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Nano-antennas make living cells light up brighter and faster

Nano-antennas make living cells light up brighter and faster

phys.org 28.08.2026 18:20 1 views
Researchers at Delft University of Technology have demonstrated for the first time that nano-antennas can enhance the fluorescence of proteins in living human and other mammalian cells. Scientists already use smart fluor

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Researchers at Delft University of Technology have demonstrated for the first time that nano-antennas can enhance the fluorescence of proteins in living human and other mammalian cells. Scientists already use smart fluorescent proteins that light up when the electrical voltage across a nerve cell changes.

By placing nano-antennas close to these light-emitting proteins, researchers can monitor processes inside cells with much greater precision. The discovery adds a new tool for revealing electrical signals in the brain through nanotechnology as well as genetic engineering. The research has been published in Advanced Materials.

Monitoring signals in the brain requires both high resolution and rapid imaging. "Existing methods for visualizing voltage changes in cells often do not produce enough light, or they do not respond quickly or strongly enough to the small electrical pulses that occur at synapses," says principal investigator Daan Brinks. First authors Marco Locarno and Qiangrui Dong achieved a breakthrough by placing nano-antennas extremely close to fluorescent voltage-sensitive proteins.

This made the proteins up to six times brighter, allowing researchers to monitor processes in living mammalian cells with much greater precision. Importantly, the cells remained alive and continued to function normally throughout the measurements. "It has long been known in nanophotonics that metallic nanoparticles, known as plasmonic nano-antennas, can enhance light extremely locally," says Brinks.

"So we started with a simple question: What happens if you place such a nano-antenna very close to a fluorescent protein?" Achieving the precise positioning required to enhance fluorescence had not previously been accomplished in more complex living systems. "The nanoparticles need exactly the right shape and size to enhance light without disturbing the cell," Brinks explains. "They must be chemically stable and end up in precisely the right place in a living cell, close to the protein that detects electrical signals.

Achieving that requires a delicate combination of simulations, chemistry and biological experiments." After extensive design work and experimentation, researchers in the Brinks Lab succeeded in demonstrating brighter protein fluorescence in living, functioning mammalian cells for the first time. "Scientists had previously only achieved this in single-molecule measurements, not with proteins that respond to processes inside the cell," says Brinks. "We can now perform biological measurements involving multiple protein molecules." The voltage-sensitive proteins did more than simply become brighter.

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