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J W Pollard

Publications and source records attributed to J W Pollard.

At least 37 records · Page 2Linked to original sources

Transforming growth factor beta3 induces cell death during the first stage of mammary gland involution.

Involution of the mammary gland following weaning is divided into two distinct phases. Initially, milk stasis results in the induction of local factors that cause apoptosis in the alveolar epithelium. Secondly after a prolonged absence of suckling, the consequent decline in circulating lactogenic hormone concentrations initiates remodeling of the mammary gland to the virgin-like state. We have shown that immediately following weaning TGFbeta3 mRNA and protein is rapidly induced in the mammary epithelium and that this precedes the onset of apoptosis. Unilateral inhibition of suckling and hormonal reconstitution experiments showed that TGFbeta3 induction is regulated by milk stasis and not by the circulating hormonal concentration. Directed expression of TGFbeta3 in the alveolar epithelium of lactating mice using a beta-lactoglobulin promoter mobilized SMAD4 translocation to the nucleus and caused apoptosis of these cells, but not tissue remodeling. Transplantation of neonatal mammary tissue derived from TGFbeta3 null mutant mice into syngenic hosts resulted in a significant inhibition of cell death compared to wild-type mice upon milk stasis. These results provide direct evidence that TGFbeta3 is a local mammary factor induced by milk stasis that causes apoptosis in the mammary gland epithelium during involution.

Animals↗

Production of sexed lambs after biopsy of ovine blastocyts produced in vitro.

Embryos were generated by in vitro fertilization of in vitro-matured oocytes, cultured to the blastocyst stage, biopsied for sex determination by a PCR-based procedure, and transferred to synchronized recipients. Three out of 5 sheep (60%) were diagnosed pregnant, and 4 lambs of predicted sex were born.

Animals↗

Macrophages: important accessory cells for reproductive function.

Macrophages are found throughout reproductive tissues. To determine their role(s), we have studied mice homozygous for a null mutation (Csfm(op)) in the gene encoding the major macrophage growth factor, colony-stimulating factor-1 (CSF-1). Both male and female Csfm(op)/Csfm(op) mice have fertility defects. Males have low sperm number and libido as a consequence of dramatically reduced circulating testosterone. Females have extended estrous cycles and poor ovulation rates. CSF-1 is the principal growth factor regulating macrophage populations in the testis, male accessory glands, ovary, and uterus. However, analyses of CSF-1 nullizygous mice suggest that the primary reproductive defect is in the development of feedback regulation of the hypothalamic-pituitary axis. Although not correlating with deficiencies of microglia populations, electrophysiological investigations indicate an impairment of neuronal responses. This suggests that microglia, under the influence of CSF-1, act to organize neuronal connectivity during development and that the absence of this function results in a perturbation of the hypothalamic-pituitary-gonadal axis. Macrophages also appear to have functions in the differentiated tissues of the reproductive system, including having a positive influence on steroidogenic cells. These data suggest that macrophages, through their trophic functions, can be considered as essential accessory cells for normal reproductive functioning.

Animals↗

Colony-stimulating factor-1 and its receptor do not have a role in the pathogenesis of uterine sarcomas.

