Friday, July 17, 2026

 

IBEC-led consortium develops light-activated drugs that restore sight in blind mice



The newly developed compounds mimic the function of photoreceptor cells, which degenerate in blinding diseases such as age-related macular degeneration (AMD) and retinitis pigmentosa (RP)




Institute for Bioengineering of Catalonia (IBEC)

Statements in English by Rosalba Sortino. 

video: 

Statements in English by Rosalba Sortino.
Sortino is a post-doctoral researcher at the Nanoprobes and Nanoswitches group at IBEC and co-first author of the study.

You can find various images and videos related to this research, as well as statements from the researchers, at the following link:
https://ibecbarcelona-my.sharepoint.com/:f:/g/personal/smoreira_ibecbarcelona_eu/IgBKJ9AgPCPdQps9y9kOrutfAQI8RuHwaI3KEDW1MqXf9gc?e=J2w0fI

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Credit: Institute for Bioengineering of catalonia (IBEC)






Blinding diseases caused by the degeneration of photoreceptors, such as age-related macular degeneration (AMD) and retinitis pigmentosa (RP), affect 200 million people worldwide and represent the leading causes of visual impairment and blindness. Beyond the personal impact on quality of life and independence, vision loss places a global economic burden estimated at over US$400 billion per year in healthcare costs and lost productivity.

In many of these conditions, photoreceptor cells — the retina’s light detectors — progressively degenerate and die. Although the downstream retinal neuronal circuitry remains largely intact and functionally viable, it no longer receives the light signals needed to drive visual processing towards the brain. This opportunity has fuelled intense research efforts to develop treatments capable of restoring light sensitivity to the eye. Current strategies include gene therapy — effective only for a very small subset of patients with specific mutations — and electronic retinal prostheses, which are invasive, expensive, and require extensive training for effective use. More recently, optogenetics and light-responsive drugs have entered clinical testing, the latter with encouraging safety results, but achieving high-quality vision at ambient illumination levels remains a major challenge.

Now, a consortium led by the Institute for Bioengineering of Catalonia (IBEC) has made a major step forward in the quest to restore vision in humans. Published in the Journal of the American Chemical Society (JACS),  the research presents a new class of photoswitchable smallmolecule drugs capable of restoring key visual functions in animal models of blindness. Compounds can take over the functional role of photoreceptors by injecting them in the eye as done with other ophthalmic drugs, or even by administering eye drops. In either case, they do not require genetic manipulation or implanted devices. Moreover, the compounds show promising safety profiles that position them as potential drug candidates for future vision restoration therapies.

“These molecules do not cure blindness, because they do not address the cause of photoreceptor degeneration. But they are remarkably effective at restoring sight, and they do so using a very simple and potentially patient-friendly approach”, explains Pau Gorostiza, ICREA Research Professor at IBEC, leader of the Nanoprobes and Nanoswitches group, member of CIBER-BBN and co-leader of the study. 

“Our goal was to restore vision using a molecular mechanism that is as close as possible to how the healthy retina works,” says Rosalba Sortino, former PhD student at the University de Barcelona, currently post-doctoral researcher at Gorostiza’s group at IBEC and co-first author of the study. “Instead of bypassing retinal processing, we aimed to reactivate it right at the same level of the retinal circuit than the lost photoreceptor cells.”

The work builds on more than a decade of research and was carried out in collaboration with the team led by Pedro de la Villa at the University of Alcalá (UAH), as well as researchers from the Institut de Química Avançada de Catalunya (IQAC-CSIC), the University of Barcelona (UB), the Institute Ramón y Cajal of Health Research (IRYCIS), the Autonomous University of Barcelona (UAB), and the Fundació Eduard Soler.

 

Restoring visual function in animal models

The approach is based on photopharmacology, a technique in which drug activity can be reversibly controlled with light. This innovative technique involves modifying a drug's chemical structure by adding a light-activated molecular switch that allows controlling the pharmacological action with light. With this aim, the researchers developed a family of compounds called prosthe6 that target ON-bipolar neurons and successfully restored saccadic eye movements (optokinetic reflex) in blinded zebrafish larvae, a widely used model for studying visual acuity. Even more strikingly, the researchers demonstrated recovery of innate light-avoidance behaviour in mouse models of age-related macular degeneration and retinitis pigmentosa.

