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Sequence and expression pattern of the Stra7 (Gbx-2) homeobox-containing gene induced by retinoic acid in P19 embryonal carcinoma cells.

The cDNA sequence of Stra7, a retinoic acid (RA)-inducible gene in P19 embryonal carcinoma (EC) cells, was determined. The deduced Stra7 protein contains a homeodomain highly similar to that of the previously described chicken CHox7 gene product, and is highly conserved during evolution, from hemichordates to vertebrates. The mouse Stra7 cDNA corresponds to the full-length form of the 77 bp homeodomain-encoding cDNA fragment which was previously cloned and termed MMoxA or Gbx-2. Reverse-transcriptase-PCR analysis revealed the presence of Stra7/Gbx-2 transcripts in the adult brain, spleen, and female genital tract, whereas no expression could be observed in heart, liver, lung, kidney, or testes. In situ hybridization analysis showed a restricted expression pattern of Stra7/Gbx-2 in the three primitive germ layers during gastrulation. Restricted expression was also detected in the pharyngeal arches. Subsequently, there were specific expression domains in the developing central nervous system, at the midbrain/hindbrain boundary and later in the cerebellum anlage, in certain rhombomeres, in dorsal regions of the spinal cord, and in the developing dorsal thalamus and corpus striatum.

Animals↗

Keratin and vimentin expression in early organogenesis of the rabbit embryo.

The expression of vimentin and keratins is analysed in the early postimplantation embryo of the rabbit at 11 days post conceptionem (d.p.c.) using a panel of monoclonal antibodies specific for single intermediate filament polypeptides (keratins 7, 8, 18, 19 and vimentin) and a "pan-epithelial" monoclonal keratin antibody. Electrophoretic separation of cytoskeletal preparations obtained from embryonic tissues, in combination with immunoblotting of the resulting polypeptide bands, demonstrates the presence of the rabbit equivalents of human keratins 8, 18, and vimentin in 11-day-old rabbit embryonic tissues. Immunohistochemical staining shows that several embryonic epithelia such as notochord, surface ectoderm, primitive intestinal tube, and mesonephric duct, express keratins, while others (neural tube, dermomyotome) express vimentin, and a third group (coelomic epithelia) can express both. Similarly, of the mesenchymal tissues sclerotomal mesenchyme expresses vimentin, while somatopleuric mesenchyme (abdominal wall) expresses keratins, and splanchnopleuric mesenchyme (dorsal mesentery) expresses both keratins and vimentin. While these results are in accordance with most results of keratin and vimentin expression in embryos of other species, they stand against the common concept of keratin and vimentin specificity in adult vertebrate tissues. Furthermore, keratin and vimentin are not expressed in accordance with germ layer origin of tissues in the mammalian embryo; rather the expression of these proteins seems to be related to cellular function during embryonic development.

Animals↗

The transplantation of neural stem cells and predictive factors in hematopoietic recovery in irradiated mice.

A number of surprising observations have shown that stem cells, in suitable conditions, have the ability to produce a whole spectrum of cell types, regardless, whether these tissues are derived from the same germ layer or not. This phenomenon is called stem cell plasticity, which means that tissue-specific stem cells are mutually interchangeable. In our experiments, as a model, we used neural stem cells (NSCs) harvested from fetal (E14-15) neocortex and beta-galactosidase positive. In the first experiment we found that on days 12 and 30 after sub-lethal irradiation (LD 8.5 Gy) and (beta-galactosidase(+)) NSCs transplantation all mice survived, just as the group with bone marrow transplantation. Moreover, the bone marrow of mice transplanted NSCs contained the number of CFU-GM colonies with beta-galactosidase(+) cells which was as much as 50% higher. These differences were statistically significant, p<0.001. In the second experiment, we studied kinetics of (beta-galactosidase(+)) NSCs after their transplantation to sub-lethally irradiated mice. Histochemistry of tissues was performed on days 12 and 30 post-transplantation, and beta-galactosidase(+) cells were detected with the help of histochemical examination of removed tissues (lung, liver, spleen, thymus, and skeletal muscle). In tissues removed on day 12 post-transplantation, we found a significantly higher number of beta-galactosidase(+) cells in the spleen and thymus on day 30. While we presumed the presence beta-galactosidase(+) cells in the spleen, as spleen and reticuloendothelial system represent an important retaining system for different cell types, the presence of beta-galactosidase(+) cells in the thymus was rather surprising but very interesting. This indicates a certain mutual and close interconnection of transplanted stem cells and immune system in an adult organism. In the third experiment, we verified the mutual interchange of Sca-1 surface antigen in the bone marrow cells and NSCs before transplantation. Analysis of this antigen showed 24.8% Sca-1 positive cells among the bone marrow cells, while NSCs were Sca-1 negative. Our experiments show that NSCs share hemopoietic identity and may significantly influence the recovery of damaged hematopoiesis but do not have typical superficial markers as HSCs. This result is important for the determination of predictive factors for hemopoiesis recovery, for stem cell plasticity and for their use in the cell therapy.

