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Funktionelle Analyse von Proteinen der Gpr1/Fun34/yaaH ...

Funktionelle Analyse von Proteinen der Gpr1/Fun34/yaaH ...

Funktionelle Analyse von Proteinen der Gpr1/Fun34/yaaH ...

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Literatur<br />

implications for 14-3-3 binding, mitogen-activated protein kinase binding, and KSR<br />

overexpression. Mol Cell Biol 19: 229-240.<br />

Carmelo V, Bogaerts P and Sa-Correia I (1996) Activity of plasma membrane H+-ATPase<br />

and expression of PMA1 and PMA2 genes in Saccharomyces cerevisiae cells grown<br />

at optimal and low pH. Arch Microbiol 166: 315-320.<br />

Carmelo V, Santos H and Sa-Correia I (1997) Effect of extracellular acidification on the activity<br />

of plasma membrane ATPase and on the cytosolic and vacuolar pH of Saccharomyces<br />

cerevisiae. Biochim Biophys Acta 1325: 63-70.<br />

Casal M, Cardoso H and Leão C (1996) Mechanisms regulating the transport of acetic acid<br />

in Saccharomyces cerevisiae. Microbiology 142: 1385-1390.<br />

Casal M and Leão C (1995) Utilization of short-chain monocarboxylic acids by the yeast Torulaspora<br />

delbrueckii: specificity of the transport systems and their regulation. Biochim<br />

Biophys Acta 1267: 122-130.<br />

Casal M, Paiva S, Andrade RP, Gancedo C and Leão C (1999) The lactate-proton symport<br />

of Saccharomyces cerevisiae is encoded by JEN1. J Bacteriol 181: 2620-2623.<br />

Cassio F, Leão C and van Uden N (1987) Transport of lactate and other short-chain monocarboxylates<br />

in the yeast Saccharomyces cerevisiae. Appl Environ Microbiol 53: 509-<br />

513.<br />

Castanie-Cornet MP and Foster JW (2001) Escherichia coli acid resistance: cAMP receptor<br />

protein and a 20 bp cis-acting sequence control pH and stationary phase expression<br />

of the gadA and gadBC glutamate decarboxylase genes. Microbiology 147: 709-715.<br />

Castanie-Cornet MP, Penfound TA, Smith D, Elliott JF and Foster JW (1999) Control of acid<br />

resistance in Escherichia coli. J Bacteriol 181: 3525-3535.<br />

Causton HC, Ren B, Koh SS, Harbison CT, Kanin E, Jennings EG, Lee TI, True HL, Lan<strong>der</strong><br />

ES and Young RA (2001) Remodeling of yeast genome expression in response to<br />

environmental changes. Mol Biol Cell 12: 323-337.<br />

Celenza JL and Carlson M (1989) Mutational analysis of the Saccharomyces cerevisiae Snf1<br />

protein kinase and evidence for functional interaction with the Snf4 protein. Mol Cell<br />

Biol 9: 5034-5044.<br />

Celenza JL, Eng FJ and Carlson M (1989) Molecular analysis of the SNF4 gene of Saccharomyces<br />

cerevisiae: evidence for physical association of the Snf4 protein with the<br />

Snf1 protein kinase. Mol Cell Biol 9: 5045-5054.<br />

Chambers A, Packham EA and Graham IR (1995) Control of glycolytic gene expression in<br />

the budding yeast (Saccharomyces cerevisiae). Curr Genet 29: 1-9.<br />

Chang VK, Fitch MJ, Donato JJ, Christensen TW, Merchant AM and Tye BK (2003) Mcm1<br />

binds replication origins. J Biol Chem 278: 6093-6100.<br />

Chang YY and Cronan JE, Jr. (1999) Membrane cyclopropane fatty acid content is a major<br />

factor in acid resistance of Escherichia coli. Mol Microbiol 33: 249-259.<br />

Chiang TY and Marzluf GA (1995) Binding affinity and functional significance of NIT2 and<br />

NIT4 binding sites in the promoter of the highly regulated nit-3 gene, which encodes<br />

nitrate reductase in Neurospora crassa. J Bacteriol 177: 6093-6099.<br />

Chiang TY, Rai R, Cooper TG and Marzluf GA (1994) DNA binding site specificity of the<br />

Neurospora global nitrogen regulatory protein Nit2: analysis with mutated binding<br />

sites. Mol Gen Genet 245: 512-516.<br />

Coffman JA, Rai R and Cooper TG (1995) Genetic evidence for Gln3p-independent, nitrogen<br />

catabolite repression-sensitive gene expression in Saccharomyces cerevisiae. J Bacteriol<br />

177: 6910-6918.<br />

Colaco C, Sen S, Thangavelu M, Pin<strong>der</strong> S and Roser B (1992) Extraordinary stability of enzymes<br />

dried in trehalose: simplified molecular biology. Biotechnology (NY) 10: 1007-<br />

1011.<br />

Cooper TG (1982) Nirogen metabolism in Saccharomyces cerevisiae. In: Strathern JN,<br />

Jones EW, Broach J, eds. The Molecular biology of the Yeast Saccharomyces: Metabolism<br />

and gene expression. Cold Spring Harbor Laboratory Press: 39-99.<br />

Cooper TG, Kovari L, Sumrada RA, Park HD, Luche RM and Kovari I (1992) Nitrogen catabolite<br />

repression of arginase (CAR1) expression in Saccharomyces cerevisiae is <strong>der</strong>ived<br />

from regulated inducer exclusion. J Bacteriol 174: 48-55.<br />

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