Drifting architects: Plankton, climate, and the race to understand our changing ocean

On a sun-drenched morning off the coast of Villefranche-sur-Mer, the Sagitta III cuts through the cobalt waters of the Mediterranean, past the quiet marinas and pine-fringed terraces of France’s Côte d’Azur. The 40-foot scientific vessel – named after a fearsome zooplankton with hook-lined jaws – rumbles toward a lonely yellow buoy bobbing offshore.

In the distance, the resort town shimmers, a mirage of pastel villas and church towers clinging to the cliffs. But aboard the Sagitta III, the romance ends at the rail. Lionel Guidi, a local scientist at the Villefranche Oceanography Lab — known, with fitting Frenchness, by its acronym LOV — peers into the sea with a practiced intensity.

He is here to fish plankton.

“There’s life!” cries marine technician Anthéa Bourhis

Around him, a veteran crew moves with precision, under the iron fist of Captain Jean-Yves Carval. “Plankton is fragile,” cautions the rugged seaman, who’s spent nearly 50 years navigating freighters, trawlers – and now, scientific boats. “If you go too fast, you make compote.”

The craft slows as it reaches the buoy, a sampling site where Guidi and his LOV colleagues have gathered marine data every day for decades. Below deck, the boat’s bearded chief mechanic, Christophe Kieger, readies a large winch. Its 12,000-foot cable unfurls, sending a fine-meshed net – each pore no wider than a grain of salt – drifting toward the deep. Slowly, it sinks to 250 feet.

Minutes later, the net resurfaced, heavy with a brownish, gelatinous goo.

“There’s life!” cries Anthéa Bourhis, a 28-year-old technician from Brittany, as she carefully transfers the contents into a plastic bucket.

Indeed, that catch holds more than seawater and slime. It is the raw material of the planet’s past – and perhaps its future.

Lionel Guidi, 44, a plankton-research scientist at the Villefranche Oceanography Lab, known as LOV (part of IMEV-Institut de la Mer de Villefranche, Sorbonne University-CNRS).

Lionel Guidi, 44, a plankton-research scientist at the Villefranche Oceanography Lab, known as LOV (part of IMEV-Institut de la Mer de Villefranche, Sorbonne University-CNRS).

A worrisome trend

Plankton form the beating heart of the ocean’s engine. These tiny organisms absorb carbon dioxide, release oxygen, and underpin the entire marine food web. Without them, life as we know it would not exist.

But what is plankton?

It’s not a single creature, but a vast cast of marine nomads, all bound by one trait: they can’t swim against the current. They drift with tides and eddies, riding invisible flows that govern their lives. Some are no bigger than a speck of dust; others, like jellyfish, can stretch more than a meter wide.

There are two main kinds. Those that harness sunlight: phytoplankton — microscopic marine plants that photosynthesize like greenery on land and, over geological time, have produced more than half the oxygen we breathe. And those that feed: zooplankton — tiny animals that graze on their plant-like cousins, hunt each other, and themselves become prey, sustaining fish, whales, and seabirds alike.

At the Villefranche Oceanography Lab, scientists have been tracking these creatures for decades. Their daily sampling, performed just a few miles offshore, has yielded one of the longest continuous records of plankton in the world.

And that record is now showing signs of stress.

“At our observation site, surface temperatures have risen by about 1.5 degrees Celsius over the last 50 years,” Lionel Guidi tells UN News. “We’ve seen a general drop in phytoplankton primary production.”

The consequences could potentially be far-reaching. Phytoplankton form the foundation of the marine ecosystem, and a decline in their numbers might trigger a cascading effect, disrupting zooplankton, fish stocks, and ocean biodiversity as a whole. It could also weaken their ability to absorb carbon dioxide, drawing it from the atmosphere and carrying it into the deep – what scientists call ‘the biological pump’, one of Earth’s most vital natural climate regulators.

Phronima, a deep-sea zooplankton, inspired the design of the creature in the 1979 film, “Alien.”

Tiny aliens

Back at the LOV, with the Sagitta III now resting in its berth, Lionel Guidi gestures toward the day’s sample. “Everything starts with plankton,” says the scientist, who, before landing in Villefranche, conducted marine research in Texas and Hawaii.

Meanwhile, Anthéa Bourhis, the young technician, has donned a white lab coat and is bent over the morning’s catch. She fixes the sample in formaldehyde, a step that will store the zooplankton but also kill them. “If they move, it messes with the scan,” she explains.

Once morbidly still, the small animals are fed into a scanner. Slowly, shapes blossom on Bourhis’s screen, as improbably graceful copepods – translucent and shrimp-like, with feathery antennae – float into view.

“You look through the microscope and there’s a whole world,” says plankton specialist Lionel Guidi

“We’ve got some good-looking ones,” she says, grinning.

She begins transferring the digital images into an AI-operated database capable of sorting zooplankton by group, family, and species. 

“They have appendages everywhere,” adds Lionel Guidi. “Arms pointing in all directions.”

One of these deep-sea creatures, called Phronima, even inspired the monster in Ridley Scott’s 1979 film Alien. “You look through the microscope,” Guidi says, “and there’s a whole world.”

Anthéa Bourhis, 28, a lab technician at the Villefranche Oceanography Lab, known as LOV, pours the morning’s catch into a scanning machine to produce a digital image of the zooplankton.

