Having life-saving cancer treatment at 21 would be hard enough for anyone, but Erin Lavery was told she may never be able to have children too.
‘Women from Wales come to my London clinic because of inadequate abortion care’
An obstetrician says he treats women from Wales every other week at an abortion clinic in London.
IVF staff accused of misleading UK parents about sperm and egg donors in northern Cyprus
Multiple children are feared to have been conceived using sperm and egg donors which were not the ones selected by the parents.
Huge Savings Alert: Here’s How To Get Up To £850 Off When You Buy The New Google Pixel 11 Pro
We don’t need to tell you this: tech is expensive. Keeping up to date with the latest gadgets can put a serious dent in your wallet, but the price tag doesn’t do much to quell our desires for a new phone.
Especially when one as enticing as the Google Pixel 11 Pro drops.
Available for pre-order now, and to buy from 20 August, the Pixel 11 Pro comes in four shades (Canyon pink, Olive green, Fog blue and Obsidian black).
The phone retails at £1,079, which is up nearly £500 from the Pixel 10. But, good news Google heads: you can get it for less when you trade in an old device.
Eligible devices include phones from Google, Samsung, and Apple, among tons of other brands, so if you’ve been thinking about switching to Google, this is as good a chance as any.
Depending on the phone you’re trading, you could save up to £850, which in case you need a little help with the maths, means your new phone could cost as little as £229. Woah.
When you consider the array of upgrades Google has made from its predecessor, the Pixel 10, that’s an insane steal.
The first Google phone to use its Tensor G6 chip, it’s considerably speedier than the Pixel 10, with Google claiming you’ll see 25% speedier browsing and 3.5 times faster Gemini processing.
Speaking of, the Pixel 11 Pro is loaded with Gemini Intelligence, which can help you with everything from brainstorming to finding information.
The camera is often the most important aspect of a phone (for us, at least) and this one delivers big time. Pixel 11 boasts Google’s longest zoom yet (up to a whopping 120x) and 30% better light sensitivity so your photos always come out looking crisp and sharp.
One of our favourite elements is Magic Capture mode, which means you can simply press a single button to let your phone take over the heavy lifting of taking photos and videos, so you don’t have to think about the best mode to capture the moment.
The offer runs until 1 September, so run, don’t walk – because you could miss out on £850 in savings on the Pixel 11 Pro as well as up to £260 when you trade in a smart watch for the new Google Pixel Watch 5.
So That’s Why Breastfeeding Makes You Feel Wiped Out
The first year after a baby is born can be a complete blur for new parents – I’ve been there twice, and I feel like I was delirious for about 90% of it.
Between the sleep deprivation, the constant state of high alert and the mental and physical recovery, it’s really no wonder so many new parents feel so exhausted.
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Those who choose to breastfeed might also notice this makes them feel more wiped – even after months of milk production. (I breastfed for two years and felt just as exhausted by year two than I did earlier on in my journey.)
Google searches for “does breastfeeding make you tired?” have gone up by more than 5,000% recently, according to analysis by Proceive Breastfeeding. The answer is certainly, yes. But why?
Why does breastfeeding make you SO tired?
Well, there are several reasons.
Dr Nikki Ramskill, a GP verified on the healthcare review platform Doctify, and founder of The Female Health Doctor Clinic, told HuffPost UK: “Firstly, your body is doing a huge amount of work behind the scenes. Prolactin, the hormone responsible for milk production, naturally has a calming, sleepy effect, and levels rise overnight.
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“Producing breast milk also requires extra energy, roughly 300-500 calories a day, at a time when your body is still recovering from pregnancy and birth.”
Broken sleep will also play a part. “It’s not always about how many hours you’re getting in total. If you’re waking every couple of hours to feed, you’re repeatedly being pulled out of the deeper, restorative stages of sleep,” Dr Ramskill explained.
“You can technically have had six or seven hours of sleep across a night and still wake up feeling absolutely shattered.”
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There’s the nutrient loss to consider, too. Registered nutritionist Charlotte Grand, who works with Proceive, said: “The mother’s body prioritises the baby above all else. Breastfeeding actively draws critical micronutrients, including B vitamins, vitamin D, zinc, and iron, directly from the mother’s tissue stores to ensure the milk is perfectly balanced.
“Because this continuous nutrient loss drains her internal reserves, it can quickly lead to systemic depletion and profound fatigue if those vitamins are not actively replenished.”