Animals↗

Mitotic domains in the early embryo of the zebrafish.

At the midblastula transition in the zebrafish, three, and only three, spatially separate mitotic domains arise with distinctive cycle lengths and rhythms. As in Drosophila and at about the equivalent stage, the mitotic domains reflect the fate map, but they do so only very crudely: two are extraembryonic and the third forms the entire embryo. The domains appear not to subdivide during gastrulation, when the germ layers form and when cells probably commit to their eventual fates. The domains may signal specification of morphogenesis rather than cell fate, because, shortly after they appear, each assumes a different role during epiboly, the first morphogenetic movement of the embryo. During meroblastic cleavage, and continuing in the early blastula, zebrafish blastomeres divide rapidly and synchronously. At the time of the tenth cleavage, the beginning of the midblastula transition, the cell cycle lengthens, and, as in Xenopus and Drosophila, cycle length comes under nucleocytoplasmic control (D.A.K. and C.B.K., manuscript in preparation). This nucleocytoplasmic control seems to be maintained during cycle lengthening in the next 2 or 3 cycles, comprising a midblastula transition period. We now show that functionally distinct subsets of cells that arise during this period have reproducibly different mitotic cycle lengths.

Animals↗

Hair follicle predetermination.

Recent genetic and molecular studies of hair follicle (HF) biology have provided substantial insight; however, the molecular data, including expression patterns, cannot be properly appreciated without an understanding of the basic cellular rearrangements and interactions that underpin HF cyclic transformations. We present a novel interpretation of the major cellular processes that take place during HF cycling--the hypothesis of hair follicle predetermination. This hypothesis is an extension of previous models of HF cellular kinetics but has two critical modifications: the dual origin of the cycling portion of the HF, and the timing of the recruitment of stem cells. A compilation of evidence suggests that the ascending portion of the HF (hair shaft and inner root sheath) arises not from bulge-located HF stem cells that contribute to the formation of only the outer root sheath (ORS), but instead from the germinative cells localized in the secondary hair germ. In middle anagen, upon completion of the downward growth of the HF, cells derived from the bulge region migrate downward along the ORS to reside at the periphery of the HF bulb as a distinct, inactive cell population that has specific patterns of gene expression - 'the lateral disc'. These cells survive catagen-associated apoptosis and, under the direct influence of the follicular papilla (FP), transform into the hair germ and acquire the ability to respond to FP signaling and produce a new hair. Thus, we propose that the specific sensitivity of germ cells to FP signaling and their commitment to produce the ascending HF layers are predetermined by the previous hair cycle during the process of transformation of bulge-derived lateral disc cells into the secondary hair germ.

Animals↗

Developmental expression of nicein adhesion protein (laminin-5) subunits suggests multiple morphogenic roles.

Nicein/kalinin (laminin-5) is a heterotrimeric laminin-like adhesion protein, which is secreted at the basement membrane of subsets of epithelia and is involved in the etiology of junctional epidermolysis bullosa, a severe human blistering disease characterized by disadhesion of epidermis from dermis. cDNA clones encoding the three chains of mouse nicein and antibodies specific to each polypeptide were used to examine the expression of the protein in the developing mouse embryo from 10.5 day post coitum to 7 days after birth. At various stages of development, co-expression of the three chains of nicein was observed in amnion, skin, and in epithelia of respiratory, urinary and digestive systems. High level expression of nicein was seen in enamel-secreting ameloblasts in developing teeth. Cell-specific distribution of nicein was also detected in other specialized tissues representative of the three primary embryonic germ layers with prominent secretory or protective functions. Differential and focal expression of nicein subunits was observed in the choroid plexus and the floor plate of the neural tube. Messenger for the heavy chain of nicein was detected in the floor plate, where mouse s-laminin messengers were also found. This suggests that nicein genes may play a role in the migration and polarization of motor neurons in the developing spinal cord.

