YKL069W Summary Help

Systematic Name YKL069W
Alias YKG9
Feature Type ORF, Verified
Description Methionine-R-sulfoxide reductase; reduces the R enantiomer of free Met-SO, in contrast to Ycl033Cp which reduces Met-R-SO in a peptide linkage; has a role in protection against oxidative stress; relative distribution to the nucleus increases upon DNA replication stress (1, 2)
Also known as: fRMsr 1
Chromosomal Location
ChrXI:307285 to 307827 | ORF Map | GBrowse
Gbrowse
Gene Ontology Annotations All YKL069W GO evidence and references
  View Computational GO annotations for YKL069W
Molecular Function
Manually curated
Biological Process
Manually curated
Cellular Component
High-throughput
Classical genetics
null
overexpression
Large-scale survey
null
Resources
132 total interaction(s) for 129 unique genes/features.
Physical Interactions
  • Affinity Capture-MS: 2
  • Protein-peptide: 1
  • Two-hybrid: 2

Genetic Interactions
  • Negative Genetic: 111
  • Positive Genetic: 8
  • Synthetic Growth Defect: 5
  • Synthetic Lethality: 2
  • Synthetic Rescue: 1

Resources
Expression Summary
histogram
Resources
Localization
Phosphorylation PhosphoGRID | PhosphoPep Database
Structure
Homologs
sequence information
ChrXI:307285 to 307827 | ORF Map | GBrowse
SGD ORF map
Last Update Coordinates: 2011-02-03 | Sequence: 1996-07-31
Subfeature details
Relative
Coordinates
Chromosomal
Coordinates
Most Recent Updates
Coordinates Sequence
CDS 1..543 307285..307827 2011-02-03 1996-07-31
Retrieve sequences
Analyze Sequence
S288C only
S288C vs. other species
S288C vs. other strains
Resources
External Links All Associated Seq | E.C. | Entrez Gene | Entrez RefSeq Protein | MIPS | Search all NCBI (Entrez) | UniProtKB
Primary SGDIDS000001552
References cited on this page View Complete Literature Guide for YKL069W
1) Le DT, et al.  (2009) Functional Analysis of Free Methionine-R-sulfoxide Reductase from Saccharomyces cerevisiae. J Biol Chem 284(7):4354-64
2) Tkach JM, et al.  (2012) Dissecting DNA damage response pathways by analysing protein localization and abundance changes during DNA replication stress. Nat Cell Biol 14(9):966-76