We recently showed that membrane progesterone receptor α (mPRα/PAQR7) promotes pro-regenerative effects in Schwann cell-like adipose stem cells (SCL-ASC), an alternative model to Schwann cells for the promotion of peripheral nerve regeneration. In this study, we investigated how mPRα activation with the mPR-specific agonist Org OD 02–0 in SCL-ASC affected regenerative parameters in two neuronal cell lines, IMR-32 and SH-SY-5Y. In a series of conditioned medium experiments, we found that mPR activation of SCL-ASC led to increased neurite outgrowth, protection from cell death and increased expression of peripheral nerve regeneration markers (CREB3, ATF3, GAP43) in neuronal cell lines. These effects were stronger than the ones observed with the conditioned medium from untreated SCL-ASC. The addition of Org OD 02–0 to the untreated cell medium mimicked the effects of mPR activation of SCL-ASC on cell death, but not on neurite outgrowth. Therefore, the effect of Org OD 02–0 on neurite outgrowth is SCL-ASC-dependent, while its effect on cell survivability is likely due to the direct activation of mPRs on neuronal cells. SCL-ASC transfection with mPRα siRNA showed that this isoform is responsible for the beneficial effect on neurite outgrowth. Further experiments showed that SCL-ASC-dependent outcomes likely involved the release of BDNF and IGF-2 from these cells. The beneficial mPRα effect on neurite outgrowth was confirmed in co-culture conditions. These findings strengthen the hypothesis that mPRα could play a pro-regenerative role in SCL-ASC and be a therapeutic target for the promotion of peripheral nerve regeneration.
Abstract Injuries to peripheral nerves affect millions of people worldwide. These injuries can be significantly detrimental to the patients’ quality of life. While central nervous system neurons have extremely limited regenerative potential, peripheral nerves are able to regenerate after injury. However, this regeneration process often leads to unsatisfactory regenerative outcomes. Improving peripheral nerve regeneration is therefore a strong medical need. Schwann cells, the glial myelinating cells of the peripheral nervous system, are known to play an important role in promoting peripheral nerve regeneration. However, their limited in vitro expansion capability and limited availability has led several research groups to investigate the possibility of using differentiated stem cells as a potential tool to promote nerve regeneration, in association with other tools such biomaterial tubes. The activation of membrane progesterone receptor α (mPRα, PAQR7) with the selective agonist 19-ethenyl-progesterone (02-0) was recently shown to elicit potentially pro-regenerative effects in a model of human Schwann cell-like (SCL) differentiated adipose stem cells (ASC). Indeed, mPRα activation led to increased SCL-ASC migration, proliferation and neurotrophin (specifically BDNF) release. All these outcomes are expected to be beneficial for nerve regeneration. In this project, we investigated the effect of mPRα activation in SCL-ASC on neuronal cell lines to demonstrate that the positive effects previously observed in SCL-ASC have a beneficial effect in neuronal cells. We first investigated how the conditioned medium of untreated SCL-ASC (CM-) and SCL-ASC treated with the selective mPR agonist 02-0 (CM+) affected cell survival and neuronal sprouting in two different neuronal cell lines, IMR-32 and SH-SY-5Y. In both cases, CM- had a beneficial effect, reducing cell death, as assessed in starvation experiments, and promoting axonal sprouting, with the presence of longer cell processes in the two cell models compared to control. In both cases, CM+ had an even stronger effect than CM-, suggesting that mPRα activation may lead to the release of specific molecules that promote nerve regeneration. Moreover, CM- and CM+ treatments were effective in increasing the gene expression of selected peripheral regeneration markers (CREB3, ATF3 and GAP46) in SH-SY-5Y cells. Since mPR receptors are present in neuronal cells, we performed another series of cell death and axonal sprouting experiments in SH-SY-5Y6 cells, comparing CM- and CM+ effects to an experimental group in which 02-0 was added to CM- after incubation with SCL-ASC. These experiments showed that the effect on cell death was mostly due to direct activation of mPR receptors in neuronal cells. On the other hand, the effect on axonal sprouting depended on mPRα activation in SCL-ASC and subsequent release of active molecules in the medium. Our results support the hypothesis that mPRα activation in SCL-ASC may represent a promising pharmacological target to promote peripheral nerve regeneration. Presentation: Sunday, June 12, 2022 12:42 p.m. - 12:47 p.m., Monday, June 13, 2022 12:30 p.m. - 2:30 p.m.
