Search PubMed⌕ Search

Biomedical subjects

V J Roberts

Publications and source records attributed to V J Roberts.

At least 37 records · Page 2Linked to original sources

Expression of inhibin/activin system messenger ribonucleic acids and proteins in ovarian follicles from women with polycystic ovarian syndrome.

The role of inhibin, activin, and follistatin in the pathophysiology of polycystic ovary syndrome (PCOS) was investigated by examining the expression of human inhibin/activin subunit, follistatin, and type II activin receptor (ActRII and -IIB) messenger ribonucleic acid (mRNA) signals (via in situ hybridization) and encoded proteins (via immunocytochemistry) in ovarian follicles (n = 42) from 6 women diagnosed with PCOS. The localization patterns in cellular compartments were compared to those in small antral follicles of comparable size (3-7 mm; n = 40) from 17 normal human ovaries. In small antral follicles of both normal and PCOS ovaries, mRNA signals for all three subunits of inhibin and activin (alpha, beta a, and beta b) were expressed in granulosa cells, whereas in the thecal cell layer, only alpha-subunit mRNA was expressed. The relative intensity of the alpha-subunit mRNA signal was distinctly different in granulosa and thecal cells between PCOS and normal follicles; in small antral follicles of normal ovaries, the alpha-subunit mRNA signal was stronger in the granulosa cell layer than in the thecal cells, and the reverse was found in the polycystic follicles. A light follistatin mRNA signal was found in the granulosa cells of normal small antral follicles, but no follistatin mRNA was detected in any cell type of PCOS follicles. ActRII and -IIB mRNAs were not detected in any cell layer in either normal or PCOS follicles. There were no notable differences in the protein localization pattern of the inhibin/activin system between the PCOS and normal ovaries. In both types of follicles, follistatin and alpha-, beta a-, and beta b-subunit cytoplasmic staining were observed in granulosa cells, as were their corresponding messages, with the exception of the undetectable follistatin mRNA signal in the PCOS follicles. In both normal and PCOS follicles, follistatin and beta a-subunit cytoplasmic staining were occasionally found in thecal interna cells, with no corresponding localization of mRNA, and alpha-subunit protein was not detected in thecal cells despite the presence of the alpha-subunit mRNA. ActRII and -IIB protein localizations were not examined due to the lack of available antisera. These results suggest that granulosa cells of small antral follicles are less active in polycystic than in normal ovaries with respect to inhibin alpha-subunit and follistatin mRNA expression. A consequence of these differences could be an increase in the availability of activin, relative to inhibin, in the arrested follicles in PCOS.

Activin Receptors↗

Localization of E2A mRNA expression in developing and adult rat tissues.

E2A helix-loop-helix proteins are involved in the control of various developmental pathways. We show here by in situ hybridization that E2A transcripts are present in most embryonic and adult tissues. However, no E2A expression is detectable in heart and nonproliferative regions of the brain and spinal cord. Highest levels of E2A expression are found in the ependyma cell layer surrounding the cerebral ventricles in the embryonic rat brain. In addition, in the embryo, E2A transcripts were found in secretory cells of the pancreas, the bronchial tubes of the lung, glomeruli of the kidney, and the lining of the stomach. Interestingly, high levels of E2A transcripts are selectively found in the germinal center of the lymphatic nodules in the adult rat spleen. Thus, E2A, like its Drosophila homolog daughterless, is expressed in most tissues. The most notable feature of the E2A expression pattern is its high levels of expression in some areas of rapid cell proliferation and differentiation and in certain epithelial cell types.

Animals↗

Developmental changes in atrial natriuretic factor content and localization of its messenger ribonucleic acid in ovine fetal heart.

