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Gamma knife radiosurgery as a primary treatment for prolactinomas.

OBJECT: The purpose of this study was to estimate the efficacy of gamma knife radiosurgery (GKS) in controlling tumor growth and endocrinopathy associated with prolactinomas. METHODS: Between 1993 and 1997, 164 of 469 patients with pituitary adenomas treated by GKS harbored prolactinomas. The dose to the tumor margin ranged from 9 to 35 Gy (mean 31.2 Gy), and the visual pathways were exposed to a dose of less than 10 Gy. The mean tumor diameter was 13.4 mm. The mean follow-up time for 128 cases was 33.2 months (range 6-72 months). Tumor control was observed in all but two patients who underwent surgery 18 and 36 months, respectively, after GKS. Clinical cure was achieved in 67 cases. Clinical improvement was noted with a decrease in the hyperprolactinemia after GKS. Nonetheless, in 31 (29%) of 108 patients who were followed for more than 2 years no improvement in serum prolactin levels was demonstrated, although this could be normalized by bromocriptine administration after treatment. Nine infertile women became pregnant 2 to 13 months after GKS and all gave birth to normal children. There was no visual deterioration related to GKS. Five women experienced premature menopause. In these patients there was subtotal disappearance of the tumor and an empty sella developed. CONCLUSIONS: Gamma knife radiosurgery as a primary treatment for prolactinomas can be safe and effective both for controlling tumor growth and for normalization of prolactin hypersecretion. A higher margin dose (> or = 30 Gy) seemed to be associated with a better clinical outcome. Gamma knife radiosurgery may make prolactinomas more sensitive to the bromocriptine.

Humans↗

Ultrastructural localization of prolactin in estrogen-induced prolactinoma of the rat pituitary. Experimental models for the human prolactinomas and the effects of bromocriptine.

In order to establish the experimental model for human prolactinomas and its bromocriptine treatment, estrogen-induced prolactinoma was produced in the female Wistar rats, in which daily bromocriptine treatment was given for a week, 3 days or 1 day (24 hours). The prolactinoma was produced by giving 5 mg estrogen depot every four weeks. The rats were killed at 4, 12, 20, and 24 weeks after the initial injection of the estrogen. By immunoelectron microscopy, in the estrogen induced prolactinoma, PRL was localized in well developed lamellar or whorling rough endoplasmic reticulum (RER) and Golgi saccules. In the rats treated with bromocriptine for a week, the serum PRL levels were lowered and the atrophied cytoplasm was filled with secretory granules containing PRL. These data were comparable to those of the human prolactinomas and the present experiment will serve as an animal model for studying the morphofunctional changes of human prolactinomas induced by bromocriptine treatment. The experiment with bromocriptine treatment for 24 hours supported the proposed mechanism that bromocriptine evokes inhibition of exocytosis followed by continuous granule formation in Golgi complexes and subsequently lowers synthesis of PRL.

Animals↗

Prolactinoma in 53 men: clinical characteristics and modes of treatment (male prolactinoma).

The data of 53 men treated for hyperprolactinemia were reviewed retrospectively to determine the efficacy of the medical and surgical treatment. The clinical assessment, radiological and neuro-ophthalmological investigations and hormonal measurements were performed before treatment as well as during the follow-up period. Imaging evaluation included computed tomography and/or nuclear magnetic resonance of the pituitary. The hormonal profile examined was PRL, FSH, LH and testosterone, as well as TSH, T4, T3 and cortisol. Thirty patients were treated solely by dopamine agonists (DA), twenty-two men had pituitary surgery in addition to DA treatment, and one patient was operated with no need for medical treatment. Decreased sexual function was the most frequent presenting symptom (85% of the men). Most of the patients had large invasive macroadenomas, with suprasellar extension. More than 40% had visual field defects. Baseline PRL (mean +/- SE) was 51,842 +/- 9,292 mU/L and decreased to a level below 575 mU/L in 70% of the patients after DA therapy. Mean testosterone, FSH, and LH levels increased slightly but significantly from the low baseline values. Complete clinical response to DA was achieved in 49% of the men and the tumor mass disappeared entirely in 21%, and incompletely in 42%. The surgical success rate (transsphenoidal or trans-cranial operation) was low--only one of the 23 patients operated recovered completely, and most of the patients were left with hormonal deficits and hyperprolactinemia. These findings indicate that continuous medical treatment with DA should be the preferred mode of treatment for male prolactinomas. Removal of these large tumors is recommended only when the tumors are life-threatening or if drug resistance or severe adverse reactions to DA develop.