Amino Acid Sequence↗

[Establishment and characteristics of clonal human embryonic stem cell lines].

OBJECTIVE: To establish clonal human embryonic stem cell lines and investigate their biological characteristics. METHODS: Cells were derived from one inner cell mass of human blastocyst, multiplied for 20 passages, and then dissociated into single cell suspension by digestion with 0.5% trypsin. Single cell was picked up and plated into individual well of a 96-well plate containing feeder-layers directly under a dissection microscope. The outgrowth clones were passed by treatment with collagenase. Surface markers were detected by cytochemistry and histoimmunochemistry. Karyotypes were tested using standard G-banding techniques. The pluripotency was analyzed by inoculating cells into severe combined immunodeficient (SCID) mice. RESULTS: Two clonal human embryonic stem cell lines were established. Cells of these two lines possess the characteristics and differentiating potencies: normal 46 XX karyotypes; expressing a series of surface markers such as: alkaline phosphotase, stage-specific embryonic antigen (SSEA)-4, tumor recognition antigen (TRA)-1-60, TRA-1-81 etc; and forming teratomas comprising derivatives of three embryonic germ layers such as neural tissue, cartilage, squamous epithelium and columnar epithelium when injected into SCID mice. CONCLUSIONS: The two single cell-cloned human embryonic stem (hES) cell lines were derived in our laboratory. The cells possess stable biological characteristics of undifferentiated hES cells.

Cell Culture Techniques↗

Inhibition of growth in vitro by glucocorticoids in mouse embryonic facial mesenchyme cells.

The growth of primary embryonic facial mesenchyme cells established from cleft palate sensitive A/J and resistant C57BL/6J (C57) mice is inhibited by glucocorticoid treatment. A reduction in cell number in both A/J and C57 culture is accompanied by a significant decrease in [3H] thymidine incorporation into both acid soluble and insoluble material. No significant changes in total cellular protein or [14C] leucine incorporation were observed in either cell type. A greater reduction in [3H] thymidine incorporation occurs in cells undergoing exponential growth following steroid exposure than in cells approaching stationary growth. In both A/J and C57 cultures the reduction in cell number exhibits a dose-dependent response to dexamethasone; is specific for glucocorticoids; and is dependent upon the concentration of serum in which the cells are maintained. A/J cells show a greater sensitivity to the inhibitory effect of dexamethasone on cell number and thymidine incorporation than comparably treated C57 cells. Specific, high affinity, saturable cytoplasmic receptors for [3H] dexamethasone are present in the maxillary cytosols from which the primary cultures were established. These receptors exhibit binding specificity for glucocorticoids, and have properties which are similar to glucocorticoid receptors identified in other systems. In both cell types, a correlation exists between the degree of growth inhibition or reduction of [3H] thymidine incorporation and the level of glucocorticoid receptors. These results provide evidence for a receptor-mediated set of responses to glucocorticoids in these cells.

Animals↗

Expression of catenins during mouse embryonic development and in adult tissues.

Classical cadherins are cell-surface glycoproteins that mediate calcium-dependent cell adhesion. The cytoplasmic domain of these glycoproteins is linked to the cytoskeleton through the catenins (alpha, beta and gamma). The catenins are intracellular polypeptides that are part of a complex sub-membranous network modulating the adhesive ability of the cells. One approach to elucidate the role of these molecules in the cell is to investigate their distribution during mouse development and in adult tissues. This study reports that catenins are widely expressed but in varying amounts in embryos and adult tissues. The expression of all three catenins is most prominent in the adult heart muscle and in epithelia of all developmental stages. In other embryonic and adult tissues, lower expression of catenins was detected, e.g., in smooth muscle or connective tissue. Catenins are coexpressed with various cadherins in different tissues. Gastrulation is the first time during embryogenesis when a discrepancy occurs between the expression of catenins and E-cadherin. E-cadherin expression is suppressed in mesodermal cells but not the expression of catenins. This discrepancy suggests that another cadherin may interact with catenins. Similarly, E-cadherin is generally expressed in adult liver but not in the regions surrounding the central veins. In contrast, catenins are uniformly expressed in the liver, suggesting that they are associated with other cadherins in E-cadherin negative cells. Finally, the three catenins are not always concurrently expressed. For example, in peripheral nerves, only beta-catenin is observable, and in smooth muscle plakoglobin is not detectable.