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And as if all of that wasn’t enough, there’s another factor that can be fuelling breastfeeding fatigue over the summer – and that’s the hot weather. In Japan, summer exhaustion has an actual name: “natsubate”.
“During a heatwave, your body has to work much harder to keep your core temperature in a safe range,” Dr Ginni Mansberg, a GP and co-founder of ESK, previously told us. “That means diverting blood to the skin, increasing sweating and making your heart work a little harder.”
When it’s hot, you’re at risk of dehydration – and breastfeeding increases your fluid requirements, so it becomes even easier to become dehydrated. Dr Ramskill noted even mild dehydration can leave you feeling tired, headachy and generally wiped out.
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What can I do about it?
Thankfully, there are a few ways to help try and ease the feeling of fatigue.
Dr Ramskill suggested keeping a bottle of water next to you every time you feed, and making sure you’re eating enough. “I’d favour small, regular meals or snacks containing protein and iron rather than trying to keep yourself functioning on caffeine and sugary snacks,” she added.
Grand recommended also introducing a supplement to replace the micronutrients being depleted. (Proceive offer one, as do brands like Vitabiotics and Wild Nutrition).
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She also urges mums to “honour the prolactin window”. Explaining this further, she said: “Since prolactin naturally induces drowsiness during a feed, mothers should try to align their rest with the baby’s schedule where possible. Even a 20-minute resting block immediately following a morning feed can help reset the nervous system.”
Don’t assume extreme tiredness is caused by breastfeeding
“Postpartum blood loss, combined with the iron demands of breastfeeding, makes subclinical iron deficiency a major driver of fatigue,” said Grand, who advised incorporating iron-rich foods (like lean meats, lentils, and leafy greens) alongside vitamin C (which optimises iron absorption).
Dr Ramskill agrees, noting that iron deficiency and anaemia are “incredibly common” after pregnancy, particularly in those who lost a significant amount of blood during birth.
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Signs of iron deficiency anaemia can include: tiredness, lack of energy, shortness of breath, heart palpitations, looking paler than usual and headaches.
“B12, vitamin D and thyroid function are also worth considering if the exhaustion feels excessive or simply isn’t improving,” the GP added.
“Postpartum thyroid problems, for example, can easily be mistaken for the normal tiredness and upheaval of having a new baby.”
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Most new mums are going to be tired – but that doesn’t mean it should be ignored. Don’t be afraid to ask your support network for help with feeds or taking the baby so you can get some rest.
And if the tiredness feels overwhelming, is getting worse rather than better, or doesn’t improve at all when you do manage to rest, speak to your GP.
“Symptoms such as breathlessness, dizziness, palpitations, significant weight changes, feeling unusually hot or cold, or heavy or prolonged bleeding are also worth investigating,” claimed Dr Ramskill.
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“And I’d pay particular attention to mental health. Persistent low mood, anxiety, intrusive thoughts or feeling unable to cope shouldn’t simply be put down to being a tired new mum.”
Perez Hilton’s Family Say Celebrity Blogger Is Receiving Inpatient Treatment

Perez Hilton is receiving inpatient treatment two weeks after he was hospitalised following a mental health episode in which he appeared to self-harm during a TikTok livestream.
On Sunday evening, a fresh update was posted on Perez’s blog, attributed to his family, in which they said: “To everyone who has reached out, checked in, and kept Perez and our family in your thoughts, THANK YOU!
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“At this time, Perez remains hospitalised and is receiving the medical care he needs. His treatment is continuing in an inpatient setting under the care of a dedicated team of medical and mental health professionals.”
They also shared that Perez’s team will begin updating his celebrity blog from this week onwards while he continues his recovery.
“For now, Perez’s health remains the priority as his team keeps the site active and moving forward,” they added.
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Earlier this month, police officers were called to Perez’s home in Miami in the wake of a TikTok livestream in which he was apparently seen self-harming.
The former Celebrity Big Brother housemate – whose legal name is Mario Lavandeira – was subsequently taken to a nearby hospital for medical attention.
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“Perez’s condition remains serious but stable,” his family said last week. “He experienced significant blood loss and sustained additional injuries that will require surgery in the coming days.
“His treatment and recovery will be a long process. We are grateful that Perez was able to spend time with his mother and sister yesterday.
“As our family remains focused on Perez’s treatment and recovery, we also need the space and privacy to care for everyone affected by this situation.”