Adolescent↗

Comparative immunohistochemical analysis of estrogen receptor and chromogranin-A reactivity in plurihormonal human prolactinomas.

The aim of the study was to compare the immunoreactivity of estrogen receptors (ER) and chromogranin-A (CHR-A) in human prolactinomas with verified plurihormonality. Eleven cases of prolactinomas, nine found in women aged from 15-32 and two found in two men both aged 54 years, were analyzed for possible colocalization of other hormones produced by adenohypophysis, i.e. growth hormone (GH), thyroid-stimulating hormone (TSH), follicle-stimulating hormone (FSH) and adrenocorticotropic hormone (ACTH). All evaluated cases of prolactinomas were clinically manifested by elevated values of prolactin (PRL) in patient serum, while the values of other assayed hormones were within the normal range. Although biopsy material is not routinely submitted to immunohistochemical analysis for plurihormonality, these eleven cases of operated prolactinomas were randomly examined to the presence of plurihormonality. In six cases of prolactin-producing adenomas, the coexistence of growth hormone was detected. Colocalization of follicle-stimulating hormone and weak expression of adrenocorticotropic hormone were found in two cases each. Thus, bihormonal activity (PRL + GH) was found in six, and trihormonal activity (PRL + GH + FSH and PRL/GH + ACTH) in three cases of prolactinoma. In addition, the presence of prolactin and growth hormone was demonstrated in morphologically different cells. Eight of these eleven pituitary adenomas were tested for estrogen receptors (ER), which play an important role as growth stimulating factors and secretory factors for prolactin-producing cells. We tried to determine if there was a difference in the intensity of expression of estrogen receptors and chromogranin-A between pure prolactinomas and mixed, plurihormonal prolactinomas. By use of monoclonal antibodies, chromogranin-A found to be reactive in seven of eleven prolactinomas, i.e. in plurihormonal prolactinomas. Estrogen receptors were markedly expressed in all the eight prolactinomas analyzed, which may prove significant in the treatment of these hypophyseal tumors.

Adolescent↗

Expression of aromatase P450 is increased in spontaneous prolactinomas of aged rats.

We have recently reported the presence of aromatase P450 in the rat hypophysis. This enzyme is responsible for the aromatization of testosterone to estradiol. Since the induction of prolactinomas has been demonstrated in the rat following chronic treatment with estradiol, the aim of the present study was to analyze whether a relationship exists between the presence of pituitary aromatase and the appearance of spontaneous prolactinomas in aged rats. Of a series of 90 adenomas studied, 53% showed prolactin immunoreactive cells and were classified as prolactinomas; only 33% of the adenomas were pure prolactinomas and the other 20% were multi-hormonal protactinomas. Moreover, 60% of the adenomas were aromatase-positive tumors. Interestingly, 100% of the pure prolactinomas were aromatase-positive while only 60% of the multi-hormonal prolactinomas expressed the enzyme. Western blotting with anti-aromatase antibodies revealed a 3.8-fold increase in expression of aromatase in pituitary tumors as compared to normal rat pituitary gland. Double immunohistochemical labeling detected the coexistence of prolactin and aromatase P450 in prolactinoma cells. ACTH- and LH-positive adenomas were considered as controls; only multi-hormonal ACTH and LH tumors display aromatase-positive cells and all of these also contained prolactin-positive cells. Our results demonstrate for the first time that aromatase is expressed in pituitary adenomas and that it is related to the functional nature of the tumor, especially in the case of pure prolactinomas, suggesting the possibility that an abnormally high conversion of testosterone into estradiol in pituitary cells may contribute to the genesis of spontaneous prolactinomas in aged rats.

Age Factors↗

The outcome of hypophysectomy for prolactinomas in the era of dopamine agonist therapy.

