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Biomedical subjects

D A Redmer

Publications and source records attributed to D A Redmer.

At least 73 records · Page 4Linked to original sources

Vascular development and heparin-binding growth factors in the bovine corpus luteum at several stages of the estrous cycle.

Immunolocalization of factor VIII (a specific endothelial cell marker) and heparin-binding (fibroblast) growth factors (HBGF)-1 and HBGF-2, along with quantitative image analysis, were used to evaluate vascular development and distribution of HBGF in the bovine corpus luteum (CL) at three stages (early, middle, and late) of the estrous cycle. Luteal vascularity increased from the early to the middle stage and then declined to the late stage. During the early stage, most of the microvessels were present in the cores of the tissue infoldings (presumably thecal-derived areas), but numerous capillary sprouts could be seen invading the parenchymal areas. During the middle stage, capillary density was so great that most parenchymal cells were in contact with one or more capillaries. At the late stage, relatively few capillaries were present in the parenchymal areas, whereas larger microvessels were prominent throughout the CL. Throughout the estrous cycle, HBGF-1 and HBGF-2 were present primarily in the cytoplasm of large and small luteal cells. For each stage of the estrous cycle, HBGF-2 staining was greater than that of HBGF-1. Relatively high levels of HBGF-2, but not HBGF-1, were also present in connective tissue tracts. In addition, HBGF-1 and HBGF-2 appeared to co-localize in some luteal cells. Although the distribution of HBGF-1 was homogeneous throughout the CI, that of HBGF-2 was heterogeneous. For HBGF-1, staining increased from the early to the middle stage but remained unchanged from the middle to the late stage. In contrast, HBGF-2 staining was greatest in the middle stage and similar in the early and late stages. These data are the first report of HBGF-1 and HBGF-2 immunolocalization in bovine luteal tissues throughout the estrous cycle, and demonstrate that HBGF-2 staining follows a pattern similar to that of luteal vascular development.

Animals↗

Growth and cellular proliferation of ovine corpora lutea throughout the estrous cycle.

This study was conducted to determine the rates of growth and cellular proliferation of ovine corpora lutea (CL) throughout the estrous cycle. To determine the cellular labeling index (LI), ewes received an iv injection of bromodeoxyuridine (BrdU) 1 h before death on days 2, 4, 8, 12, or 15 (day 0 = estrus; n = 6-12 ewes/day). At death, CL were weighed, and samples of each were fixed in Carnoy's solution or frozen until analyzed for DNA, protein, and progesterone contents. Nuclear incorporation of BrdU was determined in paraffin-embedded tissue sections by using a primary antibody against BrdU and a fluorescent (fluorescein isothiocyanate-labeled) secondary antibody, and sections were counterstained with propidium iodide (a nuclear stain). The labeling index (BrdU-labeled nuclei as a proportion of propidium iodide-labeled nuclei) of each CL was determined by using dual channel interactive laser cytometry and image analysis. Moreover, BrdU and 3 beta-hydroxysteroid dehydrogenase (a marker for steroidogenic cells) or BrdU and factor VIII (a marker for endothelial cells) were immunolocalized in tissue sections by using double immunohistochemical or dual immunofluorescent staining, respectively. Results demonstrated that cellular proliferation was greatest (LI, 34.1 +/- 2.1%) on day 2 and decreased (P < 0.01) through day 15 (LI, 0.7 +/- 0.1%) of the estrous cycle. The results of the immunohistochemical studies provide evidence that both parenchymal (steroidogenic) and nonparenchymal (e.g. endothelial, fibroblastic) luteal cells proliferated throughout the ovine estrous cycle. Conversely, from days 2-12 of the estrous cycle, fresh weight and DNA content of CL increased linearly (P < 0.01; 8- and 10-fold, respectively), then decreased (P < 0.02) from days 12-15. Ratios of protein/DNA on days 2, 4, and 8 were similar and were greater (P < 0.02) than those on days 12 and 15, which also were similar. These data demonstrate that growth of the ovine CL is extremely rapid, linear from days 2-12, and primarily due to hyperplasia. In addition, the high rate of cellular proliferation is associated primarily with nonsteroidogenic cells, a large proportion of which appear to be endothelial cells. Data such as these will enable us to determine the factors that are important in regulating luteal growth and development in normal and pathological conditions.

