Chiroptical Properties and Conformation of Four Lasiocepsin-Related Antimicrobial Peptides: Structural Role of Disulfide Bridges
暂无分享,去创建一个
Rina K. Dukor | Lucie Bednárová | Markéta Pazderková | Václav Profant | Petr Maloň | Václav Čeřovský | Vladimír Baumruk | R. Dukor | V. Čeřovský | L. Bednárová | V. Baumruk | P. Maloň | Markéta Pazderková | V. Profant
[1] S H White,et al. Hydrophobic interactions of peptides with membrane interfaces. , 1998, Biochimica et biophysica acta.
[2] L. Barron,et al. A study of alpha-helix hydration in polypeptides, proteins, and viruses using vibrational raman optical activity. , 2004, Journal of the American Chemical Society.
[3] Reinhard Schweitzer-Stenner,et al. Conformational propensities and residual structures in unfolded peptides and proteins. , 2012, Molecular bioSystems.
[4] A. Barth,et al. What vibrations tell about proteins , 2002, Quarterly Reviews of Biophysics.
[5] William C Wimley,et al. Describing the mechanism of antimicrobial peptide action with the interfacial activity model. , 2010, ACS chemical biology.
[6] N. Greenfield. Methods to estimate the conformation of proteins and polypeptides from circular dichroism data. , 1996, Analytical biochemistry.
[7] L. Nafie. Dual Polarization Modulation: A Real-Time, Spectral-Multiplex Separation of Circular Dichroism from Linear Birefringence Spectral Intensities , 2000 .
[8] Shunyi Zhu,et al. Evolutionary origin of β-defensins. , 2013, Developmental and comparative immunology.
[9] George D Rose,et al. Polyproline II structure in a sequence of seven alanine residues , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[10] Vibrational and electronic optical activity of the chiral disulphide group: implications for disulphide bridge conformation. , 2009, Chirality.
[11] R. Epand,et al. Cationic peptide-induced remodelling of model membranes: direct visualization by in situ atomic force microscopy. , 2008, Journal of structural biology.
[12] R. Hancock,et al. Potential of immunomodulatory host defense peptides as novel anti-infectives , 2009, Trends in Biotechnology.
[13] R. Norton,et al. Solution structure of ShK toxin, a novel potassium channel inhibitor from a sea anemone , 1996, Nature Structural Biology.
[14] Brigida Bochicchio,et al. Polyproline II structure in proteins: identification by chiroptical spectroscopies, stability, and functions. , 2002, Chirality.
[15] M. Zasloff. Antimicrobial peptides of multicellular organisms , 2002, Nature.
[16] A. Barth. Infrared spectroscopy of proteins. , 2007, Biochimica et biophysica acta.
[17] L. Barron,et al. Solution structure and dynamics of biomolecules from Raman optical activity. , 2000, Progress in biophysics and molecular biology.
[18] T. Keiderling. Structure of Condensed Phase Peptides: Insights from Vibrational Circular Dichroism and Raman Optical Activity Techniques. , 2020, Chemical reviews.
[19] M. Aguilar,et al. Antimicrobial Peptide Structure and Mechanism of Action: A Focus on the Role of Membrane Structure. , 2015, Current topics in medicinal chemistry.
[20] T. Keiderling,et al. Protein and peptide secondary structure and conformational determination with vibrational circular dichroism. , 2002, Current opinion in chemical biology.
[21] Lucie Bednárová,et al. Lasiocepsin, a novel cyclic antimicrobial peptide from the venom of eusocial bee Lasioglossum laticeps (Hymenoptera: Halictidae) , 2011, Amino Acids.
[22] R. Hancock,et al. The role of antimicrobial peptides in animal defenses. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[23] V. Veverka,et al. Structural Basis for Antimicrobial Activity of Lasiocepsin , 2014, Chembiochem : a European journal of chemical biology.
[24] G. Schneider,et al. Designing antimicrobial peptides: form follows function , 2011, Nature Reviews Drug Discovery.
[25] V. Setnička,et al. Conformational study of melectin and antapin antimicrobial peptides in model membrane environments. , 2017, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[26] C. Pál,et al. Integrated evolutionary analysis reveals antimicrobial peptides with limited resistance , 2019, Nature Communications.
[27] P. Bouř,et al. Conformational flexibility of L-alanine zwitterion determines shapes of Raman and Raman optical activity spectral bands. , 2006, The journal of physical chemistry. A.
[28] A. Drake,et al. Reassessment of the electronic circular dichroism criteria for random coil conformations of poly(L-lysine) and the implications for protein folding and denaturation studies. , 1988, Biophysical chemistry.
[29] S. Provencher,et al. Estimation of globular protein secondary structure from circular dichroism. , 1981, Biochemistry.
[30] Josef Kapitán,et al. Raman optical activity of the hinge peptide , 2006 .
[31] R. Epand,et al. Lipid complexes with cationic peptides and OAKs; their role in antimicrobial action and in the delivery of antimicrobial agents , 2011, Cellular and Molecular Life Sciences.