OBJECTIVE: Several studies have demonstrated overexpression of the mononuclear phagocytic growth factor colony-stimulating factor-1 (CSF-1) and its receptor (CSF-1R) in breast, ovarian, and endometrial adenocarcinomas, and their expression in each of these cancers is strongly correlated with poor prognosis. In addition to adenocarcinomas, sarcomas that are highly malignant arise at much lower frequency in the uterus. Given the common organ of origin and hormonal environment of the adenocarcinomas, we evaluated the potential role of CSF-1 and CSF-1R in the genesis of these tumors using immunohistochemical methods. RESULTS: Immunohistochemical analysis was performed on 19 archival uterine sarcoma samples. Affinity-purified rabbit anti-CSF-1 antiserum (R52) and human cross-reactive murine anti-c-fms antibody were used. In the 19 cases evaluated for CSF-1 immunoreactivity, 42.1% had staining in less than 25% of the tumor, 36.9% had staining in 25-50% of the tumor, and only 21% had staining in greater than 50% of the tumor. When present, the majority of the CSF-1 immunostaining was associated with the extracellular matrix. There was variable intensity in CSF-1 expression: 52.6% had negative to mild staining, and 47.4% had moderate to strong staining. Immunostaining for the CSF-1R revealed that 52.6% of tumors had expression in less than 25% of cells, 21.0% had expression in 25-50% of the tumor, and 26.4% had staining in greater than 50% of the tumor. There was variable intensity of CSF-1R staining. Slight staining was found in 31.6% of the cases, moderate staining was found in 47.4% of the tumors, and 21.0% of the cases had strong expression. There was no statistically significant correlation between CSF-1 and CSF-1R expression and stage, estrogen/progesterone receptor status, number of mitoses per 10 high-power fields, or disease outcome. In addition, overall expression and intensity of CSF-1 and CSF-1R did not predict tumor virulence or disease outcome. CONCLUSION: In contradistinction to endometrial adenocarcinomas, in which CSF-1/CSF-1R is strongly correlated with tumor progression, CSF-1 and CSF-1R overexpression does not appear to play a role in the growth and differentiation of uterine sarcomas.

Female↗

The M cell as a portal of entry to the lung for the bacterial pathogen Mycobacterium tuberculosis.

M. tuberculosis accesses the terminal lung and is phagocytosed by alveolar macrophages. Utilizing a mouse intratracheal challenge model, we demonstrate that M. tuberculosis rapidly enters through M cells as well. From there, bacilli are deposited within associated intraepithelial leukocytes and subsequently conveyed to the draining lymph nodes early after infection. Osteopetrotic (Csfm(op)/Csfm(op)) mice, null mutants for macrophage colony-stimulating factor, possess diminished numbers of circulating monocytes and tissue macrophages. Csfm(op)/Csfm(op) mice were highly susceptible to challenge with M. tuberculosis. In contrast to controls, tubercle bacilli were not conveyed to draining lymph nodes early after infection but were instead retained within the mucosa. These results indicate that M cells represent an alternate portal of entry for M. tuberculosis, which may contribute to the rapid development of protective lung immune responses.

Animals↗

Mammalian MutS homologue 5 is required for chromosome pairing in meiosis.

MSH5 (MutS homologue 5) is a member of a family of proteins known to be involved in DNA mismatch repair. Germline mutations in MSH2, MLH1 and GTBP (also known as MSH6) cause hereditary non-polyposis colon cancer (HNPCC) or Lynch syndrome. Inactivation of Msh2, Mlh1, Gtmbp (also known as Msh6) or Pms2 in mice leads to hereditary predisposition to intestinal and other cancers. Early studies in yeast revealed a role for some of these proteins, including Msh5, in meiosis. Gene targeting studies in mice confirmed roles for Mlh1 and Pms2 in mammalian meiosis. To assess the role of Msh5 in mammals, we generated and characterized mice with a null mutation in Msh5. Msh5-/- mice are viable but sterile. Meiosis in these mice is affected due to the disruption of chromosome pairing in prophase I. We found that this meiotic failure leads to a diminution in testicular size and a complete loss of ovarian structures. Our results show that normal Msh5 function is essential for meiotic progression and, in females, gonadal maintenance.

Animals↗

Progesterone inhibits estrogen-induced cyclin D1 and cdk4 nuclear translocation, cyclin E- and cyclin A-cdk2 kinase activation, and cell proliferation in uterine epithelial cells in mice.