Healthy mice naturally prefer to remain in dark environments and instinctively avoid brightly lit areas, a behaviour that relies entirely on a functional visual system. Blind mice, by contrast, lose this preference and move indistinctly between light and dark spaces, as they are unable to perceive light. After treatment with prosthe6, the blind mice once again showed a clear and spontaneous preference for dark areas, indicating that they could perceive light and use this information to guide their behaviour. This recovery occurred without any training and under light levels comparable to those found indoors or on an overcast day, demonstrating that the treatment restores functional light perception capable of driving natural, visually guided behaviour.

Two lead compounds, prosthe6-12 and prosthe6-15, showed particularly promising results. The restored behaviours were observed not only after intraocular injection, but also after topical administration as eye drops.

 

Targeting the retina at the right place

The prosthe6 compounds work by acting on a specific type of retinal cells called ON bipolar cells, which normally receive signals from the photoreceptors, the eye’s light-sensing cells. “In healthy vision, ON bipolar cells play a key role in passing on information about the presence of light to the rest of the visual circuit. In degenerative eye diseases, although the photoreceptors are lost, much of this underlying circuitry remains intact but inactive. This creates a major therapeutic opportunity,” explains de la Villa, co-leader of the study.

By targeting a protein (mGlu6) in this preserved part of the retina, prosthe6 compounds can take over the role of the missing photoreceptors. When light enters the eye, the molecules respond by changing their shape, triggering signals inside the retina in a way that closely resembles natural vision. In this way, the drugs effectively act as “molecular prostheses”, helping the eye process light again without the need for implants or genetic modifications.

Importantly, these compounds are designed to work under normal lighting conditions and do not require light-enhancing devices as optogenetics. They are small, water-soluble molecules that respond to ordinary visible or white light, such as indoor lighting or daylight, without requiring intense or specialised light sources.

 

From fundamental chemistry to translational science

The timing of the study is also significant: it follows shortly after the publication of the first-ever clinical trial of a photopharmacological drug for vision restoration (which targets an unrelated protein), highlighting that this emerging therapeutic strategy is in its way to reach patients.

The prosthe6 technology is protected by patent and the researchers are now evaluating its safety and formulation to extend the duration of visual rehabilitation. The team is also working with Eyelumina, a spin-off company in formation to secure investments that support translational development and future clinical trials.

“Turning this into a therapy is a long and laborious process,” says Gorostiza. “But the results show that there is a realistic possibility of restoring high-quality vision with drugs, non-invasively, reversibly and with a mechanism that is independent of the specific retinal disorder or genetic mutation to reach a majority of patients.”

If successful in humans, the drug-based approach would offer a widely accessible and affordable alternative to existing vision restoration technologies, especially relevant for patients with advanced retinal degeneration for whom no effective treatments currently exist.

This research received seed funding from the patients’ foundation Fundaluce (2016), CaixaHealth (Drug4sight, 100010434), the Government of Catalonia (Innovadors, Producte, and Peris programmes), and CIBER-BBN (valorization programme).

This research is also part of Rosalba Sortino’s doctoral thesis. She was awarded the Extraordinary Doctoral Prize for the 2023–24 academic year by the University of Barcelona for her thesis, which she presented at the Faculty of Pharmacy and Food Sciences.

About IBEC

The Institute for Bioengineering of Catalonia (IBEC) is a CERCA center, three times recognized as a Severo Ochoa Center of Excellence, and holds the TECNIO label as a technology developer and business facilitator. IBEC is a member of the Barcelona Institute of Science and Technology (BIST) and conducts multidisciplinary research at the forefront of engineering and life sciences to generate knowledge. The institute integrates fields such as nanomedicine, biophysics, biotechnology, tissue engineering, and applications of information technologies in the health sector. IBEC, established in 2005, is a collaborative effort of the Generalitat de Catalunya, the University of Barcelona (UB), and the Polytechnic University of Catalonia (UPC).


Vision restoration [VIDEO] 

A schematic video explaining how the technology works. Audio description in English.

You can also find this vidoe on YouTube: https://youtu.be/PCgXsnKuQ0s

You can find various images and videos related to this research, as well as statements from the researchers, at the following link:

https://ibecbarcelona-my.sharepoint.com/:f:/g/personal/smoreira_ibecbarcelona_eu/IgBKJ9AgPCPdQps9y9kOrutfAQI8RuHwaI3KEDW1MqXf9gc?e=J2w0fI 


B-roll [VIDEO] 

Researchers Rosalba Sortino and Joaquin Martinez Tambella working in the laboratories of the Institute for Bioengineering of Catalonia (IBEC).