Gender differences in a wide variety of physiological parameters have implicated the ovarian hormones, estrogens and progesterone, in the regulation of numerous nonreproductive tissue functions. Rapid, nongenomic (nonclassical) progesterone actions mediated by membrane progesterone receptors (mPRs), which belong to the progestin and adipoQ receptor family, have been extensively investigated in reproductive and nonreproductive tissues since their discovery in fish ovaries 20 years ago. The 5 mPR subtypes (α, β, γ, δ, ε) are widely distributed in vertebrate tissues and are often expressed in the same cells as the nuclear progesterone receptor (PR) and progesterone receptor membrane component 1, thereby complicating investigations of mPR-specific functions. Nevertheless, mPR-mediated progesterone actions have been identified in a wide range of reproductive and nonreproductive tissues and distinguished from nuclear PR-mediated ones by knockdown of these receptors with siRNA in combination with a pharmacological approach using mPR- and PR-specific agonists. There are several recent reviews on the roles of the mPRs in vertebrate reproduction and cancer, but there have been no comprehensive assessments of mPR functions in nonreproductive tissues. Therefore, this article briefly reviews mPR functions in a broad range of nonreproductive tissues. The evidence that mPRs mediate progesterone and progestogen effects on neuroprotection, lordosis behavior, respiratory control of apnea, olfactory responses to pheromones, peripheral nerve regeneration, regulation of prolactin secretion in prolactinoma, immune functions, and protective functions in vascular endothelial and smooth muscle cells is critically reviewed. The ubiquitous expression of mPRs in vertebrate tissues suggests mPRs regulate many additional nonreproductive functions that remain to be identified.
The role of membrane progesterone receptors (mPRs), which belong to the progestin and adipoQ receptor (PAQR) family, in mediating rapid, nongenomic (non-classical) progestogen actions has been extensively studied since their identification 20 years ago. Although the mPRs have been implicated in progestogen regulation of numerous reproductive and non-reproductive functions in vertebrates, several critical aspects of their structure and signaling functions have been unresolved until recently and remain the subject of considerable debate. This paper briefly reviews recent developments in our understanding of the structure and functional characteristics of mPRs. The proposed membrane topology of mPRα, the structure of its ligand-binding site, and the binding affinities of steroids were predicted from homology modeling based on the structures of other PAQRs, adiponectin receptors, and confirmed by mutational analysis and ligand-binding assays. Extensive data demonstrating that mPR-dependent progestogen regulation of intracellular signaling through mPRs is mediated by activation of G proteins are reviewed. Close association of mPRα with progesterone membrane receptor component 1 (PGRMC1), its role as an adaptor protein to mediate cell-surface expression of mPRα and mPRα-dependent progestogen signaling has been demonstrated in several vertebrate models. In addition, evidence is presented that mPRs can regulate the activity of other hormone receptors.
While androgens have been reported to mediate cardiovascular endothelial cell proliferation, the potential involvement of membrane androgen receptors (mAR) has not been examined. Here we show ZIP9, a recently characterized mAR, mediates androgen-induced early proliferative events in human umbilical vein endothelial cells (HUVECs). Androgen treatment significantly increased cyclin D1 nuclear localization and proliferation, which were blocked by transfection with siRNA targeting ZIP9 but not the nuclear AR. Testosterone rapidly activated inhibitory G protein signaling, Erk, and Akt, and inhibition of these signaling members abrogated the ZIP9-mediated cyclin D1 and proliferative responses. Erk and Akt modulated cyclin D1 nuclear localization by upregulation of cyclin D1 mRNA and inhibition of GSK-3β activity, respectively. This is the first study to demonstrate a role for ZIP9 in HUVEC proliferation and indicates ZIP9 is a physiologically-relevant androgen receptor in the cardiovascular system that merits further study as a potential therapeutic target for treating cardiovascular disease.
