Departament de Ciències Mèdiques Bàsiques, Facultat de Medicina, Universitat de Lleida, 25198 Lleida, Catalunya, Spain
Received 21 April 2003/ Returned for modification 27 May 2003/ Accepted 14 July 2003
| ABSTRACT |
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| INTRODUCTION |
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Ime1 is a nuclear protein under sporulation conditions (45) and is regulated by a negative feedback loop mechanism that restricts its synthesis to a transient period during initiation of meiosis (14). The activation of meiotic expression requires the interaction of Ime1 with the DNA binding protein Ume6, and this interaction is prevented by glucose and stimulated by nitrogen starvation (40, 48). The GSK3ß homologous kinases Rim11 and Mck1 phosphorylate Ume6 in response to nitrogen limitation (49). Rim11 also phosphorylates Ime1, and phosphorylation of both Ime1 and Ume6 is required for formation of an active transcriptional complex (5, 30, 31). Thus, besides transcriptional regulation, nitrogen starvation and glucose regulate Ime1 function by controlling the Ime1-Ume6 interaction.
G1 cyclins negatively regulate the initiation of meiosis by downregulating IME1 expression (8, 36). Furthermore, Cln-Cdc28 activity prevents the accumulation of Ime1 in the nucleus of mitotic cells, and ectopic expression of IME1 in cells depleted of G1 cyclins is sufficient to promote meiosis and sporulation in rich medium (8). G1 cyclins are rapidly downregulated in yeast cells deprived of nitrogen (8, 13, 29). Because depletion of G1 cyclins mimics nitrogen starvation, we proposed that G1 cyclins would transmit nutritional signals to Ime1 function (8).
The TOR pathway is involved in cellular responses to the changes in nitrogen and carbon sources (9, 23, 37, 38). There are two functionally distinct TOR complexes in yeast. One of them, TOR complex 1 (TORC1), is the target of the immunosupressor rapamycin (25). In response to nutrient availability, TORC1 regulates a broad spectrum of cellular responses, and among them, the subcellular localization of several transcriptional activators (2, 19, 21). The inactivation of TORC1 with rapamycin allows cells to enter a meiotic cycle and sporulate in rich medium (50). However, transcriptome changes induced by rapamycin (15) differ from those obtained during entry into meiosis (7). Thus, it is still uncertain whether the TOR pathway has a direct effect on the initiation of meiosis. To gain insight in the regulatory mechanisms induced by nitrogen starvation, we have analyzed the effects of high levels of rich nitrogen sources on the regulation of Ime1. Here we report that TOR and ammonium availability regulate the initiation of meiosis by controlling the subcellular localization of Ime1. These mechanisms would act independently of G1 cyclins increasing the competence of yeast cells to prevent the initiation of meiosis under low-proliferation or intermediate-nutrient-limiting situations.
| MATERIALS AND METHODS |
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ime1::KanMX4/
ime1::KanMX4), CML200 (MATa cdc28-13), and CML344 (MATa cdc34-2) have been described previously (8). The parental strain JK9-3da (MATa leu2-3,112 ura3-52 trp1 his4 rme1) and the rapamycin-resistant mutant strain JH11-1c (JK9-3da TOR1-1)from M. N. Hall laboratoryhave been described by Heitman et al. (16). All plasmids used in this work are derivatives from pCM279 (adhp-IME1-3xHA), which contains the three-hemagglutinin (3HA)-tagged IME1 open reading frame (ORF) expressed under the control of the Schizosaccharomyces pombe adh promoter in the YCPlac22 (CEN TRP1) vector (8). Two nuclear localization signals (NLS) from simian virus 40 (SV40) were fused to the 3HA-tagged IME1 ORF, obtaining pCM388 (adhp-IME1-2xNLS-3xHA). In pCYC129 (GAL1-IME1-3xHA) the adh1 promoter was substituted for by the GAL1 promoter. Details on plasmid construction are available upon request.
Growth and sporulation conditions. The media and sporulation conditions were as described in reference 8 with only slight modifications. Sporulation medium (0.3% potassium acetate) was modified by lowering the initial pH of the medium to 6.0 with 5 mM 2-(N-morpholino)ethanesulfonic acid (MES). Also, the acetate-based rich medium YPA was modified by addition of 60 mM MES to obtain an initial pH of 5.8. Briefly, cells grown on minimal media with 2% glucose (SD) for 24 h to an optical density at 600 nm (OD600) of 5 were washed, resuspended in YPA at an OD600 of 0.3, and incubated at 30°C for 20 h with vigorous agitation to reach an OD600 of 6 to 7. To initiate meiosis, cells were then washed, resuspended in sporulation medium at an OD600 of 1, and incubated at 30°C. To obtain samples from cells growing exponentially in YPA medium, cells grown in SD as described above were washed, resuspended at an OD600 of 0.03 in YPA, and incubated for 16 to 20 h at 30°C. Ammonium sulfate, glutamine, and proline were added at a final concentration of 40 mM unless otherwise indicated. L-Methionine-sulfoximine from Sigma was used at a final concentration of 2 mM. Rapamycin from Sigma was added at a final concentration of 200 ng/ml (200 nM).