Sortino is a post-doctoral researcher at the Nanoprobes and Nanoswitches group at IBEC and co-first author of the study.


Martinez is a PhD student at the Nanoprobes and Nanoswitches group at IBEC and co-first author of the study.

You can find various images and videos related to this research, as well as statements from the researchers, at the following link:


https://ibecbarcelona-my.sharepoint.com/:f:/g/personal/smoreira_ibecbarcelona_eu/IgBKJ9AgPCPdQps9y9kOrutfAQI8RuHwaI3KEDW1MqXf9gc?e=J2w0fI

Credit

Institute for Bioengineering of Catalonia (IBEC)

 

Blood-based test can predict risk of developing symptoms of Alzheimer's up to a decade early



While not recommended for routine use in asymptomatic individuals, a study led by Mass General Brigham investigators found p-tau217 blood tests show promise for more personalized testing and long-term risk estimates



Mass General Brigham





Key Takeaways

  • Research showed that symptom-free older adults with very high levels of the Alzheimer’s blood biomarker p-tau217 had an estimated 38% risk of developing cognitive impairment over five years, and up to 78% over ten years, though longer-term estimates were based on more limited data. 

  • The blood test provided important clues about future symptom development beyond what brain scans and genetic testing provide. 

  • Researchers say the findings could help identify participants for research trials, but better preventive treatment options are needed before such tests are incorporated into routine care.

A blood test for the biomarker phosphorylated tau 217 (p-tau217) recently received federal clearance, but questions have emerged around the extent to which such tests can accurately predict whether a cognitively healthy individual will go on to develop cognitive impairment—a key symptom of Alzheimer’s disease. A new, international study involving researchers across three continents and led by experts from the Mass General Brigham Neuroscience Institute sheds new light on the prognostic value of such tests. The study found that cognitively unimpaired individuals with very high levels of the biomarker had a 38% absolute risk of developing cognitive impairment over the next five years—and higher risk over the next 10 years. Results are presented at the Alzheimer’s Association International Conference and simultaneously published in JAMA.

“We do not yet have disease-modifying treatments for people who find out they are at high risk for developing cognitive impairment due to Alzheimer’s disease, which is why we don’t recommend currently available blood tests for asymptomatic individuals. Today, our medical advice would remain the same regardless of test results: exercise regularly, maintain a healthy diet, and prioritize sleep and overall wellness,” said senior and corresponding author Reisa Sperling, MD, a neurologist with the Mass General Brigham Neuroscience Institute. “But the preventive care landscape could change rapidly if ongoing trials of disease-modifying therapies prove beneficial. In the future, these tests could help identify those who might benefit most from these treatments. Our long-term goal is to get us to where cholesterol testing is in predicting your risk of a heart attack.”

To conduct their study, investigators pooled data from across six observational and clinical trial studies based in North America, Japan, and Australia. The studies included 2,684 cognitively unimpaired older adults. Blood samples were tested for p-tau217 levels and PET imaging was conducted when participants enrolled in the studies to get a baseline reading. Participants received annual follow-ups to assess cognitive function. The earliest enrollment in one of the studies was in 2004, and the most recent follow-up was in 2025.

The research team charted participants’ cognitive trajectories, quantifying their risk of developing cognitive impairment over time. Approximately 478 participants progressed to cognitive impairment. Higher p-tau217 levels at baseline were significantly associated with cognitive impairment. Individuals with very high p-tau217 levels had a 38% risk of developing cognitive impairment over five years. This risk grew with time, reaching 78% over 10 years. However, data were much sparser for 10-year outcomes and beyond.

“This is a critical step toward better understanding what p-tau217 can tell us about a person’s risk for cognitive impairment,” said lead author Rachel F. Buckley, PhD, a cognitive neuroscientist with the Mass General Brigham Neuroscience Institute. “What really sets this work apart is that it estimates an individual’s level of risk for cognitive impairment. We harmonized data across six cohorts, creating a large and varied data set, and still found consistent results showing how p-tau217 informs risk over time.”