The response of the uterine epithelium to female sex steroid hormones provides an excellent model to study cell proliferation in vivo since both stimulation and inhibition of cell proliferation can be studied. Thus, when administered to ovariectomized adult mice 17beta-estradiol (E2) stimulates a synchronized wave of DNA synthesis and cell division in the epithelial cells, while pretreatment with progesterone (P4) completely inhibits this E2-induced cell proliferation. Using a simple method to isolate the uterine epithelium with high purity, we have shown that E2 treatment induces a relocalization of cyclin D1 and, to a lesser extent, cdk4 from the cytoplasm into the nucleus and results in the orderly activation of cyclin E- and cyclin A-cdk2 kinases and hyperphosphorylation of pRb and p107. P4 pretreatment did not alter overall levels of cyclin D1, cdk4, or cdk6 nor their associated kinase activities but instead inhibited the E2-induced nuclear localization of cyclin D1 to below the control level and, to a lesser extent, nuclear cdk4 levels, with a consequent inhibition of pRb and p107 phosphorylation. In addition, it abrogated E2-induced cyclin E-cdk2 activation by dephosphorylation of cdk2, followed by inhibition of cyclin A expression and consequently of cyclin A-cdk2 kinase activity and further inhibition of phosphorylation of pRb and p107. P4 is used therapeutically to oppose the effect of E2 during hormone replacement therapy and in the treatment of uterine adenocarcinoma. This study showing a novel mechanism of cell cycle inhibition by P4 may provide the basis for the development of new antiestrogens.

Animals↗

Complexity in uterine macrophage responses to cytokines in mice.

Uterine stromal macrophages change dramatically in density and morphology through the estrous cycle and during early pregnancy, whereas those in the mesometrial triangle do not undergo these changes. The mononuclear phagocytic growth factor, colony-stimulating factor-1 (CSF-1), regulates both the density and morphology of uterine macrophage populations, as shown by the fact that uterine macrophages are depleted and more rounded in the absence of CSF-1 caused by the osteopetrotic (csfm(op)) null mutation, compared to those of normal mice. Restoration of circulating CSF-1 to the nullizygous mice did not affect stromal macrophage density although it restored the population in the mesometrial triangle. This suggests CSF-1 regulation of these macrophage populations by local and humoral routes, respectively. Nevertheless, even in the absence of CSF-1, stromal macrophage population density varies 30-fold through the estrous cycle, suggesting the involvement in their regulation of factors other than CSF-1, such as the chemokines, which are chemoattractive for macrophages. The mRNA for the chemokines JE (MCP-1), C10, RANTES, and MIP1alpha are expressed in the uterus, with elevated levels observed on the first day of pregnancy. Such molecules, together with CSF-1, may play a role in modulating the complexities of uterine macrophage dynamics in response to sex steroid hormones and mating.

Animals↗

Normal sexual function in male mice lacking a functional type I interleukin-1 (IL-1) receptor.

Previous studies have shown that macrophages and their cytokine products, particularly interleukin-1 (IL-1) and tumor necrosis factor-alpha (TNF alpha), regulate testicular Leydig cell steroidogenesis in vitro and in vivo. However, the data concerning IL-1 have been somewhat contradictory, showing both inhibitory and stimulatory effects of IL-1 depending on the experimental conditions. In the present studies, mice lacking a functional type I IL-1 receptor (IL-1R]; the only IL-1 receptor subtype capable of IL-1-induced signal transduction) were used to examine the role of this cytokine in vivo. The data show that the absence of IL-1 signal transduction has no effect on steroidogenic enzyme concentrations within the Leydig cells, and the males have normal serum testosterone concentrations. Moreover, epididymal sperm numbers are normal in IL-1RI nullizygous males in contrast to recent reports of a role for IL-1 in germ cell proliferation and DNA synthesis. Taken together these observations suggest that IL-1 signalling is not essential for Leydig cell function or spermatogenesis in vivo and highlight the need to reassess many of the current methods of experimental approaches for examining cytokine function in vitro.

Animals↗

The absence of p27Kip1, an inhibitor of G1 cyclin-dependent kinases, uncouples differentiation and growth arrest during the granulosa->luteal transition.