Immunofluorescence. The intracellular localization of the 3HA-tagged proteins was determined by indirect immunofluorescence techniques essentially as described by Rose et al. (39). The rat anti-HA antibody (clone 3F10) was used at 1 µg/ml, and Alexa 488 goat anti-rat antibody from Molecular Probes was used at 10 µg/ml. Nuclei were visualized by staining the DNA with 4',6-diamidino-2-phenylindole (DAPI) at 1 µg/ml. Images were obtained with a Nikon fluorescence microscope and LSR Ultra software.
Flow cytometry and morphological determinations. Distributions of DNA content were obtained by propidium iodide staining as described by Nash et al. (34) with an Epics XL cytometer (Coulter). Budding and sporulation percentages were obtained under a phase-contrast microscope by inspecting a minimum of 200 cells that had been fixed with 1% formaldehyde in 1x SSC (1x SSC is 0.15 M NaCl plus 0.0015 M sodium citrate) and sonicated for 5 s.
Northern blotting. Total RNA samples were analyzed by Northern blotting as described previously (13). DNA fragments containing only ORF sequences were used to synthesize probes by random PCR with a digoxigenin-dUTP labeling mixture as directed by Roche. RNA samples were blotted and probed in the same membrane for accurate comparison.
Western blot and pulse-chase analyses. Whole-cell extracts and Western blot analysis with the mouse anti-HA antibody (clone 12CA5) were performed as described by Gallego et al. (13). To evaluate the total Ime1 protein decay, cells harboring pCYC129 (GAL1-IME1-3xHA) were grown exponentially on raffinose-based rich medium (YPRaf), and then 2% galactose (YPRafhal) was added to induce the GAL1 promoter. Two hours later, cells were filtered and resuspended in YPA or YPA with 200 ng of rapamycin per ml or YPA with 200 ng of rapamycin per ml and 40 mM ammonium sulfate. Samples were harvested and immediately boiled for 2 min at the indicated time points before protein extraction.
The Ime1 degradation rate was measured by pulse-chase analysis as previously described (13). 1788(pCM279) cells growing exponentially in YPA were transferred to sporulation medium with or without ammonium sulfate. Two hours after transfer, 60 ml of culture was added to 3 mCi of Tran35S-label (ICN), and this mixture was incubated for 15 min at 30°C. Samples of 10 ml were taken at the indicated points after addition of unlabeled methionine and cysteine to a final concentration of 30 µM. Cells were then rapidly filtered, washed in cold water, and quickly frozen in liquid nitrogen. Cell pellets were processed for double immunoprecipitation in BC buffer (250 mM NaCl, 50 mM Tris-HCl [pH7.5], 5 mM EDTA, 0.1% Triton X-100, protease, phosphatase inhibitors) with rat anti-HA antibody (clone 3F10) from Boehringer Manheim, essentially as described by Blondel and Mann (4). Immunoprecipitated samples were split and loaded onto two sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) gels for Western blot analysis or radioactivity detection in a BAS-1000 phosphorimager (Fuji).
| RESULTS |
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An ammonium signaling pathway has been described controlling pseudohyphal differentiation (27). In this pathway, ammonium availability would be sensed by the ammonium permease Mep2 (32) and transmitted through the
subunit of the guanine nucleotide binding protein Gpa2 (26). We have found that homozygous null mep2 and gpa2 mutant cells were similar to the wild-type cells with regard to the nuclear localization of Ime1 under sporulation conditions and relocalization to the cytoplasm after ammonia addition (data not shown).
TOR regulates the localization of Ime1. Changes in the intracellular levels of glutamine can be sensed by the TOR pathway (10). Therefore, we considered the possibility that the effect of glutamine on Ime1 localization could be mediated by TOR. First, to check the involvement of the TOR pathway in the regulation of Ime1 localization, we examined the nuclear accumulation of Ime1 after inactivation of TORC1 with rapamycin. Wild-type and rapamycin-resistant TOR1-1 cells transformed with adhp-IME1-3HA were grown in acetate-based rich medium at 30°C and treated with rapamycin. As shown in Fig. 4A, Ime1 was accumulated in the nucleus 15 min after the addition of rapamycin in the wild type, but not in the TOR1-1 rapamycin-resistant cells. These data indicate that the TOR pathway is involved in the regulation of Ime1 function. Rapamycin treatment also produced an increase in Ime1 protein levels only in wild-type cells (Fig. 4C) (described below). Intriguingly, an enrichment of the high-mobility form of Ime1 was usually observed after treatment with rapamycin. TOR modulates the phosphorylation state of different transcriptional activators by controlling the activity of several kinases and type 2 protein phosphatases, such as Sit4 (19). We have observed that in null sit4 mutant cells, the localization and mobility of Ime1 after addition of rapamycin were similar to those in wild-type cells (data not shown), and therefore Sit4 would seem to be unrelated to the control of Ime1 by TOR. Nevertheless, we cannot discard the idea that changes in the phosphorylation state of Ime1 could be associated with the control by TOR.
