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         Saccharomyces:     more books (100)
  1. Ethanolic fermentation of acid pre-treated starch industry effluents by recombinant Saccharomyces cerevisiae strains [An article from: Bioresource Technology] by J. Zaldivar, C. Roca, et all
  2. CHEMICAL MECHANISM OF HOMOCITRATE SYNTHASE FROM Saccharomyces cerevisiae by jinghua qian, 2009-05-31
  3. Unequal sister chromatid exchange in the rDNA array of Saccharomyces cerevisiae [An article from: Mut.Res.-Genetic Toxicology and Environmental Mutagenesis] by M. Motovali-Bashi, Z. Hojati, et all 2004-12-12
  4. The Molecular and Cellular Biology of the Yeast Saccharomyces: Vol. 3, Cell Cycl by James R.; Pringle, John; jones, Elizabeth Broach, 1997
  5. The Saccharomyces cerevisiae PDS1 and RAD9 checkpoint genes control different DNA double-strand break repair pathways [An article from: DNA Repair] by D. DeMase, L. Zeng, et all 2005-01-02
  6. Methoden zur effizienten Proteinidentifizierung anhand von Massenspektrometrie am Beispiel des mitochondrialen Außenmembran-Proteoms der Bäckerhefe Saccharomyces cerevisiae by Andreas M. Böhm, 2006-11-30
  7. Genetics (Journal) March 2000 Volume 154, No.3: Third International Symposium of Fungal Genomics; Trinucleotide Repeats Are Clustered in Regulatory Genes in Saccharomyces Cerevisiae by Genetics Society Of America, 2000
  8. Molecular Genetic Analysis of the Ubiquitin-Protein Ligase System of Saccharomyces Cerevisiae by John Patrick McGrath, 1991
  9. Xylose fermentation by genetically modified Saccharomyces cerevisiae 259ST in spent sulfite liquor [An article from: Bioresource Technology] by S.S. Helle, A. Murray, et all 2004-04-01
  10. Acción de un campo magnético sobre un cultivo aireado de Saccharomyces cerevisiae.: An article from: Interciencia by Jose Edgar Zapata Montoya, Margarita Hoyos Ramirez, et all 2005-07-01
  11. Influence of specific growth limitation on biosorption of heavy metals by Saccharomyces cerevisiae [An article from: International Biodeterioration & Biodegradation] by P. Dostalek, M. Patzak, et all
  12. Adaptation of a recombinant xylose-utilizing Saccharomyces cerevisiae strain to a sugarcane bagasse hydrolysate with high content of fermentation inhibitors [An article from: Bioresource Technology] by C. Martin, M. Marcet, et all 2007-07-01
  13. Wheat Beer: Wheat, Saccharomyces Cerevisiae, Berliner Weisse, Gose, Paulaner, Weihenstephan, Magic Hat Brewing Company, Lemon
  14. Psoralen-sensitive mutant pso9-1 of Saccharomyces cerevisiae contains a mutant allele of the DNA damage checkpoint gene MEC3 [An article from: DNA Repair] by J.M. Cardone, L.F. Revers, et all

61. Real Estate Apartment For Rent At Pombe2009.net
Details of 5th International Fission Yeast Meeting in Tokyo, Japan.
http://www.pombe2009.net/

62. John McCusker Laboratory
Study fungal genetics and microbiology. Features research projects, publications, and plasmid sequences.
http://www.duke.edu/web/microlabs/mccusker/index.html

63. Welcome To The Bloom Lab!
Study the mechanisms of chromosome segregation. Features a range of yeast data including chromosome spots and dynamics. Includes staff profiles, publications, and related links.
http://www.bio.unc.edu/faculty/bloom/lab/default.htm
Welcome to the lean, mean website of the Bloom Lab, where we do exciting things with yeast Below you can find a representative sample of some of our recent work. For a more comprehensive summary of our work, most of our publications are available for downloading.
  • Determining the structure of pericentric DNA and cohesin in the inner centromere. Pericentric chromatin is organized by cohesin into a cylinder surrounding the interpolar microtubules of the mitotic spindle. We are testing whether centromere flanking DNA is paired intra-molecularly within the inner centromere cruciform, and whether the structure of the inner centromere and the cohesin cylinder is responsive to changes in tension.
Bloom et al., 2006
  • The requirements for cohesin cylinder formation and maintenance and identify how cohesin is restricted to pericentric chromatin. We will determine the requirements for cohesin cylinder formation, and test the hypothesis that specific proteins restrict cohesin to the 30-50kb of pericentric chromatin. We propose that the transition between chromosome arm pairing and pericentric chromatin provides the structural basis for t ension sensing in the inner centromere.

