Fruit bats demonstrate episodic memory and mental time travel capabilities, study reveals

Episodic memory and mental time travel have been considered uniquely human traits. This view has begun to change with the development of behavioral criteria to assess what is called episodic memory in animals. Key findings range from evidence of “what, where, when” memory in jays, mice and bees to episodic memory and future-oriented behavior in wild, free-foraging animals. In a new study, scientists investigated episodic memory and future-oriented behavior in wild, free-foraging animals. Egyptian fruit bat (Rusetus aegyptiacus)The team found that fruit bats rely on mental time maps to display future-oriented behaviour when foraging, and that time-mapping ability requires experience and is lacking in inexperienced bats.

Egyptian fruit bat (Rusetus aegyptiacus) track tree phenology and estimate fruit availability since their previous visit. Bats exhibit future-oriented behavior, flying to trees rich in specific proteins, while flying past many familiar sugar-rich trees. Young bats must learn tree phenology through experience. Image courtesy of Harten others., doi:10.1016/j.cub.2024.05.046.

“For many years, the cognitive abilities to recall and plan personal experiences (episodic memory) have been thought to be uniquely human,” Tel Aviv University.

“However, a growing body of research suggests that various animals also have such abilities, although nearly all of these studies have been carried out in laboratory settings, as field studies on this issue are difficult to conduct.”

“To test these capabilities in wildlife, we designed a unique experiment using a wild colony of flying foxes.”

The researchers surmised that bats that depend on fruit trees for survival need to develop the ability to track food availability both spatially (where are the fruit trees?) and temporally (when does each tree bear fruit?).

As you navigate a landscape with numerous fruit and nectar trees, you'll need to mentally keep track of resources in order to revisit them at the right time.

To test this hypothesis, they fitted each bat with a small, high-resolution GPS tracker, allowing them to record their flight routes and the trees they visited over several months.

The vast amount of data collected in this way was thoroughly analyzed, yielding surprising results.

“Our first research question was: do bats form mental maps of time?” says Dr Lee Harten from Tel Aviv University.

“To investigate this issue, we confined bats to their colonies for various periods of time, ranging from one day to a week.”

“We wanted to see if the bats would recognise that time had passed and behave accordingly.”

“We found that after one day in captivity, the bats would return to the trees they had visited the previous night. But after a full week, the older bats, based on their past experience, began to avoid trees that had stopped bearing fruit in the meantime.”

“In other words, they could estimate how much time had passed since they last visited each tree, and thus know which trees only bore fruit for a short time and were no longer worth visiting.”

“Younger, inexperienced bats were unable to do this, suggesting that this is an acquired skill that must be mastered.”

“The first research question was about past experience, but the second question was about the future. Do bats exhibit future-oriented behavior? Can they plan for the future?”

“To address this issue, the researchers observed the route each bat took to reach the first tree in the evening, which could indicate a plan made before leaving the colony.”

“We found that bats usually fly directly to specific trees they know, sometimes up to 20-30 minutes away,” said Dr Chen Xin from Tel Aviv University.

“They're hungry, so they fly faster the further away the trees are, which suggests they're planning where they're going.”

“Furthermore, because they are so focused on their chosen target, they pass by other trees and even good sources of information that they only visited yesterday, demonstrating their ability to postpone gratification.”

“We also found that the first bats to leave the colony chose trees with fruits high in sugar, while those who left later sought out fruits with protein.”

The findings suggest that bats plan their foraging before they leave the colony, knowing exactly where they'll be flying and what nutrients they'll be looking for.

“The gap between human and animal cognition is one of the most fascinating questions in science,” Professor Yobel said.

“Our study demonstrates that flying foxes are able to carry out highly complex decision-making processes involving three questions that demonstrate cognitive capabilities: 'where?' (the location of each tree), 'when?' (when the trees will bear fruit) and 'what?' (what nutrients the trees provide, sugars or proteins).”

“Once again, the gap wasn't clearly carved out, and we find that humans are not as special as some think.”

“Apparently, humans and animals all lie on a spectrum, and almost all human abilities can also be found in animals.”

a paper The findings were published in the journal. Current Biology.

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Lee Harten othersTime mapping and future-oriented behavior in free-ranging wild fruit bats. Current BiologyPublished online June 20, 2024; doi: 10.1016/j.cub.2024.05.046

This article is a version of a Tel Aviv University press release.

