. Scientific Frontline: Search results for Université de Genève
Showing posts sorted by relevance for query Université de Genève. Sort by date Show all posts
Showing posts sorted by relevance for query Université de Genève. Sort by date Show all posts

Saturday, August 1, 2026

Université de Genève: SFL Spotlight


The Université de Genève (UNIGE) functions as a primary public research institution within the European academic infrastructure, characterized by a highly internationalized demographic and a distributed, urban campus model. Founded in 1559 by Jean Calvin and Théodore de Bèze as a theological and humanist seminary, the institution transitioned into a secular university in 1872. Today, it operates as Switzerland's second-largest university, accommodating approximately 19,000 students across nine primary faculties: Science, Medicine, Humanities, Social Sciences, Economics and Management, Law, Theology, Psychology and Educational Sciences, and Translation and Interpreting.

Reflecting its position in a city that hosts the European headquarters of the United Nations, the World Health Organization, and the World Trade Organization, the university's student body comprises 40% international scholars. UNIGE leverages this geographic proximity to maintain deep integration into global multilateral networks, holding active memberships in the League of European Research Universities (LERU), the Coimbra Group, and the 4EU+ European University Alliance.

Monday, May 18, 2026

Bioartificial Pancreas Gel for Type 1 Diabetes

Clusters of insulin-producing islet cells (in red) housed within the hydrogel designed by the UNIGE and HUG team. The blue dots represent cell nuclei.
Image Credit: © Berishvili Lab, Université de Genève

Scientific Frontline: Extended "At a Glance" Summary
: Amniogel for Type 1 Diabetes

The Core Concept: Amniogel is an innovative hydrogel designed to house and support transplanted insulin-producing cells, effectively regulating blood sugar levels to eliminate the need for daily insulin injections in individuals with Type 1 diabetes.

Key Distinction/Mechanism: Unlike standard pancreatic islet transplants that frequently fail due to inflammation and poor vascularization in the liver, Amniogel creates a pre-vascularized, natural-like environment. Derived from the human amniotic membrane, it promotes the self-assembly of a microvascular network before transplantation, ensuring an immediate connection to the host's blood supply while actively shielding the graft from cytotoxic immune cells.

Major Frameworks/Components:

  • Human Amniotic Membrane Matrix: The foundational biological material of the hydrogel, utilized to restore critical cellular survival signals lost during isolation.
  • Pancreatic Islets: Embedded clusters of cells containing the vital insulin-producing β (beta) cells.
  • Vessel-Forming Cells: Specialized cells embedded within the gel that self-organize into an active microvascular network prior to patient implantation.
  • Immune Shielding Mechanism: Structural properties of the hydrogel that physically slow the migration of graft-destroying cytotoxic immune cells.

Wednesday, November 1, 2023

Mobile phone use may affect semen quality

Sample of human spermatozoa used in the study by Serge Nef and Rita Rahban (2023), researcher at the Department of Genetic Medicine and Development of the UNIGE Faculty of Medicine and at the SCAHT - Swiss Centre for Applied Human Toxicology.
Image Credit: Rita Rahban

Does electromagnetic radiation emitted by mobile phones affect semen quality? While various environmental and lifestyle factors have been proposed to explain the decline in semen quality observed over the last fifty years, the role of mobile phones has yet to be demonstrated. A team from the University of Geneva (UNIGE), in collaboration with the Swiss Tropical and Public Health Institute (Swiss TPH), has published a major cross-sectional study on the subject. It shows that frequent use of mobile phones is associated with a lower sperm concentration and total sperm count. However, researchers did not find any association between mobile phone use and low sperm motility and morphology. Read the results in Fertility and Sterility.

Semen quality is determined by the assessment of parameters such as sperm concentration, total sperm count, sperm motility and sperm morphology. According to the values established by the World Health Organization (WHO), a man will most probably take more than one year to conceive a child if his sperm concentration is below 15 million per milliliter. In addition, the percentage chance of pregnancy will decrease if the sperm concentration is below 40 million per milliliter.

Many studies have shown that semen quality has decreased over the last fifty years. The sperm count is reported to have dropped from an average of 99 million sperm per milliliter to 47 million per milliliter. This phenomenon is thought to be the result of a combination of environmental factors (endocrine disruptor, pesticides, radiation) and lifestyle habits (diet, alcohol, stress, smoking).

