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C Beyer

Publications and source records attributed to C Beyer.

At least 91 records · Page 5Linked to original sources

Gender-specific brain formation of oestrogen in behavioural development.

Steroid sex hormones have an organisational role in the development of brain mechanisms underlying gender-specific behaviour. Although peaks in gonadal androgen occur at developmental stages that coincide with sensitive periods for the differentiation of both structural sex differences in the brain and sexual behaviour, the factors that control the phasic effects of steroids are still not understood. Aromatase, converting androgen to oestrogen, is a key enzyme in development, and regulation of the activity of this enzyme is likely to be one of the factors determining availability of oestrogen effective for brain differentiation. Measurement of testosterone metabolism in vitro shows that in the mouse oestrogens are formed actively in the neonatal brain during male development. In cultured cells of the embryonic mouse hypothalamus there are sex differences in hypothalamic aromatase activity both during early embryonic and later perinatal development, with a higher capacity for oestrogen formation in the male than in the female. The sex differences are regionally specific, since no differences in aromatase activity are detectable in cultured cortical cells between male and female. Aromatase activity is neuronal rather than astroglial. Using a specific antibody to the mouse aromatase, immunoreactivity is also restricted to neuronal soma and neurites in hypothalamic cultures. Therefore, gender-specific differences in aromatase regulation are probably restricted to neurons. Testosterone increases oestrogen formation specifically in cultured hypothalamic neurones, but has no effect on cortical cells. Although there is a sex difference in early embryonic neuronal aromatase, aromatase activity appears to be sensitive to androgen only in later embryonic development. What determines the phasic sensitivity of the developing brain aromatase system to androgen has still to be determined.

Androgens↗

Aromatase-immunoreactive neurons in the adult female chicken brain detected using a specific antibody.

Estrogen formation in the brain catalysed by the cytochrome P450arom is required for the control of estrogen-dependent neural mechanisms regulating reproductive behaviour. A polyclonal antibody was raised against a 15-amino acid fragment of the chicken ovarian P450arom protein, to localise aromatase-immunoreactive (AR-IR) cells in the adult female chicken brain. Specificity of antibody reaction was established by Western blot and by inhibition of aromatase activity in homogenates of chicken ovarian follicles determined by a radiometric assay. The AR-IR material in the brain was localised in the perikarya and some of their adjacent cytoplasmatic processes. Intense immunoreactivity was observed in the preoptic region as well as in other hypothalamic nuclei. AR-IR cells were also found in extrahypothalamic areas; in particular, in the area entorhinalis and hippocampus. These results confirm histologically that aromatization of testosterone in the adult female chicken brain occurs in preoptic nuclei closely associated with the regulation of reproductive behaviour. The mapping of AR-IR cells in the female chicken brain now allows study of its regulation under different physiological and environmental conditions, and its relation to classic target areas expressing estrogen receptors.

Amino Acid Sequence↗

Brain formation of oestrogen in the mouse: sex dimorphism in aromatase development.

Steroid sex hormones have an organizational role in gender-specific brain development. Aromatase, converting testosterone (T) to oestradiol-17 beta (E2), is a key enzyme in the brain and the regulation of this enzyme is likely to determine availability of E2 effective for neural differentiation. In rodents, oestrogens are formed very actively during male perinatal brain development. This paper reviews work on the sexual differentiation of the brain aromatase system in vitro. Embryonic day 15 mouse hypothalamic culture aromatase activity (AA: mean Vmax = 0.9 pmol/h/mg protein) is several times greater than in the adult, whereas apparent Km is similar for both (approximately 30-40 nM). Using microdissected brain areas and cultured cells of the mouse, sex differences in hypothalamic AA during both early embryonic and later perinatal development can be demonstrated, with higher E2 formation in the male than in the female. The sex differences are brain region-specific, since no differences between male and female are detectable in cultured cortical cells. AA quantitation and immunoreactive staining with an aromatase polyclonal antibody both identify neuronal rather than astroglial localizations of the enzyme. Kainic acid eliminates the gender difference in hypothalamic oestrogen formation indicating, furthermore, that this sex dimorphism is neuronal. Gender-specific aromatase regulation is regional in the brain. Oestrogen formation is specifically induced in cultured hypothalamic neurones of either sex by T, since androgen has no effect on cortical cells. Androgen is clearly involved in the growth of hypothalamic neurones containing aromatase. It appears that differentiation of the brain involves maturation of a gender-specific network of oestrogen-forming neurones.

