‘What A Shame!’ Trump Laments Decline Of Russia’s Oil Industry Amid Putin’s War

Donald Trump appears to be concerned about Ukraine’s ongoing attacks on Russia’s oil refineries – even though Kyiv is only retaliating again Moscow’s aggression.

Vladimir Putin is expected to “intensify” attacks on the Ukrainian capital after Ukrainians forces tried to “disrupt” Russian elections by firing drones at the Moscow region over the weekend while the public were voting.

It comes more than four and a half years after the Kremlin invaded Ukraine in a land grab, triggering a long and bloody war as Kyiv consistently pushes back.

Putin continues to illegally occupy a fifth of Ukraine’s sovereign territory.

Ukrainian allies in Europe have been weaning themselves off Russia’s cheap energy experts to punish the Kremlin for its violence.

But the US president, who caused global oil prices to rise after his war against Iran triggered the effective closure of a major shipping lane, seemed to blame Ukraine for the decline of Russia’s own fossil fuel industry.

“Russia has unfortunately lost control of its Diesel Oil Industry due to its War with Ukraine,” he wrote on his social media platform TruthSocial.

“A large number of their Diesel refineries have been blown up and are, at least temporarily, out of commission.

“This ridiculous and never ending War with Ukraine must be ended.

“The whole World suffers as 25,000 people, mostly soldiers, are being killed each month. What a shame! President DJT”

President Donald Trump reacts during an event about healthcare in the Oval Office of the White House, Friday Sept. 18, 2026, in Washington. (AP Photo/Jacquelyn Martin)
President Donald Trump reacts during an event about healthcare in the Oval Office of the White House, Friday Sept. 18, 2026, in Washington. (AP Photo/Jacquelyn Martin)

via Associated Press

Ukrainian president Volodymyr Zelenskyy hit back at Trump’s statement.

He wrote on X that the war must end, adding: “Every new week of this war, let alone every new year, adds more and more problems.

“ From the very first minute, Ukraine has sought peace. We have already made dozens of diplomatic proposals on how to end this war with dignity, guarantee security, and prevent new Russian invasions.

“Right now, there is a dialogue with President Trump and America.

“There are also ideas on the table for bringing peace closer, starting with strong de-escalation steps.

“Ukraine’s energy sector, critical infrastructure, and our food exports must stop being targets for Russia, and this will lead to matching de-escalation steps on our part. Solutions are possible.”

He continued: “We are ready to work on this, and we will discuss it with our partners on the sidelines of the UN General Assembly in New York.

“I thank everyone who is helping! It will no longer be the case that only the country under attack suffers. The nature of war is now such that the aggressor will suffer as well. Technology makes this possible.

“The strength of countries’ leadership can – and must – deliver de-escalation, security, and peace. Thank you!”

The elections – widely disregarded as a sham vote to bolster Putin’s authoritarian rule – already appear to cement the Kremlin’s dominance over the country amid speculation Russia may need to call up more reserves for the war effort.

Zelenskyy is set to meet Trump at the United Nations’ General Assembly on Tuesday.

Listen to Commons People, the podcast that makes politics easy. Every week, Kevin Schofield and Kate Nicholson unpack the week’s biggest stories to keep you informed. Join us for straightforward analysis of what’s going on at Westminster.

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Rete Ovarii: The Female Body Part Ignored For Decades May Be Key For Ovary Health

Ever heard of the “rete ovarii”?

If you answered “no”, you have every reason. Even though it was discovered and described in humans over 150 years ago (drawings of it appear in early copies of Grey’s Anatomy, an anatomy reference book that’s been running since 1858), scientists quickly dubbed it purposeless.

The structure, which lies near the ovaries, became so ignored that it was eventually removed from textbooks altogether. It was considered a “functionless vestige” of the adult ovary, meaning experts decided it was a useless evolutionary holdover.

But a study from Duke University suggests that the body part might play a role in fertility and ovarian health and maintenance for those with wombs.