Researchers found that the blood test predicted risk independent of other known risk factors, including amyloid-beta plaques that can appear on PET scans and known genetic risk factors (such as APOE4). While the study’s design has many strengths, it is still limited by selection bias and focuses on relatively short-term risks, rather than over a lifetime. Future work is needed to validate the findings in broader and more representative populations. By following participants over longer periods, researchers will be able to further refine individual risk estimates.

“Today, p-tau217 can help identify people at high risk for future Alzheimer’s dementia for participation in prevention trials,” said Sperling. “As these trials move forward, individualized estimates, including the biomarker’s prognostic value, could guide earlier treatment and monitoring decisions.”

Authorship: In addition to Sperling and Buckley, Mass General Brigham authors include Diana L. Townsend, Colin J. Birkenbihl, Madison Cuppels, Gillian T. Coughlan, Mabel T. Seto, Jane A. Brown, Michael J. Properzi, Merle C. Hönig, Annie Li, Aaron P. Schultz, Jasmeer Chhatwal, Hyun-Sik Yang, Steven Arnold, Pia Kivisäkk, Brian Healy, Jorge Garcia Condado, Wai-Ying Wendy Yau, Michelle Farrell, Rebecca E. Amariglio, Dorene M. Rentz, Kathryn V. Papp, and Keith A. Johnson. Additional authors include Bryan D. James, Sid O’Bryant, Robert A. Rissman, Melissa Petersen, Jessica Z. K. Caldwell, Tobey Betthauser, Julie Elisabeth Oomens, Maria Carrigan, Sterling C. Johnson, Oliver Langford, Ron Brookmeyer, Timothy J. Hohman, Michael Donohue, and Paul S. Aisen.

Disclosures: Buckley reported receiving grants from the National Institutes of Health (NIH) outside the submitted work. Sperling reported receiving grants from NIH (A4; R01 AG063689, U24AG057437), GHR Foundation, and Alzheimer’s Association during the conduct of the study; consulting for AbbVie, AC Immune, Acumen, Alector, Apellis, Biohaven, Bristol Myers Squibb, Ionis, Immunobrain, Janssen, Novo Nordisk, Oligomerix, Prothena, Roche, Therini, and Vaxxinity; and public-private partnership clinical trial funding from Eisai and Eli Lilly outside the submitted work. Additional author disclosures can be found in the JAMA paper’s disclosures section.

Funding: This study was funded in part by the National Institutes of Health (R01AG079142, DP2AG082342, U01 AG024904, R01AG054073, R01AG058533, R01AG070862, P41EB015922, U19AG078109, R01AG027161, R01AG021155, P30AG062715, U19AG010483, R01AG063689, P01 AG036694, P41EB015896, S10RR021110, S10RR023401, S10RR023043, P30AG062421), the U.S. Department of Defense (W81XWH-12-2-0012), Eli Lilly, the Alzheimer’s Association, Accelerating Medicines Partnership, the GHR Foundation, an anonymous foundation, private donors, and in-kind support from Avid, Cogstate, Albert Einstein College of Medicine, Foundation for Neurologic Diseases, and Meso Scale Diagnostics.

Paper cited: Buckley RF et al. “Prognostic Value of Blood-Based P-Tau217 Levels for Progression to Cognitive Impairment” JAMA DOI: 10.1001/jama.2026.12556

###

About Mass General Brigham

Mass General Brigham is an integrated academic health care system, uniting great minds to solve the hardest problems in medicine for our communities and the world. Mass General Brigham connects a full continuum of care across a system of academic medical centers, community and specialty hospitals, a health insurance plan, physician networks, community health centers, home care, and long-term care services. Mass General Brigham is a nonprofit organization committed to patient care, research, teaching, and service to the community. In addition, Mass General Brigham is one of the nation’s leading biomedical research organizations with several Harvard Medical School teaching hospitals. For more information, please visit massgeneralbrigham.org.

 

Microplastics reach even 2,000 meters below the ocean surface, study finds first cross-ocean study reveals how microplastics accumulate in deep-sea hydrothermal vent animals



Microplastics detected in 92% of deep-sea animals collected from hydrothermal vents more than 2,000 meters below the ocean surface





National Research Council of Science & Technology

Microplastic Bioaccumulation in Deep-Sea Vent Animals 

image: 

Overview of microplastic fate in deep-sea hydrothermal vents. MP, microplastic; IO, Indian Ocean; SWP, southwestern Pacific Ocean

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Credit: Korea Research Institute of Bioscience and Biotechnology (KRIBB)





Plastic pollution has become a global environmental crisis, with an estimated 11 million tons of plastic entering the oceans each year. As larger plastic debris breaks down into microplastics, these tiny particles are transported throughout marine ecosystems by ocean currents, threatening marine life and ultimately entering the human food chain.