Animals↗

Androgens influence sexual differentiation of embryonic mouse hypothalamic aromatase neurons in vitro.

Estrogen formed perinatally in the brain from testicular androgen by aromatase is involved in the irreversible determination of male brain development. Perinatal sex differences in aromatase activity have been observed in the hypothalamus. Testosterone (T) is a major modulator for aromatase in the adult rat hypothalamus. However, it is not known whether circulating T influences aromatase neurons during fetal brain development. To study the influence of androgen exposure on embryonic neuronal aromatase, gender-specific primary cell cultures were prepared from embryonic day 15 mouse hypothalamus and cortex. Estrogen formation by cultured neurons was measured using an in vitro 3H2O product formation assay, and aromatase neurons were identified by immunocytochemistry using a highly specific antiserum. Aromatase activity (AA) per well and numbers of aromatase-immunoreactive (IR) neurons per microtubulus associated protein II-IR neurons x 10(5) were significantly higher in male hypothalamic cultures compared with female when grown in the absence of sex steroids. When AA was calculated per aromatase-IR neuron, no differences in enzyme activity were found between male and female. Therefore, the level of AA in individual male hypothalamic neurons is similar to the female, but a higher proportion of male neurons express aromatase. After T treatment, AA per well (P < or = 0.001) and AA/aromatase-IR cell (P < or = 0.005) in male and female hypothalamic cultures was significantly increased vs. controls. In addition, numbers of aromatase-IR neurons/microtubulus associated protein II-IR neurons x 10(5) were significantly higher after T exposure compared with controls (P < 0.001). Androgenic effects on hypothalamic AA and aromatase-IR cell numbers were dose-dependent and mediated via androgen receptor stimulation, since the observed effects were inhibited by the androgen-receptor antagonist flutamide. There was no effect of T on cortical AA or aromatase-IR cell numbers, indicating area-specific regulation of brain aromatase. We conclude that 1) sex differences in hypothalamic AA are due to a higher percentage of neurons expressing aromatase in males rather than to higher AA in individual male hypothalamic aromatase-IR cells, and 2) androgens influence the development of the fetal hypothalamic aromatase system. Because T influenced both the embryonic male and female hypothalamic neurons in culture, the developing mouse brain aromatase appears to be bipotential in response to androgen. The data suggest that environmental and genetic factors affecting androgen level and/or androgen receptor function in the developing brain could interfere with the sexual differentiation of estrogen forming neurons.

Androgens↗

Release of amino acids into regional superfusates of the spinal cord by mechano-stimulation of the reproductive tract.

Based on pharmacological evidence that inhibitory amino acids mediate vaginocervical mechano-stimulation produced analgesia (VSPA), we hypothesized that inhibitory amino acids would be released endogenously in the spinal cord in response to vaginocervical mechano-stimulation (VS). This hypothesis was tested by HPLC analysis of the amino acid content of 5-min superfusates of the spinal cord before, during and after VS (400 g force applied against the cervix) in urethane-anesthetized rats. Utilizing an in vivo push-pull superfusion method, artificial cerebrospinal fluid was continuously superfused over the spinal cord through the intrathecal space surrounding the sacral-lower thoracic region. In addition, concentrations of amino acids in the superfusate were measured in response to KCl stimulation (increasing the superfusion medium from 3.4 to 40.0 mM KCl to produce non-specific depolarization), and noxious hind paw mechano-stimulation (pinching the hind paw to produce a sustained flexor response in ipsilateral hind leg). There was a significant increase in the concentration of Gly, Tau, Asp, Glu and Lys in the superfusate in response to VS (n = 8) and to KCl (n = 8), but not to hind paw stimulation (n = 5). Also, GABA concentrations increased in response to KCl, and the concentration of Ala, Ser, Gln, Thr, Arg and Phe increased in response to VS, however, GABA levels were sometimes below the limits of detection. In contrast, there was no significant change in any amino acid concentration in response to hind paw pinch stimulation, and VS did not significantly affect the concentrations of Tyr, His, Ile, Leu, Met, Trp or Val. The present findings support our hypothesis that VS releases inhibitory amino acids in the spinal cord. Moreover, other amino acids, including 'excitatory' amino acids, are released into the superfusate. The profile of amino acid release in response to VS differs from that in response to paw pinch or KCl administration.