While the research was conducted on mice, researchers think the findings could apply to humans too; the structure has been seen in lots of other mammals, and our sex organs develop in a manner very similar to those of a mouse.

What is the rete ovarii?

Sometimes shortened to RO, the rete ovarii is a horseshoe-shaped “network of tubules and cords” that is attached to the ovary.

As it happens, those with penises have an equivalent: the rete testis, which we know helps to transport sperm.

What does the rete ovarii do?

We don’t know yet – but new imaging technology has offered exciting suggestions which would render the rete ovarii far from useless.

The “rediscovered” rete ovarii was found to have three distinct regions in both living mice and animals’ dissected tissue:

  1. The intraovarian rete (IOR), found in the ovary
  2. The extraovarian rete (EOR), made up of that network of tubes we mentioned earlier
  3. The connecting rete (CR), which joins up the IOR and CR

The EOR seems to contain and produce proteins like insulin-like growth factor-binding protein 2 (IGFBP2), which may play a role in ovary function.

And after placing fluorescent dye in the EOR, they found it seemed to propel liquid towards the ovary, too. That suggests it may have a role in how the appendage operates or maintains itself.

Not only that, but experiments pointed to the possibility that the rete ovarii might switch on genes that affect how hormone receptors work.

The paper reads: “The direct proximity of the RO to the ovary suggests that it is functionally linked to the ovary and may play an important role in ovary development and homeostasis [self-regulation].

“Based on the cell biology, transcriptome and proteome of the RO, I hypothesise that the RO acts as an antenna for the ovary and plays an important role in ovary homeostasis and fertility.”

This could prove a springboard for further studies

More research is needed to confirm or disprove that hypothesis, or indeed to find any other possible uses of the rete ovarii.

Speaking to Live Science, the study’s lead author, Dilara Anbarci, said: “There’s still so much we can’t even begin to comprehend about female anatomy.

“I hope this encourages more investigation in reevaluating what we don’t already know about the ovary.”

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Farage Plays Down Latest ‘Bump In The Road’ For Reform UK As He Unveils New Wales Leader

Nigel Farage has played down the loss of Reform UK’s last leader in Wales as a “bump in the road”.

The Clacton MP was unveiling the party’s new regional leader after Dan Thomas stood down last Tuesday.

He was arrested on suspicion of assault and controlling or coercive behaviours. He has been bailed and says he has done nothing wrong.

The former Tory councillor is still a member of the Welsh parliament, and has been Reform’s Welsh leader since February.

The role was previously filled by Nathan Gill, who led the party in Wales for two months in 2021. He was jailed for 10 and a half years in 2025 for taking Russian bribes.

Reform’s main leader Farage announced today that his ally Helen Jenner, previously the deputy leader in Wales, would be taking over.

Alluding to Thomas’s exit, Farage said: “I am sorry for his personal difficulties that he is going through. No one’s life is ever seamless and I am quite sure he will come out of these before too long.

“But it was pretty much untenable for him to continue as leader while he had these domestic disputes, so we very quickly and rapidly have moved to electing a new leader.”

The new Welsh Reform UK Leader Helen Jenner speaks on the steps of the Sennedd beside Reform UK leader Nigel Farage, on September 21, 2026
The new Welsh Reform UK Leader Helen Jenner speaks on the steps of the Sennedd beside Reform UK leader Nigel Farage, on September 21, 2026

Jon Rowley via Getty Images

Farage said elections for a new Reform deputy leader in Wales would follow to fill Jenner’s old role.

He added: “We will carry on as if nothing has happened, waiting for Dan who is going to stay a member of this place, to come back more actively with us.

“We could have done without this bump in the road. But it has happened, we are making the best of it.”

Thomas announced last weekend that he had been released without charge.

“I stress that I have done nothing wrong, but I do not want the coming headlines to be a distraction from the fantastic work our Senedd team is doing in holding this government to account,” he said.

Gwent police confirmed a 45-year-old man from Aberbargoed area was arrested on September 13 “on suspicion of assault and engaging in controlling/coercive behaviour. He has been bailed pending further inquiries”.

