Wednesday, 26 August 2026

An Ancient Shark Graveyard Has Been Found in The Egyptian Desert

22 Aug. 2026, By M. Starr

(Anton Petrus/Moment/Getty Images)

The desert sands of Egypt have been dry for thousands of years.

As difficult as it is to picture now, however, much of that desert was once submerged beneath a sea that covered much of the northern perimeter of the African continent.

Nor was it a dead sea – evidence suggests that, during the Cretaceous period, it may have been a tropical wonderland, where rising currents lifted nutrients into the water column to feed a thriving ecosystem.

Now, buried in what was once the floor of that long-ago sea, on the Abu-Tartur Plateau, paleontologists have found evidence of its lushness: the teeth of sharks that would have thrived amid the bounty of fish.

And not just one shark. The total number of different species found in that layer of the Duwi Formation now numbers at least seven – offering a glimpse of the rich marine ecosystems that once flourished along the northern edge of Africa.


The 14 teeth represented five species. 
(Yassin et al., Cretac. Res., 2026)



"Collectively, this assemblage highlights a nutrient-enriched, high-productivity marine ecosystem along a phosphogenic shelf margin," writes a team led by paleontologist Tarek Yassin of Cairo University in a paper published in Cretaceous Research.

During the Cretaceous period, between about 145 to 66 million years ago, our Earth was a very different place. Under a greenhouse climate driven by tectonic activity, the world was warmer, with little to no polar ice; higher sea levels meant that much of the land we inhabit today was underwater, including northern Africa.

We know this at least partially because of phosphate. Phosphorite deposits commonly form where marine productivity is high, and phosphorus is being intensively cycled and concentrated.

A diagram illustrating how oceans once covered the region. 
(Yassin et al., Cretac. Res., 2026)

The extensive phosphate deposits of the Duwi Formation therefore preserve not just the remains of this ancient sea, but clues to how productive its waters once were.

In previous research, Yassin and his colleagues had identified two shark species in a handful of teeth found in the fossil bed – an intriguing signal, since a community capable of supporting multiple large predators requires a productive food web beneath them.

So they went back to Abu-Tartur to see if they could find out more.

And the black and yellow layers of the Duwi phosphate ponied up the goods. They found another 14 shark teeth – representing another five shark species, none of which had been identified at Abu-Tartur.

When all you have is teeth – and with ancient sharks, that's usually the case – subtle differences can be the sole metric on which a species diagnosis hangs.

With the Duwi teeth, the differences were not always subtle.

Several of the teeth were long and slender, like a needle. Others were broad and serrated, probably better suited for slicing than penetrating. One tooth was prominently curved like a karambit. Some had small, fang-like side projections, called cusplets; others did not.

https://www.youtube.com/watch?v=brbx7cMte68

Based on other fossil records around the world, the researchers identified these teeth as belonging to five extinct species: Cretalamna cf. maroccana, Scapanorhynchus cf. raphiodon, Serratolamna cf. serrata, Squalicorax bassanii, and Squalicorax pristodontus.

All five are new records for Abu-Tartur.

Two were new for Egypt entirely – Serratolamna cf. serrata and Squalicorax bassanii.

One stood out as extraordinary. Scapanorhynchus cf. raphiodon – the one with the needle teeth – may represent the first known occurrence in Africa. In addition, it could be the most recent example on the fossil record, the researchers said – all other specimens are significantly older.

Those identities, however, paint a much more interesting picture than "a bunch of sharks".

As their teeth might suggest, they may not have been directly competing, but occupying different ecological niches in a rich marine environment.

"The presence of Squalicorax could suggest an input from nearshore/inner shelf settings, while the occurrence of Scapanorhynchus reflects deeper-water conditions on the outer shelf and slope," the researchers write.

"Lamniform taxa such as Cretalamna and Serratolamna further support stable open-shelf conditions."

The researchers believe that the secret to this richness may have been upwelling.

Nutrient-rich waters rising from deeper in the ocean would have delivered phosphorus and other nutrients to the sunlit surface waters, driving intense primary productivity – plankton that came to feast.

That would have supported small fish and invertebrates, then predators such as Squalicorax and Cretalamna, with Cretoxyrhina and marine reptiles higher up the food web.

But this is where the shark "graveyard" gets interesting. There was very little sediment accumulation during the time that the sharks lived, so the phosphate bed represents a more condensed span of time than you might find somewhere with more mud.