OBJECTIVE: Dopamine agonists are the primary therapeutic modality for the majority of patients with prolactinomas, with pituitary surgery reserved for those patients intolerant of or resistant to these agents. Most published surgical series, however, contain patients treated by surgery as the primary therapeutic modality. Previous exposure to dopamine agonists or the selection of patients with prolactinomas resistant to conventional therapy may potentially compromise the surgical success rate. The purpose of this study was to evaluate the efficacy and safety of pituitary surgery for prolactinomas in a tertiary referral centre where the majority of patients were operated on after treatment with dopamine agonists. DESIGN: A retrospective review of the outcome of pituitary surgery for prolactinomas performed at a tertiary neurosurgical centre by a single neurosurgeon. PATIENTS: Twenty-three patients underwent excision of a macro and 11 excision of a micro-prolactinoma. MEASUREMENTS: Pituitary tumour diameter was determined by CT or MRI imaging. Pre and post-operative measurements were made of serum PRL concentration (off dopamine agonist therapy), free T4, free T3, LH and testosterone (males). Post-operative restoration of a menstrual cycle was taken to indicate resolution of hypogonadism in female patients. RESULTS: The majority (73.9%) of the patients with macro and all with micro-prolactinomas had received dopamine agonists preoperatively. Of the 23 patients with macroprolactinomas, in whom the median preoperative PRL concentration was 13255 mU/l, 17 (73.9%) had radiological evidence of suprasellar extension and 5 (21.7%) cavernous sinus invasion. Only 4 (17.4%) of the patients with macroprolactinomas had a normal serum PRL post-operatively, although there was an improvement in visual fields in 66% of those with preoperative defects. The median preoperative PRL concentration was 4309 mU/l in the patients with microprolactinomas, significantly lower than in the macroprolactinoma group (P = 0.02). Despite a significant fall in serum PRL postoperatively (median PRL 860 mU/l, P = 0.0001), only 45.5% of patients had a normal serum PRL concentration after surgery. CONCLUSIONS: The cure rate following pituitary surgery for prolactinomas in a tertiary referral centre was low when compared with previous series in which surgery was used as the primary therapeutic modality. We suggest this may result both from dopamine agonist pretreatment and the referral of prolactinomas resistant to conventional therapy. The outcome is probably a more realistic reflection of the results of pituitary surgery for prolactinomas as currently practised in the majority of neuroendocrine centres.

Adolescent↗

Role of E-cadherin, alpha-, beta-, and gamma-catenins, and p120 (cell adhesion molecules) in prolactinoma behavior.

E-cadherin/catenin complex regulates cellular adhesion and motility and is believed to function as an invasion suppressor system. In a number of cancers, abnormal and reduced expression of E-cadherin/catenin complex is associated with tumor invasion and metastasis. Prolactinomas show frequent invasion on the surrounding structures, despite their histologically benign nature. Furthermore, gender-based differences in endocrine and surgical findings are found in patients with prolactinoma. To understand biological factors governing prolactinoma behavior, this study analyzed the expression of E-cadherin; alpha-, beta-, and gamma-catenins; p120; and cell proliferation marker MIB-1 labeling index in 13 invasive tumors (9 in men, 4 in women), 26 noninvasive tumors (4 in men, 22 in women), and 8 normal anterior pituitaries by immunohistochemistry. Immunostaining of E-cadherin; alpha-, beta-, and gamma-catenins; and p120 showed a membranous pattern of reactivity and generally stronger in normal pituitaries than in prolactinomas. Expression of E-cadherin and beta-catenin was significantly lower in invasive than in noninvasive prolactinomas (P <.002 and P <.005, respectively), and reduced expression of E-cadherin and beta-catenin was more frequent in invasive than in noninvasive prolactinomas (P <.001 and P <.05, respectively); in contrast, gamma-catenin expression showed higher in invasive than in noninvasive prolactinomas (P <.05). Expression of E-cadherin was significantly lower in macroprolactinomas than in microprolactinomas (P <.01), and decreased expression of E-cadherin and beta-catenin predicted high MIB-1 expression (P <.05). Moreover, the expression of E-cadherin and beta-catenin was significantly lower in macroprolactinomas in men than in those in women (P <.01 and P <.02, respectively). No statistical correlations were observed between expression of alpha-catenin, p120, and clinicopathologic features. In conclusion, the reduction of E-cadherin and beta-catenin expression was related to invasiveness and proliferative status of prolactinomas and correlated with the more aggressive behavior of prolactinomas in men compared with in women.