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The TOR pathway modulates the half-life of Ime1.
Treatment of wild-type cells with rapamycin produced an increase in the overall levels of Ime1 protein (Fig. 4C). This result made likely the participation of the TOR pathway in the control of Ime1 stability. First, we determined whether Ime1 was an unstable protein. Diploid null ime1 cells transformed with adhp-IME1-3HA were incubated for 2 h at 30°C in sporulation medium with or without ammonia. Then the half-life of the Ime1 protein was determined by pulse-chase analysis (see Materials and Methods). Ime1 presented a half-life shorter than 5 min, and the rate of protein decay was not affected by the presence of ammonia (Fig. 5A and B). Second, we analyzed the stability of Ime1 after rapamycin addition. Homozygous
ime1 cells harboring GAL1p-IME1-3HA were induced in galactose-based rich medium and then transferred to acetate medium and treated with rapamycin. Figure 5C and D show that Ime1 was stabilized after rapamycin addition, and the half-life of the protein increased more than twice with respect to that of the untreated culture. Thus, the TOR pathway may positively regulate the turnover of the Ime1 protein. The half-life under untreated conditions was comparable to that obtained by pulse-chase analysis. Remarkably, the stabilization of the Ime1 protein by inactivation of the TOR pathway was observed even in the presence of ammonia (Fig. 5C and D).
Nuclear accumulation of Ime1 is regulated via different mechanisms. The SV40 NLS is able to direct the nuclear import of many heterologous proteins (46). Two SV40 NLS were fused to IME1, and the resulting construct (IME1-2xNLS) was expressed under the control of the adh promoter (Fig. 6C). Diploid null ime1 cells harboring adhp-IME1-2xNLS were exponentially grown in acetate-based rich medium at 30°C. As shown in Fig. 6A, the presence of two copies of SV40 NLS caused Ime1 to accumulate in the nucleus under these conditions. Furthermore, Ime1-2xNLS remained nuclear after ammonia addition. However, only a few cells showed nuclear signal after glutamine addition in the same experiment (data not shown). In a second experiment, we subjected Ime1-2xNLS to high levels of G1 cyclins. In haploid cdc34-2 cells at restrictive temperature, high levels of Cln/Cdc28 kinase activity are reached and Ime1 is found in the cytoplasm (8). cdc34-2 cells transformed with adhp-IME1-2xNLS were grown at 25°C in acetate-based rich medium and shifted to 37°C during 4 h. As shown in Fig. 6B, Ime1-2xNLS remained cytoplasmic in the cdc34-2 mutant at restrictive temperature. All of these data support the notion that distinct signals may regulate the accumulation of Ime1 in the nucleus through different mechanisms.
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ime1 cells harboring adhp-IME1-3HA or an empty vector were exponentially grown in acetate-based rich medium at 30°C and treated with rapamycin for 30 min. As shown in Fig. 7A, the addition of rapamycin caused an induction of SPO13 and IME2 expression similar to that of MEP2, a TOR-controlled gene (2, 6). The transcripts of SPO13 and IME2 were already detected 15 min after the addition of rapamycin and showed a maximum level of expression at 30 min (data not shown). However, the expression of IME2 showed a transitory induction similar to MEP2 (6), since the level of transcript was greatly reduced 2 h after the addition of rapamycin (data not shown). It is important to note that the rapid induction of SPO13 and IME2 was totally dependent on Ime1 (Fig. 7A). This finding is in agreement with the localization of Ime1 in the nuclei of TOR-inactivated cells in rich medium and strongly suggests that TOR is also involved in the nutritional control of the activation of Ime1-dependent transcription once Ime1 is localized in the nucleus.