While numerous studies have documented microplastic contamination in coastal waters and surface oceans, little has been known about their presence in the deep sea, which accounts for nearly 90% of the world's marine environment. In particular, hydrothermal vent ecosystems—unique deep-sea habitats that support diverse life despite the absence of sunlight—have remained largely unexplored with respect to microplastic pollution.

A research team led by Dr. Se-Joo Kim and Dr. Jinyoung Jeong at the Korea Research Institute of Bioscience and Biotechnology (KRIBB), in collaboration with researchers from the Korea Institute of Ocean Science and Technology (KIOST), has conducted the world's first comparative study revealing how microplastics accumulate in animals inhabiting hydrothermal vents in two different oceans.

The researchers analyzed deep-sea snails and mussels collected by KIOST from hydrothermal vents located more than 2,000 meters below the surface in the North Fiji Basin of the southwestern Pacific Ocean and the Central Indian Ridge in the Indian Ocean. KRIBB researchers subsequently performed detailed microplastic analyses and ecological interpretation of the collected specimens.

The study detected microplastics in 92% of all animals examined, with an average of 3.42 particles per individual, demonstrating that even remote deep-sea hydrothermal vent ecosystems are already contaminated by plastic pollution. Among the detected polymers, polystyrene, widely used in consumer products and packaging materials, was the most abundant.

The researchers further discovered that feeding behavior plays a major role in determining where microplastics accumulate within the body.

In grazing snails that feed on microbial mats covering the seafloor, microplastics were concentrated primarily in the digestive organs. By contrast, filter-feeding mussels exhibited a relatively even distribution of microplastics throughout their tissues, indicating that biological characteristics strongly influence the pathways through which microplastics enter and accumulate within marine organisms.

The comparison between two ocean basins also revealed substantial regional differences.

Animals collected from the Indian Ocean contained significantly higher concentrations of microplastics than those from the southwestern Pacific. After normalizing for body weight, Indian Ocean specimens contained up to 14.7 times higher microplastic concentrations. The researchers suggest that differences in surrounding human activities, riverine plastic inputs, and large-scale ocean circulation likely contributed to these regional variations.

The findings provide the first scientific evidence that plastic pollution generated at the ocean surface can be transported thousands of meters downward, reaching one of Earth's most remote and extreme marine ecosystems.

The study also demonstrates that biological characteristics such as feeding strategy influence how microplastics accumulate within organisms, while regional environmental conditions determine the overall level of contamination.

These findings are expected to contribute to future deep-sea environmental monitoring, environmental impact assessments for deep-sea mineral resource development, and long-term conservation strategies for deep-sea ecosystems.

"Plastic pollution has now spread even to deep-sea hydrothermal vent ecosystems that were once considered among the most isolated environments on Earth," said Dr. Se-Joo Kim, one of the corresponding authors of the study. "Our findings provide important scientific evidence for establishing future deep-sea environmental monitoring systems and conservation policies."

Korea Research Institute of Bioscience and Biotechnology (KRIBB) is a leading national research institute in South Korea dedicated to cutting-edge research in biotechnology and life sciences. Established in 1985, KRIBB focuses on advancing scientific knowledge in areas such as molecular biology, genomics, bioinformatics, synthetic biology, and aging-related studies. As a government-funded institute, KRIBB plays a pivotal role in driving innovation, supporting national R&D strategies, and collaborating with academic and industrial partners both domestically and internationally.
This research was supported by the Basic Science Research Program funded by the Ministry of Education and the Ministry of Science and ICT, the Creative Convergence Research Program of the National Research Council of Science & Technology (NST), the Major Research Programs of the Korea Research Institute of Bioscience and Biotechnology (KRIBB), and the Major Research Programs of the Korea Institute of Ocean Science and Technology (KIOST).

The study was published online on June 3 in Water Research (Impact Factor: 12.8), one of the world's leading international journals in environmental science and water research.

The article is titled "Oceanic determinants of microplastic bioaccumulation in fauna of deep-sea hydrothermal vents: Comparative study of the southwestern Pacific and Indian Oceans."