Adolescent↗

Prolactinomas in a large kindred with multiple endocrine neoplasia type 1: clinical features and inheritance pattern.

Multiple endocrine neoplasia type 1 (MEN 1) is associated with neoplasia and hyperfunction of the parathyroid and pituitary glands, pancreatic islet cells, and neuroendocrine cells of the gut. The inheritance pattern is autosomal dominant, and the underlying genetic defect is situated at chromosome 11q13. The MEN 1 gene behaves as a defective copy of a normally constitutive tumor suppressor gene. Development of the MEN 1 phenotype, however, is a multistep and multifactorial process. The Tasman 1 genealogy is the largest MEN 1 pedigree detected to date. Thus far, 90 related members with MEN 1 have been screened for evidence of prolactinoma. Prolactinomas were found in 18 patients (20%). Prolactinomas were not evenly distributed in the genealogy; in 2 branches of the overall genealogy prolactinomas were present in 50% or more of MEN 1-affected members. The familial distribution of prolactinomas in these branches was consistent with an autosomal dominant mode of inheritance. In the remainder of the pedigree, prolactinomas were uncommon and did not display this inheritance pattern. This pedigree represents one of the largest published MEN 1 genealogies in which the risk of developing prolactinoma follows an autosomal dominant pattern of transmission. It is the first to demonstrate an inheritance pattern for prolactinomas acting in addition to, yet distinct from, the inheritance of the underlying MEN 1 gene defect. These findings are consistent with the existence of an undefined second genetic defect involved in the pathogenesis of prolactinoma in MEN 1.

Adult↗

The preoperative and postoperative investigation of TSH and prolactin release in the management of patients with hyperprolactinaemia due to prolactinomas and nonfunctional pituitary tumours: relationship to adenoma size at surgery.

We report here our results of the pre- and post-operative assessment of prolactin and TSH status in 41 hyperprolactinaemic patients who underwent pituitary surgery over a 5 year period. Preoperatively in patients with prolactinomas (n = 33) the TSH response to domperidone decreased with increasing adenoma size. When the data are expressed on a group mean basis the exaggerated TSH response to domperidone in preoperative prolactinoma patients was reduced significantly in patients rendered normoprolactinaemic by surgery but persisted in those who remained hyperprolactinaemic. Similarly the reduced preoperative PRL responses to domperidone and TRH were significantly increased by successful surgery. In contrast patients with stalk-compression hyperprolactinaemia (n = 6) due to larger lesions which were not prolactinomas all showed reduced or absent TSH responses to domperidone. The PRL responses to domperidone and TRH were reduced or absent both in patients with prolactinomas and in those with stalk-compression hyperprolactinaemia. All patients with stalk-compression hyperprolactinaemia showed a delayed pattern of TSH response to TRH with 60 min values being greater than 20 min ones. In contrast a normal pattern of TSH response to TRH was observed in all patients with hyperprolactinaemia due to prolactinomas. Postoperatively TSH and PRL responses were largely unchanged in patients with stalk-compression hyperprolactinaemia regardless of whether normoprolactinaemia was restored by surgery. In conclusion a reduced or absent PRL response to TRH or domperidone is not diagnostic of the presence of a prolactinoma since it occurs in hyperprolactinaemic patients with prolactinomas or stalk-compression. In contrast, the TSH response to acute dopamine antagonism is exaggerated in most patients with small prolactinomas but not in those with stalk-compression hyperprolactinaemia and we have found this to be helpful diagnostically since the presence of an exaggerated TSH response to dopamine antagonism is evidence against the presence of stalk-compression hyperprolactinaemia. The observation of a delayed TSH response to TRH in a hyperprolactinaemic patient should alert the clinician to the possibility of stalk-compression hyperprolactinaemia due to a large lesion which may not be a prolactinoma.

Adenoma↗

Involvement of bone morphogenetic protein 4 (BMP-4) in pituitary prolactinoma pathogenesis through a Smad/estrogen receptor crosstalk.

