Literature DB >> 33679660

Peptides Derived From the α-Core and γ-Core Regions of a Putative Silybum marianum Flower Defensin Show Antifungal Activity Against Fusarium graminearum.

Agustina Fernández1,2, María Laura Colombo1, Lucrecia M Curto2,3, Gabriela E Gómez2,3, José M Delfino2,3, Fanny Guzmán4, Laura Bakás1,5, Ismael Malbrán2,6, Sandra E Vairo-Cavalli1,2.   

Abstract

Fusarium graminearum is the etiological agent of Fusarium head blight (FHB), a disease that produces a significant decrease in wheat crop yield and it is further aggravated by the presence of mycotoxins in the affected grains that may cause health problems to humans and animals. Plant defensins and defensin-like proteins are antimicrobial peptides (AMPs); they are small basic, cysteine-rich peptides (CRPs) ubiquitously expressed in the plant kingdom and mostly involved in host defence. They present a highly variable sequence but a conserved structure. The γ-core located in the C-terminal region of plant defensins has a conserved β-hairpin structure and is a well-known determinant of the antimicrobial activity among disulphide-containing AMPs. Another conserved motif of plant defensins is the α-core located in the N-terminal region, not conserved among the disulphide-containing AMPs, it has not been yet extensively studied. In this report, we have cloned the putative antimicrobial protein DefSm2, expressed in flowers of the wild plant Silybum marianum. The cDNA encodes a protein with two fused basic domains of an N-terminal defensin domain (DefSm2-D) and a C-terminal Arg-rich and Lys-rich domain. To further characterize the DefSm2-D domain, we built a 3D template-based model that will serve to support the design of novel antifungal peptides. We have designed four potential antifungal peptides: two from the DefSm2-D α-core region (SmAPα1-21 and SmAPα10-21) and two from the γ-core region (SmAPγ27-44 and SmAPγ29-35). We have chemically synthesized and purified the peptides and further characterized them by electrospray ionization mass spectrometry (ESI-MS) and Circular dichroism (CD) spectroscopy. SmAPα1-21, SmAPα10-21, and SmAPγ27-44 inhibited the growth of the phytopathogen F. graminearum at low micromolar concentrations. Conidia exposure to the fungicidal concentration of the peptides caused membrane permeabilization to the fluorescent probe propidium iodide (PI), suggesting that this is one of the main contributing factors in fungal cell killing. Furthermore, conidia treated for 0.5h showed cytoplasmic disorganization as observed by transmission electron microscopy (TEM). Remarkably, the peptides derived from the α-core induced morphological changes on the conidia cell wall, which is a promising target since its distinctive biochemical and structural organization is absent in plant and mammalian cells.
Copyright © 2021 Fernández, Colombo, Curto, Gómez, Delfino, Guzmán, Bakás, Malbrán and Vairo-Cavalli.

Entities:  

Keywords:  Fusarium graminearum; antifungal peptide design; antifungal peptides; antimicrobial peptides; defensins; fusarium head blight

Year:  2021        PMID: 33679660      PMCID: PMC7925638          DOI: 10.3389/fmicb.2021.632008

Source DB:  PubMed          Journal:  Front Microbiol        ISSN: 1664-302X            Impact factor:   5.640


  3 in total

1.  Recombinant human β-defensin130 inhibited the growth of foodborne bacteria through membrane disruption and exerted anti-inflammatory activity.

Authors:  Bin Dong; Yanjun Lin; Zhiwei Su; Chunlong Sun; Jun Wang; Shijun Fu; Wen Du; Tao Wu
Journal:  Food Sci Biotechnol       Date:  2022-04-20       Impact factor: 3.231

2.  The γ-Core Motif Peptides of AMPs from Grasses Display Inhibitory Activity against Human and Plant Pathogens.

Authors:  Marina P Slezina; Ekaterina A Istomina; Ekaterina V Kulakovskaya; Tatyana V Korostyleva; Tatyana I Odintsova
Journal:  Int J Mol Sci       Date:  2022-07-29       Impact factor: 6.208

3.  Synthetic Oligopeptides Mimicking γ-Core Regions of Cysteine-Rich Peptides of Solanum lycopersicum Possess Antimicrobial Activity against Human and Plant Pathogens.

Authors:  Marina P Slezina; Ekaterina A Istomina; Ekaterina V Kulakovskaya; Tatiana N Abashina; Tatyana I Odintsova
Journal:  Curr Issues Mol Biol       Date:  2021-09-24       Impact factor: 2.976

  3 in total

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