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Before that, the family had said their “highest priority” was helping Perez’s children – aged 13, 11 and eight – “begin to heal from what they experienced” following the episode.
They noted that his children, niece and sister had all been at Perez’s home before the livestream got underway, but “immediately fled to protect the children from witnessing any further trauma” when it “became clear that Perez was experiencing a severe mental health crisis and harming himself”.
Low-fat vegan diet helps people lose weight without eating less

A low-fat vegan diet can reduce the energy density of the foods people eat by about 30%, helping them consume fewer calories while still eating satisfying amounts of food. The approach was also associated with weight loss, even though participants were not instructed to restrict calories, according to new research published in JAMA Network Open.
In a randomized clinical trial involving adults with overweight, participants who followed an ad libitum low-fat vegan diet substantially reduced the number of calories per gram of food they consumed. Researchers found that greater reductions in energy density were tied to lower calorie intake and greater weight loss, despite the absence of any instructions to eat less.
“This helps answer a question people often have about plant-based eating: How can you lose weight without counting calories or going hungry?” said Hana Kahleova, MD, PhD, director of clinical research at the Physicians Committee for Responsible Medicine and lead author. “The answer is energy density. Plant foods are rich in water and fiber, so you can fill your plate, feel full, and still take in fewer calories.”
How the Low-Fat Vegan Diet Was Tested
The findings come from an analysis of a 16-week randomized trial involving adults with overweight. Participants were assigned either to an ad libitum low-fat vegan diet centered on fruits, vegetables, grains, and legumes, or to a control group that continued eating as usual without making any dietary changes.
Neither group was given a calorie target or told to limit how much they ate. Researchers measured each participant’s dietary energy density by comparing total daily energy intake with the total weight of food consumed, expressed as total energy (kcal per day) divided by total food weight (grams per day).
The study produced several notable findings:
- The total weight of food consumed did not change significantly in either group, meaning those following the vegan diet continued eating about the same amount of food by weight.
- Calorie intake declined in both groups, but the decrease was larger among those following the vegan diet, at about 357 kcal/day.
- Energy density remained essentially unchanged in the control group but fell by about 30% in the vegan group.
- Larger reductions in energy density were associated with greater weight loss, and that relationship remained even after researchers accounted for changes in calorie intake.
Same Amount of Food, Fewer Calories
The difference came largely from changes in the types of foods participants were eating. The vegan diet removed calorie-dense animal foods including meat, dairy, and eggs while increasing consumption of foods that provide more volume for relatively few calories, particularly vegetables and legumes.
Because these plant foods generally contain fewer calories per gram, participants could continue eating generous portions while taking in less energy overall.
“This isn’t about willpower or smaller portions,” Dr. Kahleova said. “It’s about choosing foods that naturally deliver fewer calories in every bite. A 30% reduction in energy density is a substantial shift that would be very hard to achieve and sustain through portion control alone.”
Why Energy Density Can Affect Weight Loss
Energy density refers to the number of calories contained in each gram of food. Scientists have studied it for years because it can influence how much people eat and how satisfied they feel after a meal.
Controlled feeding studies have shown that reducing the energy density of meals can help people feel full while lowering the amount of energy they consume. Importantly, the physical volume of food can remain similar even when the calorie content drops.
“When the foods you eat are lower in energy density, your body’s natural appetite signals work in your favor,” Dr. Kahleova said. “You eat until you’re satisfied, and you simply end up with fewer calories. That’s a sustainable way to manage weight.”
A Different Approach to Weight Management
Weight-loss advice often emphasizes calorie restriction and smaller portions. These findings point to another possible strategy: changing the composition of the food on the plate rather than simply reducing the amount of food eaten.
Choosing more water-rich, high-fiber plant foods may help people lower their calorie intake while still eating enough to feel satisfied. That could make weight management easier for some people by reducing the sense of deprivation that can come with traditional calorie-cutting approaches.
“From a clinical standpoint, targeting energy density offers a realistic strategy for weight loss,” Dr. Kahleova said. “Instead of telling people to eat less, we can help them eat differently — and the results follow.”
The Bottom Line
The findings suggest that a low-fat vegan diet can substantially reduce dietary energy density, allowing people to consume fewer calories and lose weight without intentionally restricting their calorie intake.
“You don’t have to eat less,” Dr. Kahleova said. “You can eat more food, feel full, and still lose weight — by choosing foods that are naturally lower in energy density.”