3-Hydroxysteroid Dehydrogenases↗

Effect of human chorionic gonadotropin administered early in the estrous cycle on ovulation and subsequent luteal function in cows.

Cows of mixed beef breeds were randomly assigned to receive one of three treatments: 1) i.v. injection of hCG on d 6 of the estrous cycle (estrus = d 0) and slaughter on d 12 to 14, 2) i.v. injection of saline on d 6 and slaughter on d 12 to 14, or 3) slaughter on d 5 to 7. Corpora lutea (CL) were collected at slaughter and weighed. A portion of each CL was cultured for 6 h with no hormone or various doses of LH (25, 50, or 100 ng/mL of medium). All cows that received an hCG injection on d 6 (Treatment 1) exhibited a luteal structure in addition to the CL present at the time of hCG administration. Thus, the following CL were evaluated: 6-d-old (induced) CL from Treatment 1 (d-6 hCG) and 13-d-old (natural) CL from Treatment 1 (d-13 hCG), 13-d-old CL from Treatment 2 (d 13), and 6-d-old CL from Treatment 3 (d 6). From d 9 to 13, daily plasma progesterone concentrations were greater (P < .01) for cows on Treatment 1 than for cows on Treatment 2. Whereas LH stimulated (P < .01) progesterone secretion regardless of treatment, progesterone secretion in vitro was greater (P < .01) for CL from saline-treated cows (Treatments 2 and 3) than for CL from hCG-treated cows (Treatment 1). No effect of hCG was observed for luteal DNA, RNA, or protein concentrations, or for luteal RNA:DNA or protein:DNA ratios.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Angiogenesis in the female reproductive system.

In adult tissues, capillary growth (angiogenesis) occurs normally during tissue repair, such as in healing of wounds and fractures. Rampant capillary growth is associated with various pathological conditions, including tumor growth, retinopathies, hemangiomas, fibroses and rheumatoid arthritis. The female reproductive organs (i.e., ovary, uterus, and placenta) exhibit dynamic, periodic growth and regression accompanied by equally dramatic changes in rates of blood flow. It is not surprising, therefore, that they are some of the few adult tissues in which angiogenesis occurs as a normal process. Thus, the female reproductive system provides a unique model for studying regulation of angiogenesis during growth and differentiation of normal adult tissues. Ovarian, uterine, and placental tissues recently have been shown to contain and produce angiogenic and anti-angiogenic factors. This review discusses the current state of knowledge regarding angiogenic processes and their regulation in female reproductive tissues. In addition, implications of this research for regulation of fertility as well as for control of angiogenesis in other normal and pathological processes are discussed.

Animals↗

Growth and microvascular development of the uterus during early pregnancy in ewes.

Growth and microvascular development of the uterus were evaluated for ewes on Days 12, 18, 24, and 30 after mating (3-4 ewes/day; Day 0 = day of mating) in two experiments. In experiment 1, fresh weight and dry weight of gravid uterine horns were increased on Days 24 and 30 after mating, whereas those of nongravid uterine horns were elevated only on Day 30. The increased fresh and dry weights of gravid uterine horns on Day 24 were associated with uterine hyperplasia (increased DNA content). Increased fresh and dry weights of gravid uterine horns on Day 30, however, were associated with hypertrophy (increased RNA:DNA and protein:DNA ratios) of uterine tissues. In experiment 2, vascularity of endometrial tissues was elevated on Days 24 and 30 after mating. In addition, dramatic changes in uterine architecture (increased lumenal diameter and decreased endometrial thickness) and in uterine microvascular development (increased abundance of large microvessels and development of a subepithelial capillary plexus) were observed by Day 24 after mating. Characterization of the patterns of uterine growth and microvascular development will enable us to further define the role of previously reported uterine and conceptus-derived growth and angiogenic factors during early pregnancy.