Tuesday, December 16, 2025

A platform to test new cancer treatments

Differentiated hepatic cells growing in a flask re-gain the appearance of cells present in liver.
Image Credit: © FAMOL, UNIGE

Overcoming acquired treatment resistance is one of the major challenges in the fight against cancer. While combination therapies hold promise, their toxicity to healthy tissue remains a major hurdle. To anticipate these risks, researchers at the University of Geneva (UNIGE) have developed in vitro models of the kidneys, liver, and heart – three organs particularly sensitive to such therapies. This fast, animal-free approach paves the way for safer evaluation of new treatments. The findings are published in Biomedicine & Pharmacotherapy

Recent advances in immunotherapy, targeted therapies, and gene therapies have significantly improved survival rates for patients with cancer. However, over time, many tumors develop resistance to these treatments, undermining their effectiveness. This phenomenon, known as ‘acquired resistance’, has become one of the major challenges in oncology. 

Wednesday, May 27, 2026

The Strange Quantum Property of Tomorrow’s Insulator

Akin to an emergent curvature of space embedded in quantum materials, the quantum metric deforms electronic trajectories on the surface of topological insulators.
Image Credit: © Xavier Ravinet—Université de Genève

Scientific Frontline: Extended "At a Glance" Summary: The Quantum Metric in Topological Insulators

The Core Concept: The quantum metric is a unique geometric property that dictates the structure of the space in which electrons move on the surface of topological insulators.

Key Distinction/Mechanism: While conventional insulators block electricity entirely, topological insulators prevent internal currents but allow electrons to flow freely across their surface. The quantum metric effectively deforms these surface electronic trajectories, and recent discoveries show this effect can be electrically controlled.

Origin/History: Topological insulators were initially discovered in 2006. The quantum metric remained a purely theoretical concept until 2025, when a UNIGE-led team first empirically measured it. This most recent study marks its first observation within a three-dimensional topological insulator.

Major Frameworks/Components

  • Use of antimony and tellurium metalloid compounds.
  • Three-dimensional topological insulator structures.
  • Empirical measurement of emergent spatial curvature embedded in quantum materials.
  • Manipulation and electrical control of quantum geometric effects.

Thursday, June 18, 2026

Brain Waves & Autism Language

A child taking part in the study wears an electroencephalography (EEG) cap while watching a cartoon, to record brain activity.
Image Credit: Université de Genève / generated with ChatGPT (OpenAI)

Scientific Frontline: Extended "At a Glance" Summary
: Autistic Language Development and Gamma Waves

The Core Concept: Researchers have identified distinct patterns in the oscillatory brain activity of autistic children, specifically within the gamma frequency band, that correlate directly with their capacity for language acquisition.

Key Distinction/Mechanism: In typically developing children, gamma wave activity—which is associated with information processing and language—peaks as they begin forming early sentences and subsequently declines as neural processing becomes more efficient. Conversely, autistic children exhibiting the most severe language deficits maintain persistently elevated gamma levels throughout early development, lacking this physiological inflection point.

Major Frameworks/Components:

  • Electroencephalography (EEG): A noninvasive diagnostic technique utilized to measure neural oscillations across distinct frequency bands.
  • Gamma Band Oscillations: High-frequency brain waves inherently linked to complex cognitive tasks, information processing, and linguistic development.
  • Neural Efficiency: The physiological framework suggesting that a decrease in brain excitation following the acquisition of word combination skills reflects optimized, less resource-intensive cortical processing.

Tuesday, January 28, 2025

A Super-Earth laboratory for searching life elsewhere in the Universe

In green, the habitable zone in the orbit of planet HD 20794.
Image Credit: (Dumusque et al. 2025) © Gabriel Pérez Díaz, SMM (IAC)

Thirty years after the discovery of the first exoplanet, more than 7000 have been discovered in our Galaxy. But there are still billions more to be discovered! At the same time, exoplanetologists have begun to take an interest in their characteristics, with the aim of finding life elsewhere in the Universe. This is the background to the discovery of super-Earth HD 20794 d by an international team including the University of Geneva (UNIGE) and the NCCR PlanetS. The new planet lies in an eccentric orbit, so that it oscillates in and out of its star’s habitable zone. This discovery is the result of 20 years of observations using the best telescopes in the world. The study is published today in the journal Astronomy & Astrophysics.

