Glucose-regulated turnover of mRNA and the influence of poly(A) tail length on half-life

被引:23
作者
Prieto, S [1 ]
de la Cruz, BJ [1 ]
Scheffler, IE [1 ]
机构
[1] Univ Calif San Diego, Dept Biol, La Jolla, CA 92093 USA
关键词
D O I
10.1074/jbc.275.19.14155
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Glucose repression in Saccharomyces cerevisiae can now be seen to operate at two levels: regulation of transcription of certain genes and control of the half-life of the corresponding mRNAs (Scheffler, I. E,, de la Cruz, B. J,, and Prieto, S, (1998) Int. J, Biochem Cell Biol, 30, 1175-1193), For example, the steady state levels of SDH2 mRNA and SUC2 mRNA are significantly determined by their differential rates of turnover. A current model for the mechanism of mRNA turnover includes three distinct steps: a rate-limiting deadenylation, removal of the 5'-7-methyl-G (decapping), and 5'-3' exonuclease digestion. We have investigated the same three reactions during glucose-induced degradation of these transcripts. Our results indicate that while decapping (by Dcp1p) and 5'-3' exonuclease digestion (by Xrn1p) are obligatory steps for the rapid degradation of these mRNAs, the dependence on deadenylation is more complicated. At steady state in glycerol these transcripts have very short poly(A) tails but are nevertheless very stable; the addition of glucose causes immediate decapping and degradation without further deadenylation; in contrast, newly made SUC2 mRNA (after a shift from glucose to glycerol) has significantly longer poly(A) tails, and such transcripts are not rapidly degraded upon addition of glucose. A constitutive deadenylation reaction that is independent of the carbon source eventually makes the stability of these transcripts very sensitive to glucose. These results are interpreted in terms of a working hypothesis proposing a competition between translational initiation and decapping influenced by the carbon source. The presence of a long poly(A) tail may also affect this competition in favor of translational initiation and mRNA stabilization.
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页码:14155 / 14166
页数:12
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共 59 条
[21]   HIGH-EFFICIENCY TRANSFORMATION OF ESCHERICHIA-COLI WITH PLASMIDS [J].
INOUE, H ;
NOJIMA, H ;
OKAYAMA, H .
GENE, 1990, 96 (01) :23-28
[22]   TRANSFORMATION OF INTACT YEAST-CELLS TREATED WITH ALKALI CATIONS [J].
ITO, H ;
FUKUDA, Y ;
MURATA, K ;
KIMURA, A .
JOURNAL OF BACTERIOLOGY, 1983, 153 (01) :163-168
[23]   Interrelationships of the pathways of mRNA decay and translation in eukaryotic cells [J].
Jacobson, A ;
Peltz, SW .
ANNUAL REVIEW OF BIOCHEMISTRY, 1996, 65 :693-739
[24]   Feasting, fasting and fermenting - glucose sensing in yeast and other cells [J].
Johnston, M .
TRENDS IN GENETICS, 1999, 15 (01) :29-33
[25]   A MODEL FUNGAL GENE REGULATORY MECHANISM - THE GAL GENES OF SACCHAROMYCES-CEREVISIAE [J].
JOHNSTON, M .
MICROBIOLOGICAL REVIEWS, 1987, 51 (04) :458-476
[26]  
JOHNSTON M, 1993, BIOL YEAST SACCHAROM, V2, P193
[27]   A comparison of mammalian and yeast pre-mRNA 3'-end processing [J].
Keller, W ;
MinvielleSebastia, L .
CURRENT OPINION IN CELL BIOLOGY, 1997, 9 (03) :329-336
[28]   Isolation and characterization of Dcp1p, the yeast mRNA decapping enzyme [J].
LaGrandeur, TE ;
Parker, R .
EMBO JOURNAL, 1998, 17 (05) :1487-1496
[29]   CHARACTERIZATION OF THE XRN1 GENE ENCODING A 5'-]3' EXORIBONUCLEASE - SEQUENCE DATA AND ANALYSIS OF DISPARATE PROTEIN AND MESSENGER-RNA LEVELS OF GENE-DISRUPTED YEAST-CELLS [J].
LARIMER, FW ;
HSU, CL ;
MAUPIN, MK ;
STEVENS, A .
GENE, 1992, 120 (01) :51-57
[30]  
LOMBARDO A, 1990, J BIOL CHEM, V265, P10419