Consequently, the teeth are a time-averaged accumulation from multiple ecological niches, not evidence that seven shark species lived at the same time and all died there together.

But it does add to evidence that these ecosystems were common across the northern edge of Africa during the Late Cretaceous. Other phosphate deposits from places such as Morocco and Syria record large numbers of shark species hanging around – suggesting the entire region was a great place to conduct shark business.

Today, little remains of that shark paradise. The Tethys is gone, the seafloor has become desert, and the predators that prowled its waters vanished millions of years ago.

Like a projector from the past, however, just a scattered handful of teeth embedded in a rock can conjure up an entire lost world.


The Life of Earth
https://chuckincardinal.blogspot.com/

A 35,000-Year-Old Neanderthal Pelvis May Explain Why Men and Women Walk Differently

By Tel-Aviv U., Aug. 25, 2026

Neanderthal fossils hint that the modern male pelvis, not the Neanderthal one, may be the evolutionary outlier. 
Credit: Shutterstock

Why do men and women walk differently? 

A Neandertal pelvis from 35,000 years ago, when Neanderthals still coexisted with modern humans, may help explain why.

Every step humans take places the pelvis under a repeating mechanical load as the body drops and rises again. A study from the Department of Anatomy and Anthropology at Tel Aviv University, published in Scientific Reports, suggests that this everyday movement may help explain a major anatomical difference between men and women.

By comparing Neanderthal and modern human pelvises, researchers reached an unexpected conclusion: rather than the Neanderthal pelvis being the unusual form, as long assumed, the modern human male pelvis may represent the evolutionary departure.

The researchers propose that its structure developed into a biomechanical shock-absorbing system that stores energy and improves the efficiency of long-distance walking.


Neanderthal fossils hint that the modern male pelvis, not the Neanderthal one, may be the evolutionary outlier. 
Credit: Shutterstock



Why do men and women walk differently? A Neandertal pelvis from 35,000 years ago, when Neanderthals still coexisted with modern humans, may help explain why.

Every step humans take places the pelvis under a repeating mechanical load as the body drops and rises again. A study from the Department of Anatomy and Anthropology at Tel Aviv University, published in Scientific Reports, suggests that this everyday movement may help explain a major anatomical difference between men and women.

By comparing Neanderthal and modern human pelvises, researchers reached an unexpected conclusion: rather than the Neanderthal pelvis being the unusual form, as long assumed, the modern human male pelvis may represent the evolutionary departure.

The researchers propose that its structure developed into a biomechanical shock-absorbing system that stores energy and improves the efficiency of long-distance walking.


A reconstruction of the skeleton. 
Credit: Tel Aviv University



Modern male hips may improve walking efficiency

A key difference lies in the placement of the hip joints. In modern human males, they sit farther forward on the pelvic ring than they do in modern human females or male Neanderthals. According to the researchers, that shift created a mechanical arrangement in which the anterior thigh muscles attached to the front of the pelvis can act like a spring while body weight bears on the back of the pelvis.

Professor Rak explains that with every step of bipedal walking, the body’s center of mass moves downward. That movement places stress on the joints and requires energy to lift the body again for the following step.

Under the proposed model, the geometry of the male pelvis allows the thigh muscles to soften the downward movement, store potential energy during the step, and release it immediately afterward– effectively “springing” the body upward into the next step.

Proposed evolutionary scenario for the development of the modern human pelvis. 
Credit: Tel Aviv University

The researchers, therefore, describe the pelvis as a natural shock-absorber and energy-return system. This arrangement may lower energy use, make walking more efficient, and provide an advantage during long-distance travel on foot. Moving the hip joints forward also appears to have required other anatomical changes, including a thicker pubic bone and a deeper front portion of the pelvis capable of handling the altered mechanical loads.

Childbirth preserved the ancestral pelvic pattern

Modern human females, according to the researchers, could not undergo the same full set of modifications. Childbirth requires the pelvis to remain relatively shallow while preserving a sufficiently wide birth canal. As a result, the female pelvis may have remained closer to the ancestral configuration, the same general arrangement seen in male Neanderthals.

Professor Ella Been of Ono Academic College, a co-author of the study, adds: “This study demonstrates that questions about human evolution are not confined to the distant past. Understanding the evolution of our walking mechanism can contribute to contemporary research in biomechanics, musculoskeletal medicine, rehabilitation, and injury prevention. The perspective provided by the Neanderthals helps us better understand the modern human body.”