Animals↗

SOX9 binds DNA, activates transcription, and coexpresses with type II collagen during chondrogenesis in the mouse.

Two lines of evidence suggest that the Sry-related gene Sox9 is important for chondrogenesis in mammalian embryos. Sox9 mRNA is expressed in chondrogenic condensations in mice, and mutations in human SOX9 are known to cause skeletal dysplasia. We show here that mouse SOX9 protein is able to bind to a SOX/SRY consensus motif in DNA and contains a modular transcriptional activation domain, consistent with a role for SOX9 as a transcription factor acting on genes involved in cartilage development. One such gene is Col2a1, which encodes type II collagen, the major structural component of cartilage. We have compared, in detail, the expression of Sox9 and Col2a1 during mouse development. In chondrogenic tissues the expression profiles of the two genes were remarkably similar. Coexpression was detected in some nonchondrogenic tissues such as the notochord, otic vesicle, and neural tube, but others such as heart and lung differed in their expression of the two genes. Immunohistochemistry using an antibody specific for SOX9 revealed that expression of SOX9 protein mirrored the distribution of Sox9 mRNA. Our results suggest that SOX9 protein is involved in the regulation of Col2a1 during chondrogenesis, but that this regulation is likely to depend on additional cofactors.

Animals↗

[Determination of the dorso-ventral polarity of the Drosophila embryo].

Embryonic pattern formation has been studied extensively in many organisms. In Drosophila, the powerful combination of genetics cytoplasm transplantation experiments, as well as recent molecular data, have helped to elucidate the mechanisms responsible for the establishment of embryonic polarity. A small number of genes, most of them maternally expressed, are involved in this process and participate in four independent systems--three for the antero-posterior axis (A/P) and one for dorsoventral axis (D/V)--which define various embryonic territories by specifically localized cues. This review concerns the definition of the dorsoventral polarity responsible for the establishment of the germ layers of the embryo. Dorsoventral development is regulated by a single group of maternally expressed genes: the "dorsal group" of genes. It includes 11 genes, the loss of function of any of which results in a dorsalized development, whereas mutation of the 12th gene, cactus, results in a ventralized development. These genes are arranged according to a functional hierarchy, and have been shown to cooperate in the formation of a graded nuclear concentration of the dorsal gene product. The dorsal product corresponds to the dorsoventral morphogen and is homologous to the transcription factor NF-kappa B. Among the 11 genes of the dorsal group, 3 are required in the somatic line. This suggests the existence of inductive signals originating during oogenesis from the follicle cells that surround the developing oocyte. This somatically expressed spatial information probably controls dorsoventral development by defining the polarity of a signal transducing pathway that specifically activates the nuclear uptake of the dorsal product. This model, highlights the importance of the polarity of the egg chamber, and suggests that it is the oocyte nucleus due to its asymmetrical localization, that determines the dorsoventral pattern formation of the embryo.

Animals↗

Adult corneal limbal epithelium: a model for studying neural potential of non-neural stem cells/progenitors.

Recent studies suggest that tissue-specific stem cells possess much wider potential for differentiation than previously thought and can, in some instances, even cross germ layer boundaries. However, information is lacking regarding the efficiency and the fidelity of their differentiation along heterologous lineages. To address these issues of transdifferentiation, we have analyzed the heterologous potential of stem cells within the same germ layer. We report the neural potential of cells isolated from the limbal epithelium of the adult cornea. Limbal epithelium, which, like the neuroepithelium, is ectodermally derived, participates in the regeneration of cornea throughout life. We have observed that limbal epithelial cells, when removed from their niche and cultured in the presence of mitogens, begin to express neural progenitor markers. Based on the self-renewal property, it is likely that the nestin-positive progenitors are derived from limbal stem cells rather than transit-amplifying (TA) cells that have limited proliferating potential. In differentiation conditions, a subset of these cells acquire neural morphology and express transcripts and proteins specific to neurons and glia, suggesting their differentiation along neural lineage. The acquisition of neural properties is regulated by BMP signaling. Neural differentiation of these cells is also observed upon heterotopic transplantation. Investigation of functional differentiation of cells by electrophysiological analysis reveals properties consistent with the presence of glia that are influenced by extracellular cues. However, similar analyses coupled with Ca(2+) imaging suggest an incomplete differentiation of limbal epithelial-derived neural progenitors into neurons in the condition studied. Our study, therefore, draws attention toward the necessity for rigorous characterization of transdifferentiation and offers a model for characterizing neural potential of heterologous stem cells/progenitors.

