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Biomedical subjects

J C Irwin

Publications and source records attributed to J C Irwin.

14 recordsLinked to original sources

Steroid and peptide regulation of insulin-like growth factor-binding proteins secreted by human endometrial stromal cells is dependent on stromal differentiation.

Endometrial stromal cells undergo decidual transformation, in response to epidermal growth factor (EGF) and progesterone. Since insulin-like growth factors (IGFs) and IGF-binding proteins (IGFBPs) are believed to be involved in endometrial differentiation, and insulin regulates IGFBP production in a variety of cells, we have investigated the modulatory roles of EGF, progesterone, and insulin on IGFBP secretion by long term cultures of human endometrial stromal cells. Without insulin, the principal IGFBP secreted into conditioned medium, detected by Western ligand blotting, was a 28-kilodalton (kDa) IGFBP, identified by immunoprecipitation as IGFBP-1. This was observed only when the stromal cells were decidualized. With increasing insulin, IGFBP-1 decreased to undetectable levels. Concomitantly, IGFBP-2 increased, as did a 24-kDa IGFBP (believed to be IGFBP-4) and a 28-kDa IGFBP, shown to be a glycoprotein by endoglycosidase sensitivity (and believed to be glycosylated IGFBP-4). In the nondecidualized state, insulin increased the secretion of IGFBP-3, IGFBP-2, and the 24-kDa IGFBP, which were slightly inhibited by EGF and relatively unaffected by progesterone alone. In the absence of insulin, progesterone weakly stimulated IGFBP-1 secretion, which increased markedly when the cells were decidualized by combined treatment with EGF and progesterone. These data show that IGFBP-3, IGFBP-2, IGFBP-1, and presumably IGFBP-4 and its glycosylated form are differentially regulated by peptide and steroid hormones in endometrial stromal cells and that their regulation is a function of stromal differentiation.

Carrier Proteins

Identification of insulin-like growth factor binding proteins in human oviduct.

OBJECTIVE: To determine if human oviduct expresses messenger ribonucleic acids (mRNAs) encoding insulin-like growth factor binding proteins (IGFBPs), if oviductal epithelium secretes IGFBPs into conditioned medium (CM), and if IGFBP secretion is regulated by steroid hormones. DESIGN: Northern blots of RNA, isolated from late proliferative phase human fimbria and oviductal isthmus, were probed with complementary deoxyribonucleic acids encoding IGFBP-1, IGFBP-2, IGFBP-3, and IGFBP-4. In addition, oviductal ampullary epithelial cells were cultured with and without estrogen and/or progesterone (P), and IGFBPs were examined in CM by Western ligand blot analysis and identified using specific antisera. SETTING: Tissue was obtained from hysterectomy specimens at Stanford University Hospital, a private teaching institution. PATIENTS, PARTICIPANTS: Patients undergoing hysterectomy for benign disease. INTERVENTIONS: None. MAIN OUTCOME MEASURES: Transcripts of IGFBP mRNA and IGFBPs secreted into CM were detected by autoradiography of Northern and Western ligand blots, respectively. RESULTS: Messenger RNA transcripts encoding IGFBP-2, -3, and -4 were detected, whereas IGFBP-1 mRNA was barely detectable in oviductal tissue. In CM, IGFBP-2 and IGFBP-3 were detected, as was a unique 24-kd IGFBP, although IGFBP-1 was not observed. Estrogen and/or P did not regulate the secretion of these IGFBPs by cultured oviductal epithelium. CONCLUSIONS: Human oviduct expresses mRNAs encoding IGFBP-2, IGFBP-3, and IGFBP-4, and in vitro oviductal epithelium secretes IGFBP-2, IGFBP-3, and a unique binding protein of 24 kd, which may be the recently identified IGFBP-4.

Animals

Immortalization by human papillomavirus type 16 alters retinoid regulation of human ectocervical epithelial cell differentiation.

Human cervical cells are a primary site of papillomavirus infection and 90% of all cervical tumors are positive for human papillomavirus (HPV) DNA. Over one-half million cases of HPV-associated cervical, vulvar, and penile cancers are reported per year. Yet, in spite of the magnitude of this problem, the effects of HPV infection on cervical cell growth and differentiation are not well characterized. To study these effects we have developed a clonal cell line of HPV-16-immortalized ectocervical epithelial cells, ECE16-1. In the present study we demonstrate that under normal growth conditions the cytokeratin content of ECE16-1 cells is dramatically altered compared to normal cervical cells; the level of K5, K6, K14, K16, and K17 is reduced and the level of K7, K8, and K19 is increased. We demonstrate that this change is largely due to a difference in the response of the cells to retinoids, as growth in retinoid-free medium produces a complete normalization of cytokeratin levels. Upon addition of natural and synthetic retinoids, the levels of cytokeratins K5, K6, K14, K16, and K17 are reduced, while the levels of cytokeratins K19, K7, and K8 are increased. Cytokeratin K13 levels are only slightly altered. The level of involucrin, a precursor of the cervical cell envelope (superficial cell), is not changed by immortalization nor is it regulated by retinoids. Transglutaminase activity is also not appreciably altered by immortalization; however, ECE16-1 cells make fewer envelopes than normal ECE cells. Our results clearly indicate that natural and synthetic retinoids suppress the differentiation of HPV transformed cervical cells. In early, low grade, cervical intraepithelial neoplasia, transcription of the HPV16 E6/E7 oncogenes is confined to the suprabasal layers. Our results suggest that retinoids, because they inhibit the differentiation of HPV16 immortalized cervical cells, may reduce the extent of viral oncogene transcription and thus be useful in slowing the neoplastic process.