Membrane progesterone receptors (mPRs) were recently found to be present and active in Schwann cells, where they have a potentially pro-regenerative activity. In this study, we investigated the role of mPRs in human adipose stem cells (ASC) differentiated into Schwann cell-like cells (SCL-ASC), which represent a promising alternative to Schwann cells for peripheral nerve regeneration. Our findings show that mPRs are present both in undifferentiated and differentiated ASC, and that the differentiation protocol upregulates mPR expression. Activation of mPRα promoted cell migration and differentiation in SCL-ASC, alongside with changes in cell morphology and mPRα localization. Moreover, it increased the expression and release of BDNF, a neurotrophin with pro-regenerative activity. Further analysis showed that Src and PI3K-Akt signaling pathways are involved in mPRα activity in SCL-ASC. These findings suggest that mPRα could play a pro-regenerative role in SCL-ASC and may be a promising target for the promotion of peripheral nerve regeneration.
Whereas progesterone has been shown to cause vascular smooth muscle cell relaxation, other beneficial vascular effects of progesterone, including preventing the onset of atherosclerosis, remain unclear. The results show that 16 hours treatments with specific agonists for membrane progesterone receptors (mPRs), OD 02-0, and nuclear PRs (nPRs), R5020, inhibited pre-atherosclerotic events in human umbilical vein endothelial cells (HUVECs), decreasing focal adhesion by monocytes, HUVEC migration and invasion, along with vinculin expression. Progesterone and OD 02-0, but not R5020, inhibited phosphorylation of Src and FAK, two critical kinases of focal adhesion signaling, within 20 minutes. However, after 16 hours OD 02-0 was no longer effective, while both progesterone and R5020 decreased activity of the two kinases. Knockdown of receptor expression with siRNA confirmed that mPRα mediates short-term and nPR long-term inhibitory effects of progesterone on focal adhesion signaling. Thus, progesterone inhibition of FAK signaling and pre-atherosclerosis is coordinated through mPRα and nPRs.
Abstract Recently, our research group cloned and characterized a putative membrane androgen receptor from teleost ovarian tissue that was found to be homologous with the zinc transporter protein ZIP9 (Slc39a9). To date, ZIP9 is the only zinc transporter that is known to be ligand activated or possess steroid receptor activity. Since the discovery of its androgen receptor activity, ZIP9 has been found to mediate androgen actions in a variety of tissues including teleost ovarian follicle cells, human cancer cell lines, and murine Sertoli cells. However, ZIP9 has not been examined in an in vivo model so the precise physiological functions of this receptor remain unclear. A ZIP9-mutant strain of zebrafish was developed using a CRISPR-Cas9 system in order to examine the role of the protein in teleost reproduction. While ZIP9-mutant males had similar breeding occurrence and fertilization rates to wild-type fish, mutant females exhibited severe reductions in fecundity compared to wild-type fish. ZIP9-mutant females spawn significantly fewer eggs of which a high proportion failed to undergo chorion elevation, a characteristic of normal egg activation. Eggs that showed this failed chorion elevation phenotype had significantly lower fertilization rates and produced larvae that exhibit a high incidence of pericardial/yolk sac edema and reduced growth compared to larvae hatched from wild-type eggs. However, no differences were observed in the proportions of oocytes at later stages of development between ZIP9-mutant and wild-type fish, suggesting the observed phenotypes are not related to abnormal oogenesis. We observed that mature wild-type eggs have numerous cortically located vesicles that are autofluorescent under ultraviolet light and decrease in number when the eggs undergo activation, suggesting they undergo exocytosis during the cortical reaction. While zinc is known to be stored in vesicles that undergo exocytosis in mammalian eggs, the role of zinc in teleost egg activation is currently unknown. In eggs from wild-type fish, we observed an increase in extracellular zinc levels upon egg activation and treatment with a zinc ionophore (zinc pyrithione) significantly reduced the number of eggs that undergo normal chorion elevation when activated. This suggests a role for zinc in zebrafish egg activation similar to that observed in mammals. Of interest, ZIP9-mutant eggs that did not undergo chorion elevation had significantly smaller vesicles than those found in wild-type fish eggs. This abnormal vesicle morphology and failure to undergo chorion elevation suggest a role of ZIP9 in egg activation. Additional insight into the role of zinc in zebrafish egg activation and the mechanism by which ZIP9 disruption leads to abnormal cortical vesicles and egg activation will help determine if ZIP9 plays a role in zinc transport and flux in zebrafish eggs during activation.