Animals↗

The abnormal occurrence and the differentiation-dependent distribution of N-acetyl and N-glycolyl species of the ganglioside GM2 in human germ cell tumors. A study with specific monoclonal antibodies.

Human primary germ cell tumors were analyzed for the presence of the ganglioside GM2 using three specific monoclonal antibodies which can distinguish the molecular species of the sialic acid moiety: the antibody MK1-16 is specific for N-acetyl GM2, MK2-34 is specific for N-glycolyl GM2, and MK1-17 detects both N-acetyl and N-glycolyl GM2. When the occurrence of the GM2 antigen was tested in 107 cases of human germ cell tumors by the immunohistochemical technique using these antibodies, seminoma was characterized as having the highest frequency of N-acetyl GM2 (89.4%, 42 of 47 cases) among germ cell tumors, followed by embryonal carcinoma (40.0%), and teratocarcinoma (26.6%). Compared with this, yolk sac tumors and choriocarcinoma had a much lower positive incidence of the N-acetyl GM2 antigen. On the other hand, the N-glycolyl GM2 antigen was not found at all in 47 cases of seminoma (0%), and the positive incidence was very low in embryonal carcinoma (6.6%), although considerably higher incidences were obtained with choriocarcinoma (25.0%), yolk sac tumor (22.2%), and teratocarcinoma (13.3%). The presence and molecular species of the GM2 antigens in these human germ cell tumors were also ascertained chemically by the thin-layer chromatography (TLC) immunostaining of the ganglioside fractions prepared from primary germ cell tumors. These results indicate that seminoma specifically contains N-acetyl GM2 and no N-glycolyl GM2, suggesting that N-acetyl GM2 could be a good marker for seminoma. On the other hand, non-seminomatous germ cell tumors were characterized by the presence of N-glycolyl GM2, one of the Hanganutziu-Deicher antigens (H-D antigens). Moreover, the positive occurrence of N-glycolyl GM2 correlated very well with the degree of differentiation of non-seminomatous germ cell tumors, i.e., the differentiated tumors such as yolk sac tumors, choriocarcinoma, and teratocarcinoma had a higher positive incidence of N-glycolyl GM2 type H-D antigen but a lower positive incidence of N-acetyl GM2 when compared with embryonal carcinoma, the most undifferentiated tumors among non-seminomatous germ cell tumors.

Antibodies, Monoclonal↗

Maintenance of pluripotency in human and mouse embryonic stem cells through activation of Wnt signaling by a pharmacological GSK-3-specific inhibitor.

Human and mouse embryonic stem cells (HESCs and MESCs, respectively) self-renew indefinitely while maintaining the ability to generate all three germ-layer derivatives. Despite the importance of ESCs in developmental biology and their potential impact on tissue replacement therapy, the molecular mechanism underlying ESC self-renewal is poorly understood. Here we show that activation of the canonical Wnt pathway is sufficient to maintain self-renewal of both HESCs and MESCs. Although Stat-3 signaling is involved in MESC self-renewal, stimulation of this pathway does not support self-renewal of HESCs. Instead we find that Wnt pathway activation by 6-bromoindirubin-3'-oxime (BIO), a specific pharmacological inhibitor of glycogen synthase kinase-3 (GSK-3), maintains the undifferentiated phenotype in both types of ESCs and sustains expression of the pluripotent state-specific transcription factors Oct-3/4, Rex-1 and Nanog. Wnt signaling is endogenously activated in undifferentiated MESCs and is downregulated upon differentiation. In addition, BIO-mediated Wnt activation is functionally reversible, as withdrawal of the compound leads to normal multidifferentiation programs in both HESCs and MESCs. These results suggest that the use of GSK-3-specific inhibitors such as BIO may have practical applications in regenerative medicine.

Animals↗

A monoclonal antibody specific for conidia and mycelium wall layer of Penicillium and Aspergillus.

