How lasers could help provide fuel for nuclear reactors

Outside the small town of Paducah, Kentucky, a wealth of uranium is locked away in thousands of storage cylinders filled with waste material from a now-closed nuclear enrichment facility. Lasers could help get it out.

A company called Global Laser Enrichment (GLE) is looking to reprocess this old material with a new technology called laser enrichment. It could be more efficient than conventional enrichment methods, allowing the company to refresh the material and produce feedstock at the same concentration as a natural mined source. And in the future, the company claims, laser enrichment could be used to make material for nuclear fuel, including the kind used in advanced reactors.

Nuclear power provides about 9% of global electricity today, and that fraction could tick up as major world powers like the US and China look to build new reactors, including some based on next-generation technology. New, cheaper methods to obtain fuel could help ensure that those nuclear projects stay on track.

Naturally occurring uranium is largely made up of uranium-238 (over 99%) and uranium-235 (about 0.7%). Uranium-235 is the fissile type, meaning that, when hit with slow low-energy neutrons, it can sustain a chain reaction that generates electricity. So reactors generally use material with a higher concentration of U-235 than what’s pulled from the ground. Today’s conventional reactors usually use low-enriched uranium, typically is about 5% U-235, though some advanced reactor designs will use fuel that’s up to 20% U-235.

Today, centrifuges are the dominant tech used to enrich uranium. The equipment essentially takes uranium-containing material and spins it around incredibly quickly, so the heavier material (which contains U-238) spins out to the edge, while the lighter material (which has U-235) stays closer to the center. (If you’ve ever swung a mustard bottle to get the last of it out, you’ve used the same basic idea behind a centrifuge.) Then the material that has a higher concentration of U-235 can go on to be made into nuclear fuel.

Laser enrichment, on the other hand, takes advantage of the fact that all molecules vibrate and rotate at an atomic scale in ways that depend on their specific material. Even different uranium isotopes have distinct fingerprints.

Lasers are so precise they can target one particular material (like molecules that contain U-235, for example). If you shine a laser at a mixture, you can selectively excite just the material you’re targeting, giving it a bit more energy. This changes the way it behaves, which can make it easier to separate out the material you want using chemical or physical methods.

A wide range of separation approaches have been developed in research and industry. Some aim to electrically charge U-235 atoms, allowing them to be moved with electrostatic or magnetic fields. Others change how the material reacts chemically. 

The details of GLE’s specific technology are classified, and company officials declined to share how the process works. 

There’s been interest in using lasers for uranium enrichment for decades, says Charles Forsberg, a principal research scientist in nuclear science and engineering at MIT. 

However, in their early days lasers tended to be high-maintenance, unstable and difficult to operate. They’ve improved dramatically, making laser enrichment a more attractive prospect than it was during the early research.

Even more than technological improvements, a recent geopolitical shift could boost new enrichment technology. Russia has the largest uranium enrichment ecosystem in the world, and the country has historically dominated the market. “Nobody in the West was going to build a new enrichment plant while the Russians flooded the world with enriched uranium,” says Forsberg. 

Since the start of the Ukraine war, however, countries including the US and UK have taken steps to limit or ban imports of Russian uranium. That’s opened the door for companies to set up new enrichment operations, including some that use new technologies, Forsberg says.

Demand for fuel is increasing as countries look beyond Russia for uranium supply. “The gap is just becoming bigger and bigger, and this technology is right in the middle,” says Christo Liebenberg, president of LIS Technologies, one of the companies aiming to build laser enrichment capacity in the US.

LIS Technologies was founded in 2023, and the company recently purchased a 200-acre site in Oak Ridge, Tennessee. It’s currently in the pre-application process with the US Nuclear Regulatory Commission for its facility. The company plans to take in natural-grade uranium and make a product that’s roughly 5% U-235, though it hopes to eventually make more concentrated material that can be used as fuel for next-generation reactors.