The announcement comes amid heightened scrutiny on Reform and its finances.

The party received £72 million in 48 hours from crypto-billionaires earlier this month, though Reform insists the donors want nothing in exchange.

Farage is also subject to a parliamentary sleaze probe after he failed to declare a £5 million donation from Thailand-based Christopher Harborne once he became an MP in 2024.

Listen to Commons People, the podcast that makes politics easy. Every week, Kevin Schofield and Kate Nicholson unpack the week’s biggest stories to keep you informed. Join us for straightforward analysis of what’s going on at Westminster.

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A new process turns plastic waste into gasoline and diesel fuel

Researchers at the Department of Energy’s Oak Ridge National Laboratory have developed a new way to transform polyethylene, one of the world’s most common plastics, into gasoline- and diesel-like fuels.

Polyethylene is widely used in products such as shopping bags and white plastic cutting boards, and large amounts of it ultimately end up as waste. The ORNL team’s method combines the plastic with molten salts containing aluminum chloride. These salts perform two jobs at once, acting as both the reaction medium and the catalyst that drives the chemical conversion.

The researchers have applied for a patent for the technology, and the findings were published in the Journal of the American Chemical Society.

How Molten Salts Break Plastic Into Fuel

To understand why the process works, the scientists closely tracked the chemical reactions that convert the polymer into fuel molecules.

Using soft X-ray spectroscopy and nuclear magnetic resonance, the team found that charged aluminum atoms bind with three other atoms, creating highly acidic catalytic sites. These sites can attack the long molecular chains that make up polyethylene and split them into smaller hydrocarbon molecules.

Additional experiments using isotopic labeling and neutron scattering showed how the structure of the starting polymer influences the resulting fuel. Simpler polymer chains tended to produce gasoline-like compounds, while more complex chains generated diesel-like fuels.

If the method can eventually be scaled beyond laboratory experiments, the researchers say it could contribute to U.S. energy security and strengthen industrial competitiveness.

“We developed an efficient and selective polyethylene-to-gasoline conversion,” said Liqi Qiu, a postdoctoral researcher at the University of Tennessee, Knoxville, who performed most of the study’s experiments in the ORNL laboratory of Sheng Dai, of ORNL and UTK. Dai, an ORNL Corporate Fellow and section head for separations and polymer chemistry, is a co-corresponding author of the paper.

The experiments achieved a gasoline yield of about 60 percent under relatively mild reaction conditions.

Plastic-to-Gasoline Conversion Below 200 Degrees Celsius

One of the most notable features of the method is how little it requires compared with more conventional plastic-to-fuel technologies.

“We converted polymer waste to value-added fuels by using commercially available inorganic salts as the reaction media to provide the catalytic sites,” said Zhenzhen Yang, an ORNL staff scientist who was also a co-corresponding author of the paper. “Unlike traditional techniques for converting polymer to fuel, the new process did not require noble-metal catalysts, organic solvents or external hydrogen. This is the first time molten salts were used as media to produce high-value-added chemicals from waste without any catalytic initiator or solvent and at a temperature below 200 degrees Celsius.”

Temperatures below 200 degrees Celsius are comparable to those found inside a conventional kitchen oven. Earlier approaches for converting polyethylene into gasoline have typically relied on pyrolysis, a process that uses intense heat to break large polymer molecules into smaller hydrocarbons. Those methods have required temperatures of roughly 450 to 500 degrees Celsius.

The lower temperature, along with the absence of costly noble-metal catalysts, external hydrogen, organic solvents, and a chemical initiator, could simplify the process.

“The ORNL system solves two fundamental issues. One, for a stable system, the process can be radically easier to scale up. Two, the previous system needed an initiator to kick off catalytic reactions.”

  • Sheng Dai, ORNL Corporate Fellow and section head for separations and polymer chemistry

Decades of Molten Salt Research

ORNL has been studying molten salts for decades. During the 1960s, its Molten Salt Reactor Experiment demonstrated that mixtures of molten salts could function as both nuclear fuel and reactor coolant.