Animals↗

Production of mitogenic factor(s) by ovine corpora lutea throughout the estrous cycle.

To evaluate secretion of mitogenic factors by ovine corpora lutea (CL) at several stages of development, luteal explants from days 5 (n = 12 ewes), 10 (n = 6 ewes), and 15 (n = 6 ewes) of the estrous cycle were incubated in serum-free medium for 24 h. Luteal-conditioned media (LCM) were evaluated for their ability to stimulate proliferation of endothelial, BALB/3T3, and ovarian granulosa cells. After mitogenic activity of LCM from individual animals was evaluated, pools of LCM from each day of the estrous cycle were subjected to anion-exchange, cation-exchange, and heparin-affinity chromatography to characterize mitogenic activity. Pools of LCM also were utilized for ultrafiltration, heat-treatment, trypsin-treatment, and immunoneutralization studies. Results demonstrated that ovine CL secrete mitogenic activity that stimulates (P less than 0.01) proliferation of endothelial (135.7 +/- 5.3% of control) and granulosa cells (188.9 +/- 2.9%) but not 3T3 (103.2 +/- 2.5%) cells. Differences between stages of luteal development were not observed. The mitogenic activity bound to diethylaminoethyl-Sephacel and heparin-agarose, but not to carboxymethyl-Sepharose, indicating that ovine luteal mitogenic factor(s) is anionic and may belong to the heparin-binding growth factor (HBGF) family. In addition, the mitogenic activity was heat-labile, trypsin-sensitive, and appeared to have a M(r) greater than 100,000. Mitogenic activity for endothelial cells was partially neutralized with a specific antibody against HBGF-1 and was completely abolished with a specific antibody against HBGF-2. Moreover, HBGF-1 and HBGF-2 were immunolocalized in histological sections of CL from days 5 (n = 5 ewes), 10 (n = 5 ewes), and 15 (n = 5 ewes) after estrus. These findings are the first report of a major mitogenic factor(s) produced by cyclic ovine CL and indicate this factor is an HBGF-2-like molecule.

3T3 Cells↗

Production of heparin-binding angiogenic factor(s) by bovine corpora lutea during pregnancy.

Effects of luteal-conditioned media (LCM) on proliferation and migration of endothelial cells were used to assess angiogenic activity of corpora lutea (CL) obtained from cows on d 100 (n = 5), 150 (n = 6), 200 (n = 6), and 250 (n = 6) of gestation. Explants of CL (200 mg) were incubated for 6 h in 3 mL of serum-free media containing no hormone, LH (1 microgram/mL), prostaglandin F2 alpha (PGF2 alpha; 3 microM), or both hormones. Media from the four stages of gestation were subjected to the following procedures: 1) ultrafiltration, 2) high-salt (3.0 M NaCl) treatment and then ultrafiltration, 3) heat treatment, 4) heparin-Sepharose affinity chromatography, 5) immunoneutralization with specific antibodies against heparin-binding growth factor (HBGF)-1 and against HBGF-2, and 6) dot immunoblot assay for HBGF-2. Fractions from the first five procedures were evaluated in the endothelial cell proliferation bioassay. In addition, progesterone concentration of LCM was determined by RIA. Across all days of gestation and hormone treatments, LCM stimulated (P less than .05) proliferation and migration of endothelial cells, but activities did not differ among stages of gestation or hormone treatments. Both mitogenic and migration-stimulating fractions seemed to have Mr greater than 100,000. The mitogenic activity fraction had an apparent Mr greater than 100,000 even after treatment with high salt and was heat-labile. This endothelial mitogen was retained on heparin-Sepharose columns and was eluted with 2.0 M NaCl. Mitogenic activity was partly neutralized (P less than .05) by antibodies against HBGF-2 but not HBGF-1. Presence of HBGF-2 in LCM was detected by dot immunoblot assay.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiogenesis Inducing Agents↗

Contact-dependent intercellular communication of bovine luteal cells in culture.

