Wednesday, September 16, 2026

NASA Activates Roman’s Primary Instrument, Checks Out Coronagraph

NASA’s Nancy Grace Roman Space Telescope team has successfully activated the Wide Field Instrument, a 300-megapixel infrared camera that will allow scientists to explore wide swaths of the cosmos very quickly without sacrificing exquisite detail.

Roman’s planet imager — the Coronagraph Instrument — also stretched its digital, electronic, and mechanical “limbs” as part of an initial test after waking up earlier this month.

These steps are part of a monthslong series of calibrations and tests, as Roman continues its million-mile journey to its destination at the second Lagrange point, L2.

Sky-scanner comes online

Each image taken by the Wide Field Instrument, or WFI, will capture a patch of the sky bigger than the apparent size of a full moon with all the sharpness of space telescopes like NASA’s Hubble. Its sweeping cosmic surveys will help scientists discover new information about planets beyond our solar system, untangle mysteries like dark energy, and map how matter is structured and distributed throughout the cosmos. The mission’s broad, crisp view will also produce an exciting new resource for a wide range of additional scientific studies.

Watch this video to learn more about the Roman Space Telescope’s Wide Field Instrument.
NASA’s Goddard Space Flight Center, Music credit: “Horizon Ahead” from Universal Production Music

“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.”

Before the team could activate the WFI, they had to let it rest for 10 days to dry out and decontaminate with the detectors at a relatively warm (compared to their final operating temperature) minus 85 degrees Fahrenheit, or minus 65 Celsius. On the morning of Sep. 11, they turned off the instrument heater and let the WFI cool down to minus 225 Fahrenheit (minus 143 Celsius), at which point they could activate Roman’s 18 infrared detectors, which combined have a sensing area about the size of a laptop screen.

Scientists and engineers in the launch support room at NASA’s Goddard Space Flight Center in Greenbelt, Md., celebrate the activation of Roman’s Wide Field Instrument.

NASA/Sophia Roberts

Later that night, the team activated the calibration system, which they used the next morning to start sending test data through the instrument and down to engineers on the ground. On Saturday evening, the focus shifted to the element wheel — a system of filters, prisms, and other optics used to tune the wavelengths of light that reach the detectors and spread light from cosmic objects into individual colors — as engineers tested it in the absence of gravity for the very first time.

Finally, on Sunday morning, the team made sure the WFI’s focus mechanism functions properly — an important step since it will be used to focus the hundreds of thousands of images the instrument will take. While these activities were happening, the detectors continued to cool to their final temperature of about minus 300 Fahrenheit (minus 183 Celsius).

This test image captures the very first photons of starlight to reach the Wide Field Instrument on NASA’s Nancy Grace Roman Space Telescope. It was taken as an initial performance assessment with the detector array still stowed as it was for launch, far from best focus. Roman’s primary science instrument has opened its eyes to the universe for the first time, revealing a sea of out-of-focus stars, each spread out over many thousands of pixels. The image, which zooms into one detector and zooms again to a single star in the insets, offers a baseline the Roman team will work from to align the telescope’s optics and tune the focus. The team will soon activate the instrument’s fine-guidance system, which will mean Roman can lock onto targets. They’ll also focus the observatory, which will shrink each star’s light to appear as a crisp point, rather than the broad, donut-like features seen here (which appear as expected given the instrument’s present configuration). Roman’s science images, which NASA expects to release by early 2027, will be much sharper and reveal the cosmos in exquisite detail.

NASA’s Goddard Space Flight Center, Tyler Desjardins (STScI)

All of these assessments confirmed the instrument is working as expected. The mission remains on track to release Roman’s first science images by early 2027.

Coronagraph in tip-top shape

The Roman Coronagraph is a system of optics, masks, self-flexing mirrors, and sensors designed to demonstrate the most advanced technologies ever flown in space for directly imaging planets around other stars. It will block the glare from stars and make it possible for scientists to see the faint reflected light from planets in orbit around them.

Scientists and engineers at the Coronagraph Commanding Center at Caltech/IPAC in Pasadena, California, confirmed they can communicate with all of the instrument’s components: software, thermal control, mechanisms, cameras, and the avionics which drive all of these. Essentially, operators on the ground ensured they could remotely flip all the switches that allow them to control the instrument, like the movable mechanisms that hold all of its masks, color filters, lenses, and prisms.