Building on that long history, Dai proposed using molten salts for an entirely different purpose: converting discarded polymers into useful fuels.

Molten salts are inorganic compounds that can remain stable even under demanding chemical reaction conditions.

“The ORNL system solves two fundamental issues,” Dai said. “One, for a stable system, the process can be radically easier to scale up. Two, the previous system needed an initiator to kick off catalytic reactions. However, the ORNL system does not need one.”

ORNL’s Tomonori Saito managed the project and contributed expertise in polymer science.

“In this case we tackled polyethylene, a widely available commodity polymer, using molten salt,” he said. “We’re trying to understand fundamental science that will lead to discoveries and new economic opportunities.”

Understanding exactly what was happening during the reaction required researchers from several scientific disciplines and the use of multiple advanced analytical techniques.

Tracking the Chemistry Atom by Atom

At ORNL, Luke Daemen used neutron scattering to help identify the hydrocarbon products created when different polymer chains reacted. Felipe Polo-Garzon analyzed the products with gas chromatography-mass spectrometry, a technique used to separate and identify individual chemical compounds.

When polyethylene interacted with an aluminum catalytic site, the reaction produced a positively charged carbon ion. Qiu, Yang and Dai tagged that carbon ion with deuterium, an isotope of hydrogen, allowing them to follow what happened to it as the reaction progressed.

The team also used neutrons at ORNL’s Spallation Neutron Source to monitor hydrogen within the system.

“The polymer contains a lot of hydrogen,” Dai said. “Neutrons are ideal at discerning light elements including hydrogen and its isotopes, such as deuterium.”

Researchers also needed to determine how the aluminum sites themselves changed during the process.

Yang traveled to the Advanced Light Source at Lawrence Berkeley National Laboratory, where she worked with Min-Jae Kim and Jinhua Guo. Using soft X-rays, the researchers examined interactions between aluminum and polyethylene at both the atomic and electronic levels. Soft X-rays are especially useful for studying relatively lightweight elements such as aluminum.

“The aluminum edge shifted to the low-electron-density edge, which means some electron-rich intermediates formed,” Yang said. “We compared the findings with other techniques and confirmed an aromatic ring intermediate can coordinate with aluminum and cause a binding-energy change.”

That shift provided evidence that the aluminum sites were actively catalyzing the chemical reaction.

Simulations and Advanced Imaging Reveal the Mechanism

Back at ORNL, Bobby Sumpter of the Center for Nanophase Materials Sciences used computer simulations to study the energy changes taking place during the reaction, including how stable carbon ions formed and were transferred into hydrocarbon products.

At UTK, Michael Koehler used in situ X-ray diffraction to follow changes in the phases of the reaction mixture as the chemistry unfolded. Carlos Alberto Steren used nuclear magnetic resonance to investigate the aluminum catalytic sites.

ORNL’s Tao Wang contributed expertise in molten salt chemistry, while ORNL’s Logan Kearney supplied high-density polymers and provided expert guidance on possible routes for converting them into higher-value products.

A Remaining Challenge: Keeping the Salts Stable

Although the aluminum-based catalytic system is inexpensive and chemically active, it has an important limitation. The material is hygroscopic, meaning it readily absorbs water. That moisture can reduce its stability.

The researchers now want to investigate ways to confine the molten salts, potentially using halogens or carbon-based materials, which could make the salts easier to separate and process while improving their stability.

The work could ultimately expand the range of methods available for producing transportation and industrial fuels from waste materials.

“Polymer source material is abundantly available from consumer waste, and our catalyst system, aluminum molten salts, is very cheap,” Qiu said. “This advance may be promising for industry.”