Pituitary tumor development involves clonal expansion stimulated by hormones and growth factorscytokines. Using mRNA differential display, we found that the bone morphogenetic protein (BMP) inhibitor noggin is down-regulated in prolactinomas from dopamine D2-receptor-deficient mice. BMP-4 is overexpressed in prolactinomas taken from dopamine D2-receptor-deficient female mice, but expression of the highly homologous BMP-2 does not differ in normal pituitary tissue and prolactinomas. BMP-4 is overexpressed in other prolactinoma models, including estradiol-induced rat prolactinomas and human prolactinomas, compared with normal tissue and other pituitary adenoma types (Western blot analysis of 48 tumors). BMP-4 stimulates, and noggin blocks, cell proliferation and the expression of c-Myc in human prolactinomas, whereas BMP-4 has no action in other human pituitary tumors. GH3 cells stably transfected with a dominant negative of Smad4 (Smad4dn; a BMP signal cotransducer) or noggin have reduced tumorigenicity in nude mice. Tumor growth recovered in vivo when the Smad4dn expression was lost, proving that BMP-4Smad4 are involved in tumor development in vivo. BMP-4 and estrogens act through overlapping intracellular signaling mechanisms on GH3 cell proliferation and c-myc expression: they had additive effects at low concentrations but not at saturating doses, and their action was inhibited by blocking either pathway with the reciprocal antagonist (i.e., BMP-4 with ICI 182780 or 17beta-estradiol with Smad4dn). Furthermore, coimmunoprecipitation studies demonstrate that under BMP-4 stimulation Smad4 and Smad1 physically interact with the estrogen receptor. This previously undescribed prolactinoma pathogenesis mechanism may participate in tumorigenicity in other cells where estrogens and the type beta transforming growth factor family have important roles.

Animals↗

PTTG expression in different experimental and human prolactinomas in relation to dopaminergic control of lactotropes.

BACKGROUND: Pituitary tumor transforming gene (pttg) is a novel oncogene that is expressed at higher level in most of the tumors analyzed to date compared to normal tissues. Nevertheless, its expression in prolactinomas and its relation with the pituitary dopamine receptor 2 (D2R) are not well defined. We sought to determine the pituitary level of pttg in three different experimental models of prolactinomas with altered dopaminergic control of the pituitary: the dopaminergic D2R knockout female mouse, the estrogen-treated rat, and the senescent female rat. These three models shared the characteristics of increased pituitary weight, hyperprolactinemia, lactotrope hyperplasia and reduced or absent dopaminergic action at the pituitary level. We also studied samples from human macroprolactinomas, which were characterized as responsive or resistant to dopamine agonist therapy. RESULTS: When compared to female wild-type mice, pituitaries from female D2R knockout mice had decreased PTTG concentration, while no difference in pttg mRNA level was found. In senescent rats no difference in pituitary PTTG protein expression was found when compared to young rats. But, in young female rats treated with a synthetic estrogen (Diethylstylbestrol, 20 mg) PTTG protein expression was enhanced (P = 0.029). Therefore, in the three experimental models of prolactinomas, pituitary size was increased and there was hyperprolactinemia, but PTTG levels followed different patterns.Patients with macroprolactinomas were divided in those in which dopaminergic therapy normalized or failed to normalize prolactin levels (responsive and resistant, respectively). When pituitary pttg mRNA level was analyzed in these macroprolactinomas, no differences were found. We next analyzed estrogen action at the pituitary by measuring pituitary estrogen receptor alpha levels. The D2R knockout female mice have low estrogen levels and in accordance, pituitary estrogen receptors were increased (P = 0.047). On the other hand, in senescent rats estrogen levels were slightly though not significantly higher, and estrogen receptors were similar between groups. The estrogen-treated rats had high pharmacological levels of the synthetic estrogen, and estrogen receptors were markedly lower than in controls (P < 0.0001). Finally, in patients with dopamine resistant or responsive prolactinomas no significant differences in estrogen receptor alpha levels were found. Therefore, pituitary PTTG was increased only if estrogen action was increased, which correlated with a decrease in pituitary estrogen receptor level. CONCLUSION: We conclude that PTTG does not correlate with prolactin levels or tumor size in animal models of prolactinoma, and its pituitary content is not related to a decrease in dopaminergic control of the lactotrope, but may be influenced by estrogen action at the pituitary level. Therefore it is increased only in prolactinomas generated by estrogen treatment, and not in prolactinomas arising from deficient dopamine control, or in dopamine resistant compared with dopamine responsive human prolactinomas. These results are important in the search for reliable prognostic indicators for patients with pituitary adenomas which will make tumor-specific therapy possible, and help to elucidate the poorly understood phenomenon of pituitary tumorigenesis.