Professor Rak argues that the findings reverse the traditional way of framing pelvic evolution. In this interpretation, the Neanderthal pelvis is not the anatomical anomaly that demands explanation. Instead, the distinctive pelvis of the modern human male represents the evolutionary innovation.

The researchers say their biomechanical model could account for a substantial portion of sexual dimorphism in the human pelvis, meaning the anatomical differences between females and males. The work also suggests that even macroscopic human anatomy, despite centuries of study, may still contain previously overlooked structures, geometric relationships, and biologically important mechanisms.


The birth of modern Man
https://chuckincardinal.blogspot.com/

Tiny Channels in Your Neck Might Determine How Your Brain Ages

26 Aug. 2026, By C. Cassella

(Sciepro/Science Photo Library/Getty Images)

With age comes wisdom – and, apparently, some rusty plumbing in the old noggin.

Growing evidence suggests that as we age, the lymphatic system that serves our central nervous system may drain out of our heads more slowly.

The reason may lie in our necks.

Now, a systematic analysis of 96 peer-reviewed studies has found that shrinking lymph nodes within the neck are a consistent feature of aging.

The consequences of that deterioration on the brain are unclear, but for the rest of the body, lymphatic aging is linked to impaired wound healing and diminished immune defenses.

If lymphatic drainage in the neck slows over time, could it lead to a build-up of waste products, fluid, or pathogens in and around the brain?

Scientists are beginning to investigate the possibility that cervical lymph nodes are 'bins for the brain'.

"What struck me most was how consistently the evidence pointed beyond the brain itself," neuroscientist Onder Albayram, who studies the aging brain at the Medical University of South Carolina, told ScienceAlert.

"That changed the way I think about brain aging. I increasingly see impaired clearance not simply as a local defect inside the brain, but potentially as a progressive loss of communication between the brain and its peripheral drainage infrastructure."

The results of the review are published in Neurobiology of Aging.

https://www.youtube.com/watch?v=I7orwMgTQ5I

Deep cervical lymph nodes are immune organs in the neck and head that receive and clean lymphatic fluid, trapping pathogens and old or abnormal cells.

The whole body contains roughly 800 lymph nodes, and 300 sit in the cervical space alone.

That's a big number that hints at an important role, but until recently, scientists thought cervical nodes only dealt with peripheral lymphatic fluid.

"The cervical lymph nodes are not simply passive collection sites; they are also immunological organs."

– Neuroscientist Onder Albayram

Then, in 2015, our understanding of these nodes changed dramatically. In mice, scientists discovered a lymphatic system hiding in the meninges, the membrane that covers the brain.

Two years later, we got the first evidence that a similar lymphatic network exists in the meninges of the human brain.

Since then, research on the meninges and their lymph vessels has exploded. Emerging studies now suggest these vessels drain into lymph nodes in the neck and also carry some of the brain's cerebrospinal fluid.

This fluid probes the deepest parts of the brain, where it exchanges waste products and immune signals with the fluid between neurons. This is the 'glymphatic system', but only in the last decade have we realized that some cerebrospinal fluid also enters the meningeal lymphatic system.

That secret link could change our basic understanding of neurological disease.

"For many years, investigators focused on how waste moves through the brain but less on what happens after that material reaches the brain's borders," Albayram explained to ScienceAlert.

"Yet drainage has to have an endpoint. The cervical lymph nodes are not simply passive collection sites; they are also immunological organs receiving central nervous system-derived molecules and immune signals."

Albayram argues it is now time to consider glymphatic transport, meningeal lymphatics, and cervical lymph nodes as "components of one connected clearance pathway."


The lymphatic system within the brain's meninges. 
(Albayram et al., Nature Comms., 2022)



Increasingly, evidence suggests that lymphatic drainage from the brain's meninges plays a significant role in neurological disease, such as Alzheimer's or Parkinson's.

If long-term clinical trials are conducted, deep lymph nodes in the neck might one day offer warning signs that the brain's drainage system is faltering.

"I think this is one of the most exciting translational possibilities, although we are not yet at the point where cervical lymph-node measurements can be considered a clinical biomarker," Albayram told ScienceAlert.