64. Welcome To The DeRisi Lab
Exploits whole genome approaches to tackle problems in yeast molecular biology and human infectious disease. Includes research data, people, publications, and microarray resources.
http://derisilab.ucsf.edu/
BLAST PubMed Entrez ViroTax ... [ PDF ] De novo identification and biophysical characterization of transcription-factor binding sites with microfluidic affinity analysis
Nat Biotech. 2010
[ PDF ]
Serological evidence of human klassevirus infection.
Clin Vaccine Immunol. 2010
[ PDF ]
Human Enterovirus 109: a novel inter-species recombinant enterovirus discovered in acute pediatric respiratory illness in Nicaragua
J Virol. 2010
[ PDF ]
Chemical genetics of Plasmodium falciparum.
Nature. 2010
[ PDF ]
Analysis of Naturally Occurring Avian Bornavirus Infection and Transmission during an Outbreak of Proventricular Dilatation Disease among Captive Psittacine Birds
J Virol. 2010 Feb
[ PDF ]
Experimental induction of proventricular dilatation disease in cockatiels inoculated with brain homogenates containing AVB 4. Virol J. 2009 Jul 9;6:100 [ PDF ] Cultivation and serological characterization of a human Theilers like cardiovirus J Virol. 2010 2010-08-30 :: MITOMI v2.0 More... We are pleased to introduce MITOMI v2.0, a microfluidic platform, developed in collaboration with the Quake lab at Stanford, and analysis pipeline for high-throughput measurement of transcription factor DNA sequence preferences and interaction affinities. Using a panel of 28 S. cerevisiae

65. YMGV - Yeast Microarray Global Viewer
Designed to provide biologists with information from genome-wide yeast expression data. Provides customizable tools for expression profiles associated with a set of genes from all published experiments.
http://www.transcriptome.ens.fr/ymgv/

Home
About Screenshots Tutorial ... What's new Access 1 Access 2 Access 3 One gene Several genes Common response ORF/gene name
S. cerevisiae S. pombe
Filter
no
Show orthologs

Whole publication datasets Experiments by experiment Access 4 Compendium Publications list
Search a condition or strain in yMGV

yMGV FAQ
Year of publication of the articles
View most and less variant ORFs
Misc tools
Whats new ?
September 16th 2003
: The "compendium" module is up. September 16th 2003 A brand new tutorial is up. August 5th 2003 : New version of the access 2 module August 1st 2003 S. cerevisiae GO re-annotation have been done by SGD using recently sequenced fungi July 29th 2003 : 6 new S. cerevisiae datasets added Older news Last database update: Last interface update: The yMGV team

66. Burgess Lab Website
Studies mechanisms, regulation and roles of homologous chromosome pairing during meiosis and in nonmeiotic cells. Features research projects, publications, available positions, and related links.
http://www.mcb.ucdavis.edu/faculty-labs/burgess/

67. Herskowitz Lab Home
Study yeast genetics including cell asymmetry, gene expression, and signalling. Includes research data, bibliography, lab members, protocols, and related links.
http://biochemistry.ucsf.edu/~herskowitz/
This is the website for the research laboratory of Ira Herskowitz, PhD (deceased, 2003) at the University of California, San Francisco. The lab studied basic scientific questions about the life cycle of a prototypic eukaryotic cell, Saccharomyces cerevisiae . Although the lab's specialty was genetics, they also used biochemistry and molecular biology to approach a number of problems. This site provides useful techniques and information for doing yeast genetics. Research partially funded by NIH grants (GM59256, GM59466 and GM48052) and by a Sandler Award in Basic Science. Contents Contact us... Lab Home People ... Protocols

68. Webminer
Database used to study gene expression patterns in yeast. Includes a range of information about every ORF in the genome, its promoter, the protein it encodes, and how its mRNA levels change.
http://genome-www.stanford.edu/cgi-bin/webminer/mkjavascript
W hat is Webminer?
Webminer is a database of datasets used to study gene expression patterns in yeast and was developed by Max Heiman while at UCSF. SGD began hosting Webminer in March, 2003. All the data in Webminer is freely available from SGD or published works cited in Webminer. Webminer makes it easy to perform sophisticated searches by organizing some of the vast wealth of published genomic data under one roof. Webminer includes a variety of information about every ORF in the yeast genome: its promoter, the protein it encodes, and how its mRNA levels change under many different conditions. We hope that by mining these databases in creative ways, you will learn more than you could from any single dataset. Introduction and Tutorial Advanced Tips and Tricks Source Code and How it Works How to Cite Webminer ... Send Question to SGD 1. P ick a dataset: Datasets Cell cycle Chromosome structure Stress response and drug treatment exp.file_descriptions Gene Deletions Gene Overexpression Mating and mating type Meiosis Metabolism ORF information Ploidy Signal transduction (non-mating) Transcriptional machinery
2. C

69. Cell Cycle Regulated Yeast Genes
Goal is to identify all genes whose mRNA levels are regulated by the cell cycle. Includes a searchable dataset, images and primary data tables, and related links.
http://genome-www.stanford.edu/cellcycle/
Home
Cell Cycle Analysis Home View Figures
View figures from the paper Search
Search the complete dataset Download Data
Download images and primary data tables Information
Information on how to use this site and scientific methods Links
Useful sites relating to microarrays and the cell cycle Contacts
Contact information for individuals involved with the cell cycle project Home Search Figures Data ... SGD The yeast cell cycle analysis project's goal is to identify all genes whose mRNA levels are regulated by the cell cycle. This site complements the published information from:
Spellman et al Comprehensive Identification of Cell Cycle-regulated Genes of the Yeast Saccharomyces cerevisiae by Microarray Hybridization. Molecular Biology of the Cell
Full text of the paper is available from the Journal's website here
Items of interest
  • Download original images
    You can get the original tif images, as well as other rawdata, if you are interested in reanalysing the data. 11-7-2000
  • Wild card searching now added to the search page!
  • Downloadable Excel Spreadsheets updated 12-11-98. (Process-Function (from SGD) information added; some SGD names updated.)

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