GLE is taking a different approach: Rather than using its technology to enrich freshly mined material to the 5% concentration that can be used in fuels, it’s hoping to start by rehabilitating old waste.

The company has a contract with the US Department of Energy to reprocess waste material at the enrichment site in Paducah. The facility could enrich up to 200,000 metric tons of material that contains small amounts of uranium leftover from an older enrichment process.

GLE is taking the material that’s at least 0.25% U-235 and enriching it to about 0.7%. That material can then be further processed and slotted into the uranium supply chain in place of freshly mined material. “It’s kind of like a large aboveground uranium mine for us,” says Nima Ashkeboussi, vice president of government relations and communications at GLE.

While each one of its units is more complex and expensive than a centrifuge, far fewer are needed to do the same work. A similar centrifugation plant would have many thousands of centrifuges working together, but a full-scale plant using GLE’s laser enrichment process would have fewer than a thousand of its units, says Stephen Long, the company’s CEO. Up-front investment should be smaller, and operating costs are also expected to be lower, partly because the process uses less energy than centrifuges, Long says.

GLE has a testing facility in Wilmington, North Carolina. In fall 2025, the company completed a demonstration pilot, processing several hundred kilograms of uranium. It decommissioned that system and is currently putting together a new demonstration at the North Carolina plant, which would show how the technology works at commercial scale.

The company also applied for a license with the US Nuclear Regulatory Commission for its proposed facility in Paducah. The final safety evaluation should be finished in November, and the final approval should come in 2027, Long says. The plan is to start processing material at the plant by 2030.

In the long run, there’s plenty of uranium on the planet to keep reactors running for decades. But as interest in nuclear power grows and the geopolitics of fuel shift, there could be short-term gaps or price spikes that alternative sources could help smooth out.

Laser enrichment plants could turn out to be cheaper than existing technologies, says Stephen Greene, a senior fellow at the Nuclear Innovation Alliance. But as with most new technologies, “you don’t really know until you try to build one.”

STAT+: Sarepta names Michael Severino, former Tessera CEO, as new chief executive

Sarepta Therapeutics, the bruised maker of Duchenne muscular dystrophy treatments, on Monday named Michael Severino, formerly the CEO of Tessera Therapeutics, as its new chief executive, starting Tuesday. 

Severino is replacing Doug Ingram, who announced earlier this year that he planned to retire after leading the biotech for nearly a decade. During his tenure, the company got three Duchenne treatments approved, but has faced ongoing questions about how effective they are and run into regulatory scrutiny over the safety of its gene therapy

The company’s share price has tanked from where it was at the beginning of 2025.

Continue to STAT+ to read the full story…

STAT+: Pharmalittle: We’re reading about a U.S. peptide panel’s votes, Amgen scuffling with the FDA, and more

Good morning, everyone, and welcome to another working week. We hope the weekend respite was relaxing and invigorating because that oh-too-familiar routine of meetings, deadlines, and the like has returned with a vengeance. You knew this would happen, yes? To cope, we are relying, as always, on a cuppa stimulation. Our choice today is Earl Grey, an old standby. Feel free to join us. Remember, no prescription is required. Meanwhile, here are some items of interest to help you on your journey today, which we hope will be productive and meaningful. Best of luck and, of course, do keep in touch. …

A U.S. Food and Drug Administration advisory panel on Friday recommended that compounding pharmacies be allowed to manufacture the peptides epitalon and semax, but narrowly voted to recommend against manufacturing emideltide, STAT writes. The votes, which followed the panel’s decision on Thursday to recommend allowing pharmacies to make four other peptides, bring U.S. Health and Human Services secretary Robert F. Kennedy Jr. one step closer to his mission of making these unapproved compounds more available for Americans. Peptides have become increasingly popular in the U.S., driven by endorsements from social media influencers.

