TIF35/YDR429C Literature Guide Help

Other names published for TIF35: YDR429C

TIF35 - Techniques and Reagents (10)

ReferenceOther Genes Addressed
Castelli LM, et al.  (2011) Glucose depletion inhibits translation initiation via eIF4A loss and subsequent 48S preinitiation complex accumulation, while the pentose phosphate pathway is coordinately up-regulated. Mol Biol Cell 22(18):3379-93
Acker MG, et al.  (2007) Reconstitution of yeast translation initiation. Methods Enzymol 430:111-45
Nielsen KH and Valasek L  (2007) In vivo deletion analysis of the architecture of a multiprotein complex of translation initiation factors. Methods Enzymol 431:15-32
Valasek L, et al.  (2007) In vivo stabilization of preinitiation complexes by formaldehyde cross-linking. Methods Enzymol 429:163-83
Algire MA, et al.  (2002) Development and characterization of a reconstituted yeast translation initiation system. RNA 8(3):382-97
von der Haar T and McCarthy JE  (2002) Intracellular translation initiation factor levels in Saccharomyces cerevisiae and their role in cap-complex function. Mol Microbiol 46(2):531-44
Hanachi P, et al.  (1999) Characterization of the p33 subunit of eukaryotic translation initiation factor-3 from Saccharomyces cerevisiae. J Biol Chem 274(13):8546-53
Asano K, et al.  (1998) Complex formation by all five homologues of mammalian translation initiation factor 3 subunits from yeast Saccharomyces cerevisiae. J Biol Chem 273(29):18573-85
Phan L, et al.  (1998) Identification of a translation initiation factor 3 (eIF3) core complex, conserved in yeast and mammals, that interacts with eIF5. Mol Cell Biol 18(8):4935-46
Naranda T, et al.  (1994) Purified yeast translational initiation factor eIF-3 is an RNA-binding protein complex that contains the PRT1 protein. J Biol Chem 269(51):32286-92