‘‘Are we alone in the Universe?’’ For thousands of years, this question was confined to philosophy, and it is only very recently that modern science has begun to provide solid hypotheses and evidence to answer it. However, astronomers are making slow progress. Each new discovery, whether theoretical or observational, adds to the edifice by pushing back the limits of knowledge. This was the case with the discovery in 1995 of the first planet orbiting a star other than the Sun, which earned two UNIGE researchers, Michel Mayor and Didier Queloz, the 2019 Physics Nobel Prize.

Nearly thirty years later, astronomers have taken many small steps towards detecting more than 7,000 exoplanets. The current scientific consensus points to the existence of a planetary system for every star in our galaxy. Astronomers are now looking for exoplanets that are easier to characterize or have interesting features to test their hypotheses and consolidate their knowledge. This is the case of planet HD 20794 d, which has just been detected by a team that includes members of the UNIGE Astronomy Department. 

Thursday, November 20, 2025

Customised cells to fight brain cancer

Visualisation of cell death induced by CAR-T cells. A real-time imaging experiment (images taken at 0, 5 and 10 minutes) shows a CAR-T cell in contact with a glioblastoma cell (artificially marked in green). This contact causes the CAR-T cell to concentrate granules (lytic granules, shown in pink) containing the proteins necessary for the death of the target cell. These proteins penetrate the cancer cell and induce its death. After 10 minutes, the cancer cell begins to die, as indicated by the loss of its structure (evidenced by the appearance of "bubbles").
Image Credit: © Denis Migliorini

With a five-year survival rate of less than 5%, glioblastoma is one of the most aggressive types of brain cancer. Until now, all available treatments, including immunotherapy — which involves strengthening the immune system to fight cancer— have proved disappointing. CAR-T cells are genetically modified immune cells manufactured in the laboratory and designed to identify and destroy cancer cells. By targeting a protein present in the tumor environment, a team from the University of Geneva (UNIGE) and the Geneva University Hospital (HUG) has developed CAR-T cells capable of destroying glioblastoma cells. Their efficacy in an animal model of the disease paves the way for clinical trials in humans. These results are published in the Journal for ImmunoTherapy of Cancer

Wednesday, January 7, 2026

Exposure to natural light improves metabolic health

The research team provides the first evidence of the beneficial impact of natural light on people with this condition.
Image Credit: © Loïc Metz, UNIGE AI generated

Scientific Frontline: Extended "At a Glance" Summary: Natural Light Exposure and Metabolic Health

The Core Concept: Natural daylight exposure significantly stabilizes blood glucose levels and improves metabolic profiles in individuals with type 2 diabetes by properly synchronizing internal circadian rhythms with environmental signals.

Key Distinction/Mechanism: Unlike artificial indoor lighting, which features lower intensity and narrower wavelength spectra, natural daylight effectively synchronizes the central circadian clock in the brain with peripheral organ clocks in the liver and skeletal muscles, thereby enhancing lipid and glucose metabolism.

Origin/History: Published in January 2026 in the journal Cell Metabolism, this controlled cross-over study by researchers from the University of Geneva, University Hospitals of Geneva, Maastricht University, and the German Diabetes Center provides foundational evidence of natural light's direct metabolic benefits.

Major Frameworks/Components:

  • Controlled cross-over study design involving 13 volunteers aged 65 and older with type 2 diabetes residing in specialized living environments for 4.5-day intervals.
  • Molecular clock analysis of cultured skeletal muscle cells, alongside comprehensive evaluations of blood lipids, metabolites, and gene transcripts.
  • Assessment of glycemic variability, evening melatonin levels, and whole-body substrate metabolism under natural versus artificial light conditions.

Tuesday, January 13, 2026

Schizophrenia: The cerebellum’s unexpected role

Illustrative image of the connectivity between the cerebellum and the VTA.
Image Credit: © Thomas Bolton

Scientific Frontline: "At a Glance" Summary

  • Main Discovery: The cerebellum acts as a critical regulator of the brain's reward system, directly influencing the severity of "negative" schizophrenia symptoms such as apathy, loss of motivation, and social withdrawal.
  • Specific Detail/Mechanism: Functional analysis reveals that the cerebellum modulates the dopamine-producing ventral tegmental area (VTA); stronger cerebellar regulation correlates with reduced negative symptoms, while weaker regulation is linked to increased symptom severity.
  • Key Statistic or Data: The study established these findings by monitoring 146 patients over a period of 3 to 9 months, utilizing an independent validation cohort to confirm the functional connectivity between the cerebellum and the VTA.
  • Context or Comparison: Unlike the VTA, which is located deep within the brain and is difficult to target, the cerebellum is situated superficially at the back of the skull, making it accessible for non-invasive interventions.
  • Significance/Future Application: This mechanism identifies the cerebellum as a viable target for Transcranial Magnetic Stimulation (TMS); a randomized controlled trial is currently underway to test this therapeutic approach, with results expected in 2028.
  • Additional Critical Detail: This research challenges the traditional view of the cerebellum as solely a motor control center, highlighting its pivotal role in emotional and cognitive processing relevant to psychiatric disorders.