Amgen submitted new evidence to the FDA ​as it seeks a hearing to challenge the proposed ‌withdrawal of its rare disease drug Tavneos from the U.S. market, Reuters says. In April, the agency proposed withdrawing the drug, which treats a rare autoimmune ​disease that damages blood vessels, citing a lack of proven effectiveness ​and false statements in its original marketing application. Amgen strongly disagrees with the FDA and noted its submission includes more than 70 real-world studies involving over ​2,200 patients supporting the drug’s effectiveness and safety.

Continue to STAT+ to read the full story…

STAT+: Ahead of hearing, FDA questions the efficacy of Capricor’s Duchenne drug

The Food and Drug Administration said Monday that Capricor Therapeutics’ stem cell treatment for Duchenne muscular dystrophy did not meet the objectives of a Phase 3 trial — contrary to the company’s claims last year.

Capricor said in December that the drug, known as deramiocel, met both the primary and secondary endpoints in a large, randomized study. It was a striking result in a fatal, childhood disease that has proven stubbornly difficult to treat, despite immense advances in genetic medicine. 

The data were also notable for coming primarily in teenagers and young men who have already lost the ability to walk, a population with few options. The drug appeared to both preserve their upper-arm function and stave off the heart failure most patients eventually experience, Capricor had said. 

Continue to STAT+ to read the full story…

<![CDATA[Concussion recovery in teen athletes often masks anxiety or depression; learn warning signs, screening tips, and safer return-to-play steps.]]>

The Download: lasers for nuclear fuel, and organ preservation advances

This is today’s edition of The Download, our weekday newsletter that provides a daily dose of what’s going on in the world of technology.

How lasers could help provide fuel for nuclear reactors 

Nuclear power provides about 9% of global electricity today, and that fraction could tick up as countries look to build new reactors. New, cheaper methods to obtain fuel could help ensure that those nuclear projects stay on track.

One of those methods is called laser enrichment. It allows you to separate out the material you want (in this case, uranium) from others in a mixture of old waste.

A company called Global Laser Enrichment (GLE) is about to start testing whether the technology works at commercial scale. Read our story about their efforts.

—Casey Crownhart

The quest to keep organs alive outside the body

It’s super difficult to freeze organs. Once ice forms in them, they’re done. The ice crystals create all kinds of damage and render the organs unusable. That hasn’t stopped many researchers from trying.

In new research, one team has been able to supercool the kidneys of pigs and preserve them for days. The kidneys survived being stored at −4 °C (25 °F) and eventually reimplanted back into pigs. And that’s just the latest development in a field that is positively buzzing.

Read about why it’s such an exciting time for organ preservation—and what could be coming next. 

—Jessica Hamzelou

This story is from The Checkup, our weekly biotech newsletter. Sign upto receive it in your inbox every Thursday.

The must-reads

I’ve combed the internet to find you today’s most fun/important/scary/fascinating stories about technology.

1 Silicon Valley is split over how to respond to Chinese AI
It boils down to whether AI models should be open or closed. (NYT $)
Nvidia, Microsoft and Meta warn that restricting open models would backfire. (CNBC)
AI companies are spending record sums on lobbying Washington. (FT $)
+ China’s AI models have Trump’s AI world at war with itself. (MIT Technology Review)

2 Trump can’t post his way out of this war 
Iran has revealed hard limits to his ability to bend reality to his will. (Atlantic $)
+ Trump has been forced to abandon further escalation due to dwindling munitions stockpiles. (NYT $)
An Iranian strike on CIA facilities has raised questions about Russian involvement. (Reuters $)

3 Wildfires are surging across Europe
Repeated heat waves have turned parts of the continent into a tinder box. (BBC)
One of the fires forced NASA to evacuate a tracking station in Spain. (Ars Technica)
+ Americans are increasingly grappling with smoky skies too. (Atlantic $)

4 OpenAI didn’t notice its agent going on a days-long hacking spree
It only cottoned on after the threat was contained and the FBI had been alerted, sources say. (Reuters $)