Cell Differentiation

Characterization of the steroid-dependence of insulin-like growth factor-binding protein-2 synthesis and mRNA expression in cultured human endometrial stromal cells.

The insulin-like growth factors (IGF-I and -II) are believed to be important in endometrial differentiation and blastocyst nidation, and proteins that regulate IGF action (IGF-binding proteins, IGFBPs) are hormonally regulated in endometrium during the menstrual cycle. To characterize further steroid-dependence of the IGFBPs, we established endometrial stromal cells in culture in the absence and presence of oestradiol (E2) and progesterone (P) and examined the conditioned medium for IGFBPs by Western ligand blot analysis. Stromal cells constitutively synthesized IGFBP-3, IGFBP-2, a 27 kd, and a 24 kd IGFBP. In the presence of E2 and P, a 10- to 15-fold increase in IGFBP-2 was detected in the conditioned medium beginning after about 7 days in culture, when cells decidualized and steroid-mediated prolactin secretion began. Withdrawal of steroids resulted in a marked decrease in IGFBP-2, comparable to control levels, and cells increased their IGFBP-2 production when rechallenged with E2 and P. Total RNA was isolated from stromal cells, and Northern blot analysis using a cDNA probe specific for IGFBP-2 revealed differential expression of a 1.4 kb mRNA transcript in steroid-treated compared to control cells. The effects of progestational agents alone on IGFBP synthesis was also examined. Progesterone, medroxyprogesterone acetate and norethindrone all stimulated IGFBP-2 synthesis 12- to 15-fold compared to controls, and a progesterone receptor antagonist, RU 486, blocked the stimulatory effect of progesterone. IGFBP-2 synthesis was increased two-fold above controls by 17-alpha-hydroxyprogesterone, and RU 486 alone and hydrocortisone were without effect. Identification of IGFBP-2 in conditioned medium was made using IGFBP-specific antiserum. These data show that (a) endometrial stromal cells synthesize and secrete IGFBP-2, (b) IGFBP-2 protein synthesis is controlled by steroid hormones, (c) P, by interacting with its receptor, modulates IGFBP-2 synthesis and (d) expression of IGFBP-2 mRNA is controlled by sex steroids.

Autoradiography

Insulin-like growth factor-II (IGF-II) and IGF binding proteins in human endometrium.

The insulin-like growth factor autocrine/paracrine system is believed to play a role in steroid-mediated endometrial differentiation. It is constituted of the mitogenic peptides (IGF-I and IGF-II), membrane receptors, and a family of high-affinity binding proteins (IGFBPs) that regulate the actions of the IGFs at their target cells. We have investigated expression of the mRNAs encoding the three major IGFBPs (IGFBP-1, IGFBP-2, and IGFBP-3) in human endometrium and have found, by Northern analysis, differential expression of all three mRNAs in secretory compared to proliferative endometrium, different steroidal milieux. IGF-II mRNAs were also detected in secretory endometrium. Finally, we found that human endometrial stromal cells in culture synthesize and secrete IGFBP-2 and IGFBP-3, and that the synthesis of IGFBP-2 is regulated by steroid hormones.

Autoradiography

Sex steroids and growth factors differentially regulate the growth and differentiation of cultured human endometrial stromal cells.

We have studied the interaction between growth factors and sex steroids in regulating human endometrial stromal cell growth and differentiation using an in vitro serum-free cell culture model system. None of the growth factors [epidermal growth factor (EGF), basic fibroblast growth factor (bFGF), insulin, insulin-like growth factor-I (IGF-I), IGF-II, or platelet-derived growth factor] stimulated the growth of human endometrial stromal cells grown in progestin-free medium. However, the growth of progestin-treated cultures was dramatically increased by EGF, bFGF, or platelet-derived growth factor, but not by insulin, IGF-I, or IGF-II. Estrogen could not substitute for progesterone in this protocol, and coadministration of estrogen with progestin did not enhance the response over that to progesterone alone. In contrast to their positive effects on growth, only EGF, not bFGF, stimulated stromal cell differentiation, as measured by an increase in PRL, laminin, and fibronectin production; moreover, stimulation of differentiation was dependent upon the presence of progestin in the culture medium. Thus, human endometrial stromal cell growth is 1) regulated by a discrete set of growth factors, only a subset of which regulates stromal cell differentiation; and 2) regulation of stromal cell growth and stromal cell differentiation by growth factors is progestin dependent. Our results provide direct evidence for interaction between growth factors and sex steroids in the regulation of stromal cell growth and differentiation in vitro and suggest that growth factors may be absolutely required in conjunction with progesterone for the decidual response in vivo.