Tiny 1.7-billion-year-old fossils could reveal how complex life began

The search for life on Mars or on icy moons such as Europa and Enceladus may capture more attention, but another major astrobiology mystery is much closer to home. Scientists are still trying to understand when the first eukaryotes appeared on Earth and how those organisms helped set the stage for complex life.
That question matters because microbial organisms dominated Earth for roughly 90 percent of the planet’s history. Reconstructing the transition from a world populated almost entirely by microbes to one filled with plants, animals, and fungi could also help scientists understand whether complex life might develop elsewhere in the universe.
From Microbes to Complex Life
Life originated on Earth more than 3.5 billion years ago, according to Ross Anderson, a paleontologist at the University of Oxford in the U.K. Cyanobacteria and oxygen-producing photosynthesis were present by at least 2.3 billion years ago, while eukaryotes had appeared by at least 1.7 billion years ago.
Algae followed at least one billion years ago and probably emerged even earlier. Animals appeared at least 570 million years ago, and possibly somewhat before that.
To reach the common ancestor shared by the plant and animal kingdoms, Anderson says researchers must look back to around 1.6 billion years ago.
Crown eukaryotes, which are among the earliest eukaryotic forms scientists are trying to trace, played a crucial role in the emergence of complex life on Earth. Anderson considers eukaryotes to represent the planet’s first complex life.
What Makes Eukaryotes Different?
Eukaryotic cells contain a nucleus that encloses their DNA. They also contain organelles, which are specialized structures inside the cell. One example is the mitochondrion, which helps provide the energy needed to support more demanding forms of life.
Eukaryotes ultimately gave rise to complex multicellular organisms and large visible life forms. Every animal, plant, and fungus around us today is eukaryotic.
Finding their earliest ancestors, however, is extremely difficult.
Organisms older than 500 million years did not yet possess shells or skeletons. Because those hard structures had not evolved, paleontologists must rely on rare environments capable of preserving fragile cells and soft tissues.
That leaves scientists with relatively little information about how life changed during an enormous span covering about 90 percent of Earth’s history.
Searching for the Transition to Multicellular Life
Anderson’s research focuses on one of the biggest transitions in biological history: how Earth changed from a planet dominated by bacteria into one inhabited by complex multicellular organisms.
Because fossils of these early multicellular organisms are difficult to find, he studies the chemistry of ancient rocks to identify the environments most likely to have preserved them.
Another major obstacle is time itself. Eukaryotic microfossils have endured billions of years of geological alteration and degradation, making already tiny remains even harder to detect.
Scientists do know that the transition from single-celled life to multicellular organisms happened more than once in different parts of the world. Anderson is particularly interested in understanding how that process eventually produced the remarkable diversity seen among animals today.
Much of the foundation for modern animal diversity appeared around the Ediacaran/Cambrian transition roughly 540 million years ago. This period marked a major evolutionary shift from predominantly soft-bodied organisms toward the Cambrian explosion, when animals with greater mobility, shells, and skeletons became increasingly prominent.
Where Scientists Search for Ancient Microfossils
Finding fossils from much earlier periods requires searching in places where delicate biological material had an unusual chance of surviving.
Anderson and his colleagues are especially interested in a roughly 100sq. km region near Svalbard, Norway. About 80 degrees North, this remote island area was once covered by a shallow sea.
Australia has also produced important evidence. Just last year, researchers there discovered some of the oldest known eukaryotic microfossils, dating to roughly 1.75 billion years ago.
Ancient coastal environments are especially promising places to search. Eukaryotes living in these settings would have had access to abundant nutrients and organic material, conditions that could have supported greater diversity and the development of multicellularity.
Researchers often target pristine locations or regions that have received relatively little scientific sampling. Anderson specializes in studying areas where enormous deposits of clay may have helped preserve ancient eukaryotic remains.
Today, many of the best places to conduct this work are deserts or Arctic landscapes. With little or no vegetation covering the ground, ancient rocks remain exposed and accessible.
Why the Fossil Hunt Is So Difficult
Even in ideal locations, finding eukaryotic microfossils is an enormous challenge. The organisms were microscopic, lacked protective hard tissues, and have been exposed to billions of years of geological degradation.
According to Anderson, one of the greatest problems is simply that the fossil record from this period remains poorly sampled.
