Cambridge MP calls for a full review after Addenbrooke’s Hospital apologises for two data breaches.
Category Archives: Nutrition
Blood in urine cancer warnings to appear in men’s toilets
The awareness messages will be carried on urinal mats as part of efforts to detect male cancers early.
Limitations of asteroid crater lakes as climate archives

In southern Germany just north of the Danube, there lies a large circular depression between the hilly surroundings: the Nördlinger Ries. Almost 15 million years ago, an asteroid struck this spot. Today, the impact crater is one of the most useful analogues for asteroid craters on early Mars. Studying the deposits of the former lake that formed in the crater is particularly informative. These deposits have been of great interest ever since NASA began exploring Martian craters for signs of water and life on Mars. However, the chemical development of the former crater lake and its habitable areas is only partially understood.
An international research team led by the University of Göttingen have now uncovered clues about the past: they analysed dolomite rocks in a drill core and found an extremely high proportion of the carbon isotope C-13. Further investigations traced this back to a phase of strong methane formation by microorganisms known as archaea in water with a low sulphate content. In contrast, the sediments of the previous, first phase of the crater lake showed clear traces of high sulphate content and bacterial sulphate decomposition. This change reveals that the groundwater pathways to the lake changed as the crater floor cooled. The results have been published in the journal Geochimica et Cosmochimica Acta.
A 250-metre-long drill core taken in 1981 provided information about the chemical processes during the time periods that sediment was being deposited in the crater lake. Combining sedimentological, biogeochemical and isotope geochemical research methods enabled the researchers to identify a distinctive section, which they investigated in more detail using biomarker analyses. They detected organic biomarkers originating from sulphate-reducing bacteria and “normal” dolomite in older rocks from the crater lake. In the younger rocks, they found dolomite enriched with C-13 and a chemical called archaeol which indicates that archaea were present at that time.
The properties of the rocks reflect the conditions in the crater lake during their formation: the decrease in sulphate is due to degradation by bacteria and the C-13 enrichment is due to the formation of methane by archaea. “This chemical development can only be explained by the change in the groundwater supply during the gradual cooling of the crater floor. This led to a change from deep, hydrothermal groundwater (with sulphate) to cooler water without sulphate that must have flowed through limestone rocks near to the surface,” explains study leader Professor Gernot Arp from the Department of Geobiology at the University of Göttingen.
The findings not only provide important information on the development of the crater lake being investigated, but also, as Arp notes: “Our findings show that the conditions in asteroid crater lakes are strongly controlled by internal processes such as crater floor cooling and water supply. In contrast, climatic changes are of secondary importance, unlike in many other lakes. This must be taken into account when deposits in terrestrial and extraterrestrial craters are used as climate archives to deduce past climate conditions from the sediments.”
Plant nurseries are exacerbating the climate-driven spread of 80% of invasive species

Researchers at the University of Massachusetts Amherst recently published a pair of papers that, together, provide the most detailed maps to date of how 144 common invasive plants species will react to 2° Celsius of climate change in the eastern U.S., as well as the role that garden centers currently play in seeding future invasions. Together, the papers, published in Diversity and Distributions and BioScience, and the publicly available maps, which track species at the county level, promise to give invasive species managers in the U.S. the tools they need to proactively coordinate their management efforts and adapt now for tomorrow’s warmer climate.
Mapping Future Abundance
One of the major hurdles in addressing the threat of invasive species is in determining when and where a species crosses the line from being non-native to invasive. A single occurrence of, say, purple loosestrife, does not an invasion make. What invasive plant managers need to know is where a species is likely to take over, outcompeting native plants and altering the ecosystem.
Or, as Bethany Bradley, professor of environmental conservation at UMass Amherst and the senior author of both papers puts it, “managers have very few resources to control invasions, so we don’t want to waste time focusing on species unlikely to become invasive in a given area. But the question of what will become invasive and where has been surprisingly tricky to answer.”
“If we can proactively identify these species and the regions they are most likely to become abundant in as the climate warms, then we can head-off a major ecological threat before it’s too late,” adds Annette Evans, a postdoctoral fellow at UMass Amherst’s Northeast Climate Adaptation Science Center and lead author of the paper on abundance and future invasive hotspots.