Source: www.sci.news

Scientists have discovered a distinct neural signature in chickadees for episodic memory

Black-capped Chickadee (Poecil atricapillus) This small passerine bird from North America, which lives in deciduous and mixed forests, has an extraordinary memory that allows it to remember thousands of food locations to help it survive the winter. Now, scientists Columbia University Zuckerman Institute for Mind, Brain, and Behavior have discovered how Gala is able to remember so many details. They memorize the location of each food item using brain cell activity similar to a barcode.

Chetty other. We propose that animals recall episodic memories by reactivating barcodes in the hippocampus.Image credit: Chetty other., doi: 10.1016/j.cell.2024.02.032.

“We found that each memory is tagged with a unique pattern of activity in the hippocampus, the part of the brain that stores memories,” said Dr. Dmitry Aronov, senior author of the study.

“We called these patterns 'barcodes' because they are very specific labels for individual memories. For example, the barcodes of two different caches are Even if two caches are next to each other, there is no correlation.

“There are a number of human discoveries that perfectly match the barcode mechanism,” added Dr. Selman Chetty, lead author of the study.

Scientists have known for decades that the brain's hippocampus is necessary for episodic memories, but understanding exactly how those memories are encoded has been much more difficult. was.

Part of the reason is that it's often difficult to know what animals remember at any given time.

To get around this problem in the new study, Dr. Aronoff and colleagues turned to the black-capped chickadee.

Researchers found that chickadees provide a unique opportunity to study episodic memory because they hide food and then have to remember to come back to retrieve it later.

“Each cache is a clear, obvious, easily observable moment in which a new memory is formed,” Dr. Aronoff said.

“By focusing on these special moments, we were able to identify patterns of memory-related activity that we had not noticed before.”

The researchers needed to design an arena that could automatically track the detailed behavior of the gulls as they hide and retrieve food.

They also needed to develop techniques to make large-scale, high-density neural recordings inside the birds' brains as they move freely.

Their brain recordings during caching revealed very sparse and transient barcode-like firing patterns across hippocampal neurons. Each barcode contains only about 7% of the cells in the hippocampus.

“When a bird creates a cache, about 7% of its neurons respond to that cache. When the bird creates another cache, another group of 7% of its neurons responds,” Dr. Aronoff said. Ta.

These neural barcodes occurred simultaneously with the conventional activity of neurons in the brain that are triggered in response to specific locations, aptly called place cells.

Interestingly, however, there were no similarities in the episodic memory barcodes of cache locations close to each other.

“It was widely thought that place cells change when animals form new memories,” Dr. Aronoff says.

“For example, placement cell firings may increase or decrease near the cache location.”

“This was a common hypothesis, but our data did not support it.”

“Place cells do not represent information about caches; rather, they appear to remain relatively stable as the chickadees cache and retrieve food from the environment.”

“Instead, episodic memory is represented by additional activity patterns, or barcodes, that coexist with place cells.”

The authors liken the newly discovered hippocampal barcode to a computer hash code, a pattern that is assigned as a unique identifier to different events.

They suggest that barcode-like patterns may be a mechanism for the rapid formation and storage of many non-interfering memories.

“Perhaps the biggest unanswered question is whether and how the brain uses barcodes to prompt behavior,” Dr. Aronoff said.

“For example, it's not clear whether chickadees activate barcodes and use their memory of food-caching events when deciding where to go next.”

“We plan to address these questions in future studies through more complex settings in the laboratory, recording brain activity while the birds choose which food stores to visit.”

“If you plan on retrieving cached items before you actually retrieve them, that's to be expected,” Dr. Chetty said.

“We wanted to identify the moments when a bird is thinking about a location but haven't gotten there yet, and see if activating the barcode might move the bird to the cache. thinking about.”

“We also want to know whether the barcoding tactics they discovered in chickadees are widely used among other animals, including humans. It might help clarify the core.”

“When you think about how people define themselves, who they think they are, their sense of self, episodic memories of specific events are central to that. That's what we're trying to understand. That is what we are doing.”

a paper The survey results were published in a magazine cell.

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Selman N. Chetty other. Barcoding of episodic memory in the hippocampus of food-storing birds. cell, published online March 29, 2024. doi: 10.1016/j.cell.2024.02.032

Source: www.sci.news