The involvement of cyclin-dependent kinase inhibitors in differentiation remains unclear: are the roles of cyclin-dependent kinase inhibitors restricted to cell cycle arrest; or also required for completion of the differentiation program; or both? Here, we report that differentiation of luteal cells can be uncoupled from growth arrest in p27-deficient mice. In these mice, female-specific infertility correlates with a failure of embryos to implant at embryonic day 4.5. We show by ovarian transplant and hormone reconstitution experiments that failure to regulate luteal cell estradiol is one physiological mechanism for infertility in these mice. This failure is not due to a failure of p27-deficient granulosa cells to differentiate after hormonal stimulation; P450scc, a marker for luteal progesterone biosynthesis, is expressed and granulosa cell-specific cyclin D2 expression is reduced. However, unlike their wild-type counterparts, p27-deficient luteal cells continue to proliferate for up to 3.5 days after hormonal stimulation. By day 5.5, however, these cells withdraw from the cell cycle, suggesting that p27 plays a role in the early events regulating withdrawal of cells from the cell cycle. We have further shown that in the absence of this timely withdrawal, estradiol regulation is perturbed, explaining in part how fertility is compromised at the level of implantation. These data support the interpretation of our previous observations on oligodendrocyte differentiation about a role for p27 in establishing the nonproliferative state, which in some cases (oligodendrocytes) is required for differentiation, whereas in other cases it is required for the proper functioning of a differentiated cell (luteal cell).

Animals↗

Mutation in the mismatch repair gene Msh6 causes cancer susceptibility.

Mice carrying a null mutation in the mismatch repair gene Msh6 were generated by gene targeting. Cells that were homozygous for the mutation did not produce any detectable MSH6 protein, and extracts prepared from these cells were defective for repair of single nucleotide mismatches. Repair of 1, 2, and 4 nucleotide insertion/deletion mismatches was unaffected. Mice that were homozygous for the mutation had a reduced life span. The mice developed a spectrum of tumors, the most predominant of which were gastrointestinal tumors and B- as well as T-cell lymphomas. The tumors did not show any microsatellite instability. We conclude that MSH6 mutations, like those in some other members of the family of mismatch repair genes, lead to cancer susceptibility, and germline mutations in this gene may be associated with a cancer predisposition syndrome that does not show microsatellite instability.

Adenomatous Polyposis Coli Protein↗

Role of colony-stimulating factor-1 in reproduction and development.

The CSF-1 null mouse, osteopetrotic, has provided a powerful model in which to study the biological functions of CSF-1. In this review, I will describe our studies that have used this mouse model to determine the impact of a lack of CSF-1 on developmental processes and in reproduction. A role for CSF-1 in reproduction was originally suggested by the sex steroid hormone-regulated uterine epithelial synthesis of CSF-1 and the expression of its receptor in trophoblast and decidual cells. Studies on the fertility of CSF-1 deficient osteopetrotic mice (csfmop/csfmop) mice confirmed this suggestion and in addition revealed an unexpected function for CSF-1 in male fertility. In both sexes, CSF-1 appears to regulate gonadal steroidogenesis, probably through its action on macrophages that are abundant throughout the ovary and testis. In the female, CSF-1 affects ovulation in vivo and in vitro, and impacts the preimplantation embryo, increasing both its rate of development and the number of trophectodermal cells in the blastocyst. CSF-1 also has a role in mammary gland development during pregnancy, since at mid-gestation in csfmop/csfmop mice, ductal branching is impaired, and after partiturition, there is a failure to switch to lactation. The relative failure of csfmop/csfmop mice to respond to external stimuli also suggested a role for CSF-1 in the brain. CSF-1 mRNA is expressed in a regional specific manner in the brain through development whilst the CSF-1 receptor is expressed throughout the brain in microglia. CSF-1 is neurotrophic in embryonic neuronal cultures and its absence in csfmop/csfmop mice results in severe electro-physiological abnormalities in the cortex. This suggests that CSF-1 is a neurotrophic factor acting through the microglia. The pleiotropic roles for CSF-1 in reproduction and in the brain suggest that CSF-1 exerts many of its action through the trophic activities of cells of the mononuclear phagocytic lineage.

