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West Nile Virus Cases Surge in Greece as Death Toll Reaches 19

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West Nile virus infections in Greece have increased sharply, with 75 new locally acquired cases reported in one week, bringing the total number of infections recorded during the 2026 transmission season to 232.

The latest figures from the National Public Health Organisation (EODY) show that 165 patients developed neurological complications affecting the central nervous system. These included conditions such as encephalitis, meningitis and acute flaccid paralysis.

Another 67 patients experienced milder illness or had no neurological symptoms. As of August 26, Greece had recorded 19 deaths linked to the virus. All of those who died were aged over 65.

Hospitals are also dealing with a significant number of patients. EODY reported that 73 people were receiving hospital treatment, including 26 in intensive care units and one in a high-dependency unit. A total of 124 patients have been discharged.

Attica sees major increase

The Attica region has emerged as the main centre of the outbreak, with authorities reporting particularly intense virus circulation compared with previous years.

Cases have been identified across 61 municipalities, 18 regional units and five regions: Attica, Thessaly, Central Macedonia, the Peloponnese and Central Greece.

Eastern Attica has been among the hardest-hit areas. Spata-Artemida has recorded 17 cases, including 15 involving the central nervous system. Markopoulo Mesogaias has reported 13 cases, while infections have also been detected in Vari-Voula-Vouliagmeni, Agia Paraskevi, Pallini and Halandri.

Thessaly has also experienced substantial transmission. Larissa has recorded 21 cases, with additional infections reported in Karditsa, Palamas, Sofades, Kileler, Tempi, Tyrnavos and Farsala.

Central Macedonia has reported infections in several areas, including parts of Imathia, Thessaloniki, Pella, Pieria and Serres.

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Authorities identify new risk areas

EODY has designated several additional municipalities as high-risk areas based on epidemiological and geographical factors, even though no human cases had been identified there at the time of assessment.

The areas include Heraklion of Attica, Nea Smyrni, Nea Filadelfia-Nea Chalkidona, Dafni-Ymittos, Amfipoli and Thasos.

Authorities have also detected signs of virus circulation among horses and other equidae. Recent infections were found in nine clusters across Eastern Attica, Western Athens, Drama, Preveza and the Thessaloniki metropolitan area.

EODY expects more cases to be identified in the coming weeks, both in areas already affected and in new locations. It also warned that recent figures could rise as diagnoses and official notifications can occur several days after symptoms begin.

The surge has placed Greece on heightened alert as health authorities continue monitoring the spread of the mosquito-borne disease.

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Study Finds Eating Disorders Have Complex Genetic Links Beyond Body Weight

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Eating disorders may have a stronger biological component than previously understood, with new research suggesting that genetic factors linked to binge eating and anorexia nervosa are distinct from those that influence body weight.

Researchers at Sweden’s Karolinska Institutet examined genetic information from thousands of people to investigate factors associated with eating disorder behaviours. Their findings suggest that these conditions cannot be explained solely by body image, weight or metabolism.

The study, published in Nature Mental Health, included nearly 40,000 people with binge-eating behaviour and about 25,000 people with anorexia nervosa. Researchers compared them with more than 1.2 million people without eating disorders.

The team identified genetic variations statistically associated with a greater likelihood of developing the conditions. Six genetic markers were linked to binge eating, while eight were associated with anorexia nervosa. Two of the markers connected to anorexia had not previously been identified.

Lu Yi, principal researcher at Karolinska Institutet’s Department of Medical Epidemiology and Biostatistics, said the findings showed that eating disorders were not simply related to body weight.

The researchers noted that many genetic variants associated with eating disorders differ from those that influence how much a person weighs. This points to a more complicated biological basis for the conditions.

Scientists can combine the effects of multiple genetic markers to produce what is known as a polygenic risk score. Such a score reflects the number and strength of genetic variants associated with a particular condition.

However, the researchers stressed that these genetic markers remain weak predictors when used on their own. Other biological, psychological and environmental factors would need to be considered when assessing an individual’s risk.

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The study also identified links between genetic markers associated with eating disorders and other health and behavioural characteristics.

Some genetic markers connected to binge eating were also associated with traits involving impulse control, including smoking and risk-taking behaviour. They were also linked to higher body mass index and attention-deficit hyperactivity disorder.

Anorexia-related markers showed stronger genetic associations with obsessive-compulsive disorder.

The researchers said these differences suggest that binge eating and anorexia nervosa may involve partly separate biological mechanisms, even though both are classified as eating disorders.

Lisa Dinkler, an assistant professor at Karolinska Institutet, said the findings could eventually contribute to more targeted treatment approaches based on the specific characteristics of different eating disorders.

Eating disorders affect millions of people worldwide and are associated with serious risks to physical and mental health. They commonly involve disturbed eating patterns, intense concerns about food, weight or body shape, and significant effects on daily functioning.

Researchers said the findings could help shift the understanding of eating disorders away from a narrow focus on body weight and toward a broader view that considers distinct biological pathways.