The corresponding authors are Dr. Jinyoung Jeong and Dr. Se-Joo Kim of the Korea Research Institute of Bioscience and Biotechnology (KRIBB). The co-first authors are Won-Kyung Lee and Yugyeong Sim. Additional co-authors include Se-Jong Ju of the Korea Institute of Ocean Science and Technology (KIOST) and Dongsung Kim of KIOST.

 

Bacteria form 'herds' to survive predators, offering fresh insight into Earth's carbon cycle 



Researchers at Queen Mary University of London have discovered that tiny photosynthetic bacteria band together into protective "herds" when attacked by predators – a survival strategy that could also influence how carbon is stored in the world's waters




Queen Mary University of London

Cyanobacteria 

image: 

Credits belong to the ISME journal

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Credit: Credits belong to the ISME journal






Bacteria form 'herds' to survive predators, offering fresh insight into Earth's carbon cycle 

Researchers at Queen Mary University of London have discovered that tiny photosynthetic bacteria band together into protective "herds" when attacked by predators – a survival strategy that could also influence how carbon is stored in the world's waters. 

Published in The ISME Journal, the study reveals for the first time that cyanobacteria – microscopic organisms responsible for producing a significant proportion of the Earth's oxygen  – rapidly cluster into dense groups when they detect the presence of foreign bacteria. These defensive clumps, known as flocs, shield inner cells from attack, much like a herd of wildebeest protects its most vulnerable members from predators. 

The research helps explain a long-standing biological mystery: why cyanobacteria invest energy in forming flocs despite the apparent cost to their growth. The findings suggest the behaviour is an evolved defense mechanism that could have implications extending from microbial ecology to the global carbon cycle. 

The research team studied interactions between the cyanobacterium Synechocystis and Pseudomonas aeruginosa, a bacterium commonly found in soil and freshwater. They found that the predator uses microscopic molecular "weapons" to puncture and kill individual cyanobacterial cells, consuming the nutrients they release. In response, the cyanobacteria rapidly aggregate into dense flocs surrounded by a protective layer of extracellular slime, making it much harder for predators to reach the cells inside.  

"It was very exciting to see this project leading to a new explanation for why cyanobacteria form flocs. We saw that these tiny cells quickly come together into protective clumps when predators are present, showing that this is a coordinated survival strategy, not just a passive response. This work gives a new way to think about how this can affect the biological carbon pump in nature. In simple terms, it is like how many living organisms stay in groups for protection, cyanobacteria also cluster together to reduce the risk of being attacked." Says Dr Shylaja Mohandass, first author of the study. 

The team found that predators grew more successfully when attacking mutant cyanobacteria that could not form these protective clumps, providing strong evidence that flocculation is an effective defense against bacterial predation. The researchers also discovered that the response is triggered simply by contact with foreign bacteria, suggesting cyanobacteria can distinguish between "self" and "non-self" at the microscopic level.  

Beyond revealing an unseen microbial battle, the findings may also help scientists better understand one of the planet's most important natural climate processes. 

When cyanobacteria form dense flocs, they are more likely to sink, carrying carbon absorbed through photosynthesis into deeper waters where it can remain stored for long periods. This process, known as the “biological carbon pump”, plays a crucial role in regulating atmospheric carbon dioxide. 

Professor Conrad Mullineaux from Queen Mary University of London, said: 

"It was fascinating to look in the microscope and see a complex predator-prey relationship unfolding on such a tiny scale. It reminds me of lions and wildebeest on the Serengeti - you can see P. aeruginosa catching and lysing those cyanobacteria that were a bit too slow to get into the herd".  

The discovery also raises an intriguing possibility: bacteria previously thought to reduce carbon storage by consuming organic matter may, under some circumstances, actually help increase carbon burial by triggering floc formation in photosynthetic microbes. 

"It's so interesting to see that bacterial predation may actually be a crucial factor in the control of environmental carbon levels, and is an exciting new avenue for the field to explore." added Dr Alice Collins, from Imperial College London, who contributed her Pseudomonas expertise to the study. 

Cyanobacteria transformed the biosphere about 2.5 billion years ago, and today they remain hugely abundant in lakes and oceans, producing over 20% of the world’s oxygen. This study is indispensable as it reveals that microscopic bacteria work together to defend themselves from predators—and that this behaviour could have unexpected consequences for how our planet stores carbon.