"More recent work has shown that central nervous system-associated proteins, including amyloid-beta and phosphorylated tau, can be detected and in some cases strongly enriched in cervical lymph nodes."

In a 2025 study, for instance, researchers sampled the neck lymph nodes of 25 participants with autoimmune neurological diseases.

"We found high levels of proteins that usually define Alzheimer's disease in lymph node samples from younger people," explained the lead author, clinician-scientist Adam Al-Diwani, from Oxford University.

"This supported the hypothesis that the lymph nodes act as a drainage basin from the brain. We then saw that this reduced in older people, suggesting that this was less effective with age… We see this as evidence that the cervical lymph nodes are acting as 'bins for the brain'."

Albayram says the next step will be longitudinal human research. Otherwise, researchers won't be able to distinguish whether neck lymph nodes contribute to disease, respond to disease, or simply accompany aging.

To date, most research on the brain's lymphatic system has focused on animal models and high-resolution imaging in living humans.

MRI studies have revealed that compared to younger folk, those older than 50 show relatively small cervical lymph nodes and a thickening of lymphatic channels.

With age, glymphatic drainage also seems to slow down.

Whether those two findings are connected will require further clinical research, but the evidence among animals is promising.

In preclinical research, scientists have found that when meningeal lymphatics in mice are purposefully slowed, more toxic disease-associated byproducts deposit in the brain.

What's more, initial evidence in rodents suggests that improving brain-draining lymphatic function may boost recovery following a stroke, or even improve memory.

Emboldened by such results, researchers at Yale University and the Monash Institute of Pharmaceutical Sciences are already developing non-invasive devices that can help pump the neck's lymphatic vessels more effectively.

Elsewhere, other teams are trying to use carbon dioxide to kickstart the brain's drainage system to better treat diseases like Parkinson's.

Still, it's important not to get ahead of the evidence. It's only been a decade since the brain's lymphatic network took the field of neuroscience by storm.

What we see in mice may not hold up in clinical trials.

While imaging technology has allowed scientists a wider window into the brain's drainage system than ever before, skeptics have also warned that some signals on MRI scans can be misinterpreted as lymphatic tissue.

"I would like to see the field move from describing individual lymphatic structures toward measuring the entire brain-to-neck clearance circuit in living humans," Albayram told ScienceAlert.

"Ultimately, I hope we can determine whether lymphatic dysfunction is simply a consequence of brain aging or whether it is one of the processes that helps set the pace of brain aging."

If the latter is true, an important part of brain aging may be accessible through the neck, making imaging and therapeutic interventions easier.

The brain's drainage system may be slippery, but if scientists 'go with the flow' we might just be able to find its bottleneck.


The Life of Earth
https://chuckincardinal.blogspot.com/

Tuesday, 25 August 2026

Estonia Released Thousands of Predators into the Baltic Sea — The Result Was Incredible!

Ambrose Wild and Ambrose Discovery

Aug 12, 2026, 

Estonia Released Thousands of Predators into the Baltic Sea — The Result Was Incredible!

 In 2005, Estonian scientists quietly began releasing thousands of Atlantic sturgeon into the Baltic Sea, a fish so ancient it outlived the dinosaurs and was declared extinct here in 1986. 

This is the full story of how a species was rebuilt from just six surviving animals, how each fish was tagged so scientists could trace it for decades, and how the whole rescue nearly leaked away through fishing nets before the law stepped in. But the biggest surprise wasn't the fish coming back. 

You'll discover how the sturgeon quietly re-engineered the seabed itself, why more predators somehow meant more prey, how phosphorus and toxic algae blooms began to fall, and how a river lamprey recovered alongside it. You'll also see the moment a tagless wild-born fish rewrote everything, the unprecedented open-sea spawning that broke the textbook, and why the hatchery finally chose to stop.



The Life of Earth
https://chuckincardinal.blogspot.com/




A Manhattan-Sized Ice Island Just Broke Off Greenland

By B. Rizk, U. of Ottawa, Aug. 22, 2026

Petermann Glacier has shed a rare, Manhattan-sized Arctic ice island that researchers had watched develop for years. 
Credit: Adam Garbo

Researchers say two more major calving events are likely.

A massive slab of floating ice broke away from Petermann Glacier in northwest Greenland on August 4, 2026, creating a 76.4 km² ice island. An international research group led in part by the University of Ottawa says it was Petermann’s largest floating ice loss since 2012 and the biggest Arctic calving event since 2020.

