Javascript must be enabled to continue!
Minimizing Cholesterol-Induced Aggregation of Membrane-Interacting DNA Origami Nanostructures
View through CrossRef
DNA nanotechnology provides methods for building custom membrane-interacting nanostructures with diverse functions, such as shaping membranes, tethering defined numbers of membrane proteins, and transmembrane nanopores. The modification of DNA nanostructures with hydrophobic groups, such as cholesterol, is required to facilitate membrane interactions. However, cholesterol-induced aggregation of DNA origami nanostructures remains a challenge. Aggregation can result in reduced assembly yield, defective structures, and the inhibition of membrane interaction. Here, we quantify the assembly yield of two cholesterol-modified DNA origami nanostructures: a 2D DNA origami tile (DOT) and a 3D DNA origami barrel (DOB), by gel electrophoresis. We found that the DOT assembly yield (relative to the no cholesterol control) could be maximised by reducing the number of cholesterols from 6 to 1 (2 ± 0.2% to 100 ± 2%), optimising the separation between adjacent cholesterols (64 ± 26% to 78 ± 30%), decreasing spacer length (38 ± 20% to 95 ± 5%), and using protective ssDNA 10T overhangs (38 ± 20% to 87 ± 6%). Two-step folding protocols for the DOB, where cholesterol strands are added in a second step, did not improve the yield. Detergent improved the yield of distal cholesterol configurations (26 ± 22% to 92 ± 12%), but samples re-aggregated after detergent removal (74 ± 3%). Finally, we confirmed functional membrane binding of the cholesterol-modified nanostructures. These findings provide fundamental guidelines to reducing the cholesterol-induced aggregation of membrane-interacting 2D and 3D DNA origami nanostructures, improving the yield of well-formed structures to facilitate future applications in nanomedicine and biophysics.
Title: Minimizing Cholesterol-Induced Aggregation of Membrane-Interacting DNA Origami Nanostructures
Description:
DNA nanotechnology provides methods for building custom membrane-interacting nanostructures with diverse functions, such as shaping membranes, tethering defined numbers of membrane proteins, and transmembrane nanopores.
The modification of DNA nanostructures with hydrophobic groups, such as cholesterol, is required to facilitate membrane interactions.
However, cholesterol-induced aggregation of DNA origami nanostructures remains a challenge.
Aggregation can result in reduced assembly yield, defective structures, and the inhibition of membrane interaction.
Here, we quantify the assembly yield of two cholesterol-modified DNA origami nanostructures: a 2D DNA origami tile (DOT) and a 3D DNA origami barrel (DOB), by gel electrophoresis.
We found that the DOT assembly yield (relative to the no cholesterol control) could be maximised by reducing the number of cholesterols from 6 to 1 (2 ± 0.
2% to 100 ± 2%), optimising the separation between adjacent cholesterols (64 ± 26% to 78 ± 30%), decreasing spacer length (38 ± 20% to 95 ± 5%), and using protective ssDNA 10T overhangs (38 ± 20% to 87 ± 6%).
Two-step folding protocols for the DOB, where cholesterol strands are added in a second step, did not improve the yield.
Detergent improved the yield of distal cholesterol configurations (26 ± 22% to 92 ± 12%), but samples re-aggregated after detergent removal (74 ± 3%).
Finally, we confirmed functional membrane binding of the cholesterol-modified nanostructures.
These findings provide fundamental guidelines to reducing the cholesterol-induced aggregation of membrane-interacting 2D and 3D DNA origami nanostructures, improving the yield of well-formed structures to facilitate future applications in nanomedicine and biophysics.
Related Results
Spatial control of protein binding with DNA nanostructures
Spatial control of protein binding with DNA nanostructures
<p dir="ltr">The physical and chemical properties of DNA, including its structure predictability thanks to Watson-Crick base pairing, make it into an obvious polymer of choic...
Spatial control of protein binding with DNA nanostructures
Spatial control of protein binding with DNA nanostructures
<p dir="ltr">The physical and chemical properties of DNA, including its structure predictability thanks to Watson-Crick base pairing, make it into an obvious polymer of choic...
Recent Advances in DNA Origami-Enabled Optical Biosensors for Multi-Scenario Application
Recent Advances in DNA Origami-Enabled Optical Biosensors for Multi-Scenario Application
Over the past few years, significant progress has been made in DNA origami technology due to the unrivaled self-assembly properties of DNA molecules. As a highly programmable, addr...
7
th
International Symposium on Enabling Technologies for Life Sciences (ETP)
7
th
International Symposium on Enabling Technologies for Life Sciences (ETP)
The seventh in the series of ETP Symposia (see
Rapid Communications in Mass Spectrometry
2012,
26
, ...
Nanopore Fingerprinting of Supramolecular DNA Nanostructures
Nanopore Fingerprinting of Supramolecular DNA Nanostructures
ABSTRACT
DNA nanotechnology has paved the way for new generations of programmable nanomaterials. Utilising the DNA origami technique, various DNA constructs can be ...
DNA origami technology for biomedical applications: Challenges and opportunities
DNA origami technology for biomedical applications: Challenges and opportunities
AbstractDNA origami, a promising branch of structural DNA technology, refers to the technique of folding a single‐stranded DNA scaffold into well‐defined nanostructures. In recent ...
Procedure for Western blot v1
Procedure for Western blot v1
Goal: This document has the objective of standardizing the protocol for Western blot. This technique allows the detection of specific proteins separated on polyacrylamide gel and t...
An Investigation into Hydrophobic Membrane Fouling in Desalination Using Membrane Distillation Technology
An Investigation into Hydrophobic Membrane Fouling in Desalination Using Membrane Distillation Technology
Demand for freshwater supplies is continuously increasing globally to the extent where some parts of the world became highly water stressed. In particular, the Arabian Gulf states ...