Animals↗

Colony stimulating factor-1 in human follicular fluid.

OBJECTIVE: To evaluate colony stimulating factor-1 (CSF-1) concentrations in serum and follicular fluid (FF) at the time of oocyte retrieval and to test for presence of messenger RNA (mRNA) for CSF-1 and its receptor, c-fms, in FF cells. DESIGN: Collection of serum and FF at the time of oocyte retrieval. SETTING: A university IVF program. PATIENT(S): Forty-five women undergoing oocyte retrieval for IVF. INTERVENTION(S): Serum and FF were obtained from 24 women, and FF only was obtained from 21 women. MAIN OUTCOME MEASURE(S): Colony-stimulating factor-1 concentrations were determined by RIA, and the presence of mRNA for CSF-1 and c-fms was determined by reverse transcriptase-polymerase chain reaction. RESULT(S): Mean FF concentrations of CSF-1 were significantly higher than mean serum levels (10.0 +/- 1.3 and 3.6 +/- 0.3 (+/-SE) ng/mL, respectively). Colony-stimulating factor-1 and c-fms message were detected in FF cells, and alternatively spliced forms of CSF-1 message were present. CONCLUSION(S): The presence of CSF-1, a primary regulator of tissue macrophages, in FF, and the presence of mRNA for CSF-1 and its receptor c-fms in FF-derived cells, suggest a role for this growth factor in ovarian function.

Blotting, Southern↗

Absence of colony stimulating factor-1 in osteopetrotic (csfmop/csfmop) mice disrupts estrous cycles and ovulation.

Colony stimulating factor-1 (CSF-1) is a hematopoietic growth factor required for the recruitment, proliferation, and differentiation of mononuclear phagocytes. In addition, CSF-1 is expressed in the female reproductive tract coincident with CSF-1 receptor localization on preovulatory oocytes, ovarian and uterine macrophages, decidual cells, and trophoblast. A role for CSF-1 in female reproduction was confirmed by studies on CSF-1-deficient, osteopetrotic (csfmop/csfmop) mice, which suffer from low pregnancy rates and smaller litter sizes compared to wild-type mice. The present study was designed to determine the exact causes of the preimplantation fertility defects in these mutant mice. Female csfmop/csfmop mice have extended estrous cycles compared to wild-type females, and s.c. administration of CSF-1 from birth restores estrous cyclicity. These mice fail to display the characteristic proestrous surge in circulating estradiol-17beta. However, concentrations of this hormone are normal during the remainder of the cycle. Furthermore, csfmop/csfmop females have significantly lower ovulation rates than wild-type mice, but the implantation rates of fertilized oocytes are normal. Serum pregnancy concentrations of progesterone are also normal in csfmop/csfmop females, in line with the relatively normal progression of pregnancy in these mice. Thus, the major effect of CSF-1 on female reproductive function is on the frequency and rate of ovulation, indicating a major role for this growth factor in regulating follicular development and ovulation.

Animals↗

Effect of the colony-stimulating factor-1 null mutation, osteopetrotic (csfm(op)), on the distribution of macrophages in the male mouse reproductive tract.

Macrophages are found throughout the male reproductive tract and its accessory glands. Mice homozygous for a null mutation (csfm(op)) in the gene for the mononuclear phagocytic growth factor colony-stimulating factor-1 (CSF-1) have a significantly lower density of macrophages, defined by the mononuclear phagocytic antigen F4/80, in the testis, cauda and caput epididymis, prostate, seminal vesicles, and vas deferens. These data indicate that CSF-1 is the major growth factor regulating the occurrence of macrophages in male reproductive tissues. The residual macrophages were correctly located in the tissue except in the caput epididymis, where they failed to take up positions adjacent to the tubular epithelium. Restoration of circulating CSF-1 concentrations in csfm(op)/csfm(op) males totally restored F4/80+ cell density in the testis and caput and cauda epididymis and partially restored their density in the vas deferens and seminal vesicles but failed to affect density in the prostate. This failure to correct all populations with circulating CSF-1 suggests the requirement for local synthesis of CSF-1 at appropriate developmental stages and/or its expression in a cell surface-associated form. The absence of macrophages in the testis and epididymis of csfm(op)/csfm(op) mice correlates with dysfunction in these tissues, suggesting that macrophages play important nonimmunological roles in these tissues.