The tabular iceberg separated from the glacier’s floating ice tongue and may be as much as 150 meters thick. Its surface area is roughly comparable to Manhattan Island, giving researchers an unusual chance to follow how a large Arctic ice mass forms, travels, and fragments over time.

Adam Garbo, a PhD student in glaciology at uOttawa’s Department of Geography, Environment, and Geomatics, identified the event through an ongoing collaboration involving the University of Ottawa, the University of Stirling, Environment and Climate Change Canada, Lancaster University, and the University of Leeds.

Researchers had been watching this part of Petermann Glacier for years. Long-term satellite observations dating back to 2019 documented changes in the floating ice tongue, including expanding fractures and other signs that the structure was becoming unstable.

“Petermann Glacier has long been one of Greenland’s largest remaining ice tongues,” says Garbo. “We’ve anticipated this break for years, and seeing it finally happen is remarkable.”



Satellite images captured the final break



Images from the European Space Agency’s Sentinel-1 mission showed obvious weakening along the centerline of the ice tongue on August 3. By 20:00 UTC the following day, the ice island had separated from the glacier’s eastern side.

Large tabular icebergs are common around Antarctica, but comparable Arctic ice islands are much rarer. Some can survive for years, allowing scientists to observe the forces that influence glacier retreat, ocean conditions, and ice-related hazards across polar environments.





Petermann Glacier.
 Credit: Adam Garbo



“While large, tabular icebergs are relatively common in the Southern Ocean that surrounds the Antarctic Ice sheet, Arctic ice islands are far rarer,” explains Dr. Anna Crawford of the University of Stirling. “By studying Arctic ice islands, we will gain knowledge that can be transferred across Polar regions.”
Two more major calvings may follow

The August event may be only the first of several major losses. Researchers expect two more large ice islands to break away from Petermann Glacier in the near future as long as developing rifts continue extending across the floating ice tongue.

Those events are projected to create ice islands measuring about 94 km² and 84 km². Combined with the newly detached island, the losses would remove roughly 254 km² from the Petermann ice tongue, equivalent to about 22 percent.


Adam Garbo. 
Credit: University of Ottawa



Drifting ice could threaten navigation

The new ice island is also important for marine safety. As enormous blocks of floating ice move through Arctic waters and gradually break into smaller pieces, they can pose risks to ships and offshore operations.

Environment and Climate Change Canada is tracking the island’s movement, as it has done after earlier Arctic ice shelf calving events, while evaluating possible threats to navigation and offshore infrastructure. “These are thick blocks of ice that can drift for years,” specifies Dr. Abigail Dalton of the Canadian Ice Service, Environment and Climate Change Canada. “Over time, they fracture into smaller, harder-to-track pieces that pose hazards to vessels and resource operations.”

Garbo and his collaborators will continue following the aftermath with satellite imagery, aerial observations, and tracking data as they work to better understand the processes responsible for calving and retreat across Arctic ice shelves.


The Life of Earth
https://chuckincardinal.blogspot.com/

Journalism Can Help Expose Bad Science And Trigger Real-World Change, New Study Shows

24 Aug. 2026, By D. Nield

(Simon Marcus Taplin/The Image Bank/Getty Images)

Thank you for reading this article: By supporting science journalism, you're also supporting higher standards in scientific research – which benefits us all.

A new study published in Media and Communication looks at the practice of watchdog science journalism, where journalists investigate issues such as malpractice, fraud, and corporate manipulation in scientific research.

Journalism researchers Michele Catanzaro and Luiz Peres-Neto from the Autonomous University of Barcelona in Spain spoke to 15 science journalists across the Ibero-American region (Spain, Portugal, and Latin America).

Journalists in the region have tended to avoid controversial issues, but not those Catanzaro and Peres-Neto interviewed for this study.

Most were able to point to positive, real-world impacts of their work, including changes in regulations, admissions of wrongdoing, organized protests, and increased transparency.

https://www.youtube.com/watch?v=87x6OduO21Q

But it's not all good news. The interviewees also talked about struggles with funding, time pressures, and political interference.

"Faced with a systemic problem, the solution also has to be systemic," says Catanzaro.

"Watchdog science journalism is part of it, as it acts as a disincentive to bad practices."

