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N Moustaïd

Publications and source records attributed to N Moustaïd.

4 recordsLinked to original sources

Localization of sequences for the basal and insulin-like growth factor-I inducible activity of the fatty acid synthase promoter in 3T3-L1 fibroblasts.

Fatty acid synthase (FAS) plays a central role in fatty acid synthesis and its expression is under nutritional and hormonal control. We have investigated insulin-like growth factor-I (IGF-I) regulation of FAS by transfecting into 3T3-L1 fibroblasts chimeric genes comprising the 5'-flanking region of the FAS gene linked to a luciferase (LUC) reporter gene. First, the basal promoter activity of the 5' serial deletions from nucleotides -318 to -19 of the FAS gene were compared. Deletions of the promoter sequences from -136 to -19 resulted in a step-wise decrease in the promoter activity, with the -67 LUC and -19 LUC plasmids retaining 40% and 16% of the luciferase activity of -136 LUC. Regulatory sequences important for the FAS basal promoter activity in 3T3-L1 fibroblasts are, therefore, located within the -136 to -19 region. Treatment with 10 mM IGF-I also increased luciferase activity 1.8 +/- 0.2-, 1.8 +/- 0.3- and 2.5 +/- 0.1-fold in 3T3-L1 fibroblasts transiently transfected with -136 LUC, -110 LUC and -67 LUC plasmids, respectively. Deletion of sequences from -67 to -19 resulted in the loss of responsiveness to IGF-I. Physiological doses of insulin (10 nM), however, did not increase luciferase activity in 3T3-L1 fibroblasts transfected with any of the above plasmids. Only upon treatment with pharmacological doses of insulin (1 microM), probably through IGF-I receptor, did luciferase activity increase 4.3 +/- 0.4-, 3.2 +/- 0.4- and 3.5 +/- 0.5-fold when transfected with -136 LUC, -110 LUC and -67 LUC plasmids, respectively; there was no increase with -19 LUC. The half-maximal effect of IGF-I on FAS promoter activity was observed at 3 nM and a maximal effect was reached at 10 nM. These results indicate that the increased promoter activities observed are probably mediated through the IGF-I receptor. Furthermore, sequences responsible for IGF-I regulation of the FAS gene are located within the proximal promoter between nucleotides -67 and -19 of the FAS gene.

1-Methyl-3-isobutylxanthine

Transcriptional regulation of p90 with sequence homology to Escherichia coli glycerol-3-phosphate acyltransferase.

We have previously isolated cDNA clones for several mRNAs that are dramatically increased in livers of fasted mice refed a high carbohydrate diet. We report here the sequence and regulation of one such mRNA; the 6.8-kilobase mRNA has an open reading frame of 2481 nucleotides, and the coded protein contains 827 amino acid residues (Mr of 90,000) with a 30% identity and an additional 42% similarity in an approximately 300-amino acid stretch to Escherichia coli glycerol-3-phosphate acyltransferase. The p90 mRNA is highly expressed in liver and in adipose tissue. When previously fasted mice were refed a high carbohydrate, fat-free diet, the liver mRNA level for p90 was increased about 20-fold at 8 h. Administration of dibutyryl cAMP at the time of refeeding prevented the increase in the p90 mRNA by 70%. In addition, there was no increase in the p90 mRNA level when previously starved streptozotocin-diabetic mice were refed. In diabetic animals, the p90 mRNA level increased by 2-fold 1 h after insulin injection and reached a maximum of 19-fold after 6 h. The increase in transcription rate of the p90 gene preceded that of steady state mRNA level caused by fasting/refeeding, and cAMP abolished the increase in transcription. Transcription of the p90 gene was not detectable in either fasted or refed streptozotocin-diabetic mice, but increased 4-fold 30 min after insulin administration and further increased up to 8-fold at 2 h. On-going protein synthesis was necessary for this increase.

Amino Acid Sequence

Regulation of expression of the fatty acid synthase gene in 3T3-L1 cells by differentiation and triiodothyronine.

We have previously reported that fatty acid synthase mRNA levels increase 10-15-fold during the differentiation of 3T3-L1 cells to adipocytes, correlating well with the increase in the relative rate of synthesis for this enzyme. Here we show by transcription run-on assays that fatty acid synthase is highly transcribed in both preadipocytes and adipocytes. Furthermore, the transcription rate of the fatty acid synthase gene increased only 1.5-fold during the adipose conversion, whereas the apparent mRNA half-life increased from 2.5 h in preadipocytes to approximately 20 h in adipocytes. These results indicate that the increase in mRNA level during adipose conversion is not only due to the transcriptional activation of this gene but reflects the post-transcriptional stabilization of the message in adipocytes compared to preadipocytes. As thyroid hormone has been reported to increase lipogenic enzyme activities including fatty acid synthase in adipose tissue and in differentiating adipocytes in vitro, we used fully differentiated 3T3-L1 adipocytes to study T3 regulation of mammalian fatty acid synthase expression. We measured the effect of T3 on the relative rate of protein synthesis, mRNA content, and transcription rate of this gene. When mature adipocytes were treated with 10 nM T3, the relative rate of synthesis of fatty acid synthase increased 1.9-fold at 6 h, and it reached a maximum of 2.9-fold at 12 h. In addition, Northern blot analysis showed that T3 increased the steady-state mRNA level for fatty acid synthase by 2.4-fold at 12 h and 4.5-fold at 24 h. Furthermore, run-on transcription analysis with isolated nuclei from cells treated with T3 showed that the transcription rate of the fatty acid synthase gene increased 4.1-fold after 6 h of T3 treatment and remained at the stimulated level for 24 h. These results demonstrate that the increase in transcription of the fatty acid synthase gene preceded that of the steady-state mRNA level, indicating that T3 regulates expression of fatty acid synthase primarily by modulating the transcription rate of the gene. In conclusion, while the differentiation-dependent increase in fatty acid synthase is mediated by both transcriptional and posttranscriptional processes, T3 regulation is primarily at the transcriptional level.

3T3 Cells

[Decrease of gene expression of glycerophosphate dehydrogenase by dexamethasone in differentiated 3T3-F442A cells: antagonism with insulin and antiglucocorticoid RU38486].

Preadipocyte subclones derived from mouse 3T3 cells differentiate into adipocytes; this differentiation is characterized by an increased activity of numerous enzymes required for triglyceride synthesis and/or mobilization. Among these enzymes, the role of glycerophosphate dehydrogenase in the differentiation process has been previously reported. In the present work, we studied the hormonal regulation of glycerophosphate dehydrogenase gene expression (G3PDH) in differentiated 3T3-F442A adipocytes. Dexamethasone (DEX) elicited a 50% decrease in both mRNA content and specific activity of G3PDH. This effect was due to a posttranscriptional event since DEX shortened the half life of the mRNA, whereas it did not modify the transcription rate of this gene. The DEX effect is specific to G3PDH, since the expression of another adipose-specific gene, namely adipsin, is not modified by DEX treatment. Insulin counteracts the inhibitory effect of DEX, mainly by stabilizing the mRNA encoding for G3PDH. The antiglucocorticoid RU38486 is able to reverse DEX inhibition. Latter phenomenon suggests that DEX action on G3PDH gene expression could be mediated by glucocorticoid receptors.

Animals