Abstract Progesterone (P4) exerts multiple beneficial effects on the human cardiovascular system through its actions on vascular endothelial cells and also by acting directly on vascular smooth muscle cells (VSMCs). Membrane progesterone receptor alpha (mPRα) has been shown to mediate the rapid P4-induction of human VSMC relaxation through activation of MAPK, Akt/Pi3k and RhoA/ROCK signaling pathways and the resulting reduction of calcium influx through calcium channels. In this study, we demonstrate that treatment of cultured human VSMCs with P4 for 1-2 hours increases both the mRNA and protein expression of sarco/endoplasmic reticulum Ca- ATPase (SERCA), the major transporter of calcium from the cytosol into the sarcoplasmic reticulum (SR) during muscle relaxation. Knockdown of mPRα with siRNA completely blocked this stimulatory effect of P4 as well as that of OD 02-0, a mPR selective agonist, on SERCA protein expression. In contrast, expression levels of phospholamban (PLB), a SR protein that reversibly inhibits SERCA were downregulated by this P4 treatment, and mRNA expression of a channel that releases calcium from the SR, inositol trisphosphate receptor (IP3R), was unaltered after treatment with P4. Moreover, treatments with P4 and OD 02-0, but not with R5020, a nuclear PR agonist, increased PLB phosphorylation, which would result in disinhibition of SERCA function. P4 and OD 02-0 significantly increased calcium levels in the SR detected with Fluo-5N, a specific SR calcium indicator, and caused VSMC relaxation. These effects were blocked by cyclopiazonic acid (CPA, a SERCA inhibitor), suggesting that SERCA plays a critical role in P4 induction of VSMC relaxation. Similarly, the effects of P4 and OD 02-0 on relaxation of umbilical artery rings measured with a myograph were significantly attenuated by CPA, which confirms the critical role of SERCA in the rapid action of P4 and 02-0 on vascular muscle relaxation. P4 has previously been shown to activate MAPK and Akt signaling pathways to induce VSMC relaxation. The P4- and OD 02-0-induced increases in calcium in the SR were blocked by MAPK and Akt/Pi3k signaling inhibitors, AZD6244 and wortmannin. Taken together, these results suggest that the direct, rapid effects of P4 on relaxation of VSMCs through mPRα involves regulation of the expression and function of the SR proteins SERCA and PLB through MAPK and Akt signaling pathways.
Abstract Peripheral nerve injury is a problem affecting millions of people worldwide, causing significant disability and a reduction in the quality of life. The neurons of the peripheral nervous system are characterized by a significant regeneration capability. However, the functional recovery is unsatisfactory in most cases, making the identification of new strategies to improve the regenerative outcome a major medical need. Schwann cells (SCs), the main neuroglial cells of the peripheral nervous system, trans-differentiate after nerve injury towards a phenotype, known as the repair phenotype, that promotes nerve regeneration. Nonetheless, adult human SCs have poor expansion capability in vitro, undermining their potential clinical development. Several studies have shown that mesenchymal stem cells, especially when differentiated into a Schwann cell-like (SCL) phenotype, may represent an alternative to primary SCs, promoting pro-regenerative effects both in vitro and in vivo. Recently, membrane progesterone receptors (mPRs), members of the progestin and adipoQ receptor (PAQR) family, have been shown to be present and active in Schwann cells. Progesterone activates mPRs in SCs to promote cell migration and proliferation, change cell morphology, and modulate the expression of key SC differentiation factors. These findings suggest a possible role for mPRs in nerve repair. The goal of the present project is to study the role of mPRs in the promotion of pro-regenerative effects in mesenchymal adipose stem cells (ASC), both undifferentiated (uASC) and after differentiation toward the SCL phenotype (SCL-ASC). We first characterized uASC and SCL-ASC, confirming that the latter showed increased expression of SC markers like S100B, Sox10, GFAP, P0 and Krox20, alongside a more pronounced spindle-like shape leading to an increased aspect ratio. The differentiation protocol also increased mPR gene expression in SCL-ASC compared to uASC, especially mPRα (PAQR7) and mPRβ (PAQR8). Treatment with the specific mPR agonist Org OD 02-0 (02-0) caused cell elongation in SCL-ASC, mimicking what happens to SCs in vivo when they trans-differentiate towards the repair phenotype. 02-0 treatment also led to increased cell migration and cell proliferation in both uASC and SCL-ASC, consistent with a pro-regenerative role of mPRs. The effect was more rapid and evident in SCL-ASC. Lastly, we analyzed the effect of mPR activation on neutrophin production and release in uASC and SCL-ASC. A significant increase was observed in the expression and release of the brain derived neurotrophic factor (BDNF), whose role in promoting neurogenesis is well established. Our results support the hypothesis that mPRs have an important role in the modulation of uASC and SCL-ASC physiology and their activation may promote nerve regeneration.
