Literature DB >> 27165480

Molecular Design, Structural Analysis and Antifungal Activity of Derivatives of Peptide CGA-N46.

Rui-Fang Li1, Zhi-Fang Lu2, Ya-Nan Sun2, Shi-Hua Chen2, Yan-Jie Yi2, Hui-Ru Zhang2, Shuo-Ye Yang2, Guang-Hai Yu2, Liang Huang2, Chao-Nan Li2.   

Abstract

Chromogranin A (CGA)-N46, a derived peptide of human chromogranin A, has antifungal activity. To further research the active domain of CGA-N46, a series of derivatives were designed by successively deleting amino acid from both terminus of CGA-N46, and the amino acid sequence of each derivative was analyzed by bioinformatic software. Based on the predicted physicochemical properties of the peptides, including half-life time in mammalian reticulocytes (in vitro), yeast (in vivo) and E. coli (in vivo), instability index, aliphatic index and grand average of hydropathicity (GRAVY), the secondary structure, net charge, the distribution of hydrophobic residues and hydrophilic residues, the final derivatives CGA-N15, CGA-N16, CGA-N12 and CGA-N8 were synthesized by solid-phase peptide synthesis. The results of bioinformatic analysis showed that CGA-N46 and its derivatives were α-helix, neutral or weak positive charge, hydrophilic, and CGA-N12 and CGA-N8 were more stable than the other derivatives. The results of circular dichroism confirmed that CGA-N46 and its derived peptides displayed α-helical structure in an aqueous solution and 30 mM sodium dodecylsulfate, but α-helical contents decreased in hydrophobic lipid vesicles. CGA-N15, CGA-N16, CGA-N12 and CGA-N8 had higher antifungal activities than their mother peptide CGA-N46. Among of the derived peptides, CGA-N12 showed the least hemolytic activity. In conclusion, we have successfully identified the active domain of CGA-N46 with strong antifungal activity and weak hemolytic activity, which provides the possibility to develop a new class of antibiotics.

Entities:  

Keywords:  Antifungal activity; Antifungal peptides; Bioinformatic analysis; CGA-N46; Derived peptide; Hemolytic activity; Molecular design; Structural analysis

Mesh:

Substances:

Year:  2016        PMID: 27165480      PMCID: PMC4982898          DOI: 10.1007/s12539-016-0163-x

Source DB:  PubMed          Journal:  Interdiscip Sci        ISSN: 1867-1462            Impact factor:   2.233


  30 in total

1.  Chemical synthesis and biological evaluation of an antimicrobial peptide gonococcal growth inhibitor.

Authors:  John D Wade; Feng Lin; Mohammed Akhter Hossain; Raymond M Dawson
Journal:  Amino Acids       Date:  2012-05-04       Impact factor: 3.520

Review 2.  Novel peptide therapeutics for treatment of infections.

Authors:  P C F Oyston; M A Fox; S J Richards; G C Clark
Journal:  J Med Microbiol       Date:  2009-06-15       Impact factor: 2.472

3.  Inhibitory effects and mechanisms of physiological conditions on the activity of enantiomeric forms of an α-helical antibacterial peptide against bacteria.

Authors:  Jinfeng Huang; Dianming Hao; Yu Chen; Yimin Xu; Juanjuan Tan; Yibing Huang; Fan Li; Yuxin Chen
Journal:  Peptides       Date:  2011-06-01       Impact factor: 3.750

Review 4.  Peptide therapeutics: current status and future directions.

Authors:  Keld Fosgerau; Torsten Hoffmann
Journal:  Drug Discov Today       Date:  2014-10-17       Impact factor: 7.851

5.  Competitive interactions of amphipathic polycationic peptides and cationic fluorescent probes with lipid membrane: experimental approaches and computational model.

Authors:  Victor V Lemeshko
Journal:  Arch Biochem Biophys       Date:  2014-02-02       Impact factor: 4.013

6.  Determination of the secondary structures of proteins by circular dichroism and optical rotatory dispersion.

Authors:  Y H Chen; J T Yang; H M Martinez
Journal:  Biochemistry       Date:  1972-10-24       Impact factor: 3.162

7.  A novel antimicrobial peptide from Bufo bufo gargarizans.

Authors:  C B Park; M S Kim; S C Kim
Journal:  Biochem Biophys Res Commun       Date:  1996-01-05       Impact factor: 3.575

Review 8.  Antimicrobial peptides: the ancient arm of the human immune system.

Authors:  Jochen Wiesner; Andreas Vilcinskas
Journal:  Virulence       Date:  2010 Sep-Oct       Impact factor: 5.882

9.  Membrane interaction and antibacterial properties of chensinin-1, an antimicrobial peptide with atypical structural features from the skin of Rana chensinensis.

