Neurobiology – Artifex.News https://artifex.news Stay Connected. Stay Informed. Fri, 22 May 2026 11:45:00 +0000 en-US hourly 1 https://wordpress.org/?v=7.0 https://artifex.news/wp-content/uploads/2026/05/cropped-cropped-app-logo-32x32.png Neurobiology – Artifex.News https://artifex.news 32 32 Fake memory implanted in mice with a beam of light https://artifex.news/article60423116-ece/ Fri, 22 May 2026 11:45:00 +0000 https://artifex.news/article60423116-ece/ Read More “Fake memory implanted in mice with a beam of light” »

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If you’ve ever been frustrated by erratic memories, spare a thought for the mice involved in a study published in the journal >Science . Researchers have been able to consistently create a “false memory”, making a mouse fearful of a place it has no reason to fear. The memory was implanted by shining blue light into the mouse’s brain, which triggered a carefully chosen group of neurons. 

The researchers used >optogenetics , a technique that allows precise control of brain circuits. The control is achieved by expressing proteins that act as switches in particular types of brain cell. These switches are channels that, when struck by a particular colour of light, allow charged particles into or out of the neurons, which will either activate or silence them. 

Susumu Tonegawa of the Massachusetts Institute of Technology and his colleagues wanted to find out whether they could create a new, negative association by flipping the switch on an old, neutral memory while giving the mouse a negative experience. Would this lead the mouse to be scared of the old memory?

To find out, Tonegawa’s group needed to identify the scattered set of neurons storing the first memory and install an optogenetic on-switch. They figured out how to do that >last year

The neurons that record new information are located in a particular corner of the hippocampus, the coiled brain structure that we know is crucial for memory formation. That area, the dentate gyrus, can be targeted with a virus, which acts as a courier that delivers genes that encode the protein switch. The difficult part is to deliver the virus only to cells that are storing the memory of choice. Tonegawa and his colleagues found that they could target those neurons that are busier than usual.

Armed with this discovery, they installed the optogenetic trigger in the neurons that were especially busy while a mouse got to know a new environment (we’ll call that Place A). The next day, in a different environment, they gave the mouse small electric shocks while triggering the memory of Place A using light. After that, even though it never had a negative experience in Place A itself, the mouse froze when it was returned there.

In another experiment, mice were given the same memory-shock treatment and then offered a choice between Place A and somewhere else. The mice avoided Place A. A group of mice that had the same virus inserted into a different part of the hippocampus was unaffected and just as happy in Place A as anywhere else. The artificial fear specifically required an alteration of the dentate gyrus.

Admittedly, “Uh-oh, Place A!” is not on the same level as the elaborate, special effects-laden falsehoods that featured in Christopher Nolan’s >Inception . We cannot script new memories. The best recent fictional analogy for these experiments is one for fans of the >Hunger Games trilogy: in the “hijacking” process, the Capitol authorities render existing memories traumatic by pairing them with doses of hallucinogenic poison. 

Of course, we will never know exactly what the mouse remembers. The artificial firing of those selected cells is unlikely to conjure the full experience of being back in Place A, though it is certainly enough to influence behaviour. The mice returned to Place A after the “hijacking” spent about a third of their time frozen; other mice only froze for about 10% of the time.

Hapless laboratory animals have been enduring this type of behavioural testing for >nearly a century . It is no surprise that we can train a mouse to dislike a room. But to do so while the mouse is in another room entirely, by triggering a memory with light? Science like this was impossible a decade ago. 

When Francis Crick, famous for revealing the structure of DNA, floated the notion of light-activated neurons >in 1999 he called it “far-fetched”. Now, just over a decade later, we see new experiments every week that drive or silence different circuits with light, affecting cognition and mimicking or mending the processes underlying mental illness. 

This paper offers a relatively modest advance on previous work from >Tonegawa’s own team , and other studies in >mice and >fruit flies . But it illustrates the power of a technique that has the global neuroscience community enthralled. 

Optogenetics has brought surprising technical advances and changed the way many neuroscientists work. For me, however, there remains inherent wonder in the fact that we can control brain cells – if not create memories – with light.

Jonathan Webb does not work for, consult to, own shares in or receive funding from any company or organisation that would benefit from this article, and has no relevant affiliations. 

This article was originally published at >The Conversation . Read the >original article



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Scientists Map Fruit Fly Brain, Breakthrough For Human, Animal Insights https://artifex.news/scientists-map-fruit-fly-brain-breakthrough-for-human-animal-insights-6705625/ Thu, 03 Oct 2024 06:43:16 +0000 https://artifex.news/scientists-map-fruit-fly-brain-breakthrough-for-human-animal-insights-6705625/ Read More “Scientists Map Fruit Fly Brain, Breakthrough For Human, Animal Insights” »

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The researchers identified the full set of cell classes in the fruit fly’s brain.

Washington:

Scientists announced on Thursday a milestone in neurobiological research with the mapping of the entire brain of an adult fruit fly, a feat that may provide insight into brains across the animal kingdom, including people.

The research detailed more than 50 million connections between more than 139,000 neurons – brain nerve cells – in the insect, a species whose scientific name is Drosophila melanogaster and is often used in neurobiological studies. The research sought to decipher how brains are wired and the signals underlying healthy brain functions. It also could pave the way for mapping the brains of other species.

“You might be asking why we should care about the brain of a fruit fly. My simple answer is that if we can truly understand how any brain functions, it’s bound to tell us something about all brains,” said Princeton University professor of neuroscience and computer science Sebastian Seung, one of the co-leaders of the work published in a series of studies in the journal Nature.

While some people may be more interested in swatting flies than studying them, some of the researchers found aesthetic satisfaction in peering at the fruit fly brain, less than 0.04 inches (1 mm) wide.

“It’s beautiful,” said University of Cambridge neuroscientist and research co-leader Gregory Jefferis.

The map devised by the researchers provided a wiring diagram, known as a connectome, for the brain of an adult fruit fly. Similar research previously was conducted with simpler organisms, such as the worm Caenorhabditis elegans and the fruit fly’s larval stage. The adult fruit fly presented more complicated behaviours to study through its brain wiring.

“One of the major questions we’re addressing is how the wiring in the brain, its neurons and connections, can give rise to animal behaviour,” said Princeton neuroscientist Mala Murthy, another of the co-leaders of the research.

“And flies are an important model system for neurosciences. Their brains solve many of the same problems we do… They’re capable of sophisticated behaviours like the execution of walking and flying, learning and memory behaviours, navigation, feeding and even social interactions, which is a behaviour that we studied in my lab at Princeton,” Murthy added.

One of the studies analyzed brain circuits underlying walking and discovered how flies halt. Another analyzed the fly’s taste network and grooming circuits behind behavior such as when it uses a leg to remove dirt from its antennae. Another looked at the visual system including how the fly’s eyes process motion and color information. Still, another one analyzed connectivity through the brain, discovering a large assemblage of “hub neurons” that may speed up information flow.

The researchers fashioned a map tracking the organization of the hemispheres and behavioural circuits inside the fly’s brain. They also identified the full set of cell classes in its brain, pinpointing different varieties of neurons and chemical connections – synapses – between these nerve cells, and looked at the types of chemicals secreted by the neurons.

The work was conducted by a large international collaboration of scientists known as the FlyWire Consortium.

(Except for the headline, this story has not been edited by NDTV staff and is published from a syndicated feed.)

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