Amino Acids↗

Characterization of B-cell epitopes in the envelope glycoproteins of simian immunodeficiency virus.

We identified previously a neutralizing epitope in the V2 domain of the simian immunodeficiency virus (SIVmac) external envelope protein. The present study reports identification of five additional linear epitopes of SIVmac (isolate 251) by immunological screening of a peptide library expressed in yeast, using SIVmac-infected macaque sera. Three epitopes were localized in the envelope glycoproteins and the two others in the reverse transcriptase and in the Rev regulatory protein. Antibody response against the four envelope epitopes was monitored for 2 years in 12 macaques experimentally infected by SIVmac251. These four envelope regions represent major immunodominant epitopes of the SIVmac. Two epitopes are located in the V3 domain (a.a. 311-330) of the external gp130 and near the amino terminal part (a.a. 601-619) of the transmembrane gp36, in regions similar to those identified in HIVs, demonstrating immunological similarities between the envelopes of SIVs and HIVs. SIV-specific immunodominant epitopes were also identified in the V1 (a.a. 111-130) and V2 (a.a. 171-190) domains of the external gp130. In particular, antibody response against the V2 neutralizing region seems to play some role in the control of disease progression in SIVmac-infected macaques.

Amino Acid Sequence↗

Sex steroid regulation of chin-marking behavior in male New Zealand rabbits.

Chin-marking behavior (chinning) was evaluated daily in nine intact adult male rabbits. All subjects (Ss) displayed chinning (mean of means +/- SE = 61 +/- 7 marks/10 min) but the frequency of this behavior varied largely across them (range of mean chinning frequency = 19-84 marks/10 min). Chinning frequency showed abrupt variations at intervals of 2-3 days, but periodogram analysis did not reveal the existence of an endogenous rhythm in this behavior. Castration significantly decreased (mean of means +/- SE = 29 +/- 9 marks/10 min; p < 0.01). but did not suppress chinning. Testosterone propionate (TP; 1 mg/day for 16 days) restored chinning in castrated Ss to slightly below precastration levels (mean +/- S.E. V 53 +/- 13 marks/10 min). The daily administration of 1 microgram estradiol benzoate (EB) plus 1 mg dihydrotestosterone propionate (DHTP) stimulated chinning within 2 days (mean increase = 147%; p < 0.005). DHTP (1 mg/day) given alone stimulated chinning only after 11 days of treatment (mean increase = 475%; p < 0.01). At higher doses, both DHTP (10 mg/day) and EB (10 or 50 micrograms/day) stimulated chinning by 450%, 80%, and 100%, respectively, over baseline values. Results indicate that chinning largely depends on testicular steroids. Androgen receptor occupation by T or DHT, which is enhanced by E, optimally activates chinning.

Animal Communication↗

Kainic acid has cell-specific effects on survival of hypothalamic mouse neurones in vitro.

Cultures of mouse hypothalamus from embryonic day 15 fetuses were exposed to kainic acid (KA) to study effects on survival of selected cell populations. After 6 days in vitro, immunocytochemistry revealed destruction of dopaminergic and GABAergic neurones after KA-treatment, whereas numbers of oxytocinergic cells and neurones containing metEnkephalin were unchanged. Surviving neurones were characterized by a loss of processes or a reduction of process length. Glial cell numbers did not show any differences between groups. Amino acid concentrations decreased after KA-treatment; only glutamine and taurine levels were unaffected. We conclude that toxic effects of KA differ with respect to distinct neuronal populations of the mouse hypothalamus. Therefore, experimental data concerning neuronal destruction under in vitro conditions have to take into account the selectivity of this neurotoxic agent.