Authors:  Dejing Shang; Yue Sun; Che Wang; Shi Wei; Lijie Ma; Li Sun
Journal:  Appl Microbiol Biotechnol       Date:  2012-05-15       Impact factor: 4.813

10.  Antimicrobial properties and membrane-active mechanism of a potential α-helical antimicrobial derived from cathelicidin PMAP-36.

Authors:  Yinfeng Lv; Jiajun Wang; He Gao; Zeyun Wang; Na Dong; Qingquan Ma; Anshan Shan
Journal:  PLoS One       Date:  2014-01-21       Impact factor: 3.240

View more
  10 in total

1.  Molecular modeling of four Dermaseptin-related peptides of the gliding tree frog Agalychnis spurrelli.

Authors:  Sebastián Cuesta; Felipe Gallegos; Josefa Arias; Fernanda Pilaquinga; Ailín Blasco-Zúñiga; Carolina Proaño-Bolaños; Miryan Rivera; Lorena Meneses
Journal:  J Mol Model       Date:  2019-08-17       Impact factor: 1.810

2.  Data for β-lactoglobulin conformational analysis after (-)-epigallocatechin gallate and metal ions binding.

Authors:  Liangliang Zhang; Indra Dev Sahu; Man Xu; Yongmei Wang; Xinyu Hu
Journal:  Data Brief       Date:  2016-12-21

3.  Characteristics of New Peptides GQLGEHGGAGMG, GEHGGAGMGGGQFQPV, EQGFLPGPEESGR, RLARAGLAQ, YGNPVGGVGH, and GNPVGGVGHGTTGT as Inhibitors of Enzymes Involved in Metabolic Syndrome and Antimicrobial Potential.

Authors:  Urszula Złotek; Anna Jakubczyk; Kamila Rybczyńska-Tkaczyk; Paula Ćwiek; Barbara Baraniak; Sławomir Lewicki
Journal:  Molecules       Date:  2020-05-27       Impact factor: 4.411

Review 4.  An insight into new strategies to combat antifungal drug resistance.

Authors:  Yan-Hua Zheng; Yue-Yun Ma; Yi Ding; Xie-Qun Chen; Guang-Xun Gao
Journal:  Drug Des Devel Ther       Date:  2018-11-05       Impact factor: 4.162

5.  Antimicrobial peptide CGA-N12 decreases the Candida tropicalis mitochondrial membrane potential via mitochondrial permeability transition pore.

Authors:  Ruifang Li; Jiarui Zhao; Liang Huang; Yanjie Yi; Aihua Li; Dandan Li; Mengke Tao; Youhao Liu
Journal:  Biosci Rep       Date:  2020-05-29       Impact factor: 3.840

6.  Expression of chromogranin A-derived antifungal peptide CGA-N12 in Pichia pastoris.

Authors:  Xiaohua Li; Yong Fan; Qiong Lin; Jianxiong Luo; Yide Huang; Yuwang Bao; Liyu Xu
Journal:  Bioengineered       Date:  2020-12       Impact factor: 3.269

7.  Inhibition of Candida albicans in vivo and in vitro by antimicrobial peptides chromogranin A-N12 through microRNA-155/suppressor of cytokine signaling 1 axis.

Authors:  Xiaohua Li; Qun Hu; Qiong Lin; Jianxiong Luo; Junping Xu; Lifang Chen; Liyu Xu; Xin Lin
Journal:  Bioengineered       Date:  2022-02       Impact factor: 3.269

8.  Rational Discovery of Antimicrobial Peptides by Means of Artificial Intelligence.

Authors:  Paola Ruiz Puentes; Maria C Henao; Javier Cifuentes; Carolina Muñoz-Camargo; Luis H Reyes; Juan C Cruz; Pablo Arbeláez
Journal:  Membranes (Basel)       Date:  2022-07-14

Review 9.  Antimicrobial Peptides with Anti-Candida Activity.

Authors:  Aitzol Perez-Rodriguez; Elena Eraso; Guillermo Quindós; Estibaliz Mateo
Journal:  Int J Mol Sci       Date:  2022-08-17       Impact factor: 6.208

10.  CGA-N12, a peptide derived from chromogranin A, promotes apoptosis of Candida tropicalis by attenuating mitochondrial functions.

Authors:  Ruifang Li; Ruiling Zhang; Yanhui Yang; Xueqin Wang; Yanjie Yi; Pei Fan; Zhengwei Liu; Chen Chen; Junpeng Chang
Journal:  Biochem J       Date:  2018-04-16       Impact factor: 3.857

  10 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.