[32] C. Wernstedt,et al. Characterization of a potassium channel toxin from the Caribbean Sea anemone Stichodactyla helianthus. , 1995, Toxicon : official journal of the International Society on Toxinology.
[33] L. Nafie,et al. Near-Infrared and Mid-Infrared Fourier Transform Vibrational Circular Dichroism of Proteins in Aqueous Solution , 2010, Applied spectroscopy.
[34] N. Isaacs,et al. Delineation of protein structure classes from multivariate analysis of protein Raman optical activity data. , 2006, Journal of molecular biology.
[35] N. Sreerama,et al. Estimation of protein secondary structure from circular dichroism spectra: comparison of CONTIN, SELCON, and CDSSTR methods with an expanded reference set. , 2000, Analytical biochemistry.
[36] J. Michl,et al. Inherent optical activity of organic disulfides , 1970 .
[37] I. Lednev,et al. Vibrational circular dichroism shows unusual sensitivity to protein fibril formation and development in solution. , 2007, Journal of the American Chemical Society.
[38] V. Kopecký,et al. Interaction of Halictine-Related Antimicrobial Peptides with Membrane Models , 2019, International journal of molecular sciences.
[39] S. White,et al. Membrane protein folding and stability: physical principles. , 1999, Annual review of biophysics and biomolecular structure.
[40] R. Woody. Application of the Bergson model to the optical properties of chiral disulfides , 1973 .
[41] S. Blondelle,et al. Lipid-induced conformation and lipid-binding properties of cytolytic and antimicrobial peptides: determination and biological specificity. , 1999, Biochimica et biophysica acta.
[42] R. Jayakumar,et al. The structure of antimicrobial pexiganan peptide in solution probed by Fourier transform infrared absorption, vibrational circular dichroism, and electronic circular dichroism spectroscopy , 2005, Biopolymers.
[43] M. Urbanová,et al. Vibrational circular dichroism study of polypeptide model-membrane systems. , 2012, Analytical biochemistry.
[44] S. Krimm,et al. Vibrational studies of the disulfied group in proteins part IV. SS and CS stretch frequencies of known peptide and protein disulfide bridges , 1991 .
[45] M. Buck,et al. Trifluoroethanol and colleagues: cosolvents come of age. Recent studies with peptides and proteins , 1998, Quarterly Reviews of Biophysics.
[46] T. Keiderling,et al. Reassessment of the random coil conformation: Vibrational CD study of proline oligopeptides and related polypeptides , 1991, Biopolymers.
[47] R. Taft,et al. Cysteine-rich mini-proteins in human biology. , 2012, Current topics in medicinal chemistry.
[48] I. Lednev,et al. Normal and reversed supramolecular chirality of insulin fibrils probed by vibrational circular dichroism at the protofilament level of fibril structure. , 2012, Biophysical journal.
[49] Xiaolin Cao,et al. Dual Source Fourier Transform Polarization Modulation Spectroscopy: An Improved Method for the Measurement of Circular and Linear Dichroism , 2004, Applied spectroscopy.
[50] I. Lednev,et al. Is Supramolecular Filament Chirality the Underlying Cause of Major Morphology Differences in Amyloid Fibrils? , 2014, Journal of the American Chemical Society.
[51] M. Straka,et al. Disulfide chromophore and its optical activity. , 2010, Chirality.
[52] S. Provencher. A constrained regularization method for inverting data represented by linear algebraic or integral equations , 1982 .
[53] A. Naito,et al. The role of d-allo-isoleucine in the deposition of the anti-Leishmania peptide bombinin H4 as revealed by 31P solid-state NMR, VCD spectroscopy, and MD simulation. , 2018, Biochimica et biophysica acta. Proteins and proteomics.
[54] L. Barron. The development of biomolecular Raman optical activity spectroscopy , 2015 .
[55] M. Lebl,et al. Electronic and vibrational optical activity of several peptides related to neurohypophyseal hormones: disulfide group conformation. , 2012, Biopolymers.
[56] M. Moo-young,et al. Disulfide bond formation and its impact on the biological activity and stability of recombinant therapeutic proteins produced by Escherichia coli expression system. , 2011, Biotechnology advances.
[57] Ewan W Blanch,et al. A new perspective on beta-sheet structures using vibrational Raman optical activity: from poly(L-lysine) to the prion protein. , 2003, Journal of the American Chemical Society.
[58] Niv Papo,et al. Can we predict biological activity of antimicrobial peptides from their interactions with model phospholipid membranes? , 2003, Peptides.
[59] Lutz Hecht,et al. Raman optical activity: a tool for protein structure analysis. , 2005, Structure.
[60] Lee Whitmore,et al. DICHROWEB, an online server for protein secondary structure analyses from circular dichroism spectroscopic data , 2004, Nucleic Acids Res..
[61] Guangshun Wang,et al. Lipid clustering by three homologous arginine-rich antimicrobial peptides is insensitive to amino acid arrangement and induced secondary structure. , 2010, Biochimica et biophysica acta.
[62] E. Prenner,et al. Optimization of the hydrochloric acid concentration used for trifluoroacetate removal from synthetic peptides , 2007, Journal of peptide science : an official publication of the European Peptide Society.