Literature DB >> 28252014

Revealing the sequence of interactions of PuroA peptide with Candida albicans cells by live-cell imaging.

Nadin Shagaghi1, Mrinal Bhave1, Enzo A Palombo1, Andrew H A Clayton2.   

Abstract

To determine the mechanism(s) of action of antimicrobial peptides (AMPs) it is desirable to provide details of their interaction kinetics with cellular, sub-cellular and molecular targets. The synthetic peptide, PuroA, displays potent antimicrobial activities which have been attributed to peptide-induced membrane destabilization, or intracellular mechanisms of action (DNA-binding) or both. We used time-lapse fluorescence microscopy and fluorescence lifetime imaging microscopy (FLIM) to directly monitor the localization and interaction kinetics of a FITC- PuroA peptide on single Candida albicans cells in real time. Our results reveal the sequence of events leading to cell death. Within 1 minute, FITC-PuroA was observed to interact with SYTO-labelled nucleic acids, resulting in a noticeable quenching in the fluorescence lifetime of the peptide label at the nucleus of yeast cells, and cell-cycle arrest. A propidium iodide (PI) influx assay confirmed that peptide translocation itself did not disrupt the cell membrane integrity; however, PI entry occurred 25-45 minutes later, which correlated with an increase in fractional fluorescence of pores and an overall loss of cell size. Our results clarify that membrane disruption appears to be the mechanism by which the C. albicans cells are killed and this occurs after FITC-PuroA translocation and binding to intracellular targets.

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Year:  2017        PMID: 28252014      PMCID: PMC5333355          DOI: 10.1038/srep43542

Source DB:  PubMed          Journal:  Sci Rep        ISSN: 2045-2322            Impact factor:   4.379


  43 in total

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Authors:  K Matsuzaki; O Murase; N Fujii; K Miyajima
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Journal:  Microbiol Res       Date:  2014-09-10       Impact factor: 5.415

4.  Mechanism of action of the antimicrobial peptide buforin II: buforin II kills microorganisms by penetrating the cell membrane and inhibiting cellular functions.

Authors:  C B Park; H S Kim; S C Kim
Journal:  Biochem Biophys Res Commun       Date:  1998-03-06       Impact factor: 3.575

5.  Interaction of the mammalian antibacterial peptide cecropin P1 with phospholipid vesicles.

Authors:  E Gazit; A Boman; H G Boman; Y Shai
Journal:  Biochemistry       Date:  1995-09-12       Impact factor: 3.162

Review 6.  Archetypal tryptophan-rich antimicrobial peptides: properties and applications.

Authors:  Nadin Shagaghi; Enzo A Palombo; Andrew H A Clayton; Mrinal Bhave
Journal:  World J Microbiol Biotechnol       Date:  2016-01-09       Impact factor: 3.312

7.  Fungicidal mechanisms of cathelicidins LL-37 and CATH-2 revealed by live-cell imaging.

Authors:  Soledad R Ordonez; Ilham H Amarullah; Richard W Wubbolts; Edwin J A Veldhuizen; Henk P Haagsman
Journal:  Antimicrob Agents Chemother       Date:  2014-02-03       Impact factor: 5.191

8.  Apidaecins: antibacterial peptides from honeybees.

Authors:  P Casteels; C Ampe; F Jacobs; M Vaeck; P Tempst
Journal:  EMBO J       Date:  1989-08       Impact factor: 11.598

9.  Identification of lactoferricin B intracellular targets using an Escherichia coli proteome chip.

Authors:  Yu-Hsuan Tu; Yu-Hsuan Ho; Ying-Chih Chuang; Po-Chung Chen; Chien-Sheng Chen
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10.  The antimicrobial peptide histatin-5 causes a spatially restricted disruption on the Candida albicans surface, allowing rapid entry of the peptide into the cytoplasm.

Authors:  A Brian Mochon; Haoping Liu
Journal:  PLoS Pathog       Date:  2008-10-31       Impact factor: 6.823

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  8 in total

Review 1.  Antimicrobial peptides: biochemical determinants of activity and biophysical techniques of elucidating their functionality.

Authors:  Nadin Shagaghi; Enzo A Palombo; Andrew H A Clayton; Mrinal Bhave
Journal:  World J Microbiol Biotechnol       Date:  2018-04-12       Impact factor: 3.312

2.  Live-cell Imaging of Fungal Cells to Investigate Modes of Entry and Subcellular Localization of Antifungal Plant Defensins.

Authors:  Kazi T Islam; Dilip M Shah; Kaoutar El-Mounadi
Journal:  J Vis Exp       Date:  2017-12-24       Impact factor: 1.355

3.  Fast killing kinetics, significant therapeutic index, and high stability of melittin-derived antimicrobial peptide.

Authors:  Reza Akbari; Mojdeh Hakemi Vala; Jean-Marc Sabatier; Kamran Pooshang Bagheri
Journal:  Amino Acids       Date:  2022-07-02       Impact factor: 3.789

4.  Effects of Rationally Designed Physico-Chemical Variants of the Peptide PuroA on Biocidal Activity towards Bacterial and Mammalian Cells.

Authors:  Nadin Shagaghi; Andrew H A Clayton; Marie-Isabel Aguilar; Tzong-Hsien Lee; Enzo A Palombo; Mrinal Bhave
Journal:  Int J Mol Sci       Date:  2020-11-16       Impact factor: 5.923

5.  Physico-Chemical and Antifungal Properties of a Trypsin Inhibitor from the Roots of Pseudostellaria heterophylla.

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Journal:  Molecules       Date:  2018-09-18       Impact factor: 4.411

6.  Antimicrobial Efficacy of Indolicidin Against Multi-Drug Resistant Enteroaggregative Escherichia coli in a Galleria mellonella Model.

Authors:  Jess Vergis; Satyaveer Singh Malik; Richa Pathak; Manesh Kumar; Sunitha Ramanjaneya; Nitin Vasantrao Kurkure; Sukhadeo Baliram Barbuddhe; Deepak Bhiwa Rawool
Journal:  Front Microbiol       Date:  2019-11-29       Impact factor: 5.640

Review 7.  Physicochemical Features and Peculiarities of Interaction of AMP with the Membrane.

Authors:  Malak Pirtskhalava; Boris Vishnepolsky; Maya Grigolava; Grigol Managadze
Journal:  Pharmaceuticals (Basel)       Date:  2021-05-17

Review 8.  Spectroscopic and Microscopic Approaches for Investigating the Dynamic Interactions of Anti-microbial Peptides With Membranes and Cells.

Authors:  Andrew H A Clayton
Journal:  Front Med Technol       Date:  2021-01-21
  8 in total

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