OBJECTIVES: The current study investigated the developmental changes in atrial natriuretic factor peptide content and messenger ribonucleic acid localization in the atria and ventricles of the ovine fetus throughout the second half of gestation. STUDY DESIGN: Ovine fetuses from 67 to 146 days' gestation (term 147 days) and newborn lambs were used for the study. Tissue atrial natriuretic factor contents were determined by radioimmunoassay, and atrial natriuretic factor messenger ribonucleic acid distribution was determined by in situ hybridization. RESULTS: In fetal atria, atrial natriuretic factor peptide levels were much greater than those in the ventricles. The levels in the atria increased with advancing gestation from 70 to 140 days, reflecting an increase in weight of the atrial chambers. A similar trend was not observed in the ventricles. In the atria, atrial natriuretic factor peptide content (per unit protein) reached high levels at 100 to 110 days' gestation; this was associated with an increase in level of atrial natriuretic factor gene expression. In the ventricles, atrial natriuretic factor peptide content and gene expression were very low throughout the second half of gestation, except for a peak in content that occurred at 100 days. Atrial natriuretic factor messenger ribonucleic acid abundance was much greater in the atria than in the ventricles in fetuses from 90 to 130 days' gestation. The distribution of atrial natriuretic factor messenger ribonucleic acid was homogeneous throughout the thickness of the atria and ventricles of the fetal heart. CONCLUSION: During the second half of gestation in the ovine fetus, the expression of atrial natriuretic factor messenger ribonucleic acid in the atria and ventricles paralleled the appearance of the peptide.

Animals↗

Regression of uterine leiomyomata in response to the antiprogesterone RU 486.

Uterine leiomyomata are steroid hormone dependent tumors which possess receptors for estrogen (ER) and progesterone (PR). We reasoned that an antiprogesterone (RU 486) may induce regression of leiomyomata by withdrawal of progesterone action and/or by its interference of estrogen action. Accordingly, we examined the effects of daily administration of RU 486 (50 mg) for a period of 3 months in 10 patients with uterine leiomyomata and regular menstrual cycles. Baseline ultrasound examinations were obtained and repeated monthly during treatment as a measure of leiomyomata volume. Hormonal parameters were monitored by blood samples obtained prior to treatment and daily for 7 days, weekly for 4 weeks and monthly for the duration of therapy. Myomectomy or hysterectomy was performed in 6 of 10 patients at the end of treatment. Leiomyomata and myometrial tissue was obtained for immunocytochemical analysis of ER and PR protein. Amenorrhea was induced in all patients during treatment. Leiomyomata volume (mean +/- SE) decreased 21.9 +/- 4.8% after 4 weeks, 39.5 +/- 6.6% (P < 0.001) after 8 weeks, and 49.0 +/- 9.2% (P < 0.001) after 12 weeks of treatment compared to pretreatment measurements. Serum LH levels (P < 0.005), but not FSH levels, more than doubled during the first 3 weeks of treatment with a concomitant increase in serum androstenedione (P < 0.006) and testosterone (P < 0.0001) levels. These elevated hormonal levels returned to baseline at 4 weeks without further changes during the remainder of treatment. A significant rise in serum dehydroepiandrosterone sulfate (P < 0.0001) and cortisol (P < 0.01) was seen at 12 weeks, suggesting an antiglucocorticoid effect of RU 486 has occurred. Serum estradiol, estrone, progesterone, sex hormone binding protein, thyroid-stimulating hormone, and PRL were unchanged from early follicular phase values. PR but not ER immunoreactivity was significantly reduced in both leiomyomata and myometrium after RU 486 treatment compared with tissues from untreated patients, suggesting that regression of tumors may be attained through a direct antiprogesterone effect. However, an alteration in ER functionality cannot be excluded. We conclude that RU 486 is well tolerated, safe, and effective; thus, it may prove to be a novel mode of management for uterine leiomyomata.

Adolescent↗

Expression of inhibin/activin subunits and follistatin messenger ribonucleic acids and proteins in ovarian follicles and the corpus luteum during the human menstrual cycle.

