ cells. Transcription of the Rosbin gene was not observed in prepubertal testis but became detectable after Day 23. By Western blot analysis the protein encoded by this gene had a molecular mass of 89 kDa, expressing specifically in the testis and localized to the nucleus of stages IV-VIII haploid round spermatids, predominantly at stages VII-VIII of spermatogenesis. ROSBIN is associated with and is most likely phosphorylated by protein kinase A. We suggest that it plays an important role in transcriptional regulation in haploid germ cells.
The haploid germ cell-specific Tektin-t protein is a member of the Tektin family of proteins that form filaments in flagellar, ciliary, and axonemal microtubules. To investigate the physiological role of Tektin-t, we generated mice with a mutation in the tektin-t gene. The homozygous mutant males were infertile, while the females were fully fertile. Sperm morphology and function were abnormal, with frequent bending of the sperm flagella and marked defects in motility. In vitro fertilization assays showed that the defective spermatozoa were able to fertilize eggs. Electron microscopic examination showed that the dynein inner arm structure was disrupted in the sperm flagella of tektin-t-deficient mice. Furthermore, homozygous mutant mice had functionally defective tracheal cilia, as evidenced by altered dynein arm morphology. These results indicate that Tektin-t participates in dynein inner arm formation or attachment and that the loss of Tektin-t results in impaired motility of both flagella and cilia. Therefore, the tektin-t gene is one of the causal genes for immotile-cilium syndrome/primary ciliary dyskinesia.
Ketone bodies, D-beta-hydroxybutyrate and acetoacetate, produced by the metabolism of fatty acids, are an important energy source for many organs, especially the heart, kidney and brain. They are utilized by the body with the help of succinyl CoA transferase (SCOT), which is ubiquitously expressed in various organs. Previously, we identified a novel SCOT-t specifically expressed in testicular germ cells and sperm, substituting somatic cell-type SCOT, however the physiological role of SCOT-t had not then been clarified. In the present study, we investigated the effects of ketone bodies, the substrate of SCOT-t, on the motility and acrosome reaction of mouse sperm. D-beta-hydroxybutyrate and acetoacetate both stimulated the motility of sperm as glucose or pyruvate. The glycolysis inhibitor stopped the motility of sperm mediated by glucose but not by D-beta-hydroxybutyrate. In contrast, ketone bodies did not stimulate the activation of the acrosome reaction of sperm, different from the effect of glucose. These results indicate that ketone bodies could be involved in sperm movement but not the acrosome reaction and the SCOT-t enzyme we have identified in sperm mitochondria may have important roles in the activity of sperm, resulting in male infertility when its function is disabled.