From science to policy

A world that is changing – and not fast enough to be understood by satellites or snapshots. That’s why LOV’s long-term series matters: it captures trends that span years and even decades, helping scientists distinguish natural cycles from climate-driven shifts.

“When we explain that if there’s no more plankton, there’s no more life in the ocean. And if there’s no more life in the ocean, life on land won’t last much longer either, then suddenly people become a lot more interested in why protecting plankton matters,” said Jean-Olivier Irisson, another plankton specialist at the LOV.

Next week, just 15 minutes down the coast, the city of Nice is hosting the third UN Ocean Conference (UNOC3) – a five-day summit bringing together scientists, diplomats, activists, and business leaders to chart the course for marine conservation.

Among the gathering’s priorities: advancing the ‘30 by 30’ pledge to protect 30 per cent of the ocean by 2030 and bringing the landmark High Seas Treaty, or ‘BBNJ accord’ to safeguard life in international waters, closer to ratification.

Guidi underscored the urgency of these UN-led efforts, saying: “All of this must be thought through with people who are capable of making laws, but based on scientific reasoning.”

He doesn’t claim to write policy himself. But he knows where science fits. “We convey scientific results; we have proof of a phenomenon. These are not opinions, they’re facts.”

And so, in Villefranche, Lionel Guidi, Anthéa Bourhis and Captain Carval continue their work – hauling life from the sea, capturing it in pixels, counting its limbs, and sharing its data with scientists across the globe. In doing so, they chart not just a threatened ocean, but the unseen threads that bind life itself.

Source link

How ‘Digital mask’ protects patients’ privacy [Details]

Scientists have created a ‘digital mask’ that will allow facial images to be stored in medical records while preventing potentially sensitive personal biometric information from being extracted and shared.

In research published today in Nature Medicine, a team led by scientists from the University of Cambridge and Sun Yat-sen University in Guangzhou, China, used three-dimensional (3D) reconstruction and deep learning algorithms to erase identifiable features from facial images while retaining disease-relevant features needed for diagnosis.

Facial images can be useful for identifying signs of disease. For example, features such as deep forehead wrinkles and wrinkles around the eyes are significantly associated with coronary heart disease, while abnormal changes in eye movement can indicate poor visual function and visual cognitive developmental problems. However, facial images also inevitably record other biometric information about the patient, including their race, sex, age and mood.

Graphic showing digital masking process/Photo:Professor Haotian Lin’s research group

With the increasing digitalisation of medical records comes the risk of data breaches. While most patient data can be anonymised, facial data is more difficult to anonymise while retaining essential information. Common methods, including blurring and cropping identifiable areas, may lose important disease-relevant information, yet even so cannot fully evade face recognition systems.

Due to privacy concerns, people often hesitate to share their medical data for public medical research or electronic health records, hindering the development of digital medical care.

Professor Haotian Lin from Sun Yat-sen University said: “During the COVID-19 pandemic, we had to turn to consultations over the phone or by video link rather than in person. Remote healthcare for eye diseases requires patients to share a large amount of digital facial information. Patients want to know that their potentially sensitive information is secure and that their privacy is protected.”

Professor Lin and colleagues developed a ‘digital mask’, which inputs an original video of a patient’s face and outputs a video based on the use of a deep learning algorithm and 3D reconstruction, while discarding as much of the patient’s personal biometric information as possible – and from which it was not possible to identify the individual.

Deep learning extracts features from different facial parts, while 3D reconstruction automatically digitises the shapes and movement of 3D faces, eyelids, and eyeballs based on the extracted facial features. Converting the digital mask videos back to the original videos is extremely difficult because most of the necessary information is no longer retained in the mask.

Next, the researchers tested how useful the masks were in clinical practice and found that diagnosis using the digital masks was consistent with that carried out using the original videos. This suggests that the reconstruction was precise enough for use in clinical practice.

Compared to the traditional method used to ‘de-identify’ patients – cropping the image – the risk of being identified was significantly lower in the digitally-masked patients. The researchers tested this by showing 12 ophthalmologists digitally-masked or cropped images and asking them to identify the original from five other images. They correctly identified the original from the digitally-masked image in just over a quarter (27%) of cases; for the cropped figure, they were able to do so in the overwhelming majority of cases (91%). This is likely to be an over-estimation, however: in real situations, one would likely have to identify the original image from a much larger set.

The team surveyed randomly selected patients attending clinics to test their attitudes towards digital masks. Over 80% of patients believed the digital mask would alleviate their privacy concerns and they expressed an increased willingness to share their personal information if such a measure was implemented.

Doctor/IANS

Finally, the team confirmed that the digital masks can also evade artificial intelligence-powered facial recognition algorithms.

Professor Patrick Yu-Wai-Man from the University of Cambridge said: “Digital masking offers a pragmatic approach to safeguarding patient privacy while still allowing the information to be useful to clinicians. At the moment, the only options available are crude, but our digital mask is a much more sophisticated tool for anonymising facial images.

“This could make telemedicine – phone and video consultations – much more feasible, making healthcare delivery more efficient. If telemedicine is to be widely adopted, then we need to overcome the barriers and concerns related to privacy protection. Our digital mask is an important step in this direction.”