The physiological role of intraovarian activin (beta/beta) and inhibin (alpha/beta) dimers in humans in unclear. The identification of follistatin as a beta-subunit-specific high affinity binding protein has added complexities for the interpretation of in vitro studies concerning the functionalities of these ovarian peptides. We, therefore, have attempted to define in vivo compartmental distributions of gene expression and protein localization for inhibin and activin subunits (alpha, beta A, and beta B) concurrent with follistatin in ovarian follicles and corpus lutea obtained from a large number of human ovaries. In situ hybridization and immunohistochemistry were used for detecting the expression of genes encoding inhibin/activin subunits and follistatin and their gene products, the proteins. Granulosa cells of small antral follicles (1-8 mm) were found to express mRNA for alpha-, beta A-, and beta B-subunits as well as follistatin, and the strongest signals were localized in the cumulus granulosa cells. In the thecal cell layer, only alpha-subunit mRNA was detected. Proteins were localized in cellular compartments corresponding to their mRNA, but in addition, proteins for beta A-subunit and follistatin were detected in the thecal cell layers in the absence of gene expression, an observation compatible with a paracrine action. Thus, granulosa cells of the small antral follicle have the potential to form all dimers of inhibin and activin, and their autocrine and paracrine actions may be modulated by follistatin in both granulosa cell and thecal cell layers. With the development of a dominant follicle, remarkable switches in subunit gene expressions occurred; beta B-subunit mRNA was no longer detectable in any cell type, and beta A-subunit expression emerged in the thecal cells along with continued abundant expression of beta A-subunit and follistatin in the granulosa cells. Proteins were found only in granulosa cells corresponding to their mRNAs. In the corpus luteum, the inhibin/activin alpha- and beta A-subunits and follistatin mRNA and proteins were expressed exclusively in the luteinized granulosa cells. Luteinized thecal cells were devoid of detectable mRNA message or proteins. Thus, the inhibin-activin-follistatin system in the corpus luteum appears to function in an autocrine fashion.(ABSTRACT TRUNCATED AT 400 WORDS)

Activins↗

Expression of insulin-like growth factor-I (IGF-I) and IGF-II and the IGF-I, IGF-II, and insulin receptor genes and localization of the gene products in the human ovary.

We examined the expression of the genes encoding the insulin-like growth factors (IGFs) and their receptors (r) and the localization of their gene products in specific cellular compartments of the human ovary. mRNA was localized by in situ hybridization with specific human 35S-labeled antisense RNA probes, and protein was detected by immunocytochemistry with specific antisera. We studied 34 follicles (10 ovaries), which included both dominant and small antral follicles. In dominant follicles, no IGF-I mRNA was seen in either thecal or granulosa cells (GC), but IGF-Ir mRNA was expressed in GC. In contrast, abundant IGF-II mRNA was found exclusively in GC, whereas the IGF-IIr gene was expressed in both thecal cells and GC. Insulin receptor mRNA was widely distributed and expressed in all cell types, including stromal cells. Small antral follicles contained both IGF-I and IGF-II mRNA, which was restricted to thecal cells. Although IGF-Ir message was detected only in GC, IGF-IIr mRNA was expressed in both granulosa and thecal cells. As in dominant follicles, insulin receptor mRNA was found in thecal, granulosa, and stromal cells. No IGF-I immunoreactivity was seen in either dominant or small antral follicles; however, immunostaining for the other gene products demonstrated that each of these proteins colocalized with its corresponding mRNA. Thus, the relative distribution of ligand and receptor transcripts and protein in cellular compartments of the human ovary observed in this study supports the presence of an intraovarian IGF system and suggests that both autocrine and paracrine mechanisms of IGF action occur between GC and thecal cells. We conclude that 1) IGF-II, rather than IGF-I, is the principal IGF in human ovarian follicles, being synthesized in thecal cells in small antral follicles and in GC in dominant follicles; 2) in small antral follicles, IGF-II acts in an autocrine fashion in thecal cells and in a paracrine fashion in GC; 3) in dominant follicles, granulosa-derived IGF-II acts in an autocrine manner in GC; and 4) the presence of transcripts and proteins corresponding to the IGF and insulin receptors in cellular compartments of human ovaries may also provide target sites for the action of circulating ligands with a potential extraovarian role in the regulation of folliculogenesis.

Adult↗

NGC-evoked nociceptive behaviors: I. Effect of nucleus gigantocellularis stimulation.