A monoclonal antibody was obtained from BALB/c mice immunized with Penicillium frequentans mycelium. The specificity of the antibody was evaluated by enzyme-linked immunosorbent and indirect immunofluorescence assays against the same mycelium. This IgM antibody cross-reacted with various strains of the Penicillium and Aspergillus genera. By indirect immunofluorescence assays, the antibody was able to stain about 10% of Penicillium and Aspergillus conidia, but major part of conidia did not absorb the fluorescence-labeled antibody before swelling. During germination of P. frequentans conidia, the germ tube wall which constitutes a continuation of an inner wall layer was also stained. During germination of P. griseofulvum, the protrusion of the germ tube wall was not always recognized by the antibody because the germ tube wall was constituted by a continuation of an outer spore wall layer. The study of the staining patterns of the spores and the protrusions suggests that the antibody specifically recognizes an antigen of the inner spore wall layer. The monoclonal antibody reacts with extracellular galactomannans produced by genera Aspergillus and Penicillium but is not directed against beta-(1,5)-linked galactofuranose units.

Animals↗

The FGFR pathway is required for the trunk-inducing functions of Spemann's organizer.

Xenopus laevis embryogenesis is controlled by the inducing activities of Spemann's organizer. These inducing activities are separated into two distinct suborganizers: a trunk organizer and a head organizer. The trunk organizer induces the formation of posterior structures by emitting signals and directing morphogenesis. Here, we report that the fibroblast growth factor receptor (FGFR) signaling pathway, also known to regulate posterior development, performs critical functions within the cells of Spemann's organizer. Specifically, the FGFR pathway was required in the organizer cells in order for those cells to induce the formation of somitic muscle and the pronephros. Since the organizer influences the differentiation of these tissues by emitting signals that pattern the mesodermal germ layer, our data indicate that the FGFR regulates the production of these signals. In addition, the FGFR pathway was required for the expression of chordin, an organizer-specific protein required for the trunk-inducing activities of Spemann's organizer. Significantly, the FGFR pathway had a minimal effect on the function of the head organizer. We propose that the FGFR pathway is a defining molecular component that distinguishes the trunk organizer from the head organizer by controlling the expression of organizer-specific genes required to induce the formation of posterior structures and somitic muscle in neighboring cells. The implications of our findings for the evolutionarily conserved role of the FGFR pathway in the functions of Spemann's organizer and other vertebrate-signaling centers are discussed.

Animals↗

Expression pattern of human hair keratin basic 1 (hHb1) in hair follicle and pilomatricoma.

Using in situ hybridization, human hair keratin basic 1 (hHb1) gene expression was investigated in human normal scalp. hHb1 transcripts were specifically detected in the cortical cells of hair shaft but neither in the outer and inner root sheaths, nor in the hair cuticle or the medulla. hHb1 expression was detected strongly in cortical cells located from the beginning of the keratogenous zone up to the isthmus. These data specify the localization of hHb1 expression. Furthermore, neoplasms with follicular differentiation, including trichoblastoma, trichoepithelioma, pilomatricoma, pilar carcinoma and basal-cell carcinoma, were analysed for hHb1 gene expression. One of the 4 pilomatricoma specimens examined exhibited a very high level of hHb1 transcripts. Interestingly, this labeling was specifically associated to a transitional cell layer en route to trichocytic differentiation, providing evidence that in pilomatricoma, epithelial germ cells can differentiate towards hair shaft keratinocytes before evolving in ghost cells.

Basal Cell Carcinoma↗

The distribution of betaglycan protein and mRNA in rat brain, pituitary, and gonads: implications for a role for betaglycan in inhibin-mediated reproductive functions.

Betaglycan was reported by our laboratory to serve as an inhibin binding protein and to facilitate the antagonism of activin signaling. Although an accessory receptor for TGFbeta and inhibin, its distribution within reproductive tissues remains largely unexplored. Histochemical analyses reveal betaglycan protein and mRNA distributed throughout the rat reproductive axis. In the brain, betaglycan mRNA is localized in discrete regions of the forebrain and brain stem, including olfactory, septal, and hypothalamic nuclei. In the pituitary, moderate levels of betaglycan protein and mRNA were observed in the anterior and intermediate lobes. Betaglycan immunoreactivity was colocalized with all the pituitary cell subtypes, to the greatest extent with the gonadotrope population. In the gonads, betaglycan mRNA was localized in cellular compartments, coinciding with its protein for the most part. Moderate levels of mRNA were observed in ovarian granulosa cells, with lower expression in the thecal layer and the oocyte. In the testes, betaglycan mRNA was observed in the Leydig and tubule-specific germ cells. This is the first comprehensive report detailing the distribution of betaglycan in mammalian reproductive tissues. The present findings illustrate and support the hypothesis of a modulatory role for betaglycan in TGFbeta and/or inhibin effects in these tissues.

Animals↗