The DOE Office of Science (Materials Sciences and Engineering Division) primarily supported the research as well as the gas chromatography-mass spectrometry work (Chemical Sciences, Geosciences and Biosciences Division, Catalysis Science program). The research employed DOE Office of Science user facilities at ORNL (the Spallation Neutron Source for neutron scattering at the VISION beamline and the Center for Nanophase Materials Sciences for quantum chemistry calculations) and Lawrence Berkeley National Laboratory (the Advanced Light Source for soft X-ray spectra).

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Scientists create a needle-thin brain implant that can do three jobs at once

A new type of brain implant could give scientists a more precise way to study the brain and may eventually contribute to treatments for neurological conditions such as epilepsy.

Researchers from DTU, the University of Copenhagen, University College London, and other institutions have developed a long, needle-thin brain electrode equipped with microscopic channels. Known as the microfluidic Axialtrode (mAxialtrode), the device is designed to provide multiple functional points along the length of the implant. This allows researchers to record neural activity and deliver medication to specific locations across different parts of the brain.

The findings were published in the journal Advanced Science.

A Multifunction Tool for Brain Research

For now, the technology is primarily intended as a research tool. Scientists could use it to investigate how signals travel through different layers of the brain during processes involving epilepsy, memory, and decision-making.

Over the longer term, the researchers say the mAxialtrode could also have therapeutic applications. One possibility would be using the device to deliver drugs to precise locations while simultaneously applying electrical stimulation or light stimulation to selected areas of the brain.

Postdoc Kunyang Sui, who developed the mAxialtrode concept together with Associate Professor Christos Markos, says one of the main advantages is that several capabilities can be combined within a single implant. That could allow researchers to perform more precise experiments while reducing the need for multiple devices inserted into the brain.

“Most current brain implants are based on hard materials such as silicon, which can irritate the brain and trigger inflammatory reactions in the tissue. The new implant differs in that it is made of soft, plastic-like optical fibers and has a specially angled tip that makes it smaller and reduces the damage caused when it is placed in the brain,” says Kunyang Sui.

Sui cautions that the technology is still far from routine clinical use. Extensive testing, additional development, and regulatory approvals would be required before it could be used to treat patients.

Moving Beyond Conventional Optical Fibers

Brain researchers currently use flat-ended optical fibers in many experiments. These thin fibers, made from glass or plastic, can carry light into deep regions of the brain. They are frequently used in optogenetics, a technique in which specific nerve cells are activated using light.

Conventional fibers, however, have an important limitation. They typically interact with brain tissue only at the end of the fiber, meaning researchers can stimulate or monitor just one location at a time.

The outermost end is called the distal tip, or the “nose” of the fiber. Light is emitted and contact with brain tissue occurs only at this point. As a result, scientists may be limited to measuring or stimulating one brain layer at a time, even though many brain functions depend on communication among several layers and deeper structures.

How the New Brain Implant Works

The needle-thin mAxialtrode begins as a much larger polymer rod. Researchers heat the material and draw it into an extremely thin fiber, somewhat like producing a very fine strand of sugar, but with far greater precision.

A light-conducting core runs through the center of the fiber. Surrounding it are eight microscopic channels that can transport liquids. Those channels can also hold extremely thin metal wires used to measure electrical activity in the brain.

The finished fiber measures less than half a millimeter across. It is also highly flexible, allowing it to move along with brain tissue rather than pressing rigidly through it. This difference in stiffness could be important because harder implants can trigger inflammatory responses when they remain in the brain for long periods.

Tested in Living Mice

The researchers tested the system not only in the laboratory but also “in vivo,” meaning in living mice. The electrode was implanted in the animals’ brains and connected to light sources, recording equipment, and small pumps used to deliver fluids.

The experiments showed that the device could stimulate nerve cells using both blue and red light. At the same time, researchers were able to record electrical activity from shallow and deeper brain regions, including the cerebral cortex and hippocampus.

They were also able to inject different substances at separate depths, with delivery points spaced almost three millimeters apart. All of these measurements and forms of stimulation were carried out using a single lightweight fiber, which the mice were able to carry without any obvious signs of discomfort.

