August 10, 2026 07:55 am (IST)
Follow us:
facebook-white sharing button
twitter-white sharing button
instagram-white sharing button
youtube-white sharing button
‘A morning I will cherish’: Raghav Chadha meets PM Modi, shares photos from ‘enriching’ meeting | Delhi Mercedes crash kills 70-year-old woman: Cop’s son behind wheel, beer bottle found | Indian-origin woman accused of ‘visa fraud’ on X: US Attorney steps in with major clarification | US Senate passes Russia sanctions bill: India can face Trump’s 100% tariff threat | Expired meat, rotten vegetables found at Bengaluru's luxury hotels, legal action begins | 'I'm ready to be humiliated': Vijay, Udhayanidhi Stalin clash in Tamil Nadu Assembly over Cauvery dispute | 'They don't need Mohan Bhagwat's certificate': Priyanka Gandhi Vadra's sharp reply to RSS chief's Gen Z remark | 'Students, Gen Z, ask me anything': Rahul Gandhi launches Instagram Q&A, responds to Jharkhand protest | PM Modi goes Gen Z, urges Indians to share 'Get Ready With Me' videos on National Handloom Day | Former Tehelka editor Tarun Tejpal sentenced to 10-year jail term in 2013 rape case as Bombay HC overturns acquittal

Researchers invent tiny, light-powered wires to modulate brain's electrical signals

| | Feb 21, 2018, at 09:45 pm

New York, Feb 21 (IBNS): The human brain largely remains a black box: How the network of fast-moving electrical signals turns into thought, movement and disease remains poorly understood. 

But it is electrical, so it can be hacked—the question is finding a precise, easy way to manipulate electrical signaling between neurons.

A new University of Chicago study shows how tiny, light-powered wires could be fashioned out of silicon to provide these electrical signals. Published Feb. 19 in Nature Nanotechnology, the study offers a new avenue to shed light on—and perhaps someday treat—brain disorders.

Ten years ago, the science world was alive with speculation about a recently discovered technique called optogenetics, which would manipulate neural activity with light. The problem is that it has to be done with genetics: inserting a gene into a target cell that would make it respond to light. Other ways of modulating neurons have since been suggested, but a perfect alternative remains elusive, read the University of Chicago website.

A team led by Asst. Prof. Bozhi Tian built minuscule wires previously designed for solar cells. These nanowires are so small that hundreds of them could sit side by side on the edge of a sheet of paper—putting them on the same scale as the parts of cells they’re trying to communicate with.

These nanowires combine two types of silicon to create a small electrical current when struck by light. Gold, diffused by a special process onto the surface of the wire, acts as a catalyst to promote electrochemical reactions.

“When the wire is in place and illuminated, the voltage difference between the inside and outside of the cell is slightly reduced. This lowers the barrier for the neuron to fire an electrical signal to its neighboring cells,” Tian said.

The team tested the approach with rat neurons grown in a lab, and saw they could indeed trigger neurons to fire these electrical signals.

“The nice thing about it is that both gold and silicon are biologically compatible materials,” said graduate student Ramya Parameswaran, the first author on the study. “Also, after they’re injected into the body, structures of this size would degrade naturally within a couple of months.”

“It’s a fundamental but very promising approach,” Tian said. They plan next to test the system in animals, which could both help researchers further understand how these electrical signals work in the brain as well as suggest ways to address problems like Parkinson’s disease or psychiatric disorders.

The other co-authors were Francisco Bezanilla, the Lillian Eichelberger Cannon Professor of Biochemistry and Molecular Biology; Erin Adams, the Joseph Regenstein Professor of Biochemistry and Molecular Biology; graduate students John Zimmerman (now at Harvard), Kelliann Koehler, Yuanwen Jiang and Andrew Phillips; postdoctoral researchers Jaeseok Yi and João Carvalho-de-Souza; and undergraduate student Michael Burke.

 

Image: Wikimedia Commons
 

Support Our Journalism

We cannot do without you.. your contribution supports unbiased journalism

IBNS is not driven by any ism- not wokeism, not racism, not skewed secularism, not hyper right-wing or left liberal ideals, nor by any hardline religious beliefs or hyper nationalism. We want to serve you good old objective news, as they are. We do not judge or preach. We let people decide for themselves. We only try to present factual and well-sourced news.

Support objective journalism for a small contribution.