5 The AI jobs wipeout still hasn’t arrived
In fact, a lot of companies are now embarking on hiring sprees. (WSJ $)
AI’s impact is increasingly falling short of expectations. (The Guardian
Here’s a much-needed reality check on the AI jobs hysteria. (MIT Technology Review)

6 A six-year-old girl died in a Chinese gene-editing trial
Experts say it should have never been allowed to go ahead. (Science)
This baby boy was treated with the first personalized gene-editing drug. (MIT Technology Review)

7 What it’s like to use a North Korean smartphone
They’re growing in popularity—but represent another avenue for government control. (WP $)

8 The FCC’s ban on foreign-made drones is not working
You can’t change global supply chains at the stroke of a pen. (The Verge $)

9 The “summer of Ludd” shows it’s fun to be a Luddite 
A growing anti-tech movement is all about raw, anarchic joy. (404 Media)
+ We’re in the era of AI malaise. (MIT Technology Review)

10 Why Jimothy the racoon is the internet’s latest obsession ?
It’s his irresistible combination of chaos and cuteness. (BBC)

Quote of the day

“I think that [AI] should stand for artificial idiot.”

—Marian Agnew, a nine-year-old, from Norman, Oklahoma, tells Wired she’s not impressed by AI models’ tendency to make up facts.  

One More Thing

three silhouetted people in a boat crossing the water in the dark toward a beam of light

KATHERINE LAM

Inside a romance scam compound—and how people get tricked into being there  

Gavesh’s journey started, seemingly innocently, with a job ad on Facebook promising work he desperately needed. 

Instead, he found himself trafficked into a business commonly known as “pig butchering”—a form of fraud in which scammers form close relationships with targets online and extract money from them. 

The Chinese crime syndicates behind the scams have netted billions of dollars, and they have used violence and coercion to force their workers to carry out the frauds from large compounds, several of which operate openly in the quasi-lawless borderlands of Myanmar. 

Read our story about these scam syndicates and how they could be broken up. 

— Peter Guest and Emily Fishbein

We can still have nice things

A place for comfort, fun, and distraction to brighten up your day. (Got any ideas? Drop me a line.)

+ I want to make every single one of these delicious-looking Korean dishes
+ If you like origami, you’ll love this guy’s tutorials.
+ How to deal with those old gadgets that are collecting dust in your drawer.
+ Enjoy these old art deco public transport posters from London.

Research progress on the α-synuclein-lysosome axis in Parkinson’s disease: molecular mechanisms of protein aggregation, autophagy dysfunction, and therapeutic targeting

Parkinson’s disease (PD) is the second most prevalent neurodegenerative disorder worldwide, characterized pathologically by the loss of dopaminergic neurons in the substantia nigra and the formation of Lewy bodies, which predominantly consist of misfolded α-synuclein (α-Syn) aggregates. Recent advances have highlighted the critical role of the interplay between α-Syn and lysosomal function, termed the α-Syn-lysosome axis, as a central mechanism underlying PD pathogenesis. This review systematically summarizes the molecular mechanisms driving α-Syn aggregation and the lysosomal dysfunction contributing to impaired autophagy-lysosome pathway (ALP) activity. We further discuss emerging therapeutic strategies targeting this axis to restore lysosomal function and mitigate α-Syn toxicity. By integrating the latest findings from molecular biology, cell biology, and preclinical studies, this article aims to elucidate the complex regulatory network of the α-Syn-lysosome axis and provide a theoretical foundation for the development of novel therapeutic interventions for PD.

