Controlling the Trimerization of the Collagen Triple-Helix by Solvent Switching.
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Qi Zhang | Shan Liu | Kui Huang | Suwen Zhao | Xiaojing Li | Yongjie Huang | Yang Li
[1] Yang Li,et al. Terminal repeats impact collagen triple-helix stability through hydrogen bonding , 2022, Chemical science.
[2] Thomas C. Coombs,et al. HFIP in Organic Synthesis. , 2022, Chemical reviews.
[3] F. Mallein-Gerin,et al. Biomaterial functionalization with triple-helical peptides for tissue engineering. , 2022, Acta biomaterialia.
[4] J. Hartgerink,et al. Recent Advances in Collagen Mimetic Peptide Structure and Design. , 2022, Biomacromolecules.
[5] P. Hunt,et al. Guanidinium solvents with exceptional hydrogen bond donating abilities. , 2022, Chemical communications.
[6] Suwen Zhao,et al. Molecular Imaging of Collagen Destruction of the Spine. , 2021, ACS nano.
[7] Manohar Prasad Koduri,et al. Impact of a Desmoplastic Tumor Microenvironment for Colon Cancer Drug Sensitivity: A Study with 3D Chimeric Tumor Spheroids. , 2021, ACS applied materials & interfaces.
[8] Lang He,et al. Refolding Behavior of Urea-Induced Denaturation Collagen , 2021, Macromolecular Research.
[9] T. Cox. The matrix in cancer , 2021, Nature Reviews Cancer.
[10] Yujia Xu,et al. Collagen Mimetic Peptides , 2021, Bioengineering.
[11] J. Lei,et al. In Situ Imaging of Pathological Collagen by Electrostatic Repulsion-Destabilized Peptide Probes. , 2020, ACS applied bio materials.
[12] I. Sedov,et al. Comparative study of the protein denaturing ability of different organic cosolvents. , 2020, International journal of biological macromolecules.
[13] T. Abraham,et al. Aberrant structure of fibrillar collagen and elevated levels of advanced glycation end products typify delayed fracture healing in diet-induced obesity mouse model. , 2020, Bone.
[14] Hessam Noori-Dokht,et al. Anisotropic properties of articular cartilage in an accelerated in vitro wear test. , 2020, Journal of the mechanical behavior of biomedical materials.
[15] T. Koide,et al. Peptide precursors that acquire denatured collagen-hybridizing ability by O-to-N acyl migration at physiological pH. , 2020, Organic & biomolecular chemistry.
[16] R. Raines,et al. Cyclic Peptide Mimetic of Damaged Collagen , 2020, Biomacromolecules.
[17] R. Raines,et al. Templated Collagen "Double Helices" Maintain Their Structure. , 2020, Journal of the American Chemical Society.
[18] J. Molkentin,et al. An acute immune response underlies the benefit of cardiac stem cell therapy , 2019, Nature.
[19] T. Koide,et al. Structural optimization of cyclic peptides that efficiently detect denatured collagen. , 2019, Organic & biomolecular chemistry.
[20] Boi Hoa San,et al. Visualizing collagen proteolysis by peptide hybridization: From 3D cell culture to in vivo imaging. , 2018, Biomaterials.
[21] T. Koide,et al. Cyclic Peptides for Efficient Detection of Collagen , 2018, Chembiochem : a European journal of chemical biology.
[22] F. Légaré,et al. In tendons, differing physiological requirements lead to functionally distinct nanostructures , 2018, Scientific Reports.
[23] Jianxi Xiao,et al. A single stranded fluorescent peptide probe for targeting collagen in connective tissues. , 2017, Chemical communications.
[24] S. Weiss,et al. In Situ Imaging of Tissue Remodeling with Collagen Hybridizing Peptides , 2017, ACS nano.
[25] Markus J Buehler,et al. Molecular level detection and localization of mechanical damage in collagen enabled by collagen hybridizing peptides , 2017, Nature Communications.
[26] Boi Hoa San,et al. Molecular assessment of collagen denaturation in decellularized tissues using a collagen hybridizing peptide , 2017, Acta biomaterialia.
[27] L. Lukens. Collagen , 1963, Reactions Weekly.
[28] A. Reynolds,et al. Targeting collagen for diagnostic imaging and therapeutic delivery. , 2016, Journal of controlled release : official journal of the Controlled Release Society.