Adult↗

Altered balance between thyrotropin-releasing hormone and dopamine in prolactinomas and other pituitary tumors compared to normal pituitaries.

We measured TRH and dopamine (DA) concentrations in prolactinomas and other pituitary tumors in order to further understand the roles of these two factors in the hormone hypersecretion and growth of these tumors. The mean TRH concentration (by RIA) in 16 prolactinomas was 247 +/- 92 (+/- SE) fmol/mg cell protein (range, 10-1297), near that found in normal pituitary tissue. The prolactinoma TRH content did not correlate with the patient's tumor size or plasma PRL level. By contrast, DA assayed by high pressure liquid chromatography was present in normal pituitary tissue (7.3 +/- 3.5 pmol/mg cell protein), but was very low or undetectable in the prolactinomas (23 fmol/mg cell protein or less). 3,4-Dihydroxyphenylacetic acid, also assayed by high pressure liquid chromatography, was undetectable in both normal pituitary tissue and prolactinomas. This imbalance between TRH and DA content also was found in GH-secreting and nonsecreting adenomas. The TRH content in 18 GH-secreting tumors (24 +/- 6 fmol/mg) was considerably lower than that in the prolactinomas (P less than 0.001). In 8 nonsecreting adenomas, the mean TRH concentration was 109 +/- 28 fmol/mg, about half of that in the prolactinomas. In those 2 types of adenomas, DA also was nearly undetectable (less than or equal to 73 fmol/mg cell protein). We conclude that the imbalance between TRH and DA contents in prolactinomas compared to those in normal pituitary tissue might participate in the mechanisms leading to hypersecretion of PRL and the growth of all types of pituitary adenomas.

Adenoma↗

[Clinicopathology, clonality, and hormone production profile of prolactinoma].

OBJECTIVE: To analyze the hormone production profiles of prolactinoma and to analyze the clonality of prolactinoma. METHODS: Clinicopathologic factors were studied in 123 patients with prolactinoma, 40 males and 83 females, aged 31.9 +/- 12.2 (16 approximately 65) who underwent resection of tumor in Japan. The specimens were fixed in either 10% neutral buffered formalin or 70% alcohol and used for light microscopy. DNA was extracted from 26 samples of alcohol-fixed tissue from female patients for human androgen receptor gene (HUMARA) assay. The data underwent Spearman rank correlation analysis and nonparametric Mann-Whitney U test. RESULTS: sixty-one cases (50%) were pure prolactinoma and 62 cases (50%) were plurihormonal prolactinoma. Spearman rank correlation analysis revealed that age was significantly positively correlated with serum prolactin (PRL) level (P = 0.0002), and tumor volume (P < 0.0001); and tumor volume was significantly positively correlated with serum PRL level (P < 0.0001). Multiple regression analysis showed a significant correlation only between tumor volume and serum PRL level (multiple correlation coefficient = 0.622, coefficient of multiple determination = 0.387, t = 7.59, P < 0.0001). Mann-Whitney U test revealed that the invasiveness of tumor was significantly positively correlated with the serum PRL level (P < 0.0001), volume of tumor (P < 0.0001), and the age of patient (P = 0.0003); that the sex of patient was significantly positively correlated with the pre-and post-operative serum PRL levels (both P < 0.0001) and the tumor volume (P < 0.0001); and that male patients had significantly higher PRL levels and larger adenomas(P < 0.0001, P < 0.0001 respectively). The HUMARA assay disclosed that 11 of the 13 plurihormonal prolactinomas (85%) were compatible with monoclonal origin. CONCLUSION: Prolactinoma secrets not only PRL but also other pituitary hormones. Most multihormone producing prolactinomas are monoclonal in origin.

Adolescent↗

Diethylstilbestrol-induced prolactinoma: dose-related tumor growth and effect of catecholaminergic cells on prolactin tumor cells.