Cell Differentiation

Insulin-like growth factor binding proteins in human endometrium: steroid-dependent messenger ribonucleic acid expression and protein synthesis.

The insulin-like growth factor (IGF) autocrine/paracrine system is believed to play a role in endometrial differentiation and trophoblast growth. The IGFs bind with high affinity to a family of binding proteins (IGFBPs) that regulate the actions of the IGFs at their target cells. IGFBP-1, one of three well-characterized IGFBPs in humans, has been shown by numerous investigators to be present in secretory but not proliferative endometrium; however, no information is available with regard to two other human IGFBPs, IGFBP-2 and IGFBP-3, in normal human endometrium. We have examined expression of the messenger RNAs (mRNAs) encoding IGFBP-2 and IGFBP-3 in human proliferative endometrium [under the influence of estradiol (E2)] compared to secretory endometrium (under the influence of E2 and progesterone). Using a complementary DNA probe specific for IGFBP-2, by Northern analysis, expression of a 1.4 kilobase mRNA was found to be differentially expressed in secretory compared to proliferative phase endometrium. Using a complementary DNA probe encoding IGFBP-3, a 2.4 kilobase mRNA was found in endometrium and was also found to be differentially expressed in secretory compared to proliferative phase endometrium. Endometrial stromal cells were established in culture and revealed constitutive synthesis and secretion of IGFBP-2 and IGFBP-3 into the conditioned medium (CM), as detected by Western ligand blot analysis of the CM. Identification of the IGFBPs in the CM was made using IGFBP-2 and IGFBP-3 specific antiserum. In the presence of E2 and progesterone, there was an enhancement in the amount of IGFBP-3 and a marked enhancement of IGFBP-2 in the conditioned media, suggesting sex steroid-dependence of IGFBP-2 and, to a lesser extent, IGFBP-3 protein synthesis. Western ligand blot analysis of IGFBPs in serum throughout the menstrual cycle revealed no hormonal dependence in the serum IGFBPs, suggesting local action of the IGFBPs in endometrium. These data thus show that mRNAs encoding IGFBP-2 and IGFBP-3 are expressed in human endometrium, that their expression is differentially regulated in secretory compared to proliferative phase endometrium (different steroidogenic environments), and that the synthesis of both IGFBP-2 and IGFBP-3 proteins is regulated by steroid hormones.

Autoradiography

Hormonal regulation of human endometrial stromal cells in culture: an in vitro model for decidualization.

Stromal cells derived from proliferative or secretory human endometria, cultured in the absence of steroid hormones, grew as monolayers that showed only occasional areas of immunoreactive fibronectin and did not produce detectable levels of prolactin (PRL) or laminin. Treatment with physiological doses of estradiol and progesterone induced PRL production and stimulated cell proliferation, resulting in multilayering with an increase of the saturation density. Electron microscopy showed the development of gap junctions, whereas immunofluorescence revealed a dense pericellular matrix containing fibronectin and laminin. These findings show that human endometrial stromal cells in culture respond to physiological doses of ovarian hormones with ultrastructural, proliferative, and biochemical changes that are characteristic of decidualization in vivo. This culture system thus provides an in vitro model for human decidualization.

Cell Division

Decrease in tumor-cell attachment and in a 140-kDa fibronectin receptor correlate with greater expression of multiple 34-kDa surface proteins and cytoplasmic 54-kDa components.

B16 melanoma cells attach to matrix-bound fibronectin but fail to adhere to albumin-coated surfaces supplemented with soluble fibronectin. Attachment to substratum is also decreased in the presence of an adhesion-disrupting antibody, or when cells are seeded on substrates poorly adhesive for these cells, such as collagen gels. We have now investigated some of the more general adhesion-related alterations that occur between flattened and poorly attached cells. Immune blots of octylglucoside extracts with the adhesion-disrupting IgG revealed a 140-kDa component in flattened cells, in contrast to the increased detection of a 54-kDa species in a comparable assay with rounded cells. Surface iodination also showed a decreased external exposure of a 140-kDa fibronectin binding species and an increased labelling in multiple 34-kDa protein species, in cells with decreased attachment to substratum. Analysis of 35S-methionine-labelled cell aggregates cultured on collagen gels also revealed a decrease in the 140-kDa region and a greater labelling of multiple 54-kDa components, compared to the same cells flattened on fibronectin. A change in 54- and 34-kDa species was also seen in matrix-associated components of rounded cells that failed to attach with soluble fibronectin. Since the 34-kDa species increase in poorly adherent cells is mainly detected by iodination, and the 54-kDa species increase in the same cells is partly associated with the corresponding detergent-insoluble matrices, we propose that these 2 novel proteins may relate to cell rounding, through a transmembrane modulation involving both surface membrane and cytoskeletal structures.

Animals