| Literature DB >> 29123220 |
Koji Matsuo1, Masakatsu Sone2, Kyoko Honda-Kohmo1, Takafumi Toyohara3, Takuhiro Sonoyama4, Daisuke Taura1, Katsutoshi Kojima1, Yorihide Fukuda1, Youichi Ohno1, Mayumi Inoue1, Akira Ohta3, Kenji Osafune3, Kazuwa Nakao4, Nobuya Inagaki1.
Abstract
Human induced pluripotent stem cells (hiPSCs) are expected to be both a revolutionary cell source for regenerative medicine and a powerful tool to investigate the molecular mechanisms underlying human cell development in vitro. In the present study, we tried to elucidate the steroidogenic differentiation processes using hiPSC-derived intermediate mesoderm (IM) that is known to be the origin of the human adrenal cortex and gonads. We first performed chemical screening to identify small molecules that induce steroidogenic differentiation of IM cells expressing Odd-skipped related 1 (OSR1), an early IM marker. We identified cabergoline as an inducer of 3β-hydroxysteroid dehydrogenase, an essential enzyme for adrenogonadal steroidogenesis. Although cabergoline is a potent dopamine D2 receptor agonist, additional experiments showed that cabergoline exerted effects as a low-affinity agonist of D1 receptors by increasing intracellular cyclic AMP. Further analysis of OSR1+ cells transfected with steroidogenic factor-1/adrenal 4 binding protein revealed that D1 receptor agonist upregulated expression of various steroidogenic enzymes and increased secretion of steroid hormones synergistically with adrenocorticotropic hormone. These results suggest the importance of dopamine D1 receptor signalling in steroidogenic differentiation, which contributes to effective induction of steroidogenic cells from hiPSCs.Entities:
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Year: 2017 PMID: 29123220 PMCID: PMC5680317 DOI: 10.1038/s41598-017-15485-4
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Chemical screening strategy and the effect of cabergoline. (a) RT-PCR analysis of steroidogenic enzyme mRNA expression in OSR1+ cells. (b) Schematic representation of induction of undifferentiated induced pluripotent stem cells into intermediate mesoderm and screening strategy used. (c) Effect of cabergoline on OSR1+ cells treated with 1 μM cabergoline for 4 days and then stained with an anti-3β-HSD antibody and DAPI. Scale bar, 50 μm. (d) Dose-dependent 3β-HSD2 mRNA expression curve in cabergoline-treated OSR1+ cells. Levels of 3β-HSD2 mRNA expression are shown as relative values compared with those of DMSO-treated controls. Expression levels are normalised to that of a housekeeping gene, β-actin. Student’s t-test was used for comparison between the experimental and control group. *P < 0.05. Data represent mean ± SEM of four independent experiments (n = 4).
Figure 2Expression of dopamine D2 receptors on OSR1+ cells and effects of D2 receptor agonists and an antagonist. (a) RT-PCR analysis of dopamine D2 receptor mRNA expression in OSR1+ cells. (b) Immunofluorescence staining of dopamine D2 receptors on OSR1+ cells. Rat adrenal chromaffin cell line PC-12 was also stained as a positive control because it is known to express dopamine D1 and D2 receptors[38,39]. Scale bar, 50 μm. (c) Levels of 3β-HSD2 mRNA expression in OSR1+ cells treated with dopamine D2 receptor agonists, including 10 μM quinpirole, 1 μM bromocriptine and 10 μM propylnorapomorphine. Expression levels are normalised to that of a housekeeping gene, β-actin. Student’s t-test was used for comparison of two groups. *P < 0.05. Data represent mean SEM of four independent experiments (n = 4). (d) Levels of 3β-HSD2 mRNA expression in OSR1+ cells treated with cabergoline and a dopamine D2 receptor antagonist. Cells were treated with 20 µM cabergoline under daily administration of 10 μM metoclopramide. Statistical analysis was performed using two-tailed unpaired Student’s t-test with Holm–Bonferroni correction. **P < 0.01. Data represent mean ± SEM of four independent experiments (n = 4).
Figure 3Expression of dopamine D1 receptors on OSR1+ cells and effects of D1 receptor agonists and an antagonist. (a) RT-PCR analysis of dopamine D1 receptor mRNA expression in OSR1+ cells. (b) Immuno-fluorescence staining of dopamine D1 receptors on OSR1+ cells. PC-12 cells are shown for comparison (positive control). Scale bar, 50 μm. (c) Levels of 3β-HSD2 mRNA expression in OSR1+ cells treated with dopamine D1 receptor agonists. Cells were treated with 10 μM pergolide, 10 μM A 68930 and 1 μM SKF 83822. Expression levels are normalised to levels of a housekeeping gene, β-actin. Student’s t-test was used for comparison of two groups. *P < 0.05; **P < 0.01. Data represent mean ± SEM of four independent experiments (n = 4). (d) Levels of 3β-HSD2 mRNA expression in OSR1+ cells treated with cabergoline and D1 receptor antagonist. Cells were treated with 20 µM cabergoline and 10 μM SKF 83566. Statistical analysis was performed by one-way ANOVA followed by the Tukey-Kramer test. *P < 0.05. Data represent mean ± SEM of four independent experiments (n = 4). (e) Levels of intracellular cAMP in OSR1+ cells treated with 20 µM cabergoline and 10 μM SKF 83566. Statistical analysis was performed by one-way ANOVA followed by the Tukey-Kramer test. *P < 0.05; **P < 0.01. Data represent mean ± SEM of six independent experiments (n = 6).
Figure 4Effect of cabergoline and a dopamine D1 receptor agonist on steroidogenic enzyme and ACTH-R expression. (a) RT-PCR analysis of steroidogenic enzyme mRNA expression. (b) StAR mRNA expression levels in OSR1+ cells treated with 20 μM cabergoline and 1 µM SKF 83822. Expression levels are normalised to levels of a housekeeping gene, β-actin. Student’s t-test was used for comparison of two groups. *P < 0.05. Data represent mean ± SEM of four independent experiments (n = 4). (c) RT-PCR analysis of mRNA expression of ACTH receptor in OSR1+ cells and SF-1-transfected OSR1+ IM cells.
Figure 5Effect of ACTH and a dopamine D1 receptor agonist on steroidogenic enzyme mRNA expression. Steroidogenic enzyme mRNA expression levels in SF-1-transfected OSR1+ cells treated with 2.4 µM ACTH, 1 µM SKF 83822 and 10 µM SKF 83566. Expression levels are normalised to levels of a housekeeping gene, β-actin. Statistical analysis was performed by one-way ANOVA followed by the Tukey-Kramer test. *P < 0.05; **P < 0.01. Data represent mean ± SEM of eight independent experiments (n = 8).
Levels of steroid hormones secreted into culture medium.
| Control | ACTH | ACTH + SKF 83822 | |
|---|---|---|---|
| Cortisol (pg/ml) | 415 ± 19.9 | **560 ± 26.2 |
|
| Aldosterone (pg/ml) | 14.5 ± 0.9 | 19.5 ± 2.0 |
|
| DHEA (pg/ml) | 2139 ± 278 | 2291 ± 274 |
|
Culture medium was collected for steroid hormone measurements after a 48 h of incubation with 2.4 µM ACTH and/or 1 µM SKF 83822. Statistical analysis was performed using two-tailed unpaired Student’s t-test with Holm-Bonferroni correction. *, vs Control P < 0.05; **, vs Contol P < 0.01; †, vs ACTH P < 0.05. Data represent mean ± SEM of five independent experiments (n = 5).