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<em>Saccharomyces cerevisiae</em> Meyen ex E.C. Hansen
<em>Saccharomyces cerevisiae</em> Meyen ex E.C. Hansen
規(guī)格:
貨期:
編號:B209819
品牌:Mingzhoubio

標準菌株
定量菌液
DNA
RNA

規(guī)格:
凍干粉
斜面
甘油
平板


產(chǎn)品名稱 Saccharomyces cerevisiae Meyen ex E.C. Hansen
商品貨號 B209819
Deposited As Saccharomyces cerevisiae Hansen, teleomorph
Classification Saccharomycetes, Saccharomycetidae, Saccharomycetales, Saccharomycetaceae, Saccharomycetaceae, Saccharomyces, cerevisiae
Strain Designations FF18733
Alternate State Candida robusta Diddens et Lodder
Application
transformation host
Biosafety Level 1

Biosafety classification is based on U.S. Public Health Service Guidelines, it is the responsibility of the customer to ensure that their facilities comply with biosafety regulations for their own country.

Product Format frozen
Storage Conditions Frozen: -80°C or colder
Freeze-Dried: 2°C to 8°C
Live Culture: See Propagation Section
Type Strain no
Genotype MATa his7 leu2 lys1 ura3 trp1 RefThomas D, et al. Inactivation of OGG1 increases the incidence of G . C-->T . A transversions in Saccharomyces cerevisiae: evidence for endogenous oxidative damage to DNA in eukaryotic cells. Mol. Gen. Genet. 254: 171-178, 1997. PubMed: 9108279
Preceptrol&reg; no
Mating Type a
Ploidy haploid
Comments
endogenous oxidative damage to DNA
Medium ATCC® Medium 1245: YEPD
Growth Conditions
Temperature: 25.0°C
Name of Depositor JP Radicella
Special Collection NCRR Contract
Chain of Custody
ATCC <<--JP Radicella<<--F. Fabre
References

Thomas D, et al. Inactivation of OGG1 increases the incidence of G . C-->T . A transversions in Saccharomyces cerevisiae: evidence for endogenous oxidative damage to DNA in eukaryotic cells. Mol. Gen. Genet. 254: 171-178, 1997. PubMed: 9108279

Radicella JP, et al. Cloning and characterization of hOGG1, a human homolog of the OGG1 gene of Saccharomyces cerevisiae. Proc. Natl. Acad. Sci. USA 94: 8010-8015, 1997. PubMed: 9223305

Thomas D, et al. Inactivation of OGG1 increases the incidence of G . C-->T . A transversions in Saccharomyces cerevisiae: evidence for endogenous oxidative damage to DNA in eukaryotic cells. Mol. Gen. Genet. 254: 171-178, 1997. PubMed: 9108279

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