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| DISCUSSION |
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As we show here, the inactivation of the TOR pathway with rapamycin blocks the response of cells to the sudden addition of glutamine but not ammonia. Thus, the glutamine signal would be transmitted to Ime1 through the TOR pathway, while there would be an uncharacterized pathway that would specifically transmit the ammonium signal. In agreement with this, it has been proposed that TOR is able to sense changes in the intracellular levels of glutamine, because transcriptional activators such as Gln3 or Rgt1/3 are translocated to the nucleus in a TOR-dependent manner after glutamine starvation (10). The nuclear accumulation of both Gln3 and Rgt1/3 is also induced by inactivation of the TOR pathway with rapamycin (2, 21). In accordance with these data, we also show that the addition of rapamycin induces the accumulation of Ime1 within the nucleus in wild-type cells growing in rich medium, but not in rapamycin-resistant TOR1-1 cells. Thus, Ime1 seems to behave like the TOR-controlled transcription activators. Furthermore, we report here that Ime1 fused to two SV40 NLS is able to counteract the effects caused by a sudden addition of ammonia but not glutamine (data not shown) or high levels of G1 cyclins. This finding emphasizes that ammonium, TOR, and G1 cyclins would control the localization of Ime1 through distinct mechanisms. A general mechanism to ensure the cytoplasmic localization of several TOR-controlled transcriptional activators is mediated by the interaction with specific cytoplasmic retention factors (2). One of these factors, Ure2, is involved in the cell response to changes in the quality of nitrogen sources (2, 6, 15). A null ure2 mutant accumulated Ime1 in the nucleus after rapamycin treatment like the wild-type strain (our unpublished results), suggesting that TOR may not involve Ure2 in the prevention of the nuclear accumulation of Ime1.
Previously, the TOR pathway has been described as controlling the turnover of several proteins involved in the initiation of translation and in the cell response to starvation (3, 42). We show here that TOR partially modulates the turnover of Ime1, because the inactivation of TOR with rapamycin causes an increase in the overall levels of the Ime1 protein in wild-type but not in TOR1-1 cells, and this increase is due to the increase in the half-life of Ime1. Thus, TOR would regulate Ime1 function by controlling both localization and turnover of the protein. Our results also indicate that the control of Ime1 turnover is specific for TOR and independent of the presence of ammonia. This finding agrees with the fact that (i) inactivation of TOR and (ii) nitrogen starvation do not cause equivalent responses at the transcriptome level (15).
The nuclear localization of Ime1 (Ime1-2xNLS) is not sufficient to turn on Ime1-dependent transcription. However, we report here that loss of TOR function promotes the induction of early meiotic genes in acetate-rich medium. This finding suggests that TOR could transmit nutritional signals to control additional steps of Ime1-dependent transcription, besides the localization of Ime1. Although our results would seem contradictory to the published data describing the transcriptome profile induced by rapamycin (15), there are two important methodological differences to be noted. First, we have grown the cells in acetate instead of glucose as the carbon source, and glucose may impose additional mechanisms on the regulation of Ime1-dependent transcription (18). Thus, our data would be consistent with the fact that rapamycin promotes sporulation in glucose-rich medium only in saturated cultures, when glucose becomes exhausted (50). Second, we have used the S. pombe adh promoter to release the expression of IME1 from nutritional controls. In wild-type cells expressing the endogenous IME1 gene under its own promoter, rapamycin did not induce SPO13 and IME2 expression (data not shown). Then an ectopic source of Ime1 would be required to observe the activation of Ime1-dependent transcription by rapamycin. Finally, in our model, only a few diploid cells transformed with adhp-IME1-3HA produced tetrads 2 days after incubation in acetate-based rich medium in the presence of rapamycin (data not shown). Additional work will be required to analyze the physiological relevance of TOR inactivation during the whole sporulation process.
We propose here that subcellular localization of Ime1 is specifically controlled by nutritional as well as cell cycle signals (Fig. 7C). Three independent mechanisms, TOR, ammonia, and G1 cyclins, act in parallel to prevent the accumulation of Ime1 in the nucleus. We cannot discard partial overlap among these three signaling processes, because ammonia and TOR are able to upregulate G1 cyclin levels (1). The TOR pathway has been proposed to involve glutamine to integrate both nitrogen and carbon metabolism (10), suggesting that TOR could play an important role in sensing the optimal combination of nitrogen- and carbon-limiting conditions for entry into meiosis or pseudohyphal differentiation. It is important to note that TOR would play opposite roles in regulating the distinct developmental pathways, because filamentous growth requires an active TOR pathway (11). Finally, signaling of Ime1 by independent mechanisms would facilitate cells to decide the suitable response to different nutritional situations. The meiotic program is an energetically expensive process, and diploid yeast cells only initiate meiosis under nutrient-limiting situations that fulfill two main requirements: (i) starvation or low quality of carbon and nitrogen sources and (ii) arrest of mitotic proliferation. When cells are faced with intermediate proliferating and/or nutrition-limiting situations, the regulation of Ime1 through independent nutritional and cell cycle mechanisms would help cells to prevent inappropriate entry into the meiotic program.
| ACKNOWLEDGMENTS |
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This work was funded by the Ministry of Science and Technology of Spain and FEDER to M.A. E.G. is a researcher of the Ramon y Cajal Program.
| FOOTNOTES |
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