Amino Acids↗

Cytotoxic T-cell response and AIDS-free survival in simian immunodeficiency virus-infected macaques.

OBJECTIVES: To determine whether cytotoxic T lymphocytes have a beneficial effect during infection with the simian immunodeficiency virus (SIV) in macaques. DESIGN AND METHODS: We followed up 12 rhesus macaques experimentally infected with SIV. Cytotoxic T lymphocytes were detected in nine macaques, who were subdivided into a group of high responders (n = 6), with a sustained and polymorphic response directed against most SIV proteins, and a second group of weak responders (n = 3), in which the responses were only transient and directed against only a few proteins. A third group was characterized by the absence of any cytotoxic T-lymphocyte response (n = 3). Proliferative responses closely paralleled cytotoxic responses in intensity and evolution. RESULTS: Clinical profiles and CD4 cell counts were markedly linked to cytotoxic activity; five out of six macaques that responded to multiple proteins were still healthy 2 years after SIV infection, with two of them presenting a decrease in circulating CD4 cells concomitant with the disappearance of the cytotoxic T-lymphocyte response. Conversely, five non-responder or weak-responder macaques developed overt disease after 4-21 months. CONCLUSIONS: These data suggest that a cytotoxic response may predict a better clinical outcome.

Animals↗

Transmission of a ring chromosome 18 from a mother with 46,XX/47,XX, + r(18) mosaicism to her daughter, resulting in a 46,XX,r(18) karyotype.

A 6 month old patient is reported with a ring chromosome 18 confirmed by cytogenetic studies and in situ hybridisation. Her clinical features were similar to previous cases of ring chromosome 18 syndrome. The ring chromosome was inherited from the phenotypically and mentally normal mother with a mos 46,XX/47,XX, + r(18) karyotype.

Abnormalities, Multiple↗

Progesterone, but not LHRH or prostaglandin E2, induces sequential inhibition of lordosis to various lordogenic agents.

In experiment I we studied the capacity of progesterone (P) and two nonsteroidal agents that activate lordosis, but do not bind to the progestin receptor (PR), i.e. luteinizing hormone-releasing hormone (LHRH) and prostaglandin E2 (PGE2) to induce sequential inhibition (SI) in ovariectomized estradiol-primed rats. The administration of 1 mg P, 5 micrograms LHRH or 100 micrograms PGE2 induced significant lordosis within 4 h. An injection of 1 mg P, 24 h after the administration of the above lordogenic agents, induced significant lordosis in rats pretreated with LHRH or PGE2, but not in those pretreated with P. Thus, only P induced SI (p < 0.025). In experiment II we investigated if progestin-induced SI results in a reduced capacity of the subjects to respond only to P or to other lordogenic agents. The synthetic progestin norgestrel (400 micrograms administered 24 h earlier) significantly reduced the responsiveness to P (p < 0.01), LHRH (p < 0.01), PGE2 (p < 0.025) and dibutyryl cyclic AMP (db cAMP p < 0.01). Results suggest that SI is triggered only by agents that bind to the PR (experiment I) and that it decreases the responsiveness of rats not only to P but also to other lordogenic agents (experiment II).

Animals↗

Sex-specific aromatization of testosterone in mouse hypothalamic neurons.