BACKGROUND: Prolactinoma is a pituitary adenoma originating from prolactin-secreting epithelial cells of the adenohypophysis. Unfortunately, there appears to be a relatively high recurrence rate despite all pharmacological, radiological, and surgical therapeutic interventions. The aim of the present study was to evaluate the extent of involvement of the dopaminergic dysregulation hypothesis of prolactinomas. We transplanted, in rats, DES-induced prolactinoma cells into the adrenal medulla or under the renal capsule, two tissues rich and poor in catecholaminergic innervation, respectively. METHODS: Prolactinoma was dose-dependently induced in ovariectomized female rats implanted with 10 and 20 mg DES, and tumor cells taken from prolactinoma induced by 20 mg DES were either transplanted under the renal capsule or into the adrenal medulla. RESULTS: Although the adrenal medulla, with its high dopamine content to inhibit prolactin secretion, was devoid of any tumoral development, a significant tumoral development was evident under the renal capsule, seemingly because of no inhibitory control over prolactin secretion coexisting with the dopamine deficiency of the tissue. Results are discussed for an alternatively possible regression and prevention of any relapse of prolactinoma, most possibly occurring because of tuberoinfundibular dopamine deficiency, by the implantation of another dopamine-rich tissue beside the tumoral mass. CONCLUSION: Regression and prevention of any relapse of a tumoral outgrowth, most possibly occurring because of tuberoinfundibular dopamine deficiency, can well be alternatively achieved by the implantation of another dopamine-rich tissue beside the tumoral mass prolactinoma.

Adrenal Medulla↗

Leukemia inhibitory factor regulates prolactin secretion in prolactinoma and lactotroph cells.

Leukemia inhibitory factor (LIF) stimulates the hypothalamic-pituitary-adrenal axis, and transgenic mice overexpressing pituitary LIF develop Cushing-like syndrome accompanied by reduced prolactin (PRL) expression. Effects of LIF were, therefore, tested on PRL expression in human prolactinomas and normal and tumorous rat lactotrophs. Normal human pituitary tissue expressed LIF, as well as the LIF receptor (LIFR) signaling subunits, gp130 and LIFR. Although all of 19 prolactinomas tested expressed gp130 and LIFR subunit mRNA and immunoreactive protein, only 3 of 19 prolactinomas expressed LIF mRNA. All of four prolactinomas had no detectable LIF immunoreactivity, in contrast to all other pituitary tumor types that expressed LIF. LIF (5 nM) treatment reduced PRL secretion in primary human prolactinoma cultures by up to 42% (P < 0.0005), an effect that was surprisingly blocked by sulpiride, a D2-like dopamine receptor antagonist. LIF (5 nM) also suppressed PRL levels in primary rat pituitary cultures by 70% (P < 0.005), and in rat MMQ pituitary tumor cells, and this effect was also reversed by sulpiride (200 micro M). D2R agonist suppression of PRL was not additive with LIF. GH levels in these cells were unchanged by LIF, consistent with a selective effect on PRL. Transfection of human long-form D2R into an LIF-resistant MMQ cell clone restored LIF responsiveness. These results show that even though human prolactinomas express gp130 and LIFR, and respond to exogenous LIF, albeit less than normal lactotrophs, they are largely devoid of LIF. These observations indicate a role for LIF in loss of autocrine PRL suppression contributing to unrestrained prolactinomas PRL secretion. Moreover, PRL suppression by LIF may be mediated by gp130 and D2R interaction.

Adenoma↗

Circulating fibroblast growth factor-like autoantibodies in two patients with multiple endocrine neoplasia type 1 and prolactinoma.

Basic fibroblast growth factor (bFGF) is a potent endothelial cell mitogen found in a variety of normal and tumor tissues. bFGF lacks a classical amino-terminal signal sequence and is not readily detectable in plasma from normal subjects. In earlier studies we showed increased bFGF-like mitogenic activity for parathyroid-derived endothelial cells and (increased) bFGF immunoreactivity (0.24-1.28 ng/mL) in plasma of subjects with multiple endocrine neoplasia type 1 (MEN-1). In the present study we examined the proliferative activity of MEN-1 and normal plasmas (applied to protein-A columns) in calf pulmonary artery endothelial cells. Protein-A-eluted activity in plasma from MEN-1 prolactinoma plasma exceeded activity from normal and MEN-1 nonprolactinoma plasma in three of eight MEN-1 subjects with untreated or recurrent prolactinoma. Protein-A-eluted active fractions from MEN-1 prolactinoma plasma had several properties of an immunoglobulin G, including affinity for antihuman immunoglobulin G (IgG) agarose, sensitivity to thiols, and (prepared by sodium dodecyl sulfate-polyacrylamide gel electrophoresis under reducing conditions) apparent mol wt corresponding to those of the heavy and light chains of IgG. The IgG fraction of MEN-1 prolactinoma plasma had far more activity in endothelial cells than did optimal concentrations of known growth factors or conditioned medium from prolactinoma cells. Endothelial cell bioactivity in protein-A-eluted fractions from MEN-1 prolactinoma plasma was neutralized 70% by rabbit antibodies to intact bFGF. These results imply novel growth stimulatory bFGF-like autoantibodies in a subset of MEN-1 patients with prolactinoma.