Mammalian gap junctions permit exchange of nutrients, ions, and regulatory molecules of less than 1.5 kDa among contacting communication-competent cells and may be important for regulation of luteal function and maintenance of luteal homeostasis. The present studies were designed to evaluate gap junction-mediated intercellular communication between bovine luteal cells in culture. Using a dye-coupling technique along with interactive laser cytometry, selected luteal cells were studied for the rate of contact-dependent fluorescence redistribution after photobleaching. The rate of communication, reported as the rate of fluorescence recovery (percentage per min), was determined for steroidogenic cells as follows: 1) small luteal cells contacting only small luteal cells, 2) large luteal cells contacting only small luteal cells, and 3) large luteal cells contacting only large luteal cells. In addition, the effects of known regulators of luteal function [LH, prostaglandin F2 alpha (PGF), and forskolin] on the rate of intercellular communication were determined. Small luteal cells communicated rapidly with each other, exhibiting an initial rate of fluorescence recovery of 4.1 +/- 0.1%/min (n = 187). The rate of small cell-small cell communication was unaffected by LH and PGF. For large luteal cells contacting small luteal cells, however, LH and PGF stimulated (P less than 0.02) the rate of communication compared with no hormone [1.6 +/- 0.2 (n = 18) and 1.5 +/- 0.6 (n = 20) vs. 0.8 +/- 0.3%/min (n = 27), respectively]. LH and PGF in combination, however, did not enhance the rate (0.6 +/- 0.2%/min; n = 19) of large cell-small cell communication. In contrast, forskolin significantly stimulated both small cell-small cell and large cell-small cell communication rates compared with no forskolin [34% increase (n = 48) and 50% increase (n = 23), respectively]. Large luteal cells did not communicate with each other under any condition tested. Transmission electron microscopy revealed the presence of numerous gap junction-like structures in bovine luteal cells in culture. These data suggest that luteal cells are capable of intercellular communication and that the rate of communication may be influenced by hormones. Contact-dependent intercellular communication among luteal cells may, therefore, play a significant role in the regulation of luteal function.

Animals↗

Production of mitogenic factors by cell types of bovine large estrogen-active and estrogen-inactive follicles.

This study investigated whether large follicles (estrogen-active and estrogen-inactive) of cows produce factors with mitogenic activity. Large, preovulatory follicles (greater than or equal to 9 mm in diameter) were classified as estrogen-active or -inactive based on ratio of estrogen: progesterone concentrations in follicular fluid. After incubation of granulosa cells and thecal tissues from follicles, granulosa cell conditioned media (GCM), thecal conditioned media (TCM) and follicular fluid (FFL) were evaluated for effects on proliferation of bovine aortic endothelial (BAE) and BALB/3T3 (3T3) cells. Pools of GCM, TCM and FFL stimulated proliferation of BAE and 3T3 in a dose-dependent fashion. Across all follicles (n = 20), GCM had greater stimulatory effect on proliferation of BAE than on proliferation of 3T3 (135 vs 115% of unconditioned media controls), whereas TCM stimulated proliferation of BAE and 3T3 to a similar extent (128 and 128%). Across type (GCM and TCM) of conditioned media, estrogen-active follicles stimulated proliferation of BAE more than proliferation of 3T3 (137 vs 121% of unconditioned media controls), whereas estrogen-inactive follicles stimulated proliferation of BAE and 3T3 to a similar extent (120 vs 122%). As observed for GCM, FFL across all follicles had a greater stimulatory effect on proliferation of BAE than on proliferation of 3T3 (159 vs 141%). Granulosa-conditioned media stimulated proliferation of BAE and 3T3 only when obtained from estrogen-active follicles; mitogenic activities of TCM and FFL were not influenced by type of follicle. These data demonstrate that granulosa cells of large preovulatory bovine follicles secrete a mitogenic factor(s) that is more stimulatory for proliferation of BAE than for 3T3.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Secretion of angiogenic activity and progesterone by ovine luteal cell types in vitro.

