AboutBlogDownloadExploreHelpGet Data
Email Us Mastodon BlueSky Facebook LinkedIn YouTube
Saccharomyces Genome Database
  • Saccharomyces Genome Database
    Saccharomyces Genome Database
  • Menu
  • Analyze
    • Gene Lists
    • BLAST
    • Fungal BLAST
    • GO Term Finder
    • GO Slim Mapper
    • Pattern Matching
    • Design Primers
    • Restriction Site Mapper
  • Sequence
    • Download
    • Genome Browser
    • BLAST
    • Fungal BLAST
    • Gene/Sequence Resources
    • Reference Genome
      • Download Genome
      • Genome Snapshot
      • Chromosome History
      • Systematic Sequencing Table
      • Original Sequence Papers
    • Strains and Species
      • Variant Viewer
      • Align Strain Sequences
    • Resources
      • UniProtKB
      • InterPro (EBI)
      • HomoloGene (NCBI)
      • YGOB (Trinity College)
      • AlphaFold
  • Function
    • Gene Ontology
      • GO Term Finder
      • GO Slim Mapper
      • GO Slim Mapping File
    • Expression
    • Biochemical Pathways
    • Phenotypes
      • Browse All Phenotypes
    • Interactions
    • YeastGFP
    • Resources
      • GO Consortium
      • BioGRID (U. Toronto)
  • Literature
    • Full-text Search
    • New Yeast Papers
    • YeastBook
    • Resources
      • PubMed (NCBI)
      • PubMed Central (NCBI)
      • Google Scholar
  • Community
    • Community Forum
    • Colleague Information
      • Find a Colleague
      • Add or Update Info
      • Find a Yeast Lab
    • Education
    • Meetings
    • Nomenclature
      • Submit a Gene Registration
      • Gene Registry
      • Nomenclature Conventions
    • Methods and Reagents
      • Strains
    • Historical Data
      • Physical & Genetic Maps
      • Genetic Maps
      • Genetic Loci
      • ORFMap Chromosomes
      • Sequence
    • Submit Data
    • API
  • Info & Downloads
    • About
    • Blog
    • Downloads
    • Site Map
    • Help
  • Author: Fujimura-Kamada K
  • References

Author: Fujimura-Kamada K


References 19 references


No citations for this author.

Download References (.nbib)

  • Mioka T, et al. (2018) Phospholipid flippases and Sfk1p, a novel regulator of phospholipid asymmetry, contribute to low permeability of the plasma membrane. Mol Biol Cell 29(10):1203-1218 PMID:29540528
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Yamamoto T, et al. (2017) Cfs1p, a Novel Membrane Protein in the PQ-Loop Family, Is Involved in Phospholipid Flippase Functions in Yeast. G3 (Bethesda) 7(1):179-192 PMID:28057802
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Hanamatsu H, et al. (2014) Interaction of the phospholipid flippase Drs2p with the F-box protein Rcy1p plays an important role in early endosome to trans-Golgi network vesicle transport in yeast. J Biochem 155(1):51-62 PMID:24272750
    • SGD Paper
    • DOI full text
    • PubMed
  • Mioka T, et al. (2014) Asymmetric distribution of phosphatidylserine is generated in the absence of phospholipid flippases in Saccharomyces cerevisiae. Microbiologyopen 3(5):803-21 PMID:25220349
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Fujimura-Kamada K, et al. (2012) Essential role of the NH2-terminal region of Cdc24 guanine nucleotide exchange factor in its initial polarized localization in Saccharomyces cerevisiae. Eukaryot Cell 11(1):2-15 PMID:22117027
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Takahashi Y, et al. (2011) Isolation and characterization of novel mutations in CDC50, the non-catalytic subunit of the Drs2p phospholipid flippase. J Biochem 149(4):423-32 PMID:21212072
    • SGD Paper
    • DOI full text
    • PubMed
  • Tanaka K, et al. (2011) Functions of phospholipid flippases. J Biochem 149(2):131-43 PMID:21134888
    • SGD Paper
    • DOI full text
    • PubMed
  • Furuta N, et al. (2007) Endocytic recycling in yeast is regulated by putative phospholipid translocases and the Ypt31p/32p-Rcy1p pathway. Mol Biol Cell 18(1):295-312 PMID:17093059
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Saito K, et al. (2007) Transbilayer phospholipid flipping regulates Cdc42p signaling during polarized cell growth via Rga GTPase-activating proteins. Dev Cell 13(5):743-751 PMID:17981141
    • SGD Paper
    • DOI full text
    • PubMed
  • Noji T, et al. (2006) Mutational analysis of the Lem3p-Dnf1p putative phospholipid-translocating P-type ATPase reveals novel regulatory roles for Lem3p and a carboxyl-terminal region of Dnf1p independent of the phospholipid-translocating activity of Dnf1p in yeast. Biochem Biophys Res Commun 344(1):323-31 PMID:16600184
    • SGD Paper
    • DOI full text
    • PubMed
  • Saito K, et al. (2005) [Role of phospholipid asymmetry for cellular functions]. Tanpakushitsu Kakusan Koso 50(2):148-54 PMID:15704462
    • SGD Paper
    • PubMed
  • Saito K, et al. (2004) Cdc50p, a protein required for polarized growth, associates with the Drs2p P-type ATPase implicated in phospholipid translocation in Saccharomyces cerevisiae. Mol Biol Cell 15(7):3418-32 PMID:15090616
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Kawasaki R, et al. (2003) The upstream regulator, Rsr1p, and downstream effectors, Gic1p and Gic2p, of the Cdc42p small GTPase coordinately regulate initiation of budding in Saccharomyces cerevisiae. Genes Cells 8(3):235-50 PMID:12622721
    • SGD Paper
    • DOI full text
    • PubMed
  • Misu K, et al. (2003) Cdc50p, a conserved endosomal membrane protein, controls polarized growth in Saccharomyces cerevisiae. Mol Biol Cell 14(2):730-47 PMID:12589066
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Toi H, et al. (2003) She4p/Dim1p interacts with the motor domain of unconventional myosins in the budding yeast, Saccharomyces cerevisiae. Mol Biol Cell 14(6):2237-49 PMID:12808026
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Mochida J, et al. (2002) The novel adaptor protein, Mti1p, and Vrp1p, a homolog of Wiskott-Aldrich syndrome protein-interacting protein (WIP), may antagonistically regulate type I myosins in Saccharomyces cerevisiae. Genetics 160(3):923-34 PMID:11901111
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Schmidt WK, et al. (1998) Endoplasmic reticulum membrane localization of Rce1p and Ste24p, yeast proteases involved in carboxyl-terminal CAAX protein processing and amino-terminal a-factor cleavage. Proc Natl Acad Sci U S A 95(19):11175-80 PMID:9736709
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Tam A, et al. (1998) Dual roles for Ste24p in yeast a-factor maturation: NH2-terminal proteolysis and COOH-terminal CAAX processing. J Cell Biol 142(3):635-49 PMID:9700155
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Fujimura-Kamada K, et al. (1997) A novel membrane-associated metalloprotease, Ste24p, is required for the first step of NH2-terminal processing of the yeast a-factor precursor. J Cell Biol 136(2):271-85 PMID:9015299
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • SGD
  • About
  • Blog
  • Help
  • Privacy Policy
  • Creative Commons License
© Stanford University, Stanford, CA 94305.
Back to Top