Abstract GPER bears structural and functional characteristics shared by members of the G-protein coupled receptor (GPCR) superfamily, the largest class of cell surface receptors, with more than 800 members encoded in the human genome. GPER is localized predominately in intracellular membranes, in many but not all cell types, and its surface expression is modulated by steroid hormones and during tissue homeostasis. An intracellular staining pattern is not unique among GPCRs, which deploy a diverse array of posttranslational regulatory mechanisms to determine cell surface expression, effectively regulating cognate ligand binding and activity. Here, we show nascent GPER undergoes strict quality control via endoplasmic reticulum associated degradation (ERAD) requiring direct poly-ubiquitinylation of GPER and valosin-containing protein VCP/p97-mediated segregation of misfolded proteins from the ER membrane to the cytoplasm for delivery to the 26S proteasome. Specifically, we find that inhibition of p97 using the pharmacological compound, CB-5083, or by doxycycline-inducible p97 shRNA results in the accumulation of immature glycosylated GPER in the ER. Inhibition of proteasome function facilitates anterograde trafficking with the transport of nonfunctional GPER to the plasma membrane as indicated by no increase in specific estrogen binding using 3H-17β-estradiol in a radioreceptor assay. The forward trafficking of misfolded GPER requires transit through the Golgi as treatment with brefeldin A (BFA) prevents GPER plasma membrane expression. Substitution of all three lysines (K333, K342, and K357) encoded in the cytoplasmic tail of GPER with arginines blunts its polyubiquitinylation and allows GPER to evade degradation by quality control but does not result in increased plasma membrane expression suggesting that additional structural motifs encoded within GPER control its anterograde trafficking. In contrast, functional GPER is recovered at the plasma membrane of human SKBR3 breast cancer cells treated with either 17β-estradiol or the GPER selective antagonist, G15, in the presence of cycloheximide resulting in increased surface GPER. Thus, our findings suggest that estrogens, both natural and synthetic, can function as pharmacochaperones capable of promoting the correct folding of GPER and enhanced expression of functional GPER at the plasma membrane.
The arginine vasotocin (AVT)-V1a receptor mediates critical reproductive behaviors of the nonapeptide vasotocin in the teleost brain. In this study, we report the molecular characterization of the AVT-V1a2 receptor and its messenger RNA (mRNA) and protein expressions in the Atlantic croaker brain after exposure to the planar polychlorinated biphenyl congener 3,3 ',4,4 '-tetrachlorobiphenyl (PCB77). The full-length sequence of croaker AVT-V1a2 receptor complementary DNA (cDNA) is highly homologous to other teleost AVT-V1a2 receptor cDNAs. Double-labeled immunohistochemistry showed coexpression of AVT-V1a2 receptor and gonadotropin-releasing hormone-I (GnRH-I, a neuropeptide that regulates gonadotropin secretion) in hypothalamic neurons, thereby providing the anatomical basis for possible AVT modulation of croaker reproduction through alterations in GnRH-I secretion. AVT-V1a2 receptor mRNA and protein levels as well as GnRH-I mRNA levels were markedly decreased in hypothalamic tissues of croaker exposed to PCB77 (dose: 2 and 8 mu g/g body weight for 4 weeks) compared with levels in untreated (control) fish. In contrast, hypothalamic cytochrome P450 1A (CYP1A, a monooxygenase enzyme) and interleukin-1 beta (IL-1 beta, a cytokine indicator of inflammation and response to neuronal damage) mRNA levels, and plasma protein carbonyl (PC, an indicator of reactive oxygen species) contents, important biomarkers of neural stress, were increased in PCB77-exposed fish compared with controls. Collectively, these results suggest that the downregulation of hypothalamic AVT-V1a2 receptor and GnRH-I transcripts due to PCB77 exposure is associated with induction of CYP1A, cellular inflammation and oxidative stress in Atlantic croaker, a marine teleost that inhabits estuaries along the US Atlantic coast and the Gulf of Mexico that are often contaminated with persistent organic pollutants such as PCBs.
