MCR1/YKL150W Literature Guide Help

Other names published for MCR1: YKL150W

MCR1 - Primary Literature (14)

ReferenceOther Genes Addressed
Ask M, et al.  (2013) The influence of HMF and furfural on redox-balance and energy-state of xylose-utilizing Saccharomyces cerevisiae. Biotechnol Biofuels 6(1):22
Stead BE, et al.  (2012) Mcm2 phosphorylation and the response to replicative stress. BMC Genet 13(1):36
Lopez-Garcia B, et al.  (2010) A genomic approach highlights common and diverse effects and determinants of susceptibility on the yeast Saccharomyces cerevisiae exposed to distinct antimicrobial peptides. BMC Microbiol 10():289
Theis JF, et al.  (2010) The DNA Damage Response Pathway Contributes to the Stability of Chromosome III Derivatives Lacking Efficient Replicators. PLoS Genet 6(12):e1001227
Endo A, et al.  (2009) Involvement of ergosterol in tolerance to vanillin, a potential inhibitor of bioethanol fermentation, in Saccharomyces cerevisiae. FEMS Microbiol Lett 299(1):95-9
Meineke B, et al.  (2008) The outer membrane form of the mitochondrial protein Mcr1 follows a TOM-independent membrane insertion pathway. FEBS Lett 582(6):855-60
Sarry JE, et al.  (2007) Analysis of the vacuolar luminal proteome of Saccharomyces cerevisiae. FEBS J 274(16):4287-305
Burri L, et al.  (2006) Integral membrane proteins in the mitochondrial outer membrane of Saccharomyces cerevisiae. FEBS J 273(7):1507-15
Lee J, et al.  (2001) Mitochondrial NADH-cytochrome b(5) reductase plays a crucial role in the reduction of D-erythroascorbyl free radical in Saccharomyces cerevisiae. Biochim Biophys Acta 1527(1-2):31-8
Vandenbol M and Fairhead C  (2000) Mass-murder deletion of 19 ORFs from Saccharomyces cerevisiae chromosome XI. Gene 247(1-2):45-52
Lamb DC, et al.  (1999) Biodiversity of the P450 catalytic cycle: yeast cytochrome b5/NADH cytochrome b5 reductase complex efficiently drives the entire sterol 14-demethylation (CYP51) reaction. FEBS Lett 462(3):283-8
Haucke V, et al.  (1997) Analysis of the sorting signals directing NADH-cytochrome b5 reductase to two locations within yeast mitochondria. Mol Cell Biol 17(7):4024-32
Hahne K, et al.  (1994) Incomplete arrest in the outer membrane sorts NADH-cytochrome b5 reductase to two different submitochondrial compartments. Cell 79(5):829-39
Kubota S, et al.  (1977) Studies on the microsomal electron-transport system of anaerobically grown yeast. IV. Purification and characterization of NADH-cytochrome b5 reductase. J Biochem 81(1):187-95