Conversion of androgens to oestrogens by neural aromatase during brain development appears to be a prerequisite for sexual differentiation of the mammalian central nervous system. In order to investigate the pre- and perinatal patterns of testosterone (T) aromatization in the male and female mouse brain, aromatase activity (AA) was measured in hypothalamic and cerebral homogenates of embryonic day (ED) 17 fetuses and neonates using an in vitro 3H2O product formation microassay. In addition, AA was examined in gender-specific neuronal cell cultures prepared from ED 15 mouse cerebral hemisphere and hypothalamus at 3 and 6 days in vitro (DIV), and this was compared with enzyme activities in homogenates. The aromatase has also been evaluated in glial-enriched cultures from ED 20 mouse hypothalamus and cortex as well as in ED 15 cultures treated with the neurotoxin kainic acid in order to localize AA to neurons and/or glial cells. Significant sex differences in AA were observed in hypothalamic tissue homogenates as early as ED 17, becoming even more distinct in neonates, AA being always higher in males compared to females. Similar AA was also found in cells from both sexes from cultured ED 15 hypothalamus after 3 DIV. However, significantly higher AA was observed after 6 DIV in ED 15 male hypothalamic cultures compared to female. ED 20 glial-enriched hypothalamic cultures (purity > 95%) from both brain regions exhibited very low AA after 6 DIV, and no sex differences were found.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Creatine measurement in serum and urine with an automated enzymatic method.

I describe an automated enzymatic procedure to quantitate creatine in both serum and urine. In this assay, which requires no pretreatment of the sample, creatine kinase (CK; EC 2.7.3.2) and pyruvate kinase (EC 2.1.7.40) are used as auxiliary enzymes and lactate dehydrogenase (EC 1.1.1.27) is used in the indicator reaction. CK is also used as the starting reagent. Data obtained with the present method for creatine measurement in serum were compared with those from the Jaffé method and an enzymatic method: y = 1.13x - 7.58, SE = 4.48, and r = 0.925 (Jaffé); and y = 1.17x + 2.73, SE = 5.06, and r = 0.962 (enzymatic); for creatine measurement in urine: y = 0.63x + 39.74, SE = 296.7 and r = 0.719 (Jaffé). The present method provides improved precision: the total CVs for serum, determined by the present and comparative methods, respectively, were 3.5-8.9%, 8.2-43.0%, and 5.3-16%; for urine, the CVs were 3.3-5.1% and 9.6-21.2% for the present and comparative method, respectively. I established the normal reference interval as 13-74 and 13-89 mumol/L for creatine in serum, and as 175-700 and 150-1200 mumol/24 h for creatine in urine for men and women, respectively.

Adenosine Triphosphate↗

Lectin histochemistry of salivary glands in the giant ant-eater (Myrmecophaga tridactyla).

The submandibular and buccal glands of the Giant Ant-eater (Myrmecophaga tridactyla) have been studied by means of a series of carbohydrate histochemical methods, including a broad spectrum of PO-lectin procedures. The seromucous cells (Gl. submandibularis) and mucous cells (Gl. buccalis) of the glandular acini, as well as the secretion in the excretory duct system exhibited very strong to strong reactions for neutral and acidic glycoconjugates. The serous cells of the buccal glands and the excretory duct cells reacted rather weakly. The different controls applied particularly emphasized that sialoglycoconjugates are the predominant ingredients of the saliva secreted. Lectin histochemical differentiation demonstrated a varying pattern of saccharide residues in these substances. In the submandibular glands the glycoconjugates (mostly proteoglycans) of the seromucous cells and the luminal secretion normally contained terminal beta-galactose and minor contents of terminal alpha-N-acetylglucosamine. After sialidase digestion this cell type exhibited distinct amounts of sialic acid-beta-galactose and sialic acid-alpha-N-acetylgalactosamine. Sialic acid was also clearly present in the tough interlobular connective tissue. The buccal glands showed a similar distribution of saccharide residues in the mucous cells. In the serous cells, however, acidic glycoproteins with sialyl residues were observed, also containing terminal alpha-D-mannosyl, alpha-N-acetylgalactosaminyl, and beta-D-galactosyl residues. The cells of the excretory duct system of both gland types reacted weakly to moderately for terminal sugar residues (N-acetyl-D-glucosamine, N-acetyl-D-galactosamine, beta-D-galactose). The results obtained are discussed in view of the specific feeding mode of the Giant Ant-eater, whereby high contents of sialoglycoconjugates (proteoglycans, glycoproteins) produced by the salivary glands warrant for the main function of the non-sticky saliva; i.e., to act as an effective lubricant during tongue movement.

Animals↗