Octopus Research Yields Insight into the Evolution of Sleep

A study by researchers in Brazil shows that the octopus experiences two major alternating sleep states eerily similar to those in humans. (Getty Images)
A study by researchers in Brazil shows that the octopus experiences two major alternating sleep states eerily similar to those in humans. (Getty Images)
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Octopus Research Yields Insight into the Evolution of Sleep

A study by researchers in Brazil shows that the octopus experiences two major alternating sleep states eerily similar to those in humans. (Getty Images)
A study by researchers in Brazil shows that the octopus experiences two major alternating sleep states eerily similar to those in humans. (Getty Images)

The octopus is an extraordinary creature - and not only because of its eight limbs, three hearts, blue blood, ink squirting, camouflage capacity and the tragic fact that it dies after mating.

A study by researchers in Brazil published on Thursday shows that this animal, already considered perhaps the smartest invertebrate, experiences two major alternating sleep states eerily similar to those in humans - and it even might dream.

The findings, the researchers said, provide fresh evidence that the octopus possesses a complex and sophisticated neurobiology that underlies an equally sophisticated behavioral repertoire, while also offering broader insight into the evolution of sleep, a crucial biological function.

Octopuses previously were known to experience sleep and change colors while slumbering. In the new study, the researchers observed a species called Octopus insularis in a laboratory setting. They found that these color changes are associated with two distinct sleep states: “quiet sleep” and “active sleep.”

During “quiet sleep,” the octopus remains still, with pale skin and eye pupils contracted to a slit. During “active sleep,” it dynamically changes its skin color and texture and moves both eyes while contracting its suckers and body, with muscular twitches.

A repeating cycle was observed during sleep. “Quiet sleep” typically lasted roughly seven minutes. The subsequent “active sleep” typically lasted less than a minute.

This cycle appears analogous, the researchers said, to the alternating “rapid eye movement,” or REM, and “non-rapid eye movement,” or non-REM, sleep states experienced by people, as well as other mammals, birds and reptiles.

Vivid dreaming occurs during REM sleep, as a person’s eyes move rapidly, breathing becomes irregular, the heart rate increases and the muscles become paralyzed to not act out the dreams. Non-REM sleep features more deep sleep and less dreaming.

Study lead author Sylvia Medeiros said the findings suggest octopuses may be dreaming, or experiencing something similar.

“If octopuses indeed dream, it is unlikely that they experience complex symbolic plots like we do,” said Medeiros, a doctoral student in neuroscience at the Brain Institute of the Federal University of Rio Grande do Norte.

“‘Active sleep’ in the octopus has a very short duration, typically from a few seconds to one minute. If during this state there is any dreaming going on, it should be more like small video clips, or even GIFs,” Medeiros added.

Scientists are seeking a greater understanding of the origins and evolution of sleep.

Because the last common ancestor of vertebrates, including humans, and cephalopods, including octopuses, lived more than half a billion years ago, it seems unlikely their similar sleep patterns were established before their evolutionary divergence, the researchers said.

That would mean, they added, that this similar sleep pattern arose independently in the two groups, a phenomenon called “convergent evolution.”

“The investigation of sleep and dreaming in the octopus gives us a vantage point for the psychological and neurobiological comparison with vertebrates, since the octopus possesses several sophisticated cognitive features that are only seen in some vertebrate species but with a very different brain architecture,” said study co-author Sidarta Ribeiro, founder of the Brain Institute.

Ribeiro noted that previous studies showed that octopuses, with the most centralized nervous system of any invertebrate, possess exceptional learning abilities, including spatial and social learning, as well as problem-solving capabilities.

“The understanding of how organisms as different as humans and octopuses can share fundamental traits such as the sleep cycle opens new avenues for the investigation of animal cognition and for the understanding of the general principles that shaped brain design in these groups of highly intelligent animals,” Medeiros said.



Urban Mosquito Sparks Malaria Surge in East Africa

Bed nets -- up to now the prime weapon against malaria -- may be much less effective against the urban mosquito. YASUYOSHI CHIBA / AFP/File
Bed nets -- up to now the prime weapon against malaria -- may be much less effective against the urban mosquito. YASUYOSHI CHIBA / AFP/File
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Urban Mosquito Sparks Malaria Surge in East Africa

Bed nets -- up to now the prime weapon against malaria -- may be much less effective against the urban mosquito. YASUYOSHI CHIBA / AFP/File
Bed nets -- up to now the prime weapon against malaria -- may be much less effective against the urban mosquito. YASUYOSHI CHIBA / AFP/File

The spread of a mosquito in East Africa that thrives in urban areas and is immune to insecticide is fueling a surge in malaria that could reverse decades of progress against the disease, experts say.
Africa accounted for about 95 percent of the 249 million malaria cases and 608,000 deaths worldwide in 2022, according to the most recent data from the World Health Organization (WHO), which said children under five accounted for 80 percent of deaths in the region, AFP reported.
But the emergence of an invasive species of mosquito on the continent could massively increase those numbers.
Anopheles stephensi is native to parts of South Asia and the Middle East but was spotted for the first time in the tiny Horn of Africa state of Djibouti in 2012.
Djibouti had all but eradicated malaria only to see it make a slow but steady return over the following years, hitting more than 70,000 cases in 2020.
Then stephensi arrived in neighboring Ethiopia and WHO says it is key to an "unprecedented surge", from 4.1 million malaria cases and 527 deaths last year to 7.3 million cases and 1,157 deaths between January 1 and October 20, 2024.
Unlike other species which are seasonal and prefer rural areas, stephensi thrives year-round in urban settings, breeding in man-made water storage tanks, roof gutters or even air conditioning units.
It appears to be highly resistant to insecticides, and bites earlier in the evening than other carriers. That means bed nets -- up to now the prime weapon against malaria -- may be much less effective.
"The invasion and spread of Anopheles stephensi has the potential to change the malaria landscape in Africa and reverse decades of progress we've made towards malaria control," Meera Venkatesan, malaria division chief for USAID, told AFP.
'More research is needed'
The fear is that stephensi will infest dense cities like Mombasa on Kenya's Indian Ocean coast and Sudan's capital Khartoum, with one 2020 study warning it could eventually reach 126 million city-dwellers across Africa.
Only last month, Egypt was declared malaria-free by WHO after a century-long battle against the disease -- a status that could be threatened by stephensi's arrival.
Much remains unknown, however.
Stephensi was confirmed as present in Kenya in late 2022, but has so far stayed in hotter, dryer areas without reaching the high-altitude capital, Nairobi.
"We don't yet fully understand the biology and behavior of this mosquito," Charles Mbogo, president of the Pan-African Mosquito Control Association, told AFP.
"Possibly it is climate-driven and requires high temperatures, but much more research is needed."
He called for increased funding for capturing and testing mosquitos, and for educating the public on prevention measures such as covering water receptacles.
Multiplying threats
The spread of stephensi could dovetail with other worrying trends, including increased evidence of drug resistant malaria recorded in Uganda, Rwanda, Tanzania and Eritrea.
"The arrival of resistance is imminent," said Dorothy Achu, WHO's head of tropical and vector-borne diseases in Africa.
WHO is working with countries to diversify treatment programs to delay resistance, she said.
A new malaria variant is also evading tests used to diagnose the disease.
"The increased transmission that stephensi is driving could potentially help accelerate the spread of other threats, such as drug resistance or another mutation in the parasite that leads it to be less detectable by our most widely-used diagnostics," said Venkatesan at USAID.
Another added challenge is the lack of coordination between African governments.
Achu said WHO is working on "a more continental approach".
But Mbogo in Kenya said "more political will" was needed.