In the first experiment, minced luteal tissues from cyclic ewes (n = 5) were incubated for 6 h. Media conditioned by these luteal tissue explants stimulated proliferation and migration of endothelial cells. In a second experiment, corpora lutea (CL) from superovulated ewes (n = 12) were dissociated (two ewes/dispersion) and separated into three fractions: a non-elutriated fraction containing a mixed population of luteal cells, a fraction enriched with small steroidogenic luteal cells, and a fraction containing primarily large steroidogenic luteal cells. Fractions (2 X 10(5) viable steroidogenic luteal cells per milliliter of medium) were incubated with LH in doses of 0, .1, 1, 10, and 100 ng/ml for 7 d. Conditioned media were collected on d 1, 3, 5, and 7 of incubation. Across all days of incubation, media from small luteal cells stimulated proliferation of endothelial cells. Media from large luteal cell incubations, however, secreted an endothelial mitogen only on d 7 of culture. Mixed luteal cell cultures secreted mitogenic activity on d 3, 5, and 7 of incubation, but not on d 1. Luteinizing hormone did not influence release of mitogenic activity by any luteal cell fraction. Across all days of incubation, media from large luteal cells contained more progesterone than those from small luteal cells (528 +/- 137 vs 48 +/- 16 ng/ml with no LH). Mixed (non-elutriated) and small luteal cells increased progesterone secretion in response to LH, and this response was maintained during long-term culture. Large luteal cells did not increase progesterone secretion in response to LH. Steroidogenic activity of all cell types decreased as incubation time progressed.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiogenesis Inducing Agents↗

Growth and in-vitro metabolism of placental tissues of cows from day 100 to day 250 of gestation.

Weight of placental tissues of cows increased exponentially from Day 100 to Day 250 of gestation, but at much slower relative and absolute rates than fetal weight. In addition, growth rate of fetal placental tissues was less than that of maternal placental tissues. Concentrations of DNA, RNA and protein, however, increased in fetal placental but not in maternal placental tissues. Fetal placental tissues therefore exhibited hyperplasia, which probably contributes to increased functional capacity of the placenta during late gestation. The rate of O2 uptake in vitro was greatest for maternal placental tissues, suggesting that the maternal portion of the placenta accounts for most of the large rate of placental O2 utilization in vivo. Compared with other placental tissues, rate of secretion of macromolecules by intercaruncular endometrium was high, but decreased from Day 100 to 250, suggesting that uterine glandular secretory activity may decrease as gestation advances. Rate of secretion of macromolecules also was high for intercotyledonary tissues and increased with day of gestation, suggesting a role for secretory products of chorioallantois in gravid uterine function.

Animals↗

Prostaglandin F2 alpha, oxytocin and progesterone secretion by bovine luteal cells at several stages of luteal development: effects of oxytocin, luteinizing hormone, prostaglandin F2 alpha and estradiol-17 beta.

Bovine luteal cells from Days 4, 8, 14 and 18 of the estrous cycle were incubated for 2 h (1 x 10(5) cells/ml) in serum-free media with one or a combination of treatments [control (no hormone), prostaglandin F2 alpha (PGF), oxytocin (OT), estradiol-17 beta (E) or luteinizing hormone (LH)]. Luteal cell conditioned media were then assayed by RIA for progesterone (P), PGF, and OT. Basal secretion of PGF on Days 4, 8, 14 and 18 was 173.8 +/- 66.2, 111.1 +/- 37.8, 57.7 +/- 15.4 and 124.3 +/- 29.9 pg/ml, respectively. Basal release of OT and P was greater on Day 4 (P less than 0.01) than on Day 8, 14 and 18 (OT: 17.5 +/- 2.6 versus 5.6 +/- 0.7, 6.0 +/- 1.4 and 3.1 +/- 0.4 pg/ml; P: 138.9 +/- 19.5 versus 23.2 +/- 7.5, 35.4 +/- 6.5 and 43.6 +/- 8.1 ng/ml, respectively). Oxytocin increased (P less than 0.01) PGF release by luteal cells compared with control cultures irrespective of day of estrous cycle. Estradiol-17 beta stimulated (P less than 0.05) PGF secretion on Days 8, 14 and 18, and LH increased (P less than 0.01) PGF production only on Day 14. Prostaglandin F2 alpha, E and LH had no effect on OT release by luteal cells from any day. Luteinizing hormone alone or in combination with PGF, OT or E increased (P less than 0.01) P secretion by cells from Days 8, 14 and 18. However on Day 8, a combination of PGF + OT and PGF + E decreased (P less than 0.05) LH-stimulated P secretion. These data demonstrate that OT stimulates PGF secretion by bovine luteal cells in vitro. In addition, LH and E also stimulate PGF release but effects may vary with stage of estrous cycle.

