Browse > Article
http://dx.doi.org/10.6564/JKMRS.2011.15.2.175

Production and Amyloid fibril formation of tandem repeats of recombinant Yeast Prion like protein fragment  

Kim, Yong-Ae (Department of Chemistry, Hankuk University of Foreign Studies)
Park, Jae-Joon (Department of Chemistry, Hankuk University of Foreign Studies)
Hwang, Jung-Hyun (Department of Chemistry, Hankuk University of Foreign Studies)
Park, Tae-Joon (Department of Chemistry, Hankuk University of Foreign Studies)
Publication Information
Journal of the Korean Magnetic Resonance Society / v.15, no.2, 2011 , pp. 175-186 More about this Journal
Abstract
Amyloid fibrils have long been known to be the well known ${\alpha}$-helix to ${\beta}$-sheet transition characterizing the conversion of cellular to scrapie forms of the prion protein. A very short sequence of Yeast prion-like protein, GNNQQNY (SupN), is responsible for aggregation that induces diseases. KSI-fused tandem repeats of SupN vector are constructed and used to express SupN peptide in Escherichia coli (E.Coli). A method for a production, purification, and cleavage of tandem repeats of recombinant isotopically enriched SupN in E. coli is described. This method yields as much as 20 mg/L of isotope-enriched fusion proteins in minimal media. Synthetic SupN peptides and $^{13}C$ Gly labeled SupN peptides are studied by Congo Red staining, Birefringence and transmission electron microscopy to characterize amyloid fibril formation. To get a better understanding of aggregation-structure relationship of 7 residues of Yeast prion-like protein, the change of a conformational structure will be studied by $^{13}C$ solid-state nmr spectroscopy as powder of both amorphous and fibrillar forms.
Keywords
Amyloid; fibril; tandem repeats; Prion like protein;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 R.B. Wickner, Science 264, 566, (1994).   DOI
2 H. E. Sparrer, A. Santoso, F.C. Szoka, J.S. Weissman Science 289, 595, (2000).   DOI
3 T. J. Park, S. Y. Im, J. S. Kim, Y. Kim, Proc. Biochem. 45, 682, (2010).   DOI
4 J. S. Kim, T. J. Park, Y. Kim, J. Kor. Magn. Reson. 13, 96, (2009).   DOI
5 M. Reaches, Y. Porant, E. Gazit, J. Biol. Chem. 277, 35475, (2002).   DOI
6 W. Zou, D. Sheng, P. X. Fraser, N. R. Cashman, A. Chakrabartty, Eur. J. Biochem. 268, 4885, (2001).   DOI
7 R. Khurana, V. N. Uversky, L. Nielson, A. L. Fink, J. Biol. Chem. 276, 22715, (2001).   DOI
8 X. Wu and K. W. Zilm, J. Mag. Res. A 111, 29, (1994).
9 O.N. Antzutkin , R. Tycko, J. Chem. Phys. 110 , 2749, (1999).   DOI
10 J.W. Kelly, Curr. Opi. Struct. Biol. 8, 101, (1998).   DOI
11 C.M. Dobson, Trends Biochem. Sci. 24, 329, (1999).   DOI