The new findings here chime with earlier research into the same topic that has talked about investigative journalism being a "custodian of conscience".

Investigations were sparked by access to insider information, the 15 study participants said, as well as official documents, academic conferences and events, tips from readers, and resources such as Retraction Watch – a site that maintains a list of papers that have been published and then pulled.

Specific examples of work that the reporters referenced included sexual harassment in Argentine research centers, interference from tobacco and pharmaceutical companies in Latin America, and affiliation purchasing (to artificially boost the standing of a university) in Saudi Arabia.

"The work of these professionals points to a change in Ibero-American journalism, which historically has had weaker traditions of investigation and coverage of science compared to other regions of the world," says Peres-Neto.

Highlighting the importance of watchdog science journalism, the study also captures the challenges journalists face in pursuing these stories. These can include psychological strain, hostility from scientists, and even censorship.

The journalists Catanzaro and Peres-Neto interviewed are also aware that criticisms of scientific research and the exposure of bad practices may erode overall confidence in science more generally – and give more credence to 'anti-science' viewpoints.


In the modern era we get most of our news on our phones.
(Rasheed Kemy/Unsplash)



"While watchdog science journalism can play an essential role in tackling these issues, it also risks providing ammunition to stakeholders who promote political or corporate interests contrary to scientific evidence," the researchers explain in their published paper.

However, the investigative science journalists interviewed for the study described strategies they use to prevent anti-science uses of their work, such as helping readers to understand how the scientific process works and making sure to properly contextualize erroneous results.

The researchers also have some suggestions about how the long-term future of watchdog science journalism can be ensured.

Giving journalists the opportunity to undertake science-specific training, for example, so they are more familiar with and can scrutinize the institutions and systems that deliver scientific research.

Catanzaro and Peres-Neto are also calling for a broader range of funding sources for this type of journalism and for improved support for staff reporters, editors, and freelancers. That might include granting journalists more time in busy newsrooms to pursue in-depth reporting that takes days, weeks, or years to complete.

Scientific data and discoveries should continue to be made more transparent and accessible, the researchers suggest, through increased accountability at multiple levels: individual researchers, academic institutions, and governments.

After all, so much research is publicly funded.

While only a small number of journalists were interviewed for the study, their experiences parallel those of investigative journalists working in the UK and Canada who, in another recent study, described the legal risks of their work.

"The feasibility of potential stories sometimes plays a bigger role in whether they are reported than their public importance, especially in resource-poor newsrooms," that study concluded.

It's clear that thorough and ethical journalism is vital in maintaining standards in science – something we very much believe in.

"The general perception among interviewees is that their work contributes to triggering changes," write the researchers.

"A large majority of interviewees reported practical impacts of their work, although some said these impacts were not sustained over the long term."


The birth of modern Man
https://chuckincardinal.blogspot.com/

Monday, 24 August 2026

Carl Sagan Turned This 1990 Photograph Into a Warning. It's More Relevant Now Than Ever

23 Aug. 2026, By E. Öz

Carl Sagan unveils the Pale Blue Dot in 1990. 
(The Planetary Society/Vimeo)

Look closely at one of the most famous photographs ever taken of Earth and you might struggle to find Earth at all.

There are no blue oceans. No continents. No clouds. Just darkness, scattered sunlight, and a tiny pale blue point almost lost within it.

That dot is us.

The photograph was taken 36 years ago on Valentine's Day by NASA's Voyager 1.

Voyager 1 was launched in 1977 to study Jupiter and Saturn. By 1990, NASA was preparing to switch off its cameras permanently to conserve the spacecraft's limited power.

But before the cameras went dark, there was one last idea.

Astronomer Carl Sagan, a member of the Voyager imaging team, had spent years arguing that the spacecraft should turn around and photograph the Solar System it was leaving behind.


Carl Sagan unveils the Pale Blue Dot in 1990. 
(The Planetary Society/Vimeo)



So on February 14, 1990, Voyager captured 60 frames for a Solar System 'family portrait'. Earth appeared in one of them.

From around 6.4 billion kilometers (4 billion miles) away, our entire planet occupied just 0.12 of a pixel. The bright band crossing the image was sunlight scattered inside the camera's optics. Earth happened to fall within one of those rays.

The photograph became known as the Pale Blue Dot.