[29] Vikas Nanda,et al. Empirical estimation of local dielectric constants: Toward atomistic design of collagen mimetic peptides , 2015, Biopolymers.
[30] Z. Werb,et al. Remodelling the extracellular matrix in development and disease , 2014, Nature Reviews Molecular Cell Biology.
[31] R. Raines,et al. Optimal Interstrand Bridges for Collagen-like Biomaterials , 2014, Journal of the American Chemical Society.
[32] Yang Li,et al. Targeting and mimicking collagens via triple helical peptide assembly. , 2013, Current opinion in chemical biology.
[33] A. Garcia,et al. Cosolvent effects on protein stability. , 2013, Annual review of physical chemistry.
[34] Martin G Pomper,et al. Targeting collagen strands by photo-triggered triple-helix hybridization , 2012, Proceedings of the National Academy of Sciences.
[35] C. Pace,et al. Contribution of hydrophobic interactions to protein stability. , 2011, Journal of molecular biology.
[36] A. Bhuyan. On the mechanism of SDS-induced protein denaturation. , 2010, Biopolymers.
[37] Li-Juan Xing,et al. Hydrogen-bonding interaction in a complex of amino acid with urea studied by DFT calculations , 2009 .
[38] R. Usha,et al. Role of solvents in stability of collagen , 2008 .
[39] R. Usha,et al. Stability of collagen with polyols against guanidine denaturation. , 2008, Colloids and surfaces. B, Biointerfaces.
[40] M. Räsänen,et al. Hydrogen bonding between formic acid and water: complete stabilization of the intrinsically unstable conformer. , 2007, The journal of physical chemistry. A.
[41] Ronald T Raines,et al. Stereoelectronic and steric effects in the collagen triple helix: toward a code for strand association. , 2005, Journal of the American Chemical Society.
[42] Maria M. Reif,et al. Stability of proteins: temperature, pressure and the role of the solvent. , 2005, Biochimica et biophysica acta.
[43] C. Pace,et al. Urea and Guanidine Hydrochloride Denaturation of Ribonuclease , Lysozyme , & Zhymotrypsin , and @ Lactoglobulin * , 2003 .
[44] P. Nedkov,et al. Stability of Collagen During Denaturation , 1999, Journal of protein chemistry.
[45] K. P. Murphy,et al. Urea effects on protein stability: Hydrogen bonding and the hydrophobic effect , 1998, Proteins.
[46] R. Bank,et al. A simplified measurement of degraded collagen in tissues: application in healthy, fibrillated and osteoarthritic cartilage. , 1997, Matrix biology : journal of the International Society for Matrix Biology.
[47] V. Parsegian,et al. Solvent hydrogen-bond network in protein self-assembly: solvation of collagen triple helices in nonaqueous solvents. , 1997, Biophysical journal.
[48] J. M. Scholtz,et al. Guanidine hydrochloride unfolding of peptide helices: separation of denaturant and salt effects. , 1996, Biochemistry.
[49] A. Fink,et al. Classification of acid denaturation of proteins: intermediates and unfolded states. , 1994, Biochemistry.
[50] K. Dill,et al. Solvent denaturation and stabilization of globular proteins. , 1991, Biochemistry.
[51] K. Dill,et al. Denatured states of proteins. , 1991, Annual review of biochemistry.
[52] N. Morris,et al. Analysis of the thermal stability of type II collagen in various solvents used for reversed-phase high performance chromatography. , 1990, Matrix.
[53] G. Rose,et al. Hydrophobicity of amino acid residues in globular proteins. , 1985, Science.
[54] I. C. Golton,et al. Solvent effects and polar interactions in the structural stability and dynamics of globular proteins. , 1980, Biophysical journal.
[55] G. Rose,et al. Hydrophobic basis of packing in globular proteins. , 1980, Proceedings of the National Academy of Sciences of the United States of America.
[56] J. Engel,et al. The triple helix ⇌ coil conversion of collagen‐like polytripeptides in aqueous and nonaqueous solvents. Comparison of the thermodynamic parameters and the binding of water to (L‐Pro‐L‐Pro‐Gly)n and (L‐Pro‐L‐Hyp‐Gly)n , 1977 .
[57] T. T. Herskovits,et al. On the Structural Stability and Solvent Denaturation of Proteins , 1970 .
[58] M. L. Anson. THE DENATURATION OF PROTEINS BY SYNTHETIC DETERGENTS AND BILE SALTS , 1939, The Journal of general physiology.