Fruit Fly Study Reveals Mechanics of Working Memory

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Fruit Fly Study Reveals Mechanics of Working Memory

PR Newswire

NEW YORK, Oct. 7, 2026 /PRNewswire/ -- A study in fruit flies led by researchers at NYU Langone Health has confirmed a long-standing suspicion about how the brain encodes short-term memories.

(PRNewsfoto/NYU Langone Health)

Unlike the human brain, which has tens of billions of neurons, the fly brain has fewer than 200,000. Despite its relative simplicity, though, the fruit fly brain bears a striking resemblance to its human counterpart, especially in terms of how it is organized and how the brain cells called neurons communicate with each other. 

The fruit fly is a valuable model for neuroscientists because all the connections between each of the neurons — together called the "connectome" — have been fully mapped, meaning that researchers can directly study how different neuron types interact to cause certain behaviors.

"Our study shows how a neuronal circuit forms a short-term memory in response to a fly sensing an odor, enabling it to remember a direction and travel toward a smell it wants to remember," said study senior investigator Katherine Nagel, PhD, an associate professor in the Department of Neuroscience at NYU Grossman School of Medicine. "Scientists have long assumed an arrangement like this powers working memory, but our experiments confirm this arrangement exists and show how it works in a specific context."

In the new study, published in the journal Nature online Oct. 7, the researchers examined how neurons interact to encode information into working memory — more specifically, how neural interactions can be both stable (that is, capable of being maintained over a period of time) and quickly turned on or off.

People need to be able to quickly activate working memory, such as by temporarily remembering the few digits of a security code. But it doesn't make sense for people to waste energy by holding onto unnecessary information, such as by memorizing every set of numbers they come across during the day.

When the researchers exposed fruit flies to a heady whiff of apple cider vinegar, the flies traveled towards the odor, even for a few seconds after the smell disappeared. While monitoring the flies' brains during this process, the researchers found that two different types of neurons responded to the smell with similar patterns of electrical activity, leading them to believe that the cells were working together to control the flies' movement in response to the odor.

The researchers found that the two types of neurons, called PFG and hΔK, form what is known as an attractor network, a type of neural circuit in which a set of neurons "talks" to itself until a stable signal emerges. In this case though, there is a twist.

PFG and hΔK are not continuously communicating with each other. Most of the time, hΔK activity is blocked. When communication between the PFG and hΔK neurons is blocked, the PFG neurons track the fly's orientation in space by receiving information from the fly's "compass" system.

But when the block is lifted and the hΔK and PFG neurons can communicate with each other, the fly is able to lock in on a particular origin, such as the source of a particular odor, so it can then move towards it.

Researchers call this system a "split attractor network," in which PFG receives the content of a memory, hΔK controls the timing of the memory formation, and the communication block acts as a gate. This combination provides the flexibility and stability of the signal that working memory requires.

"Right now, one of the frontiers in neuroscience is understanding what specific networks are doing, and the fruit fly is one of the best models to study that," said Dr. Nagel. "The fly has an amazing track record for revealing how human biology works in a clear and simple way. My hope is that it gives us insight into processes like working memory that we have not yet had the tools to study in depth."

Moving forward, Dr. Nagel said her laboratory wants to learn how this circuit is controlled across different time frames and to characterize the kinds of information other types of neurons are tracking. The team also wants to understand how and why different regions in the brain are capable of controlling similar functions simultaneously.

Funding for the study was provided by National Institutes of Health grants R01NS127129 and R01DC017979. Additional funding was provided by National Science Foundation grant 2014217.

Other NYU Langone researchers involved in the study were Aaron J. Lanz, Nicholas D. Kathman, and Emily Hao.

Another study co-investigator was Bard Ermentrout at the University of Pittsburgh.

About NYU Langone Health

NYU Langone Health is a fully integrated health system that consistently achieves the best patient outcomes through a rigorous focus on quality that has resulted in some of the lowest mortality rates in the nation. Vizient Inc. has ranked NYU Langone No. 1 out of 122 comprehensive academic medical centers across the nation five years in a row, and it continues to have the most No. 1– and top 10–ranked specialties among medical centers in the United States, according to U.S. News & World Report. NYU Langone offers a comprehensive range of medical services with one high standard of care across seven inpatient locations, its Perlmutter Cancer Center, and more than 400 outpatient locations in the New York City area and Florida. The system also includes two tuition-free medical schools, in Manhattan and on Long Island, and a vast research enterprise.

Media Contact:

David March
212-404-3528
David.March@NYULangone.org 

STUDY DOI
10.1038/s41586-026-11144-9

https://www.nature.com/articles/s41586-026-11144-92

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SOURCE NYU Langone Health System