The zinc transporter ZIP9 (SLC39A9) was recently characterized as a membrane androgen receptor in various teleost and mammalian cell models. ZIP9 shows the highest expression in ovaries of teleosts, a tissue in which both androgen signaling and zinc dynamics have significant roles. To examine the role of ZIP9 in ovarian physiology, we generated a ZIP9-mutant zebrafish strain using a CRISPR/Cas9 system. zip9 -/- females showed significant reductions in fecundity, embryo viability, and growth of their offspring compared to wildtype (WT) fish. Furthermore, a high proportion of zip9 -/- eggs failed to undergo normal chorion elevation during activation. In WT eggs, zinc was detected in cortically-localized vesicles which underwent exocytosis upon activation. zip9 -/- eggs showed abnormal cortical vesicle development and had a significantly depressed activation-induced zinc release compared to WT eggs. Moreover, pharmacologically sustained elevation of zinc in WT eggs prior to activation resulted in abnormal chorion elevation similar to that observed in zip9 -/- eggs. These results indicate that ZIP9 is essential for proper zinc modulation during zebrafish egg activation and presents the first evidence of zinc modulation during egg activation in a non-mammalian species.
Several studies in the last decade demonstrated that progestogens play an important role in the biology of Schwann cells, the main neuroglial cells of the peripheral nervous system. Since a recent study showed that the S42 rat Schwann cell line expressed membrane progesterone receptors (mPRs), members of the PAQR family, in this study, we examined mPR expression in a more physiological model, primary rat Schwann cells. We demonstrated that primary rat Schwann cells show a different pattern of mPR expression compared to the previously studied model; mPRα (PAQR7) and β (PAQR8) isoforms were the major mPR members identified, with different sub-cellular localizations. Activation of the nuclear progesterone receptor (PR) with the specific agonist R5020 upregulated mPR expression, while activation of mPRs with the specific agonist Org OD 02-0 changed their sub-cellular localization. An in-depth analysis revealed additional effects of mPR activation, such as AKT activation, reduced expression of the myelin-associated glycoprotein (MAG), morphological changes, altered expression of several Schwann cell differentiation markers, and increased Schwann cell migration and proliferation. In conclusion, we identified mPRα and mPRβ in primary rat Schwann cells, and our findings suggest a putative role for mPRs in the regulation of Schwann cell migration, proliferation, and differentiation. Therefore, mPRs are a potential pharmacological target for Schwann cell–related disorders and neurodegenerative diseases, especially those in which Schwann cell–mediated axon remyelination is desirable.
Progesterone (P4) has controversial physiological effects on the regulation of the lactotroph population. While some studies have shown a negative role for P4 in prolactin secretion and lactotroph proliferation, antagonizing estradiol effects, others demonstrated a proliferative role of P4 at the pituitary level. Usually, progesterone actions in the pituitary gland were studied through their classical, genomic pathways triggered by nuclear progesterone receptors (nPRs). However, in 2003, the scene became more complex with the discovery of another group of progesterone receptors involved in rapid, non-genomic P4 effects: the membrane progesterone receptors (mPRs), which are members of the progesterone and adipoQ receptor (PAQR) family. This review examines the historical background and current data on the study of progesterone actions on PRL secretion providing new evidence of P4 effects at the hypothalamic and at the pituitary level through non-classic P4-receptors. In addition, we explore the role of progesterone in the development of experimental prolactinomas, a controversial topic in the literature.
