Alternative Causal Link between Peptide Fibrillization and β-Strand Conformation
暂无分享,去创建一个
[1] J. J. Giner-Casares,et al. Folding and self-assembly of short intrinsically disordered peptides and protein regions , 2021, Nanoscale advances.
[2] H. Schwalbe,et al. Short Peptides as Predictors for the Structure of Polyarginine Sequences in Disordered Proteins , 2020, bioRxiv.
[3] Xiaojun Zhao,et al. Designer Self‐Assembling Peptide Hydrogels to Engineer 3D Cell Microenvironments for Cell Constructs Formation and Precise Oncology Remodeling in Ovarian Cancer , 2020, Advanced science.
[4] Jinhua Dong,et al. Transition from vesicles to nanofibres in the enzymatic self-assemblies of an amphiphilic peptide as an antitumour drug carrier. , 2019, Nanoscale.
[5] Katelyn J. Smith,et al. The peptide hormone glucagon forms amyloid fibrils with two coexisting β-strand conformations , 2019, Nature Structural & Molecular Biology.
[6] Zhongyan Wang,et al. A novel thermogel system of self-assembling peptides manipulated by enzymatic dephosphorylation. , 2019, Chemical communications.
[7] Bryan M. Wong,et al. A new interpretation of the structure and solvent dependence of the far UV circular dichroism spectrum of short oligopeptides. , 2019, Chemical communications.
[8] A. Purcell,et al. Amyloid Self-Assembly of hIAPP8-20 via the Accumulation of Helical Oligomers, α-Helix to β-Sheet Transition, and Formation of β-Barrel Intermediates. , 2019, Small.
[9] N. Andersen,et al. Pre-structured hydrophobic peptide β-strands: A universal amyloid trap? , 2019, Archives of Biochemistry and Biophysics.
[10] Yi Luo,et al. Misfolding of a Human Islet Amyloid Polypeptide at the Lipid Membrane Populates through β-Sheet Conformers without Involving α-Helical Intermediates. , 2019, Journal of the American Chemical Society.
[11] Yongzhu Chen,et al. Neglected Hydrophobicity of Dimethanediyl Group in Peptide Self-Assembly: A Hint from Amyloid-like Peptide GNNQQNY and Its Derivatives. , 2018, The journal of physical chemistry. B.
[12] Xiaofeng Zhu,et al. Assembly Pathway Selection of Designer Self-Assembling Peptide and Fabrication of Hierarchical Scaffolds for Neural Regeneration. , 2018, ACS applied materials & interfaces.
[13] Bryan M. Wong,et al. Is a cross-β-sheet structure of low molecular weight peptides necessary for the formation of fibrils and peptide hydrogels? , 2018, Physical chemistry chemical physics : PCCP.
[14] Yujun Zhang,et al. Amyloid-like staining property of RADA16-I nanofibers and its potential application in detecting and imaging the nanomaterial , 2018, International journal of nanomedicine.
[15] L. Deng,et al. Cooperative Assembly of a Peptide Gelator and Silk Fibroin Afford an Injectable Hydrogel for Tissue Engineering. , 2018, ACS applied materials & interfaces.
[16] S. Ramakrishna,et al. The effects of motif net charge and amphiphilicity on the self-assembly of functionally designer RADA16-I peptides , 2018, Biomedical materials.
[17] Yongzhu Chen,et al. Amyloid‐like aggregation of designer bolaamphiphilic peptides: Effect of hydrophobic section and hydrophilic heads , 2018, Journal of peptide science : an official publication of the European Peptide Society.
[18] K. Pagel,et al. NFGAIL Amyloid Oligomers: The Onset of Beta-Sheet Formation and the Mechanism for Fibril Formation. , 2018, Journal of the American Chemical Society.
[19] Shuguang Zhang. Discovery and design of self-assembling peptides , 2017, Interface Focus.
[20] Rein V Ulijn,et al. Switchable Hydrolase Based on Reversible Formation of Supramolecular Catalytic Site Using a Self-Assembling Peptide. , 2017, Angewandte Chemie.
[21] I. Hamley,et al. Self-assembled RGD dehydropeptide hydrogels for drug delivery applications. , 2017, Journal of materials chemistry. B.
[22] R. Mezzenga,et al. Implications of peptide assemblies in amyloid diseases. , 2017, Chemical Society reviews.
[23] Sotirios Koutsopoulos,et al. Self-assembling peptide nanofiber hydrogels in tissue engineering and regenerative medicine: Progress, design guidelines, and applications. , 2016, Journal of biomedical materials research. Part A.
[24] D. Klinov,et al. Morphology and aggregation of RADA‐16‐I peptide Studied by AFM, NMR and molecular dynamics simulations , 2016, Biopolymers.
[25] R. Schweitzer‐Stenner,et al. Demixing of water and ethanol causes conformational redistribution and gelation of the cationic GAG tripeptide. , 2015, Chemical communications.
[26] Bryan M. Wong,et al. Assessing backbone solvation effects in the conformational propensities of amino acid residues in unfolded peptides. , 2015, Physical chemistry chemical physics : PCCP.
[27] Jae Hong Kim,et al. Beta-Sheet-Forming, Self-Assembled Peptide Nanomaterials towards Optical, Energy, and Healthcare Applications. , 2015, Small.
[28] H. Schwalbe,et al. Randomizing the unfolded state of peptides (and proteins) by nearest neighbor interactions between unlike residues. , 2015, Chemistry.
[29] Huan-Xiang Zhou,et al. Molecular structure of RADA16-I designer self-assembling peptide nanofibers. , 2013, ACS nano.
[30] George C Schatz,et al. Atomistic molecular dynamics simulations of peptide amphiphile self-assembly into cylindrical nanofibers. , 2011, Journal of the American Chemical Society.
[31] Yongzhu Chen,et al. Comparative studies on the self-assembling behaviors of cationic and catanionic surfactant-like peptides. , 2009, Journal of colloid and interface science.
[32] Yongzhu Chen,et al. De novo design of a bolaamphiphilic peptide with only natural amino acids. , 2008, Macromolecular bioscience.
[33] Takatoshi Kinoshita,et al. Dynamic reassembly of peptide RADA16 nanofiber scaffold. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[34] I. Hamley,et al. Methods to Characterize the Nanostructure and Molecular Organization of Amphiphilic Peptide Assemblies. , 2018, Methods in molecular biology.
[35] Honggang Cui,et al. Self‐assembly of peptide amphiphiles: From molecules to nanostructures to biomaterials , 2010, Biopolymers.