Potential Applications in Epilepsy and Neuroscience

The in vivo experiments and neurophysiological validation were performed in close collaboration with Associate Professor Rune W. Berg of the University of Copenhagen and Associate Professor Rob C. Wykes from University College London. Their contributions included expertise in analyzing neural circuits and models relevant to epilepsy.

The research team is now working to patent the technology behind the brain electrode. The scientists are also exploring what would be required to begin testing the device in patients within a clinical setting.

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NASA just powered up Roman’s massive 300-megapixel camera

NASA’s Nancy Grace Roman Space Telescope has reached another major milestone in space. Mission teams have successfully powered up the Wide Field Instrument, a 300-megapixel infrared camera designed to survey enormous areas of the universe rapidly while still capturing extremely fine detail.

Roman’s planet-imaging system, the Coronagraph Instrument, has also completed an early checkout of its digital, electronic, and mechanical systems after waking up earlier this month.

The tests are part of a months-long commissioning process that will continue as Roman travels roughly one million miles toward its destination at the second Lagrange point, L2.

Roman’s 300-Megapixel Camera Comes Online

The Wide Field Instrument, or WFI, is designed to combine an unusually broad view of the sky with the kind of sharp detail associated with space telescopes such as NASA’s Hubble. A single WFI image will cover an area of sky larger than the apparent size of a full moon.

That combination of wide coverage and high resolution will allow Roman to carry out enormous surveys of the cosmos. Scientists plan to use those observations to learn more about planets beyond our solar system, investigate mysteries such as dark energy, and study how matter is arranged throughout the universe. Roman’s expansive and detailed observations are also expected to create a valuable dataset for many additional scientific studies.

“After years of effort to build and test the instrument on the ground, we now have confirmation that it is operational in space. This is a huge milestone for the team at Goddard, our industry teams at BAE Systems, Inc. and Teledyne, and our science centers,” said Josh Schlieder, the Wide Field Instrument scientist at NASA’s Goddard Space Flight Center in Greenbelt, Maryland. “There is much to do, but we are on our way to groundbreaking science.”

Cooling Roman’s Infrared Detectors

Before engineers could switch on the WFI, the instrument spent 10 days drying out and undergoing decontamination. During that period, its detectors were kept at a relatively warm (compared to their final operating temperature) minus 85 degrees Fahrenheit, or minus 65 Celsius.

On the morning of Sep. 11, the team shut off the instrument heater and allowed the WFI to cool to minus 225 degrees Fahrenheit (minus 143 degrees Celsius). At that temperature, engineers were able to activate Roman’s 18 infrared detectors. Together, those detectors have a light-sensitive area approximately the size of a laptop screen.

Later that evening, the team turned on the instrument’s calibration system. The following morning, engineers began sending test data through the WFI and transmitting it back to teams on Earth.

Testing Roman’s Filters and Focus

On Saturday evening, engineers turned their attention to the element wheel, which contains filters, prisms, and other optical components. The system controls which wavelengths of light reach the detectors and can separate light from cosmic objects into individual colors. This marked the first time the mechanism had been tested without gravity.

By Sunday morning, the team was testing the WFI’s focusing mechanism. That system will be critical for keeping the hundreds of thousands of images Roman is expected to capture properly focused.

Throughout these tests, the detectors continued cooling toward their final operating temperature of about minus 300 Fahrenheit (minus 183 Celsius).

The results showed that the Wide Field Instrument is functioning as expected. Roman remains on schedule to release its first science images by early 2027.

Roman’s Coronagraph Passes Early Checks

Roman’s Coronagraph Instrument is built to demonstrate some of the most advanced technology ever sent into space for directly imaging planets orbiting other stars.

The instrument combines optics, masks, self-flexing mirrors, and sensors that are designed to suppress the overwhelming glare of a star. By blocking that light, the coronagraph could allow scientists to detect the much fainter light reflected by planets orbiting nearby.