Thursday, January 8, 2026

Lipid have their own VIP drivers

Image Credit: Scientific Frontline / AI generated

In addition to providing energy, lipids are also essential building blocks of our cell membranes. However, despite their importance, they remain poorly understood. A team from the University of Geneva (UNIGE) has revealed for the first time the secrets of their transport within cells. Each lipid uses a limited number of proteins to move from its place of production to its place of action. The team has also compiled an inventory of the proteins involved in the transport of hundreds of lipids. These findings, published in the journal Nature, provide a better picture of the functioning of our cells, as well as of many genetic and metabolic disorders, such as diabetes and Alzheimer's disease. 

Lipids are often described as our organism's energy reserve, but this definition masks the diversity of their functions. They enable the absorption of some vitamins, are converted into hormones, and assemble into complex membranes. Their dysfunction is also linked to serious diseases such as Alzheimer's, where the lipid composition of nerve cells (neurons and astrocytes) is altered. 

Wednesday, November 12, 2025

How chromosomes separate accurately

Representation how separase recognizes the cohesin subunit SCC1 before chromosome segregation occurs.
Illustration Credit: © Margot Riggi

Cell division is a process of remarkable precision: during each cycle, the genetic material must be evenly distributed between the two daughter cells. To achieve this, duplicated chromosomes, known as sister chromatids, are temporarily linked by cohesin – a ring-shaped protein complex that holds them together until separation. Researchers at the University of Geneva (UNIGE), in collaboration with the National Cancer Institute (NCI) and the University of California, San Francisco (UCSF), have uncovered the mechanism by which separase – the molecular ‘‘scissors’’ responsible for this cleavage – recognizes and cuts cohesin. Their findings, published in Science Advances, shed new light on chromosome segregation errors that can lead to certain forms of cancer. 

Wednesday, October 15, 2025

A promising target for multiple sclerosis

The image depicts a neuron with its axon insulated by segments of the myelin sheath. The visible degradation and fragmentation of that sheath represent the demyelination process that is characteristic of multiple sclerosis. This process disrupts the neuron's ability to transmit signals efficiently, leading to the neurological symptoms associated with the condition.
Image Credit: Scientific Frontline / AI generated

A team from UNIGE and HUG has discovered a subgroup of immune cells particularly involved in the disease, paving the way for more precise treatments and avoiding certain side effects.

Multiple sclerosis, which affects around one in 500 people in Switzerland, is an autoimmune disease in which immune cells attack the central nervous system, causing irreversible damage. Current treatments involve blocking the immune system to prevent it from attacking the body. Although effective, these drugs can trigger potentially serious infections. A team from the University of Geneva (UNIGE) and Geneva University Hospitals (HUG), in collaboration with the University of Pennsylvania, has identified a subtype of immune cells in newly diagnosed patients that may have a decisive role in disease progression.  A treatment targeting these cells specifically could effectively control the disease while avoiding certain side effects. These findings have been published in the journal Annals of Neurology.

Thursday, September 28, 2023

Parkinson’s: are our neurons more vulnerable at night?

More dopaminergic neurons in the adult Drosophila brain survive in control flies (left) than in flies mutant for the circadian cycle (right).
Image Credit: © Lou Duret

Disturbances in sleep patterns and the internal biological clock are frequently associated with Parkinson’s disease. However, the link between biological rhythm and neuronal degeneration remains unclear. A team from the University of Geneva (UNIGE) investigated the destruction of neurons at different times of the day, using the fruit fly as a study model. The scientists discovered that the type of cellular stress involved in Parkinson’s disease was more deleterious to neurons when it occurred at night. This work can be read in the journal Nature Communications.