From clinical phenotypes to molecular precision: multimodal biomarkers for progressive supranuclear palsy

Progressive Supranuclear Palsy (PSP) is the most prevalent primary 4R-tauopathy, characterized by the pathogenic accumulation of misfolded tau protein within neurons and glial cells. Historically, clinical diagnosis relied upon the identification of Richardson’s Syndrome, however, the recognition of diverse clinical phenotypes that overlap with Parkinson’s disease, corticobasal syndrome, and frontotemporal dementia has complicated the diagnostic landscape and hindered the success of developing therapeutic interventions. As the field transitions toward a precision medicine paradigm, there is a growing need for validated biomarkers that can provide molecular specificity, facilitate early diagnosis, and accurately track disease progression. This paper reviews the recent advancements in neuroimaging and fluid-based biomarkers, assessing their potential to delineate PSP from similar neurodegenerative conditions and unlock the 4R-tau therapeutic pipeline. In the domain of neuroimaging, while structural magnetic resonance imaging (MRI) and the Magnetic Resonance Parkinsonism Index (MRPI) continue to provide measures of subcortical atrophy, the emergence of second-generation tau-selective positron emission tomography (PET) radioligands represents a transformative shift. New tau PET tracers offer the ability to visualize tau pathology in vivo, providing a more direct assessment of the underlying proteinopathy than traditional volumetric measures. These advancements are complemented by significant progress in fluid biomarkers. Plasma phosphorylated tau at residue 217 (p-tau217) has gained prominence as a robust marker for Alzheimer’s disease, and its primary utility in PSP research currently serves as a critical negative signature to exclude amyloid-associated co-pathology. In contrast, novel assays targeting microtubule-binding region tau fragments show burgeoning potential for the specific identification of 4R-tau isoforms. Furthermore, neurofilament light chain (NfL) has been firmly established as a sensitive, albeit non-specific, indicator of neuroaxonal injury and clinical severity. Additional advancements with digital health approaches and electrophysiological assessments add to the opportunities for improved objective measures. This review concludes that the shift from clinical-only diagnostic criteria to a biomarker-enabled molecular framework is the necessary catalyst for developing effective disease-modifying therapies for PSP and related 4R-tauopathies. The synthesis of these multimodal biomarkers into a unified framework will be essential to improve participant stratification, enable the use of adaptive trial models, and provide supportive evidence of target engagement for future clinical trials.

Synaptic mechanisms for differential severity of social preference deficits in male and female mice induced by diminished activity-dependent BDNF

Males are more commonly diagnosed with autism spectrum disorder (ASD) than females with a ratio of about 4–1. However, the neural mechanisms underlying the sex differences in ASD are unknown. Social deficits are the core symptoms of patients with ASD. Previous studies showed that diminished activity-dependent brain-derived neurotrophic factor (BDNF) signaling induced differential severity of autism-like social preference deficits in male and female mice by using a mouse model with genetic knock-in of human BDNF methionine (Met) allele, which significantly decreased activity-dependent BDNF release without affecting basal BDNF secretion. Here, we investigated the synaptic mechanisms for diminished activity-dependent BDNF-induced differential severity of social preference deficits in males and females. The prefrontal cortex (PFC) is a critical brain region for social behaviors. Whole-cell patch-clamp brain slice recordings showed that diminished activity-dependent BDNF signaling differentially increased the frequency of spontaneous action potentials (sAPs) of pyramidal neurons in the PFC of male and female BDNF+/Met mice. The frequency of sAPs in male BDNF+/Met mice was higher than in female BDNF+/Met mice. Diminished activity-dependent BDNF signaling differentially enhanced excitatory synaptic transmission and dampened inhibitory synaptic transmission of pyramidal neurons at pre- and post- synapses in males and females, which were mediated by dysregulated transcriptional levels of key synaptic genes. Chemogenetic inhibition of pyramidal neurons in the PFC of BDNF+/Met mice was sufficient to ameliorate autism-like social preference deficits in males and females. This study reveals synaptic mechanisms underlying the differential severity of social preference deficit in male and female BDNF+/Met mice, which provides a potential neural basis for sex differences in male and female ASD patients with and without the BDNF Val66Met SNP.