Researchers are nevertheless making progress. Scientists are becoming better at identifying the types of rocks most likely to contain early fossils, providing new evidence that can help reconstruct the history of Earth’s earliest life.
What Earth’s Earliest Life Could Tell Us About Alien Life
The search has implications far beyond understanding Earth’s biological past.
Anderson says much of his work involving clay deposits was originally motivated by the search for life on other planets. By learning which environments preserve ancient organisms on Earth, scientists may become better equipped to recognize possible signs of life elsewhere.
Understanding how life emerged and became increasingly complex on our own planet is therefore an important part of astrobiology. If scientists want to estimate how likely life is to arise and evolve elsewhere, they first need a clearer picture of how that process unfolded here on Earth.
Scientists turn DNA into a memory device that uses 100x less power

DNA serves as the genetic blueprint for every living organism, but it is also an extraordinarily dense way to store information. A single gram can hold about 215 million gigabytes of data. Bringing that remarkable storage capacity into electronics could lead to more efficient data centers, faster processing and systems capable of handling increasingly complex information.
The challenge has been finding a way to make biological DNA function effectively alongside electronic materials. Penn State researchers have now developed an approach designed to overcome that incompatibility.
The work, published in Advanced Functional Materials and the subject of a patent application, relies on two key components. One is synthetic DNA, made from commercially available, chemically engineered molecules arranged into short genetic sequences tailored for specific electronic requirements. The other is crystalline perovskite, a semiconductor already used in technologies including solar cells, lasers and data storage devices.
“Biology and electronics are different domains,” said Kavya S. Keremane, co-corresponding author and postdoctoral researcher in materials science and engineering at Penn State. “Bridging these two fields required developing an entirely new materials platform that allows them to function seamlessly together. By combining the information storage capabilities of DNA with the exceptional electronic properties of perovskite semiconductors, we created a bio-hybrid system that fundamentally changes how low-power memory devices can be designed.”
Building a Low Power Memory Device
Using these materials, the team created a memory resistor, known as a “memristor,” that operates with very little energy. Unlike ordinary resistors, which maintain a set resistance to electrical current in devices ranging from cell phones to space shuttles and lose their stored information when power disappears, memristors can preserve a record of previous electrical activity. They can remember the direction in which current previously flowed even after the power source is removed.
That ability allows information to be stored and processed in the same place, resembling the way neurons function in the brain. Such an arrangement could support more simultaneous and sophisticated forms of data processing. According to the researchers, however, practical commercial systems would still require enough storage capacity and electrical power to become costly and inefficient without DNA’s ability to pack enormous amounts of information into a very small space while consuming little energy.
“As the demand for artificial intelligence (AI) grows, we need a new strategy for low-power, high-storage devices,” said Bed Poudel, co-corresponding author and research professor of materials science and engineering at Penn State.
Poudel said AI and other emerging technologies are expected to depend increasingly on neuromorphic computing, which is designed to operate more like the human brain. Such systems can evaluate multiple inputs at once while making decisions informed by previous experiences and future priorities.
“Usually, it takes more power to store more information. Our device, however, consumes 100 times less power and the storage capacity is higher than traditional storage devices, like flash drives.”
Engineering DNA to Conduct Electricity
To construct the device, the researchers added silver nanoparticles to a layer of customized DNA sequences — specially designed to be of certain compositions and lengths — that was integrated with thin films of perovskite.
This technique, called “doping,” involves introducing a small amount of another material to produce specific properties. In this case, adding the silver nanoparticles allowed the DNA to conduct electricity while also helping its molecular units line up in a more orderly arrangement.
Synthetic DNA offered another important advantage over natural DNA. Unlike natural DNA — long, entangled strands that behave like wet spaghetti when handled — short and rigid pieces of synthetic DNA can be arranged with much greater precision at extremely small scales.
According to co-author Neela H. Yennawar, research professor and director of the Penn State Huck Institutes of the Life Sciences’ Biomolecular Interactions Core Facility, molecularly engineered DNA can provide structural organization, adjustable electrical conductivity and functional control that natural DNA cannot achieve when incorporated into thin films.
“We can computationally determine exactly which sequences we need and how long they should be, and then we can rationally design them with synthetic DNA,” Yennawar said. “These structures can be systematically doped with silver and other ions and engineered to interface seamlessly with perovskites — transforming DNA from a biological macromolecule into a programmable, multifunctional nanomaterials platform.”