Animals↗

Angiogenic activity of maternal and fetal placental tissues of ewes throughout gestation.

In Study 1, explants of caruncular and intercaruncular endometrium and fetal membrane were collected from ewes (5-6/day) on Days 11-13, 16-18 and 21-23 after mating and Days 10-12 after oestrus, and incubated for 24 h. Explant-conditioned media were evaluated for their effects on endothelial cell proliferation. Both caruncular and intercaruncular endometrium secreted factor(s) which stimulated endothelial cell proliferation, and which appeared to be greater than 100 x 10(3) Mr and heat-labile. In Study 2, conditioned media from explant incubations of caruncular and intercaruncular endometrium, cotyledon and intercotyledonary fetal membrane obtained from ewes (6-7/day) on Days 40, 65, 90, 115 and 140 after mating were evaluated for their effects on endothelial cell proliferation. Caruncular and intercaruncular endometrium and intercotyledonary fetal membrane secreted factor(s) which inhibited endothelial cell proliferation. Media from cotyledonary explants tended to stimulate endothelial cell proliferation on Day 115. Conditioned media from cotyledonary explants obtained from 3 additional ewes at Day 120 of gestation stimulated endothelial cell proliferation, and this activity also appeared to be greater than 100 x 10(3) Mr. Placental angiogenesis in ewes therefore appears to be modulated by both maternal and fetal placental tissues via stimulatory and inhibitory factors.

Angiogenesis Inducing Agents↗

Angiogenic activity of bovine corpora lutea at several stages of luteal development.

Samples from corpus haemorrhagicum, mid-cycle corpus luteum (CL) and late-cycle CL were tested for their abilities to stimulate neovascularization of chorioallantoic membranes (CAM) of developing chicks. Responses were graded from 0 to 4 (4 being the greatest response). Luteal tissue implants from each stage of the oestrous cycle stimulated growth of CAM blood vessels, and vascular responses increased with age of CL. Implants from late-cycle CL were typically graded 3 or 4. Luteal tissues from several stages of development were also incubated for 6 h in serum-free medium containing no hormone, LH, PGF-2 alpha or both hormones. Media conditioned by luteal tissues were assayed for progesterone and tested for their ability to stimulate mitogenesis and migration of bovine aortic endothelial cells in vitro. All media conditioned by luteal tissues stimulated mitogenesis and migration of endothelial cells, but media from late-cycle CL exhibited the greatest activity. Luteinizing hormone significantly increased in-vitro secretion of a factor(s) that stimulated migration of endothelial cells. PGF-2 alpha alone had no effect on production of endothelial cell mitogen or migration-stimulating factor(s) from luteal incubations; however, the ability of LH to enhance secretion of the migration-stimulating factor(s) was blocked by PGF-2 alpha. This study demonstrates that angiogenic activity of bovine luteal tissues increases with age of the CL and in-vitro secretion of angiogenic factor is responsive to hormones known to regulate luteal function.

Angiogenesis Inducing Agents↗

Secretion of angiogenic activity by placental tissues of cows at several stages of gestation.