Adult↗

Diagnosis and drug therapy of prolactinoma.

A prolactin-secreting pituitary tumour is the most frequent cause of hyperprolactinaemia that commonly occurs in clinical practice. Prolactinomas occur more frequently in women than in men and may differ in size, invasive growth and secretory activity. At presentation, macroadenomas are more frequently diagnosed in men. Specific immunohistochemical stains are necessary to prove the presence of prolactin in the tumour cells. The main investigations in the diagnosis of a prolactin-secreting adenoma are hormonal and radiological. As prolactin is a pulsatile hormone, it is a general rule to obtain several blood samples by taking a single sample on 3 separate days or 3 sequential samples (every 30 minutes) in restful conditions. Prolactin levels of 100 to 200 micrograms/L are commonly considered diagnostic for the presence of a prolactinoma; however, prolactinoma cannot be excluded in the presence of lower levels, and prolactin levels > 100 micrograms/L are present in some patients with idiopathic hyperprolactinaemia. Several dynamic function tests have been proposed to differentiate idiopathic from tumorous hyperprolactinaemia. Although they could be used for group discrimination, these tests cannot be used for individual patients. To differentiate between a prolactinoma and a pseudoprolactinoma, thyrotrophin response to a dopamine receptor antagonist may be used, as only prolactinomas may have an increased response. A short course of dopaminergic drugs may also be of some help, as in macroprolactinomas only a shrinkage may be observed. After hyperprolactinaemia is confirmed, imaging with computerised tomography (CT) and magnetic resonance imaging (MRI) are necessary to define the presence of a lesion compatible with a pituitary tumour. There is now a general agreement that medical therapy is of first choice in patients with prolactinomas. Bromocriptine, the most common drug used in this condition, is a semisynthetic ergot alkaloid that directly stimulates specific pituitary cell membrane dopamine D2 receptors and inhibits prolactin synthesis and secretion. In most patients, a reduction or normalisation of prolactin levels is usually observed, together with the disappearance or improvement of clinical symptoms. The sensitivity to bromocriptine is variable and patients may need different dose of the drug. Bromocriptine is also able to shrink the tumour in most patients; however, a few reports of disease progression during therapy have been described. The need for close follow-up, including prolactin levels and CT or MRI studies, is therefore emphasised. Bromocriptine is conventionally given in 2 or 3 daily doses; however, a single evening dose has been shown to be equally effective. Bromocriptine is usually well tolerated by the majority of patients; some adverse effects (nausea, vomiting, postural hypotension) may be initially present, but they usually wear off in time. To prevent such adverse effects it is advisable to start treatment with a low dose during the evening meal and gradually increase the dose over days or weeks. A few patients are unable to tolerate oral bromocriptine, so different formulations of bromocriptine or alternative dopamine agonist drugs (lisuride, terguride, metergoline, dihydroergocryptine, quinagolide, cabergoline, pergolide) have been proposed. Of particular clinical relevance because of their good tolerability and sustained activity are cabergoline and quinagolide. Particular attention should be paid to pregnancy in prolactinoma patients, as tumour enlargement has been reported. As the risk for this occurrence is low in patients with microprolactinoma, there is a general agreement that the drug can be stopped once pregnancy is diagnosed. In patients with macroprolactinoma the risk of tumour enlargement is higher. Therefore, primary therapy with bromocriptine until the tumour has shrank is suggested before pregnancy is attempted. Bromocriptine should be stopped as soon as pregnancy is confirmed, but re

Bromocriptine↗