The role of the nucleus gigantocellularis (NGC) in nociception was examined by investigating behavioral responses that are supported by NGC stimulation in rats. Analyses indicated that NGC stimulation will support escape, active avoidance, and increases in behaviors that are thought to reflect fear in rats. A variety of behavior patterns were elicited by NGC stimulation, including gross peripheral motor movements such as walking, circling and rearing, and specific orofacial movements such as eye closure, ear movement, jaw opening and facial muscle contractions. No major differences in avoidance, affect, or escape behaviors were revealed between the various electrode placements, suggesting functional homogeneity within this neural region. The results of this study suggest that NGC stimulation generates several components of nociception, including behavioral arousal, autonomic nervous system-mediated responses, aversive affect, and motor responses.

Affect↗

NGC-evoked nociceptive behaviors: II. Effect of midbrain and thalamus lesions.

Alterations in nociceptive behaviors evoked by stimulation of the nucleus gigantocellularis (NGC) were observed following lesions of the dorsal central gray (DCG) or parafascicularis nucleus (PF) in rats. Lesions of the DCG decreased affective responses and facilitated extinction of avoidance responding associated with NGC stimulation. Lesions of the PF disrupted escape and avoidance responding to NGC stimulation, although postlesion training improved avoidance but not escape performance. The NGC, without its rostral connections to the DCG or PF, does not generate sufficient information for either aversive affective responses or locomotor escape responses that are associated with stimulation of this structure. In contrast, the elicited motor reactions do not depend upon these rostral structures. This supports a role for NGC neurons in functions related to motor, rather than to affective or complex behavioral components of nociception. The differential disruption of the more complex behaviors by DCG and PF lesions provides behavioral evidence for functional differentiation of a nociceptive system involving the relay of information from the NGC to these rostral areas.

Affect↗

Inhibin/activin subunits are costored with FSH and LH in secretory granules of the rat anterior pituitary gland.

We recently reported that pituitary gonadotropes, major targets of circulating inhibins and activins, are also capable of synthesizing the inhibin (I) alpha- and inhibin/activin (I/A) beta B-subunits. In the present study, we examined the subcellular distribution of these subunits, with special attention given to determinating the extent to which they might be colocalized with the gonadotropins in secretory granules. Pituitaries from adult male rats were cryofixed, molecular distillation-dried, and resin-embedded. Immunogold staining methods were used to examine concurrently the distributions of an I/A subunit and FSH or LH. I/A subunits were detected only in cells that also labeled positively for a gonadotropin, and, in contrast to the gonadotropins, were sequestered almost exclusively within secretory granules. The I alpha-subunit colocalized with FSH in 31%, and with LH in 36%, of all positively stained granules. The I/A beta B-subunit was found with FSH or LH in about 25% of the granules. Approximately 52-69% of the granules contained FSH or LH alone; 7-18% were positive only for an I/A subunit, and this varied as a function of the particular gonadotropin with which costaining was carried out. Dual staining for the I alpha- and the I/A beta B-subunits indicated that at least 35% of all immunolabeled granules showed positive signals for both subunits. Coupled with methodological considerations to indicate that these estimates of the extent of colocalization are likely to be conservative, these data suggest that inhibin and activin are characteristically copackaged, and presumably coreleased, with the gonadotropins.

Activins↗

Notch2: a second mammalian Notch gene.

Notch is a cell surface receptor that mediates a wide variety of cellular interactions that specify cell fate during Drosophila development. Recently, homologs of Drosophila Notch have been isolated from Xenopus, human and rat, and the expression patterns of these vertebrate proteins suggest that they may be functionally analogous to their Drosophila counterpart. We have now identified a second rat gene that exhibits substantial nucleic and amino acid sequence identity to Drosophila Notch. This gene, designated Notch2, encodes a protein that contains all the structural motifs characteristic of a Notch protein. Thus, mammals differ from Drosophila in having more than one Notch gene. Northern and in situ hybridisation analyses in the developing and adult rat identify distinct spatial and temporal patterns of expression for Notch1 and Notch2, indicating that these genes are not redundant. These results suggest that the great diversity of cell-fate decisions regulated by Notch in Drosophila may be further expanded in vertebrates by the activation of distinct Notch proteins.

Amino Acid Sequence↗

Expression of inhibin/activin subunit messenger ribonucleic acids during rat embryogenesis.

