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Listen to the sound of the Jurassic: Scientists recreate the eerie calls that echoed through forests 165 million years ago

by LJ News Opinions
August 31, 2026
in Technology
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Researchers have recreated the eerie calls that echoed through the Jurassic grasslands, steppes and woodlands 165 million years ago.

By examining the fossilised wings of Mid-Jurassic insects, a new paper reconstructs what each call would have sounded like.

These strange squeaks range from familiar cicada-like chirps to bursts of ultrasonic noise, evolved to fly under the radar of ancient predators.

And you can now hear the entire ancient soundscape for yourself.

Although dinosaurs’ delicate vocal cords and larynxes almost never fossilise, insect wings appear far more often in the fossil record.

These wings are covered in microscopic teeth-like ridges when a scraper on the other wing, known as a plectrum, is rubbed across the surface.

The sound of these tiny insect instruments is determined by how the teeth are spaced along the ridge and how the wing is shaped.

By feeding this information into a computer model along with evidence from modern insects, the scientists have uncovered the sound of these Jurassic calls.

Researchers have analysed fossil insect wings to recreate the eerie calls that echoed through the Jurassic grasslands, steppes, and woodlands 165 million years ago

Insects use sound to communicate over long distances, searching for mates, defending their territory, and to scare off potential predators.

Lead author Dr Fernando Montealegre-Zapata, an entomologist from the University of Lincoln, told the Daily Mail: ‘Our findings offer a glimpse into what a Jurassic forest might have sounded like.

‘Far from being silent, these ancient environments were likely filled with a rich variety of sounds.’

The researchers looked at 20 fossils from nine different species, all found in China’s Inner Mongolia region.

These insects are the ancient ancestors of modern-day grasshoppers and katydids, often known as bush crickets.

Just like their modern relatives, these ancient species made calls by rubbing their body parts together in a process called stridulation.

Even though the sound-producing structures on their wings are tiny, they are often preserved remarkably well in fossils.

Scientists were able to scan these ridges under the microscope to create detailed models of their wings, and work out exactly how they would have sounded.

Ancient insects created sound using microscopic ridges on their wings, which scientists can still see in their fossil remains (pictured)

Ancient insects created sound using microscopic ridges on their wings, which scientists can still see in their fossil remains (pictured)

The scientists looked at 20 fossils from nine speicies that are the ancient ancestors of modern day grasshoppers and katydids, also known as bush crickets

The scientists looked at 20 fossils from nine speicies that are the ancient ancestors of modern day grasshoppers and katydids, also known as bush crickets 

They tested their models against modern insect wings, using lasers to measure how their wings vibrated.

The team then used a machine learning model to estimate their likely call rate, and build a hypothetical Jurassic soundscape.

Dr Montealegre-Zapata says: ‘Hearing the first reconstructed call was fascinating. It revealed that the way these insects produce sound has changed remarkably little since the Jurassic period.

‘But the most extraordinary moment was hearing all the calls together.

‘These species likely lived side by side, and for the first time we could listen to a soundscape that may have filled Jurassic forests, much like the chorus of chirping insects we hear in tropical rainforests today.’

Some of these calls were even used to make the soundtrack for the Netflix documentary series The Dinosaurs, produced by Steven Spielberg.

Many of the species produced ‘pure-tone’ calls; noises almost like musical notes that concentrate their energy in a tight band of frequencies.

To the human ear, they sound more like high-pitched beeps or squeaks rather than a raspy rattle.

Using a computer model, the researchers worked out how these insects' wings would vibrate and compared that to modern insect wings to work out the sound of their calls

Using a computer model, the researchers worked out how these insects’ wings would vibrate and compared that to modern insect wings to work out the sound of their calls 

Insects, and some other animals, use these pure-tone calls because they travel better through a crowded, nocturnal soundscape.

‘This suggests these insects were communicating through highly specialised acoustic channels, allowing them to be heard by potential mates while making it harder for predators to pinpoint their location,’ says Dr Montealegre-Zapata.

A few insects produced pure tones around five kHz in frequency, which is similar to living crickets, but others developed an even more unusual trick.

One insect, Sigmaboilus peregrinus, appears to have the ability to produce high-frequency ‘ultrasonic’ calls above 20 kHz, just outside the range of human hearing.

Today, about 70 per cent of known katydid species communicate in ultrasound frequencies, but scientists have argued over when and where this talent first emerged.

One theory suggests that ultrasonic communication evolved as a defence against the appearance of bats, which are incredibly skilled at hunting down nocturnal insects by their calls.

However, Sigmaboilus peregrinus shows that insects were using these ultra-high-pitched calls long before bats arrived on the scene.

Dr Montealegre-Zapata says that this evolved as part of an ‘arms race’ between insects and predators.

Many of the insects produce 'pure-tone' calls, which sound like beeps or squeaks, that evolved to communicate in a busy nocturnal forest without revealing their location to predators

Many of the insects produce ‘pure-tone’ calls, which sound like beeps or squeaks, that evolved to communicate in a busy nocturnal forest without revealing their location to predators 

As predators got better at detecting sounds, insects responded by shifting their calls into higher frequencies and, eventually, into ultrasound.

This suggests that mammals in the Jurassic period might have already been evolving sensitivity to ultrasound more than 100 million years before the emergence of bats.

‘Rather than introducing ultrasound to a quiet environment, bats may have entered a soundscape that was already filled with ultrasonic signals,’ says Dr Montealegre-Zapata.

‘In that sense, the Jurassic was not only noisier than we once imagined, but also acoustically more sophisticated.’

HOW THE DINOSAURS BECAME EXTINCT AROUND 66MILLION YEARS AGO

Dinosaurs ruled the Earth around 66million years ago, but suddenly disappeared in what is known as the Cretaceous-Tertiary extinction.

It was believed for many years that the changing climate destroyed the food chain of the huge reptiles. 

However, in the 1980s paleontologists discovered a layer of iridium – an element that is rare on Earth but found in vast quantities in space.  

When this was dated, it coincided precisely with when the dinosaurs disappeared from the fossil record. 

A decade later, scientists uncovered the massive Chicxulub Crater at the tip of Mexico’s Yucatán Peninsula, which dates to the period in question. 

Scientific consensus now says that these two factors are linked and they were both probably caused by an enormous asteroid crashing to Earth.

With the projected size and impact velocity, the collision would have caused an enormous shock wave and is likely to have triggered seismic activity. 

The fallout would have created plumes of ash thought to have covered the whole planet, making it impossible for dinosaurs to survive. 

Other animals and plant species had a shorter time-span between generations which allowed them to survive.

There are several other theories as to what caused the demise of the dinos. 

One early theory was that small mammals ate dinosaur eggs and another proposes that toxic angiosperms (flowering plants) killed them off.  

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