Animals↗

Colony-stimulating factor-1 plays a major role in the development of reproductive function in male mice.

Colony-stimulating factor-1 (CSF-1) is the principal regulator of cells of the mononuclear phagocytic lineage that includes monocytes, tissue macrophages, microglia, and osteoclasts. Macrophages are found throughout the reproductive tract of both males and females and have been proposed to act as regulators of fertility at several levels. Mice homozygous for the osteopetrosis mutation (csfm[op]) lack CSF-1 and, consequently, have depleted macrophage numbers. Further analysis has revealed that male csfm(op)/csfm(op) mice have reduced mating ability, low sperm numbers, and 90% lower serum testosterone levels. The present studies show that this low serum testosterone is due to reduced testicular Leydig cell steroidogenesis associated with severe ultrastructural abnormalities characterized by disrupted intracellular membrane structures. In addition, the Leydig cells from csfm(op)/ csfm(op) males have diminished amounts of the steroidogenic enzyme proteins P450 side chain cleavage, 3beta-hydroxysteroid dehydrogenase, and P450 17alpha-hydroxylase-lyase, with associated reductions in the activity of all these steroidogenic enzymes, as well as in 17beta-hydroxysteroid dehydrogenase. The CSF-1-deficient males also have reduced serum LH and disruption of the normal testosterone negative feedback response of the hypothalamus, as demonstrated by the failure to increase LH secretion in castrated males and their lack of response to exogenous testosterone. However, these males are responsive to GnRH and LH treatment. These studies have identified a novel role for CSF-1 in the development and/or regulation of the male hypothalamic-pituitary-gonadal axis.

17-Hydroxysteroid Dehydrogenases↗

Rho, Rac and Cdc42 regulate actin organization and cell adhesion in macrophages.

Rho family proteins are known to regulate actin organization in fibroblasts, but their functions in cells of haematopoietic origin have not been studied in detail. Bac1.2F5 cells are a colony-stimulating factor-1 (CSF-1)-dependent murine macrophage cell line; CSF-1 stimulates their proliferation and motility, and acts as a chemoattractant. CSF-1 rapidly induced actin reorganization in Bac1 cells: it stimulated the formation of filopodia, lamellipodia and membrane ruffles at the plasma membrane, as well as the appearance of fine actin cables within the cell interior. Microinjection of constitutively activated (V12)Rac1 stimulated lamellipodium formation and membrane ruffling. The dominant inhibitory Rac mutant, N17Rac1, inhibited CSF-1-induced lamellipodium formation, and also induced cell rounding. V12Cdc42 induced the formation of long filopodia, while the dominant inhibitory mutant N17Cdc42 prevented CSF-1-induced formation of filopodia but not lamellipodia. V14RhoA stimulated actin cable assembly and cell contraction, while the Rho inhibitor, C3 transferase, induced the loss of actin cables. Bac1 cells had cell-to-substratum adhesion sites containing beta1 integrin, pp125FAK, paxillin, vinculin, and tyrosine phosphorylated proteins. These 'focal complexes' were present in growing and CSF-1-starved cells, but were disassembled in cells injected with N17Cdc42 or N17Rac1. Interestingly, beta1 integrin did not disperse until long after focal phosphotyrosine and vinculin staining had disappeared. We conclude that in Bac1 macrophages Cdc42, Rac and Rho regulate the formation of distinct actin filament-based structures, and that Cdc42 and Rac are also required for the assembly of adhesion sites to the extracellular matrix.

Actins↗