Inhibin (alpha/beta) and activin (beta/beta) were first recognized as gonadal hormones that regulate the production and release of FSH from the anterior pituitary gland. Studies now show that these proteins, which are members of the transforming growth factor-beta (TGF beta) superfamily, and their corresponding messenger RNAs have a broad anatomical distribution and may regulate the growth and differentiation of a variety of cell types. To determine whether inhibin and activin may also play a role in embryonic development, in situ hybridization techniques were utilized to examine the localization of the mRNAs encoding the inhibin/activin subunits (alpha, beta A, beta B) in rat embryos from 12 days post coitum (p.c.) until birth. The beta A-subunit message was localized in the heart at 12 days p.c. and in the dermal layer of the skin starting at 13 days p.c. At 14 days p.c. this mRNA was first observed in the whisker follicles, in the developing skeleton of the snout, limbs, and in the intervertebral disks. At 16 days p.c. the beta A-message was found in the striatum of the brain, and at 18 days p.c. it was also detected in the cerebral cortex. The beta A-mRNA signal appeared in hair bulbs at 17 days p.c., in teeth at 18 days p.c., and in tendons and gonads just before birth. Expression of beta A-mRNA was no longer detected in the skin or intervertebral disks after 17 days p.c. The beta B-subunit message was found in the area of rapidly dividing cells surrounding the forebrain ventricle, starting at 14 days p.c., in the gonads from the time of gonadal sexual differentiation, at 14 days p.c., and in the salivary gland as early as 17 days p.c. The beta B-message continued to be expressed in these areas throughout embryogenesis. The inhibin-alpha subunit message was also detectable in the gonads from 14 days p.c. until birth. These data suggest that 1) inhibin and activin may be produced in the gonads and possibly play a hormonal role in the embryonic rat during the last trimester of pregnancy, and 2) activin may regulate aspects of the embryonic development of the heart, skin, hair and whiskers, cartilage, bone, tendons, teeth, salivary gland, brain, and gonads, possibly in coordination with other members of the TGF beta superfamily whose mRNAs are expressed in some of these same tissues during development.

Activins↗

Localization and secretion of inhibin/activin subunits in the human and subhuman primate fetal gonads.

Little is known about the ability of the fetal primate gonads to produce inhibin/activin. We investigated the presence of the alpha-, beta A-, and beta B-subunits of inhibin/activin in fetal human (16-23 weeks gestational age) and rhesus monkey (days 150-157 of gestation; term = 165 days) testes and ovaries by immunocytochemistry. The regulation of alpha-inhibin secretion by gonadotropins was studied in fetal testicular cultures. In the human fetal testis, alpha-subunit immunostaining was found in interstitial and intratubular cells, while beta A- and beta B-subunit immunostaining occurred in clusters of Leydig cells that were clearly demarcated from groups of Leydig cells that were immunonegative. In the late gestational monkey testis, the alpha-subunit was localized in tubular cells, and the beta B-subunit was present in the tubules and interstitium. Testicular cells from midgestation human testes secreted detectable immunoreactive alpha-inhibin in response to FSH and hCG stimulation; alpha-inhibin levels were significantly higher after hCG than FSH. In contrast, levels of alpha-inhibin secreted by rhesus monkey testicular cells were significantly increased by FSH, but not hCG. In the ovary, only weak beta B-subunit immunoreactivity was detected in granulosa cells of a few primary follicles from midgestational human fetal ovaries. In contrast, all three subunits were found in granulosa cells of numerous primary and secondary follicles in the late gestation rhesus monkey ovary. In light of recent evidence that inhibins/activins have actions on gonadal differentiation and growth modulation in vitro, as well as endocrine effects on the fetal pituitary, we propose that these proteins may have intragonadal and endocrine roles in human and subhuman intrauterine gonadal development.

Activins↗

A homolog of Drosophila Notch expressed during mammalian development.