Parkinson’s disease is a progressive neurodegenerative disorder characterized by the destruction of certain neurons in the brain: dopamine neurons. The main symptoms of this disease are tremors, slowness of movement and muscular stiffness. Epidemiological studies show that other disorders may be associated, such as disturbances of sleep and of the circadian cycle.

This cycle, defined by the alternate periods of wakefulness and sleep, lasts around 24 hours and constitutes the human body’s internal clock that regulates almost all its biological functions. In particular, the circadian clock controls the secretion of the ‘‘sleep hormone’’(melatonin) at the end of the day, variations in body temperature (lower in the early morning and higher during the day), and metabolism in periods of fasting (during sleep) or energy intake (during daytime meals).

Monday, November 3, 2025

Dark matter does not defy gravity

Map of the distribution of galaxies observed by the DESI collaboration, from which it is possible to accurately measure the velocities of galaxies.
Image Credit: © Claire Lamman/DESI collaboration; custom colormap package by cmastro.

Does dark matter follow the same laws as ordinary matter? The mystery of this invisible and hypothetical component of our Universe — which neither emits nor reflects light — remains unsolved.  A team involving members from the University of Geneva (UNIGE) set out to determine whether, on a cosmological scale, this matter behaves like ordinary matter or whether other forces come into play. Their findings, published in Nature Communications, suggest a similar behavior, while leaving open the possibility of an as-yet-unknown interaction. This breakthrough sheds a little more light on the properties of this elusive matter, which is five times more abundant than ordinary matter.

Ordinary matter obeys four well-identified forces: gravity, electromagnetism, and the strong and weak forces at the atomic level. But what about dark matter? Invisible and elusive, it could be subject to the same laws or governed by a fifth, as yet unknown force.

Dark matter falls into gravitational wells in the same way as ordinary matter, thus obeying Euler's equations.

Monday, March 18, 2024

Two artificial intelligences talk to each other

A UNIGE team has developed an AI capable of learning a task solely on the basis of verbal instructions. And to do the same with a «sister» AI.
Prompts by Scientific Frontline
Image Credit: AI Generated by Copilot / Designer / DALL-E

Performing a new task based solely on verbal or written instructions, and then describing it to others so that they can reproduce it, is a cornerstone of human communication that still resists artificial intelligence (AI). A team from the University of Geneva (UNIGE) has succeeded in modelling an artificial neural network capable of this cognitive prowess. After learning and performing a series of basic tasks, this AI was able to provide a linguistic description of them to a ‘‘sister’’ AI, which in turn performed them. These promising results, especially for robotics, are published in Nature Neuroscience.

Performing a new task without prior training, on the sole basis of verbal or written instructions, is a unique human ability. What’s more, once we have learned the task, we are able to describe it so that another person can reproduce it. This dual capacity distinguishes us from other species which, to learn a new task, need numerous trials accompanied by positive or negative reinforcement signals, without being able to communicate it to their congeners.

A sub-field of artificial intelligence (AI) - Natural language processing - seeks to recreate this human faculty, with machines that understand and respond to vocal or textual data. This technique is based on artificial neural networks, inspired by our biological neurons and by the way they transmit electrical signals to each other in the brain. However, the neural calculations that would make it possible to achieve the cognitive feat described above are still poorly understood.

Friday, January 16, 2026

Misplaced Neurons Reveal the Brain’s Adaptability

Image Credit: Scientific Frontline / AI generated (Gemini)

Scientific Frontline: "At a Glance" Summary

  • Main Discovery: Neurons positioned in the wrong location, known as heterotopias, can successfully integrate into brain circuits and take over the functional role of the normal cerebral cortex, defying the assumption that precise anatomical placement is required for function.
  • Methodology: Researchers utilized a mouse model with induced heterotopias and performed functional mapping during a sensory task requiring the distinction of whiskers; they employed targeted deactivation to isolate the contributions of normal versus misplaced neurons.
  • Key Data: Mice continued to perform sensory tasks normally when the healthy cortex was deactivated; however, the specific inhibition of the misplaced neuronal clusters resulted in immediate and complete failure of the task.
  • Significance: This study fundamentally alters the understanding of brain plasticity, demonstrating that cellular identity and connectivity can override spatial positioning to maintain neurological function.
  • Future Application: These findings validate the potential of regenerative therapies, such as neuronal grafts and brain organoids, suggesting they can be effective treatments without needing to perfectly replicate natural brain architecture.
  • Branch of Science: Neuroscience (Neurodevelopment and Plasticity).
  • Additional Detail: Analysis revealed that these stray neurons formed neural circuits almost identical to those in the healthy cortex, establishing correct connections with both the rest of the brain and the spinal cord.