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New RNA Modification Could Make mRNA Medicines More Powerful, Scientists Say

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A small chemical change to messenger RNA could help future vaccines and medicines produce more therapeutic proteins inside cells, according to researchers at Johns Hopkins Medicine.

Scientists have identified a potential alternative to the RNA modification widely used in current mRNA technology. Their research suggests that replacing N1-methylpseudouridine, known as m1Ψ, with a naturally occurring modification called N4-acetylcytidine, or ac4C, could increase the speed at which cells translate mRNA into proteins.

The findings were published in the journal Nature and could eventually have implications for vaccines and treatments being developed for infectious diseases, cancer and autoimmune conditions.

The current leading mRNA platform uses m1Ψ, which became widely known through the COVID-19 vaccines. Researchers are now investigating the technology for a much broader range of medical applications.

The Johns Hopkins team compared the two modifications in cultured human dendritic cells and mouse liver cells. They found that ribosomes, the structures responsible for reading mRNA and producing proteins, moved considerably faster along ac4C-modified mRNA.

“Our results show that ac4C causes cells to produce more therapeutic proteins than the industry standard mRNA platform,” said Bin Wu, an associate professor of biophysics and biophysical chemistry at the Johns Hopkins University School of Medicine.

The researchers found that ribosomes travelled almost twice as fast on ac4C-modified mRNA compared with m1Ψ-modified mRNA.

Wu compared the difference to traffic congestion. When ribosomes move more slowly, they can build up along an mRNA strand and create what researchers describe as a molecular traffic jam. Faster movement could allow more ribosomes to process the same strand efficiently, increasing protein production.

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The potential benefit could be significant for mRNA medicines. These treatments work by giving cells temporary genetic instructions to produce specific proteins. The amount of protein generated can influence whether a treatment reaches the level needed to produce a therapeutic effect.

If ac4C allows cells to produce more protein from the same amount of mRNA, future therapies could potentially require smaller doses. That could reduce the amount of material needed for some treatments while improving their effectiveness.

Researchers point out that more than 170 RNA modifications are known to exist, but only a limited number have been extensively investigated for use in mRNA therapies.

The discovery could open another area of research as scientists seek to improve the performance of mRNA technology. Potential applications include vaccines against infectious diseases, cancer treatments that activate immune responses and therapies designed to modify immune activity in autoimmune disorders.

However, ac4C is still at an experimental stage. The findings have so far been demonstrated in laboratory and animal cells, meaning further studies will be needed to determine whether the modification is safe and effective in living organisms.

If future research confirms the results, the chemical change could become an important step in improving the next generation of mRNA-based medicines.

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Study Reveals What Biological Ageing Tests Are Measuring Inside the Body

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US scientists have examined the biological processes behind five widely used ageing tests, finding that different methods appear to capture different aspects of how the human body ages.

Researchers analysed blood samples from 3,227 people who took part in the US Health and Retirement Study. They compared five commonly used epigenetic clocks with patterns of gene activity in the participants’ blood to determine what biological changes were associated with faster ageing according to each test.

Epigenetic clocks are mathematical tools that estimate biological age using DNA methylation, chemical changes that can influence how genes function without altering the underlying genetic code.

Scientists have increasingly used these clocks to investigate links between biological ageing, disease, physical decline and the risk of death. However, researchers have not always known precisely what processes inside the body were being reflected when a clock indicated that someone was ageing faster than expected.

The new study found that the five clocks were associated with different molecular signs of ageing. Some were more strongly connected to processes involved in energy use and cell growth, while others showed stronger links to immune activity and inflammation.

Despite those differences, the clocks shared several biological features. These included changes involving the immune system, metabolism and communication between cells.

The findings could help researchers select the most appropriate biological ageing test for a particular study. A clock associated more closely with immune activity, for example, could be more useful for research into immune-related ageing than one that primarily reflects metabolic changes.

The researchers also developed new measures called transcriptomic ageing gene scores, or TAGS, based on the molecular patterns identified in their analysis.

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According to the study, TAGS in several cases performed better than the ageing clocks alone when predicting health outcomes. These included frailty, walking speed, heart disease, diabetes, lung disease and mortality.

T. Em Arpawong, a research associate professor at the USC Leonard Davis School of Gerontology, said ageing is not determined simply by chronological age but also by biological changes taking place inside cells.

Senior author Eileen Crimmins said the study helps explain what is happening beneath the surface when biological ageing tests produce their results.

By identifying the molecular processes associated with individual ageing clocks, researchers may be able to interpret their readings more accurately and understand which tools are best suited to different areas of ageing research.

The findings could eventually support research into preventing age-related illness and identifying people at higher risk of declining health. However, the study focuses on biological markers and does not mean the new measures are ready to replace clinical assessments of health or provide individual predictions of lifespan.

Researchers said the work provides a clearer picture of the biological mechanisms captured by ageing clocks and could guide their use in future studies of ageing and disease.

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