Drosophila Notch and the related Caenorhabditis elegans proteins lin-12 and glp-1 function as mediators of local cell-cell interactions required for cell-fate decisions during invertebrate development. To investigate the possibility that similar proteins play determinative roles during mammalian development, we isolated cDNA clones encoding rat Notch. The deduced amino acid sequence of this protein contains 36 epidermal growth factor (EGF)-like repeats, and is remarkably similar in both its extracellular and cytoplasmic domains to the sequence of Xenopus Xotch and Drosophila Notch. In the developing central nervous system, in situ hybridisation analyses revealed that Notch transcripts were dramatically restricted to the ventricular proliferative zones of embryonic neuroepithelia. Notch was also strongly expressed during development of non-neural tissues, such as hair follicles and tooth buds, whose correct differentiation requires epithelial-mesenchymal interactions. These data support the hypothesis that Notch plays an essential role in mammalian development and pattern formation that closely parallels its role in the development of invertebrates.

Amino Acid Sequence↗

Redistribution of neuronal lysosomes induced by colchicine: an electron microscopic quantitative study.

We have previously demonstrated that a single injection of the microtubule poison colchicine, into the lateral cerebral ventricle of the rat, induced a rapid redistribution of the lysosomal marker enzymes, dipeptidylaminopeptidase II (Dpp II) and acid phosphatase, from their normal location in neuronal cell bodies out into the dendrites. In the present study, we have quantitatively analyzed this phenomenon at the electron microscopic level by identifying and counting the number of lysosomes and mitochondria in neuronal cell bodies and dendrites of control and colchicine-treated rats. Areas examined included the anterior dorsal (AD) thalamus, pontine nucleus, and facial nucleus. The results show that the cytoplasm of these neurons contains significantly fewer large lysosomes after treatment with colchicine while the dendrites become abnormally enriched with large and small lysosomes after treatment. Lysosomes were rarely seen in the axons of either control or colchicine-treated animals. A significant increase in the density and the shape of mitochondria was also observed in the dendrites following colchicine treatment. The data presented support the hypothesis that neurons contain a transport system which selectively translocates lysosomes, and possibly other organelles, into dendrites. The size, shape, and number of these organelles may change as a result of this transport.

Acid Phosphatase↗

The effect of antimitotic agents on the intraneuronal distribution of lysosomes.

We previously showed that a single injection of colchicine into the lateral cerebral ventricle of the rat causes a redistribution of lysosomes from their normal localization in neuronal cell bodies into dendrites. In the present report we have examined the time course and specificity of this effect using a variety of microtubule poisons. Dipeptidylaminopeptidase II (Dpp II), a lysosomal marker enzyme, histochemistry was used to visualize lysosomes at the light microscopic level. Acid phosphatase, another lysosomal enzyme, histochemistry was used to confirm the Dpp II localization of lysosomes. Two h after an intracerebroventricular (i.c.v.) injection of colchicine, the distribution of neuronal lysosomes was drastically altered. Lysosomes in a number of neuronal populations were observed to move from the soma to the dendrites. This effect was maximal between 12 and 24 h and was partially reversed by 96 h. Injections of colcemid or podophyllotoxin, drugs that bind to tubulin rapidly, and much less tightly than colchicine, produced a much less pronounced alteration in the intraneuronal distribution of lysosomes. Injections of vinblastine or vincristine, whose binding kinetics range between that of colchicine and that of colcemid and podophyllotoxin, resulted in a redistribution of lysosomes which was less pronounced than the effects of colchicine but more pronounced than that caused by colcemid and podophyllotoxin. Likewise, treatment with other related compounds, 2-methoxy-5-(2',3',4'-trimethoxyphenyl)tropone (A-C compound) and lumicolchicine, whose binding to tubulin is extremely rapid and reversible or non-existent, produced little or no alteration in the intraneuronal distribution of lysosomes. The results suggest that lysosome redistribution may be dependent upon a relatively slow dissociation rate constant of these drugs from tubulin, and this transport may occur when normal microtubule function is compromised.

Acid Phosphatase↗

Periovulatory changes in the expression of inhibin alpha-, beta A-, and beta B-subunits in hormonally induced immature female rats.