DNA and Perovskite Work Better Together
When combined, the silver-doped DNA and perovskite formed bio-hybrid pathways that directed the flow of electrical current through the device.
The researchers found that electrons moved reliably when they applied less than 0.1 volt — for comparison, standard U.S. outlets have 120 volts — and the device responded predictably when the direction of the current was changed.
The carefully designed DNA structures, combined with the perovskite, also helped make the device unusually stable. According to the team, it continued operating consistently at temperatures approaching 250 degrees Fahrenheit and remained functional at room temperature for more than six weeks, substantially exceeding the performance standards of existing perovskite-based memory storage devices.
The researchers also reported that the new system could perform the same memory function as comparable technologies while consuming only one-tenth as much power. That level of efficiency could make the approach especially attractive for future electronics designed to handle large amounts of information with lower energy demands.
“Using just the DNA or just perovskite alone did not produce near as robust a result as the combination,” Keremane said. “It’s this combination that enables a very high memory storage density that requires very little power.”
A New Direction for Bio-Inspired Electronics
The team now plans to improve the technology further and explore additional uses for bio-inspired electronic systems.
“Nature has the solution — we just have to find it and apply it,” Poudel said. “This work of integrating DNA into electronics to do amazing things gives a glimpse into what is possible.”
In addition to Keremane, Yennawar and Poudel, other Penn State co-authors include co-corresponding author Luyao Zheng, postdoctoral research in materials science and engineering; Haodong Wu, doctoral student in materials science and engineering; Jiamao Zheng, who was a master’s student in materials science and engineering at the time of research and has since graduated from Penn State; Shashank Priya, who was a professor of materials science and engineering at the time of research; and Chiranth C. Ravi, who was a master’s student in the Huck Institutes of the Life Sciences at the time of research and has since graduated from Penn State. Abhinav Gorthy and co-corresponding author Rashmi Jha, chemical engineering and materials science, University of Minnesota, also contributed.
The U.S. National Science Foundation, the National Institutes of Health, Penn State and the University of Minnesota supported this research.
Researchers Say It’s Time To Ask A Different Question About Dementia

When we think of dementia, symptoms like memory loss and confusion might spring to mind. And that’s completely reasonable – dementia is a condition that progressively affects memory and thinking.
But researchers think there are other parts to the picture.
People with dementia can have periods of “paradoxical lucidity”, or moments when a long-term dementia patient’s brain seems to briefly snap back to what it once was. Carers say moments like these are common.
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They can last for minutes or hours and may make a dementia patient’s loved one feel as if, for a while at least, the “fog lifted”.
Dr Heather E. Whitson, a professor of neuroscience, the director of the Duke Ageing Centre, and co-director of the Duke/UNC Alzheimer’s Disease Research Centre, said: “I really think that a lot of what we learn about these dramatic episodes could have bearing on better cognition and better outcomes throughout the disease.”
She is one of many academics who’ll join the Lucidity in Alzheimer’s and Dementia (LEAD) Network.
What is LEAD Network?
The upcoming project, due to start this autumn, aims to create a standard definition of lucidity, understand how it affects caregivers and families, and work out the mechanisms behind lucid periods.
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Some reports suggest that triggers like music may help to induce these states of clarity among dementia patients. But the team behind LEAD Network want more hard science to explain what’s really going on during clearer spells.
It’s even hoped that working out why lucidity happens in dementia could help researchers find ways to protect us from the condition, and even recover memories.
“We’ve spent decades focused on preventing dementia and treating dementia,” Whitson stated. “This research asks a different question: What allows moments of preserved function to emerge, even in the setting of advanced disease?”
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Researchers think periods of lucidity could mean functional parts of the brain remain – it may be a question of access
Lucidity among long-term dementia patients may have to do with what’s been called the brain’s “substrate”, or the hidden, underlying part of the brain that still seems capable of regular, or better-than-usual, function.
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Dr Whitson said that the times when a person with advanced dementia is able to remember a loved one or sing every chorus of a song “suggest there is still some preserved substrate there. It means that a profound part of their self – which dementia took away – is still there”.
Maybe research like the one she and others are set to undertake could make accessing that “substrate” more predictable and reliably possible.
The professor claimed, “Neuroscientists often frame cognitive resilience as your mind’s ability to hang on to a capacity even though there is brain damage.
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“But lucid episodes tell us that even when a capacity seems as if it’s lost, it may not be lost forever.”



