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Updated: Oct 28, 2025

A11-positive β-amyloid Oligomer Preparation and Assessment Using Dot Blotting Analysis
Published on: May 22, 2018
Antimicrobial α-defensins as multi-target inhibitors against amyloid formation and microbial infection
Yanxian Zhang1, Yonglan Liu1, Yijing Tang1
1Department of Chemical, Biomolecular, and Corrosion Engineering, The University of Akron Ohio USA zhengj@uakron.edu.
Abstract:
Amyloid aggregation and microbial infection are considered as pathological risk factors for developing amyloid diseases, including Alzheimer's disease (AD), type II diabetes (T2D), Parkinson's disease (PD), and medullary thyroid carcinoma (MTC). Due to the multifactorial nature of amyloid diseases, single-target drugs and treatments have mostly failed to inhibit amyloid aggregation and microbial infection simultaneously, thus leading to marginal benefits for amyloid inhibition and medical treatments. Herein, we proposed and demonstrated a new "anti-amyloid and antimicrobial hypothesis" to discover two host-defense antimicrobial peptides of α-defensins containing β-rich structures (human neutrophil peptide of HNP-1 and rabbit neutrophil peptide of NP-3A), which have demonstrated multi-target, sequence-independent functions to (i) prevent the aggregation and misfolding of different amyloid proteins of amyloid-β (Aβ, associated with AD), human islet amyloid polypeptide (hIAPP, associated with T2D), and human calcitonin (hCT, associated with MTC) at sub-stoichiometric concentrations, (ii) reduce amyloid-induced cell toxicity, and (iii) retain their original antimicrobial activity upon the formation of complexes with amyloid peptides. Further structural analysis showed that the sequence-independent amyloid inhibition function of α-defensins mainly stems from their cross-interactions with amyloid proteins via β-structure interactions. The discovery of antimicrobial peptides containing β-structures to inhibit both microbial infection and amyloid aggregation greatly expands the new therapeutic potential of antimicrobial peptides as multi-target amyloid inhibitors for better understanding pathological causes and treatments of amyloid diseases.
Insights
Antimicrobial peptides, like human neutrophil peptide-1 and rabbit neutrophil peptide-NP-3A, can inhibit amyloid aggregation and microbial infections. These peptides show multi-target functions, offering new therapeutic potential for amyloid diseases.
Area of Science:
- Biochemistry
- Molecular Biology
- Drug Discovery
Background:
- Amyloid aggregation and microbial infections are risk factors for diseases like Alzheimer's, type II diabetes, Parkinson's, and medullary thyroid carcinoma.
- Current single-target drugs are insufficient for treating multifactorial amyloid diseases effectively.
Purpose of the Study:
- To propose and validate a novel "anti-amyloid and antimicrobial hypothesis" for discovering new therapeutic agents.
- To identify host-defense antimicrobial peptides with dual activity against amyloid aggregation and microbial infection.
Main Methods:
- Investigated two α-defensins (HNP-1 and NP-3A) for their ability to inhibit aggregation of amyloid-β, hIAPP, and hCT.
- Assessed the peptides' effects on amyloid-induced cytotoxicity and their antimicrobial activity.
- Performed structural analysis to understand the mechanism of amyloid inhibition.
Main Results:
- HNP-1 and NP-3A demonstrated sequence-independent inhibition of amyloid aggregation and misfolding at sub-stoichiometric concentrations.
- These peptides reduced amyloid-induced cell toxicity while retaining antimicrobial efficacy.
- Structural analysis revealed β-structure interactions mediate the anti-amyloid function of α-defensins.
Conclusions:
- Antimicrobial peptides with β-structures can simultaneously inhibit microbial infection and amyloid aggregation.
- This discovery expands therapeutic strategies for amyloid diseases by repurposing antimicrobial peptides as multi-target inhibitors.
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