Immature female rats were treated with PMSG and human CG to induce ovulation. Sequential treatment with these hormones allowed us to investigate variations in the production of inhibin subunits shortly before ovulation and during the induced luteal phase. Using this model, we found that expression patterns for the alpha-, beta A-, and beta B-subunits were similar to those observed in mature cycling animals: administration of PMSG (to mimic the gonadotropin surge) led to a sharp increase in the expression of all three subunits in large preovulatory follicles whereas injection with human CG (to induce ovulation) caused a decrease in the levels of the respective mRNAs. In contrast to mature females, shortly before ovulation, levels of inhibin alpha-subunit mRNA were low in small antral follicles (approximately 350 microns). In addition, at that time, inhibin beta A- and beta B-subunits mRNAs were present in several large follicles (greater than 500 microns). More than 2 days after ovulation, inhibin beta A- and beta B-subunit mRNAs could not be detected in small antral size follicles (approximately 350 microns) of hormonally induced females. On the other hand, hybridization signals for the inhibin alpha-subunit were observed in some small antral and preantral size follicles, while signals were very low or undetectable in a large number of atretic follicles. Using this synchronized ovulation model, hybridization patterns for inhibin beta A-subunit mRNA was observed in interstitial cells, 8-10 h after ovulation.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Redistribution of lipofuscin in aged neurons induced by colchicine.

The effect of a single, 40 micrograms, intracerebroventricular injection of colchicine on the distribution of neuronal lysosomes and lipofuscin granules in aged mice was studied. At the light microscope level we observed that colchicine induced a redistribution of dipeptidyl aminopeptidase II (Dpp II), a lysosomal and lipofuscin granule marker enzyme, from the cell bodies of neurons to the dendrites; cell bodies became depleted of Dpp II while dendrites became enriched with this enzyme. Quantitation of this phenomenon at the electron microscope level demonstrated that colchicine induced a rapid and significant decrease in the density of lysosomes and lipofuscin granules from the somata of neurons whereas in dendrites we observed a significant increase in the density of these organelles.

Aging↗

Rapid changes in the expression of inhibin alpha-, beta A-, and beta B-subunits in ovarian cell types during the rat estrous cycle.

Distributions of inhibin alpha-, beta A-, and beta B-subunits in different ovarian compartments were studied in cycling female rats by in situ hybridization with complementary RNA probes and using immunohistochemical localization with antibodies selective for each inhibin subunit. Consistent with earlier studies showing inhibin production by granulosa cells of maturing follicles, we also detected mRNAs for inhibin alpha-, beta A-, and beta B-subunits in granulosa cells of these follicles. However, based on immunohistochemistry and in situ hybridization, we found that inhibin alpha- is not only expressed in granulosa cells of mature follicles but in follicles at all stages of maturation, including primary to tertiary follicles. A number of primordial follicles also contained alpha mRNA and immunodetectable alpha-subunit. Interestingly, theca interna and interstitial gland cells contained inhibin alpha mRNA and alpha-subunit. Low levels of inhibin alpha immunoreactivity as well as specific hybridization to the complementary inhibin alpha mRNA probe were observed in newly formed luteal tissue. beta-Subunits, on the other hand, were detected exclusively in granulosa cells of healthy tertiary follicles. The changes in expression of inhibin alpha-, beta A-, and beta B-subunits were more pronounced during the follicular phase of the cycle: inhibin alpha reached its highest level in granulosa cells, theca interna, and interstitial gland cells a few hours after the LH/FSH surge, while at the same time the beta-subunits decreased dramatically in granulosa cells of mature follicles. Immediately before ovulation (estrus 0200 h), the alpha-subunit sharply declined in preovulatory follicles and was present mainly in granulosa cells from nonovulatory follicles at various stages of maturation. At that time, the beta A- and beta B-subunits could not be detected in preovulatory follicles but were localized mainly in small tertiary follicles (less than 300 microns). Unlike for the alpha- and beta B-subunits, beta A mRNA and immunoreactivity was present in large tertiary follicles (approximately 600 microns) immediately before ovulation. The present findings support the hypothesis that a decrease in inhibin production could be responsible for the secondary FSH surge observed early on estrus. This could be initiated by a change in the ratios of activin-inhibin production by decreasing first, the levels of beta-subunits, second, the levels of alpha-subunit, and third, by a resurgence of activin A produced mainly by granulosa cells from large tertiary follicles.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