Scientists and engineers working at the Coronagraph Commanding Center at Caltech/IPAC in Pasadena, California, verified that they can communicate with every major part of the instrument. Those systems include its software, thermal controls, mechanisms, cameras, and the avionics that operate them.

In practical terms, the test confirmed that ground teams can remotely control the instrument’s various systems, including movable mechanisms that position its masks, color filters, lenses, and prisms.

Preparing the Coronagraph for Science

Engineers also verified that the coronagraph’s thermal system is functioning properly and can warm the hardware to its operating temperature, a relatively comfortable 72 degrees Fahrenheit (22 Celsius).

With the exception of its detectors, the coronagraph is intended to operate near room temperature. That design makes the system easier to test while also helping preserve the material properties required by its deformable mirrors.

“Now that this test is complete, we’ve been decontaminating: sitting idle with our detectors warm so anything that’s stuck to the surface, such as water or trace chemicals, will tend to leave it,” said Eric Cady, an optical engineer leading commissioning efforts for the Roman Coronagraph at NASA’s Jet Propulsion Laboratory in Southern California. “This will continue for 30 days, with occasional stops to do other early calibration activities.”

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Young people aren’t snowflakes – mental distress is rising, says head of official review

Speaking exclusively to the BBC, Prof Peter Fonagy says being young is much harder now than it was.

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Smart beds and motion sensors – is this the future of dementia care?

Jyoti and Bharat Patel are testing dementia technology including sensors in socks, their bed and around the house.

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What food items should you stock up on in case of an emergency?

Extreme weather may be changing the way we need to shop, with the UK government urging people to stock up on canned goods.

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Brits Must ‘Guard Against Normalisation Of Racism’, Bridget Phillipson Warns

A cabinet minister has urged Britons to “guard against the normalisation of racism” coming from some right-wing politicians.

Bridget Phillipson accused prominent members of both Nigel Farage’s Reform UK and Kemi Badenoch’s Conservative Party of questioning Brits’ identity “on the basis of their skin colour”.

The equalities minister’s remarks come after former Tory prime minister Rishi Sunak warned in The Sunday Times there is a risk “we start equating skin colour with nationality”.

Sunak, the UK’s first non-white PM, said immigration debates are starting to focus on “trying to turn Britishness into a DNA test”.

“Once we say that this or that person isn’t really English or British because they are not white, then we are on a very slippery slope,” he said.

“Some people will argue that English is an ethnic identity and British a civic identity. Though if you think those nuances are heard by most people, I fear you are being rather — perhaps even wilfully — naive.”

Phillipson told BBC’s Sunday with Laura Kuenssberg: “We are a fantastically successful country in terms of integration, in terms of the real strength we draw from that.

“But I find it extremely disturbing that it has become normalised in frontline politicians, both in Reform and the Conservatives, to question people’s British identity on the basis of their skin colour.”

Both Reform and the Conservative Party have been approached for comment.

The Labour Party chair continued: “My family come here from Ireland, built a life here, work in our NHS, and made such a big contribution but no one questions my identity, and that’s because I’m white.

“I’m really worried about what we are seeing around the questioning of the integrity and the identity of people who have a different skin colour.

“I think that is profoundly un-British, it is not in keeping with our traditions and I’m really pleased to see people like Rishi Sunak standing up and making very clear that actually it’s a good thing he could be the prime minister for our country – and I do believe with that.”

“We have to really guard against the normalisation of racism that we are seeing in our country,” she added.

The debate comes after Reform’s home affairs spokesperson Zia Yusuf was accused of “straight-up racism” by a minister earlier this month.

Yusuf had questioned Labour’s candidate in the Holborn and St Pancras by-election, a Labour council leader, because she was born in Somalia.

The Conservative’s first Muslim chair, peer Baroness Warsi, called the party “institutionally xenophobic and racist” back in 2024.

Listen to Commons People, the podcast that makes politics easy. Every week, Kevin Schofield and Kate Nicholson unpack the week’s biggest stories to keep you informed. Join us for straightforward analysis of what’s going on at Westminster.

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