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Updated: Feb 4, 2026

Synthesis and Characterization of Supramolecular Colloids
Published on: April 22, 2016
Supramolecular zippers elicit interbilayer adhesion of membranes producing cell death
Víctor G Almendro-Vedia1, Carolina García2, Rubén Ahijado-Guzmán3
1Dto. Química Física, Universidad Complutense de Madrid, Avenida Complutense s/n, 28040 Madrid, Spain; Instituto de Investigación Hospital Doce de Octubre (i+12), Avenida de Córdoba s/n, 28041 Madrid, Spain.
Background:
The fluorescent dye 10-N-nonyl acridine orange (NAO) is widely used as a mitochondrial marker. NAO was reported to have cytotoxic effects in cultured eukaryotic cells when incubated at high concentrations. Although the biochemical response of NAO-induced toxicity has been well identified, the underlying molecular mechanism has not yet been explored in detail.
Methods:
We use optical techniques, including fluorescence confocal microscopy and lifetime imaging microscopy (FLIM) both in model membranes built up as giant unilamellar vesicles (GUVs) and cultured cells. These experiments are complemented with computational studies to unravel the molecular mechanism that makes NAO cytotoxic.
Results:
We have obtained direct evidence that NAO promotes strong membrane adhesion of negatively charged vesicles. The attractive forces are derived from van der Waals interactions between anti-parallel H-dimers of NAO molecules from opposing bilayers. Semi-empirical calculations have confirmed the supramolecular scenario by which anti-parallel NAO molecules form a zipper of bonds at the contact region. The membrane remodeling effect of NAO, as well as the formation of H-dimers, was also confirmed in cultured fibroblasts, as shown by the ultrastructure alteration of the mitochondrial cristae.
Conclusions:
We conclude that membrane adhesion induced by NAO stacking accounts for the supramolecular basis of its cytotoxicity.
General Significance:
Mitochondria are a potential target for cancer and gene therapies. The alteration of the mitochondrial structure by membrane remodeling agents able to form supramolecular assemblies via adhesion properties could be envisaged as a new therapeutic strategy.
Insights
The fluorescent dye 10-N-nonyl acridine orange (NAO) causes cell toxicity by promoting membrane adhesion through molecule stacking. This discovery reveals the molecular mechanism behind NAO
Area of Science:
- Cell Biology
- Biophysics
- Molecular Mechanisms
Background:
- 10-N-nonyl acridine orange (NAO) is a common mitochondrial marker.
- NAO exhibits cytotoxic effects in eukaryotic cells at high concentrations.
- The molecular mechanism of NAO toxicity remains poorly understood.
Purpose of the Study:
- To elucidate the molecular mechanism underlying 10-N-nonyl acridine orange (NAO) induced cytotoxicity.
- To investigate the role of membrane interactions in NAO toxicity.
Main Methods:
- Utilized fluorescence confocal microscopy and lifetime imaging microscopy (FLIM).
- Employed model membranes (giant unilamellar vesicles) and cultured cells (fibroblasts).
- Performed computational studies (semi-empirical calculations).
Main Results:
- NAO induces strong membrane adhesion in negatively charged vesicles.
- Attractive forces arise from van der Waals interactions between anti-parallel NAO H-dimers.
- Observed ultrastructural alterations in mitochondrial cristae of fibroblasts, confirming NAO's membrane remodeling effects.
Conclusions:
- NAO-induced membrane adhesion, driven by molecule stacking, is the basis of its cytotoxicity.
- This supramolecular mechanism explains the observed toxic effects.
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