Samples of maternal and fetal placental tissues were obtained from cows on Days 100 (N = 4), 150 (N = 5), 200 (N = 6) and 250 (N = 6) of gestation and incubated for 24 h. Conditioned media from caruncular explants were mitogenic for bovine aortic endothelial cells (BAEC) on all days of gestation. Media from intercaruncular endometrium were stimulatory for proliferation of BAEC on Day 100 but inhibitory on Days 150, 200 and 250. Media from cotyledonary and intercotyledonary tissues inhibited proliferation of BAEC on all days. Caruncular-conditioned media stimulated migration of BAEC on Days 150, 200 and 250. Cotyledonary-conditioned media inhibited migration of BAEC on all days. Effects of media from intercaruncular and intercotyledonary tissues on migration of BAEC varied with stage of gestation. Angiogenic activity of media from caruncular (all stages) and intercaruncular (Day 100) tissues appeared to have an Mr greater than 100,000. In cows, therefore, the maternal placentome (caruncle) appears to be the primary source of placental angiogenic activity throughout gestation. The fetal placentome (cotyledon) secretes activity which inhibits two major components of angiogenesis (proliferation and migration of endothelial cells) throughout gestation. Intercaruncular and intercotyledonary tissues may modulate placental angiogenesis throughout gestation. Placental vascular development in the cow is therefore probably controlled by an interaction between stimulatory and inhibitory factors produced by the placenta itself.

Angiogenesis Inducing Agents↗

Angiogenic activity of placental tissues of cows.

In Exp. 1, maternal (caruncle) and fetal (cotyledon) portions of the placenta as well as uterine endometrium were obtained from cows at mid-gestation and evaluated for angiogenic activity by placing tissue samples on chick chorioallantoic membranes (CAM). Only caruncular tissues exhibited angiogenic activity in the CAM assay. In Exp. 2, lyophilized homogenates of caruncular tissues obtained from cows at mid-gestation were evaluated for angiogenic activity on CAM and for their ability to stimulate mitosis of bovine aortic endothelial cells in vitro. Homogenates of caruncular tissues again were angiogenic on the CAM and also were mitogenic for endothelial cells. In Exp. 3, maternal (caruncle and endometrium) and fetal (cotyledon and fetal membrane) portions of the placenta were obtained from cows at mid-gestation and fine minces (explants) of each were cultured for 24 h. Explant-conditioned media were then tested for angiogenic activity by their abilities to stimulate mitosis and migration of bovine aortic endothelial cells in vitro. Conditioned media from caruncular explants, but not from explants of other tissues, exhibited both mitogenic and migration-stimulating activities. When pools of caruncular explant-conditioned media were fractionated by ultrafiltration, mitogenic activity was not present in fractions of Mr less than 10,000, less than 30,000 and less than 100,000, but was retained in fractions of Mr greater than 10,000, greater than 30,000 and greater than 100,000. Mitogenic activity was not observed in any fractions subjected to heat treatment.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiogenesis Inducing Agents↗

Inhibin-like activity in ovarian venous serum after unilateral ovariectomy in prepubertal gilts.

To examine a role for inhibin in compensatory ovarian hypertrophy after unilateral ovariectomy (ULO) of prepubertal gilts, changes in inhibin activity in ovarian venous blood were estimated by bioassay. Three groups of 130-day-old gilts were unilaterally ovariectomized after collecting blood from an ipsilateral ovarian vein (Day O); blood samples were obtained from the remaining ovary on Day 2, 4, or 8. Coetaneous gilts underwent sham ovariectomy on Day 0, and venous blood was collected from both ovaries on Day 2, 4, or 8. An assay for inhibin activity, which measured inhibition of secretion of follicle-stimulating hormone (rFSH) by rat pituitary cells in culture, was validated for serum samples. Presumptive inhibin activity was always greater in ovarian venous serum than in peripheral serum samples. In the ULO groups, inhibin activity (in terms of a house reference preparation) in ovarian venous serum was 55 +/- 13 micrograms/ml (means +/- SE, n = 13) on Day 0, 251 +/- 79 (n = 5) on Day 2, 275 +/- 111 (n = 4) on Day 4, and 68 +/- 14 micrograms/ml (n = 4) on Day 8. The five-fold increases on Days 2 and 4 were significant (p less than 0.05). In contrast, no significant differences in inhibin activity were detected between ovarian venous serum (within gilts) or between Days 2, 4, and 8: 82 +/- 29, 73 +/- 30, and 99 +/- 48 micrograms/ml (n=4/day) in control groups. These results demonstrate that, in prepubertal gilts, the remaining ovary's response to ULO includes a major increase in release of inhibin-like activity.

Age Factors↗