In this field study of the effects of organic contaminants in San Francisco Bay on starry flounder Platichthys stellatus, we have focused on indicators of contaminant exposure and their relationship to changes in reproductive physiology and biochemistry. We also measured micronucleus occurrence as an indication of the exposure of these fish to environmental mutagens. Two large collecting efforts were made—one during the middle part of the reproductive cycle (November-early December 1986) and one at the time of spawning (February-March 1987). For the former period P. stellatus were collected from five localities (four in San Francisco Bay and one near the mouth of the Russian River). A variety of measures were made on these fish that might indicate the nature and extent of contaminant exposure, the alteration of normal reproductive processes, and genetic effects: (1) trace organic contaminants in the liver, mainly chlorinated hydrocarbons, (2) constituents and in vitro enzymatic activities of the hepatic P-450 microsomal system, (3) oocyte development in maturing females, (4) plasma concentrations of vitellogenin and titers of sex steroids, and (5) the incidence of micronuclei in circulating erythrocytes.
Natriuretic peptide type C (NPPC) and its receptor, natriuretic peptide receptor 2 (NPR2), have essential roles in maintaining meiotic arrest of oocytes in several mammalian species. However, it is not known if a similar mechanism exists in non-mammalian vertebrates. Using zebrafish as a model, we show that Nppc is expressed in ovarian follicle cells, whereas Npr2 is mainly detected in oocytes. Treatment of intact and defolliculated oocytes with 100 nM NPPC for 6 h caused a large increase in cGMP concentrations, and a significant decrease in oocyte maturation (OM), an effect that was mimicked by treatment with 8-Br-cGMP. Treatment with E2 and G-1, the specific GPER agonist, also increased cGMP levels. Cyclic AMP levels were also increased by treatments with 8-Br-cGMP, E2 and G1. The estrogen upregulation of cAMP levels was blocked by co-treatment with AG1478, an inhibitor of EGFR activation. Gene expression of npr2, but not nppc, was significantly upregulated in intact oocytes by 6 h treatments with 20 nM E2 and G-1. Both cilostamide, a phosphodiesterase 3 (PDE3) inhibitor, and rolipram, a PDE4 inhibitor, significantly decreased OM of intact and defolliculated oocytes, and enhanced the inhibitory effects of E2 and G-1 on OM. These findings indicate the presence of a Nppc/Npr2/cGMP pathway maintaining meiotic arrest in zebrafish oocytes that is upregulated by estrogen activation of Gper. Collectively, the results suggest that Nppc through Npr2 cooperates with E2 through Gper in upregulation of cGMP levels to inhibit phosphodiesterase activity resulting in maintenance of oocyte meiotic arrest in zebrafish.
Rapid, cell surface-initiated, pregenomic androgen actions have been described in various vertebrate cells, but the receptors mediating these actions remain unidentified. We report here the cloning and expression of a cDNA from Atlantic croaker (Micropogonias undulatus) ovaries encoding a 33-kDa, seven-transmembrane protein with binding and signaling characteristics of a membrane androgen receptor that is unrelated to any previously described steroid receptor. Instead, croaker membrane androgen receptor has 81-93% amino acid sequence identity with zinc transporter ZIP9 (SLC39A9) subfamily members, indicating it is a ZIP9 protein. Croaker ZIP9 is expressed in gonadal tissues and in brain and is up-regulated in the ovary by reproductive hormones. Croaker ZIP9 protein is localized to plasma membranes of croaker granulosa cells and human breast cancer (SKBR-3) cells stably transfected with ZIP9. Recombinant croaker ZIP9 has a high affinity (dissociation constant, Kd, 12.7 nM), limited capacity (maximal binding capacity 2.8 nM/mg protein), displaceable, single binding site-specific for androgens, characteristic of steroid receptors. Testosterone activates a stimulatory G protein coupled to ZIP9, resulting in increased cAMP production. Testosterone promotes serum starvation-induced cell death and apoptosis in transfected cells and in croaker ovarian follicle cells that is associated with rapid increases in intracellular free zinc concentrations, suggesting an involvement of zinc in this nonclassical androgen action to promote apoptosis. These responses to testosterone are abrogated by treatment with ZIP9 small interfering RNA. The results provide the first evidence that zinc transporter proteins can function as specific steroid membrane receptors and indicate a previously unrecognized signaling pathway mediated by steroid receptors involving alterations in intracellular zinc.