Structural insights into the elastin mimetic (LGGVG)6 using solid-state 13C NMR experiments and statistical analysis of the PDB.
暂无分享,去创建一个
Tetsuo Asakura | K. Ohgo | T. Asakura | K. Kumashiro | Kosuke Ohgo | Kristin K Kumashiro | Walter P Niemczura | W. Niemczura | Allen K Onizuka | Allen K. Onizuka | Kosuke Ohgo | K. K. Kumashiro
[1] R. Leapman,et al. Amyloid Fibril Formation by Aβ16-22, a Seven-Residue Fragment of the Alzheimer's β-Amyloid Peptide, and Structural Characterization by Solid State NMR† , 2000 .
[2] A. I. Kishore,et al. Solid-state NMR relaxation studies of Australian spider silks. , 2001, Biopolymers.
[3] K. Ohgo,et al. Determination of the torsion angles of alanine and glycine residues of model compounds of spider silk (AGG)10 using solid-state NMR methods , 2003, Journal of biomolecular NMR.
[4] K. Ohgo,et al. Structural Determination of an Elastin-Mimetic Model Peptide, (Val-Pro-Gly-Val-Gly)6, Studied by 13C CP/MAS NMR Chemical Shifts, Two-Dimensional off Magic Angle Spinning Spin-Diffusion NMR, Rotational Echo Double Resonance, and Statistical Distribution of Torsion Angles from Protein Data Bank , 2005 .
[5] A. I. Kishore,et al. Orientational order of Australian spider silks as determined by solid‐state NMR , 2006, Biopolymers.
[6] Tetsuo Asakura,et al. Heterogeneity in the conformation of valine in the elastin mimetic (LGGVG)6 as shown by solid-state 13C NMR SPEctroscopy. , 2006, Biomacromolecules.
[7] J. J. Balbach,et al. Supramolecular Structure in Full-Length Alzheimer's β-Amyloid Fibrils: Evidence for a Parallel β-Sheet Organization from Solid-State Nuclear Magnetic Resonance , 2002 .
[8] D. Urry. Physical Chemistry of Biological Free Energy Transduction As Demonstrated by Elastic Protein-Based Polymers† , 1997 .
[9] K. Kumashiro,et al. 13C CPMAS NMR studies of the elastin-like polypeptide (LGGVG)n. , 2003, Biopolymers.
[10] R. Griffin,et al. Chemical shift correlation spectroscopy in rotating solids: Radio frequency‐driven dipolar recoupling and longitudinal exchange , 1992 .
[11] H. Saito,et al. A 13C NMR study on collagens in the solid state: hydration/dehydration-induced conformational change of collagen and detection of internal motions. , 1992, Journal of biochemistry.
[12] Takuro Ito,et al. Structure of Alanine and Glycine Residues of Samia cynthia ricini Silk Fibers Studied with Solid-State 15N and 13C NMR , 1999 .
[13] P. M. Henrichs,et al. Carbon-13 spin diffusion in the determination of intermolecular structure in solids , 1984 .
[14] Ian W. Davis,et al. Structure validation by Cα geometry: ϕ,ψ and Cβ deviation , 2003, Proteins.
[15] M. Williamson,et al. Structural analysis of silk with 13C NMR chemical shift contour plots. , 1999, International Journal of Biological Macromolecules.
[16] M. Hong,et al. Structure distribution in an elastin-mimetic peptide (VPGVG)3 investigated by solid-state NMR. , 2004, Journal of the American Chemical Society.
[17] Alexander Pines,et al. Proton‐enhanced NMR of dilute spins in solids , 1973 .
[18] A. Zvi,et al. Solid–state NMR evidence for an antibody–dependent conformation of the V3 loop of HIV–1 gp120 , 1999, Nature Structural Biology.
[19] R. Tycko. Applications of solid state NMR to the structural characterization of amyloid fibrils: methods and results , 2003 .
[20] Mitsuo Iwadate,et al. Cα and Cβ Carbon-13 Chemical Shifts in Proteins From an Empirical Database , 1999 .
[21] G. Han,et al. 9-Fluorenylmethoxycarbonyl function, a new base-sensitive amino-protecting group , 1970 .
[22] J. Foster,et al. Observation of the glycines in elastin using (13)C and (15)N solid-state NMR spectroscopy and isotopic labeling. , 2002, Journal of the American Chemical Society.
[23] J. Rosenbloom,et al. Extracellular matrix 4: The elastic fiber , 1993, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[24] T. Yamane,et al. Structure ofBombyx mori silk fibroin before spinning in solid state studied with wide angle x-ray scattering and13C cross-polarization/magic angle spinning NMR , 2001 .
[25] T. Yamane,et al. A repeated beta-turn structure in poly(Ala-Gly) as a model for silk I of Bombyx mori silk fibroin studied with two-dimensional spin-diffusion NMR under off magic angle spinning and rotational echo double resonance. , 2001, Journal of molecular biology.
[26] A. Pepe,et al. Localizing alpha-helices in human tropoelastin: assembly of the elastin "puzzle". , 2006, Biochemistry.
[27] L. Debelle,et al. Elastin: molecular description and function. , 1999, The international journal of biochemistry & cell biology.
[28] A. Perry,et al. Solid-State 13C NMR Reveals Effects of Temperature and Hydrationon Elastin , 2002 .
[29] Brigida Bochicchio,et al. Dissection of human tropoelastin: exon-by-exon chemical synthesis and related conformational studies. , 2003, Biochemistry.
[30] R. Tycko,et al. Dual processing of two-dimensional exchange data in magic angle spinning NMR of solids. , 1999, Journal of magnetic resonance.
[31] A. Naito,et al. A high-resolution 15N solid-state NMR study of collagen and related polypeptides. The effect of hydration on formation of interchain hydrogen bonds as the primary source of stability of the collagen-type triple helix. , 1994, European journal of biochemistry.
[32] Dan W. Urry,et al. Entropic elastic processes in protein mechanisms. I. Elastic structure due to an inverse temperature transition and elasticity due to internal chain dynamics , 1988, Journal of protein chemistry.
[33] K. Okuyama,et al. Refinement of Repeated β-turn Structure for Silk I Conformation of Bombyx mori Silk Fibroin Using 13C Solid-State NMR and X-ray Diffraction Methods , 2005 .
[34] Maxim S. Pometun,et al. Quantitative Observation of Backbone Disorder in Native Elastin* , 2004, Journal of Biological Chemistry.
[35] A. Tamburro,et al. Synthesis and structural characterization of poly(LGGVG), an elastin-like polypeptide. , 2000, International journal of biological macromolecules.