To do so, the team combed through 14 current invasive species databases compiled by hundreds of natural resource managers in order to first pinpoint which species are currently abundant and where, geographically, those abundance hotspots occur. They focused on the eastern U.S. (east of the 100th meridian, which runs from the middle of North Dakota through the center of Texas — a follow-up paper will focus on the western U.S.) and discovered that the hottest hotspots are around the Great Lakes, the mid-Atlantic, and along the northeastern coasts of Florida and Georgia. Each of these regions has the right mix of conditions to currently support abundant populations of more than 30 different invasive plants.
They then ran their data on 144 plants through a series of models that predicted where the hotspots would occur under 2° Celsius of warming.
What they discovered is that most of the species will shift their ranges to the northeast by an average of 213 kilometers, a trend also reflected in shifts to abundance hotspot locations. In some states, warming temperatures will make currently unsuitable areas conducive for abundant infestations of up to 21 new plant species, and the range-shifting could exacerbate the effects of up to 40 currently abundant invasives. On the other hand, 62% of currently abundant invasive species will see a decrease in habitat for large populations in the eastern U.S.
But statistics aren’t enough. “We’ve created something even more user-friendly,” says Evans: a series of publicly available range maps for individual species, which can help plant managers triage which plants most need their attention, as well as state-specific watch lists.
How plant nurseries could seed invasion
“When people think of how invasive plant species spread, they might assume species are moving because of birds or the wind dispersing seeds,” says Evelyn M. Beaury, lead author of the paper on horticulture and invasive species, as well as a postdoctoral researcher at Princeton who completed this research as an extension to her graduate studies at UMass Amherst. “But commercial nurseries that sell hundreds of different invasives are actually the primary pathway of invasive plant introduction.”
Though researchers have long known that invasives are linked to the horticulture trade, Beaury and her co-authors, including Evans and Bradley, wondered how often invasives are sold in the same area in which they are abundant? And how might nurseries be exacerbating the problem of climate-driven invasion?
It turns out that the answer to both questions is: a lot.
Using a case study of 672 nurseries around the U.S. that sell a total of 89 invasive plant species, and then running the results through the same models that the team used to predict future hotspots, Beaury and her co-authors found that nurseries are currently sowing the seeds of invasion for more than 80% of the species studied. If left unchecked, the industry could facilitate the spread of 25 species into areas that become suitable with 2°C of warming.
Furthermore, 55% of the invasive species were sold within 21 kilometers (13 miles) of an observed invasion — the median distance people across the U.S. go to buy landscaping plants. In other words, everyday gardeners who buy plants at their local nurseries could unwittingly help perpetuate invasion and associated ecological harm in their literal backyards.
“But there’s good news here,” says Beaury. “This is the first time that we have real numbers to show the connection between plant nursery sales and the spread of invasive species — including invasions that occur down the street from nurseries, as well as across state borders. Now that we have the data, we have an incredible opportunity to be proactive, to work with the industry, consumers and plant managers to think more critically about how our gardens impact U.S. ecosystems.”
The team has also put together a publicly available list of 24 commonly sold invasive plants that could increase in risk with climate change in the northeast, from butterfly bush to English ivy, to be avoided and native alternatives, such as bottlebrush buckeye and wild blue phlox.
“These two papers together make it pretty clear that not only are we facilitating current invasions through the ornamental plant trade, but we are also facilitating future climate-driven invasion,” says Bradley, “But with these papers, maps and watchlists, we can pinpoint which species are most worrisome where, both now and in the coming decades. These are important new tools in invasive plant managers’ toolboxes.”
Bacteria’s mucus maneuvers: Study reveals how snot facilitates infection

Sniffles, snorts and blows of runny noses are the hallmarks of cold and flu season — and that increase in mucus is exactly what bacteria use to mount a coordinated attack on the immune system, according to a new study from researchers at Penn State. The team found that the thicker the mucus, the better the bacteria are able to swarm. The findings could have implications for treatments that reduce the ability of bacteria to spread.
The study, recently published in the journal PNAS Nexus, demonstrates how bacteria use mucus to enhance their ability to self-organize and possibly drive infection. The experiments, performed using synthetic pig stomach mucus, natural cow cervical mucus and a water-soluble polymer compound called polyvidone, revealed that bacteria coordinate movement better in thick mucus than in watery substances.