Four years later, Sagan captured the power of the image in his book of the same name:

"Look again at that dot. That's here. That's home. That's us."

https://www.youtube.com/watch?v=wupToqz1e2g

Everyone who had ever lived had lived their lives on the tiny Pale Blue Dot.

Perhaps that is precisely why the image has refused to grow old.

Scientists have a name for the shift in perspective astronauts sometimes describe after seeing Earth from space: The overview effect.

One study found that astronauts described awe, a stronger sense of connection with humanity, and heightened awareness of Earth's fragility after viewing the planet from above.

The Pale Blue Dot offers the rest of us something similar without leaving the ground.

People quite literally want to get closer to that tiny Earth.

An updated version of the Pale Blue Dot image, released in 2020.
 (NASA/JPL-Caltech)

When Voyager's Solar System portrait was displayed as a large mosaic at NASA's Jet Propulsion Laboratory, the section containing Earth reportedly had to be replaced repeatedly because so many visitors touched the tiny dot.

It is a wonderfully human reaction to a photograph taken from an unimaginable distance.

We know everyone is there, so we reach out to touch it.

Thirty-six years later, the world doing the reaching has changed dramatically.

There were no smartphones, social media feeds, or constant notifications when the Pale Blue Dot photograph was taken.

Today, a message can cross the planet in seconds. Billions of other people's lives stream past us on screens. Friends and family thousands of kilometers away can appear in our homes through video calls.

We don't even need another human at the other end anymore. AI companion apps are designed to listen and respond whenever we want them.

Some research suggests they can help. A study found that AI companions could temporarily reduce loneliness, particularly when people felt the chatbot was listening to them.

But a year-long study of more than 2,000 adults found that greater social chatbot use predicted greater loneliness later on. That doesn't show the chatbots caused loneliness – people who already feel lonely may simply turn to them more often.

Together, the findings point to something more complicated.

Being able to reach someone is not the same as feeling connected to them.



The famous Earthrise image, showing Earth in part shadow.
 (NASA)



Despite all the new ways to reach one another, loneliness remains remarkably common.

A World Health Organization report published in 2025 estimated that about one in six people worldwide experiences loneliness.

But maybe the Pale Blue Dot asks us to think about 'connection' differently.

Much of modern technology asks us to zoom in: Read this message, enlarge this face, tap this notification, join this argument, look closer at somebody else's life.

The Pale Blue Dot does the opposite.

It takes us billions of kilometers away.

From that distance there are no follower counts. No countries. No status symbols. No arguments or victories.

You cannot distinguish the people you love from people you will never meet.

Everyone is inside the same point.

Voyager 1 took the Pale Blue Dot just 34 minutes before its cameras were switched off forever.

The spacecraft kept traveling, eventually entering interstellar space and becoming the most distant human-made object from Earth.

Voyager is still moving farther away from us.

But one tiny photograph it took has spent 36 years moving us in a different way.

Maybe that's why we still share it, enlarge it, and search for the tiny Earth on our screens.

The photograph doesn't just give us another way to connect.

It reminds us how deeply connected we already are.



The Life of Earth
https://chuckincardinal.blogspot.com/

Science Weighs in on Whether All Those Photos Are Helping or Hurting Your Memory

23 Aug. 2026, By M. Irving

(m-gucci/iStock/Getty Images Plus)

Chances are, there are thousands of photos on your phone right now – and you probably never look at them.

Selfies at parties. Brunch spreads, carefully staged for Instagram. Your cat sleeping in slightly different positions. Sunsets, supermoons, and travel snaps.

One of the main reasons people take photos is to help us remember an experience or event. But it turns out that stopping to snap a selfie could actually hinder your memory of something.

It sounds counterintuitive – surely it's easier to recall something more vividly with the help of a visual cue, right? But a growing body of research keeps finding that this isn't the case.

A new study, published in the journal Memory & Cognition, adds more evidence, showing that taking screenshots consistently impaired participants' memory across seven different experiments.

"The results of the current study suggest that we are likely harming our memory for information and experiences with the press of a button, and that this impairment may even extend beyond what is captured," says Sophia Fabrizio, a psychologist at Binghamton University.

https://www.youtube.com/watch?v=7E2Ibe66j94

The idea that taking photos reduces our ability to remember is not new – the effect has shown up in research for decades. But exactly why the so-called 'photo-taking impairment effect' occurs remains unclear.