Wednesday, October 18, 2023

The encounter between Neanderthals and Sapiens as told by their genomes

analysed the distribution of the portion of DNA inherited from Neanderthals in the genomes of humans (Homo sapiens) over the last 40,000 years.
Full Size Image
Image Credit: © Claudio Quilodrán

About 40,000 years ago, Neanderthals, who had lived for hundreds of thousands of years in the western part of the Eurasian continent, gave way to Homo sapiens, who had arrived from Africa. This replacement was not sudden, and the two species coexisted for a few millennia, resulting in the integration of Neanderthal DNA into the genome of Sapiens. Researchers at the University of Geneva (UNIGE) have analyzed the distribution of the portion of DNA inherited from Neanderthals in the genomes of humans (Homo sapiens) over the last 40,000 years. These statistical analyses revealed subtle variations in time and geographical space. This work, published in the journal Science Advances, helps us to understand the common history of these two species. 

Thanks to genome sequencing and comparative analysis, it is established that Neanderthals and Sapiens interbred and that these encounters were sometimes fruitful, leading to the presence of about 2% of DNA of Neanderthal origin in present-day Eurasians. However, this percentage varies slightly between regions of Eurasia, since DNA from Neanderthals is somewhat more abundant in the genomes of Asian populations than in those of European populations. 

Tuesday, December 19, 2023

Can we decode the language of our primate cousins?

The UNIGE team wanted to find out whether the frontal and orbitofrontal regions of our brain activate in the same way when faced with human and simian vocalizations.
Image Credit: © Leonardo Ceravolo

Are we able to differentiate between the vocal emissions of certain primates? A team from the University of Geneva (UNIGE) asked volunteers to categorize the vocalizations of three species of great apes (Hominidae) and humans. During each exposure to these "onomatopoeia", brain activity was measured. Unlike previous studies, the scientists reveal that phylogenetic proximity - or kinship - is not the only factor influencing our ability to identify these sounds. Acoustic proximity - the type of frequencies emitted - is also a determining factor. These results show how the human brain has evolved to process the vocal emissions of some of our closest cousins more efficiently. Find out more in the journal Cerebral Cortex Communications.

Our ability to process verbal language is not based solely on semantics, i.e. the meaning and combination of linguistic units. Other parameters come into play, such as prosody, which includes pauses, accentuation and intonation. Affective bursts - "Aaaah!" or ‘‘Oh!’’ for example - are also part of this, and we share these with our primate cousins. They contribute to the meaning and understanding of our vocal communications.

When such a vocal message is emitted, these sounds are processed by the frontal and orbitofrontal regions of our brain. The function of these two areas is, among other things, to integrate sensory and contextual information leading to a decision. Are they activated in the same way when we are exposed to the emotional vocalizations of our close cousins, the chimpanzees, macaques and bonobos? Are we able to differentiate between them?

Thursday, February 15, 2024

Innovative materials to combat bacteria

Three bacteria from the ESKAPE group: Staphylococcus aureus (yellow), Pseudomonas aeruginosa (short thick blue rods) and Escherichia coli (long blue rods).
Image Credit: © UNIGE

While crucial to biotechnology, bacteria can also cause severe disease, exacerbated by their increasing resistance to antibiotics. This duality between economic benefits and infectious risks underlines the importance of finding ways to control their development. A team at the University of Geneva (UNIGE) is currently developing a new generation of bactericidal alloys, with a wide range of industrial applications. They could be used to treat the contact surfaces responsible for their transmission. The project, which is supported by Innosuisse, will take 18 months to complete.

Resistance to antimicrobial drugs - such as antibiotics and antivirals - is a global public health issue. According to the World Health Organization (WHO), it is currently responsible for 700,000 deaths a year worldwide. If no action is taken, the number of deaths will rise to 10 million a year by 2050, with dramatic consequences for public health and the economy.

To promote and guide research in this field, the WHO has published a list of pathogens that should be targeted as a matter of priority, because they are particularly threatening to human health. The list includes Staphylococcus aureus and E. coli bacteria, which are associated with the most common hospital-acquired infections, as well as salmonella. Contaminated contact surfaces (utensils, handles, stair railings) play a fundamental role in their transmission.

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