The findings provide insight into how bacteria colonize mucus and mucosal surfaces, researchers said. The findings also show how mucus enhances bacterial collective motion, or swarming, which may increase antibiotic resistance of bacterial colonies.
“To the best of our knowledge, our study is the first demonstration of bacteria collectively swimming in mucus,” said Igor Aronson, Huck Chair Professor of Biomedical Engineering, of Chemistry and of Mathematics at Penn State and corresponding author on the paper. “We have shown that mucus, unlike liquids of similar consistency, enhances the collective behavior.”
Mucus is essential for many biological functions, explained Aronson. It lines the surfaces of cells and tissues and protects against pathogens such as bacteria, fungi and viruses. But it is also the host material for bacteria-born infections, including sexually transmitted and gastric diseases. A better understanding of how bacteria swarm in mucus could pave the way for new strategies to combat infections and the growing problem of antibiotic resistance, according to Aronson.
“Our findings demonstrate how mucus consistency affects random motion of individual bacteria and influences their transition to coordinated, collective motion of large bacterial groups,” Aronson said. “There are studies demonstrating that collective motion or swarming of bacteria enhances the ability of bacterial colonies to fend off the effect of antibiotics. The onset of collective behavior studied in our work is directly related to swarming.”
Mucus is a notoriously challenging substance to study because it exhibits both liquid-like and solid-like properties, Aronson explained. Liquids are typically described by their level of viscosity, how thick or thin the liquid is, and solids are described by their elasticity, how much force it can take before breaking. Mucus, a viscoelastic fluid, behaves as both a liquid and solid.
To better understand how mucus becomes infected, the team used microscopic imaging techniques to observe the collective motion of the concentrated bacteria Bacillus subtilis in synthetic pig stomach mucus and natural cow cervical mucus. They compared those results with observations of Bacillus subtilis moving in a water-soluble polymer polyvidone at a wide range of concentrations, from high to low levels of polyvidone. The researchers also compared their experimental results to a computational model for bacterial collective motion in viscoelastic fluids like mucus.
The team found that the consistency of mucus profoundly affects the collective behavior of bacteria. The results indicated that the thicker the mucus, the more likely the bacteria would exhibit collective movement, forming a coordinated swarm.
“We were able to show how the viscoelasticity in mucus enhances bacterial organization, which in turn leads to coherently moving bacterial groups that cause infection,” Aronson said. “Our results reveal that the levels of elasticity and viscosity in mucus are a main driver in how bacterial communities organize themselves, which can provide insight into how we can control and prevent bacterial invasion in mucus.”
Aronson explained that the team expects human mucus to exhibit similar physical properties, meaning their findings are also relevant for human health.
“The onset of the collective motion of bacteria and their interaction with mucus should be the same as in cow, pig or human mucus since these substances have similar mechanical properties,” Aronson said. “Our results have implications for human and animal health. We’re showing that mucus viscoelasticity can enhance large-scale collective motion of bacteria, which may accelerate how quickly bacteria penetrate mucus protective barrier and infect internal tissues.”
The other co-author on the paper is Wentian Liao, a doctoral candidate in biomedical engineering at Penn State. The National Science Foundation supported the work.
Junior doctors plan nine days of strikes, after talks collapse
Walkouts are planned on three days in the run-up to Christmas and six days in the new year.
Infected Blood Scandal: PM risks ending on ‘wrong side of history’
Campaigners say the government works “at a snails pace” to compensate victims infected with HIV or hepatitis C.
Ministers lose infected blood vote after Tory MPs revolt
MPs were voting on a plan to set up a compensation scheme for infected blood scandal victims.
Sugar permeation discovered in plant aquaporins

Aquaporins, which move water through membranes of plant cells, were not thought to be able to permeate sugar molecules, but University of Adelaide researchers have observed sucrose transport in plant aquaporins for the first time, challenging this theory.
The finding, made by researchers from the School of Agriculture, Food and Wine, widens the concept of aquaporins’ role in plant biology and will have implications for the bioengineering of plants for food production and plant survival.
Aquaporins, which belong to a class of membrane proteins known as water-transporters, were first identified in 1993 by American molecular biologist and Nobel Laureate, Peter Agre. The concept of water-permeation in small molecules was accepted at the time, but it was unclear if aquaporins could permeate larger molecules, such as sucrose.