Scientists have proposed a few potential explanations. One suggests that the act of using your camera or phone could be dividing your attention or disengaging you from what's going on around you, so that your brain isn't devoting as many resources to encoding the memory of the event itself.

The leading hypothesis, though, is what's called cognitive offloading. Basically, your brain might dedicate less effort to remembering something if it knows that memory is already being stored in the form of a photograph.

Whether this is a conscious or unconscious decision doesn't seem to matter.

It's similar to what's called the 'Google effect' – why bother storing information in your brain when you can find it in seconds online? That's why many of us don't really memorize phone numbers anymore, instead consulting the contacts list saved on our phones.

To investigate these ideas, the Binghamton team tested 892 participants across seven experiments, teasing out different aspects of the phenomenon. In all experiments, however, the results were broadly the same.

Participants consistently performed worse on memory tests after snapping images.

In the first experiment, participants were shown 44 images of art on their phones, and asked to screenshot or simply view each one. After a 10-minute distraction task, participants were then given a memory test, in which they were asked to identify the original images they'd seen out of three similar variations of each.


An example of a question on the memory test portion of the experiment. 
(Fabrizio et al., Mem. Cogn., 2026)



The participants performed consistently worse on images they'd screenshotted than images they'd just viewed.

The second experiment was designed to test if there was some kind of trade-off – a benefit that countered the memory deficit. This time, the researchers added a new question to the memory test phase at the end, asking participants if they recalled whether they'd viewed or screenshotted each image.

Again, participants remembered less about images they'd screenshotted than those they'd just viewed.

The next few batches of experiments were designed to see if maybe those cognitive resources were being used elsewhere. The scientists had participants perform math problems or memory tasks unrelated to the images.

However, there were few signs that participants who screenshotted images performed any better than those just viewing images.

In later experiments, the researchers explored what happened when participants were specifically told they were going to have a memory test of the images and would have a chance to review their screenshots.

Some participants were told they would be tested within 30 minutes; others were told they'd come back a month later for the memory test. In reality, however, both groups were tested 10 minutes after the image session.

The team's hypothesis was that those who thought they'd have a bigger gap before the test would rely more on cognitive offloading than those who knew they were being tested straight away.

Intriguingly though, there was little difference between those groups. Instead, participants from both groups continued to demonstrate weaker memory for images they'd screenshotted compared to images they'd viewed.

"In sum, the present study suggests a pronounced memory impairment associated with screenshotting, with only modest benefits to subsequent learning observed under very circumscribed conditions and measures of memory performance," the study authors conclude.

It's a complicated area of research – after all, other studies have suggested that taking photos does aid your memory.

Either way, it's enough to make you hesitate next time you reach for your phone to take a picture.

While few people probably miss memorizing phone numbers, the potential loss feels much more personal if getting too snap-happy means we're harming our ability to remember life milestones like weddings, birthdays, and vacations.


The birth of modern Man
https://chuckincardinal.blogspot.com/

Scientists Asked AI to Read Plant Signals—The Results Were Unexpected

Past Unsealed, 10 Aug 2026


Plants may not have brains or nervous systems like animals, but they constantly respond to their surroundings through chemical, electrical, and physiological signals.

Now, researchers are using artificial intelligence to analyze these complex patterns in ways that could reveal new insights into plant biology. In this video, we explore how scientists use sensors, imaging, electrical measurements, and machine-learning techniques to study plant responses to light, temperature, touch, water availability, and other environmental conditions. 

Could AI eventually recognize patterns in plant signals that humans struggle to detect? And does that mean plants are “communicating” in a way comparable to animals? We'll examine the science carefully and distinguish genuine biological signaling from sensational interpretations.


The Life of Earth
https://chuckincardinal.blogspot.com/

Sunday, 23 August 2026

Chuck's picture corner to Aug. 23, 2026

It's been a time of travel and visiting for me this last few weeks. Summer has been cooler and much wetter than it often is. It's raining again today and is supposed to continue most of the week.

variety of leaf shapes in the very back of the yard

an autumn joy sedum soon to open

forget what these guys are called possibly obedience plant

perennial sunflowers

hibiscus, cup and saucer variety

these guys are well enjoyed by bees and florists alike

rain rain rain

Visited the botanical gardens in Montreal, here are some pics










nasturtiums hanging on the front porch

morning on the front porch


Enjoy the day