YHB1/YGR234W Literature Guide Help

Other names published for YHB1: YHB4, YGR234W

YHB1 - Strains/Constructs (22)

ReferenceOther Genes Addressed
Rachfall N, et al.  (2013) RACK1/Asc1p, a ribosomal node in cellular signaling. Mol Cell Proteomics 12(1):87-105
Salvado Z, et al.  (2012) Functional analysis to identify genes in wine yeast adaptation to low-temperature fermentation. J Appl Microbiol 113(1):76-88
Jung PP, et al.  (2011) Ploidy influences cellular responses to gross chromosomal rearrangements in Saccharomyces cerevisiae. BMC Genomics 12(1):331
Lewinska A, et al.  (2011) A genetic analysis of nitric oxide-mediated signaling during chronological aging in the yeast. Biogerontology 12(4):309-20
Sanada M, et al.  (2011) ROS production and apoptosis induction by formation of Gts1p-mediated protein aggregates. Biosci Biotechnol Biochem 75(8):1546-53
Bhattacharjee A, et al.  (2010) Characterizing the effect of nitrosative stress in Saccharomyces cerevisiae. Arch Biochem Biophys 496(2):109-16
Bhattacharjee A, et al.  (2009) In vivo protein tyrosine nitration in S. cerevisiae: Identification of tyrosine-nitrated proteins in mitochondria. Biochem Biophys Res Commun 388(3):612-7
Foster MW, et al.  (2009) A genetic analysis of nitrosative stress. Biochemistry 48(4):792-9
Sahoo R, et al.  (2009) A novel role of catalase in detoxification of peroxynitrite in S. cerevisiae. Biochem Biophys Res Commun 385(4):507-11
Castello PR, et al.  (2008) Oxygen-regulated isoforms of cytochrome c oxidase have differential effects on its nitric oxide production and on hypoxic signaling. Proc Natl Acad Sci U S A 105(24):8203-8
Hausmann A, et al.  (2008) Cellular and Mitochondrial Remodeling upon Defects in Iron-Sulfur Protein Biogenesis. J Biol Chem 283(13):8318-30
Lewinska A, et al.  (2008) Application of a YHB1-GFP reporter to detect nitrosative stress in yeast. Redox Rep 13(4):161-71
Horan S, et al.  (2006) Transcriptional response to nitrosative stress in Saccharomyces cerevisiae. Yeast 23(7):519-35
Lewinska A and Bartosz G  (2006) Yeast flavohemoglobin protects against nitrosative stress and controls ferric reductase activity. Redox Rep 11(5):231-9
Zhu J, et al.  (2006) A Bayesian Network Driven Approach to Model the Transcriptional Response to Nitric Oxide in Saccharomyces cerevisiae. PLoS ONE 1:e94
van Bakel H, et al.  (2005) Gene expression profiling and phenotype analyses of S. cerevisiae in response to changing copper reveals six genes with new roles in copper and iron metabolism. Physiol Genomics 22(3):356-67
Huh WK, et al.  (2003) Global analysis of protein localization in budding yeast. Nature 425(6959):686-91
Liu L, et al.  (2000) Protection from nitrosative stress by yeast flavohemoglobin. Proc Natl Acad Sci U S A 97(9):4672-6
Buisson N and Labbe-Bois R  (1998) Flavohemoglobin expression and function in Saccharomyces cerevisiae. No relationship with respiration and complex response to oxidative stress. J Biol Chem 273(16):9527-33
Zhao XJ, et al.  (1996) Function and expression of flavohemoglobin in Saccharomyces cerevisiae. Evidence for a role in the oxidative stress response. J Biol Chem 271(41):25131-8
van der Aart QJ, et al.  (1996) Sequence analysis of the 43 kb CRM1-YLM9-PET54-DIE2-SMI1-PHO81-YHB4-PFK1 region from the right arm of Saccharomyces cerevisiae chromosome VII. Yeast 12(4):385-90
Crawford MJ, et al.  (1995) Regulation of Saccharomyces cerevisiae flavohemoglobin gene expression. J Biol Chem 270(12):6991-6