This has now been demonstrated, with researchers employing a multidisciplinary approach to observe the biochemical process in HvNIP2;1, which is a Nodulin 26-like Intrinsic Protein found in barley.
“We used nanobiotechnology, electrophysiology, protein chemistry, protein modelling and computational chemistry. We also integrated vast experimental and theoretical data with phylogenomics exploring around 3,000 aquaporins,” said the University of Adelaide’s Professor Maria Hrmova.
HvNIP2;1 is different from other sub-clades of aquaporins in that it has altered structural characteristics and thus it acquired the ability to transport saccharides. Researchers are interested to see what other functions it may serve and how this relates to in planta function.
“We also performed full-scale steered molecular dynamics simulations of HvNIP2;1 and a spinach aquaporin — a structurally and functionally divergent aquaporin compared to HvNIP2;1 — revealing potential rectification of water, boric acid, and sucrose. This will be the subject of future studies,” said Professor Hrmova.
The discovery has been published in the Journal of Biological Chemistry, a forum for fundamental research at the intersection of biochemistry, biophysics and biology, and demonstrates the importance of questioning assumed knowledge.
“This work exemplifies that we need to be more open-minded about what different aquaporins may permeate, besides water,” said the paper’s co-author, Professor Steve Tyerman, who previously revealed ion permeation in plant aquaporins.
“Water may be secondary to other important molecules in aquaporins, or some may be co-transport water and other molecules by virtue of a vast array of protein-ligand interactions,” said Professor Hrmova.
Understanding the properties of aquaporins is important for bioengineering to design novel proteins with improved characteristics, such as substrate specificity, thermostability, and folding.
These properties are fundamental to the survival of plants as they mediate water and nutrient uptake, govern the distribution of solutes through plants, remove toxins from the cytosol, and recycle valuable sugars.
Given their gatekeeping functions, aquaporins and other membrane transporters are attractive targets in agricultural biotechnology for increasing nutrient contents in edible parts of crop plants, excluding toxic elements, which together directly affect crop quality and ultimately sustained production of our food.
A farsighted approach to tackle nearsightedness

Modern living may be contributing to an epidemic of nearsighted vision and related blindness. By 2050, it is estimated that half the world’s population will suffer from low vision due to myopia, a condition where the eye grows too large and can no longer focus on objects in the distance. Human eyes, honed by evolution to survive in the wild, are ill-adapted to city living, contributing to increased cases of myopia, among other factors.
For decades, researcher Sally McFadden from the University of Newcastle has investigated eyes and eyesight in humans and animals. She will present her work and the importance of acoustical imaging Dec. 5 at 10:40 a.m. Australian Eastern Daylight Time, as part of Acoustics 2023 Sydney, running Dec. 4-8 at the International Convention Centre Sydney.
As humans age, our eyes adjust based on how we use them, growing or shortening to focus where needed. We now know that blurred input to the eye while the eye is growing causes myopia. It is so specific that the eye grows exactly to compensate for the amount and the direction of blur. For example, if you put the focus behind the retina, the eye grows longer, while if you put the focus in front of the retina, the eye slows its growth and becomes shorter. If the eye grows too long, it becomes myopic or nearsighted. In extreme cases, high myopia is associated with glaucoma, and can increase the risk of retinal detachment and abnormal pathologies around the optic nerve which lead to profound blindness.
“Babies are generally born longsighted, and the changes in the optics of the eye have to coordinate with the eye growth to get to the perfect length for focused vision,” said McFadden. “The problem is that the human eye evolved to suit a hunter-gatherer lifestyle and is not adapted for modern living.”
McFadden and her team built a high-frequency ultrasonography system to measure eye size and how quickly eyes grow to better understand myopia and its contributing factors.
“Education level (amount of study) and the type of light stimulation to the eye all correlate with the amount of myopia you develop,” McFadden said. “Time spent outdoors is protective. Myopia is greater in cities than in rural populations, and even correlates with those that live in small homes.”
Currently, vision-correcting gear like glasses and contacts are the only solution for myopia. However, eyedrops for children with myopia are in development and could halt the vision from worsening. Teams from around the world are collaborating to develop treatments for high myopia to preserve our vision.