This image displays the “shaped pupil” masks, each about the size of a U.S. quarter, used in the Nancy Grace Roman Space Telescope’s Coronagraph Instrument. These precisely engineered components modify the diffraction pattern of starlight to block glare and reveal faint regions surrounding stars.

NASA/Chris Gunn

The test also involved confirming that the thermal control is performing as expected, warming the hardware to operating temperatures — a balmy 72 degrees Fahrenheit (22 Celsius). Aside from the detectors, the coronagraph is designed to work at near-room temperature to make it easier to test and to match the material properties of the 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.”

To learn more about Roman’s commissioning process, visit: Roman Commissioning - NASA Science 

Source: NASA Activates Roman’s Primary Instrument, Checks Out Coronagraph - NASA Science

Younger Generations Are Aging Faster, and It May Explain the Rise in Early-Onset Cancer

Cancer has long been thought of as a disease that catches up with us as we age, the longer we live, the more time our cells have to accumulate damage. So why are more and more people under 55 being diagnosed with it? A new study led by researchers at Washington University School of Medicine in St. Louis points to a surprising possible answer: younger generations may simply be aging faster on the inside than their birth certificates suggest, and that accelerated biological aging appears to be driving up their cancer risk.

Biological age vs. chronological age

The research team, led by molecular epidemiologist Yin Cao, ScD, distinguished between two kinds of “age”: chronological age (how many birthdays you’ve had) and biological age (how old your body’s tissues and systems actually appear based on molecular markers). The gap between these two numbers, the “age gap”, turns out to matter a lot. The wider that gap, the higher a person’s risk of developing cancer before age 55.

To measure this, the team analyzed data from more than 154,000 adults in the UK Biobank and over 10,000 participants in the NIH’s All of Us Research Program in the US. They used established biological-aging tools, including blood biochemistry-based measures like PhenoAge, alongside metabolomic and proteomic data that can flag aging happening in specific organs rather than just the body as a whole.

Each generation, an older-looking biology

The pattern held in both countries: people born more recently showed larger age gaps than those born decades earlier, even after accounting for how many years they’d actually lived. In the UK cohort, people born in the early-to-mid 1970s showed meaningfully more advanced systemic aging than those born in the early 1950s. In the US cohort, the shift between generations born in the 1990s versus the 1960s was even larger.

That increased systemic aging tracked with an 8% higher risk of early-onset solid cancers overall, and people with the most advanced aging profiles had a 15% higher risk than those with the least. Crucially, the effect held up even after the researchers controlled for inherited genetic cancer risk, this isn’t just about the genes you were born with.

Different organs, different cancers

The most intriguing part of the study zooms in on individual organ systems. When the immune system showed signs of aging faster than the rest of the body, that was linked specifically to a higher risk of early-onset lung cancer. When fat (adipose) tissue aged faster, that was linked to early-onset colorectal cancer. It’s a hint that different organs may be quietly aging on their own timelines, and that the specific organ under strain could point toward the specific cancer type at risk.

Cao described the team’s goal as decoding how modern environments become biologically embedded to drive cancer risk, with the aim of shifting cancer prevention from broad recommendations toward interventions tailored to a person’s own biology.

The obvious next question, what’s actually causing this accelerated aging in younger generations, remains unanswered. Diet, sedentary lifestyles, obesity, alcohol use, and even mode of birth (cesarean vs. vaginal delivery) have each been flagged in Cao’s prior work as modest individual contributors, but no single factor explains the shift. The current study, part of the Cancer Grand Challenges-funded Team PROSPECT, was designed to capture how many such factors act together rather than in isolation.

If biological age gaps really do predict cancer risk, they could eventually become a screening tool: a way to flag which younger, currently healthy people would benefit most from earlier cancer screening or prevention efforts, long before a tumor ever shows up.

Original paper: Tian R, Zong Y, Ren D, et al. “Biological aging and generational shifts in early-onset cancer risk.” Nature Medicine, June 22, 2026. DOI: 10.1038/s41591-026-04448-w

Source press release: WashU Medicine — “Faster aging in younger generations linked to rise in early-onset cancer” 

Source: Younger Generations Are Aging Faster, and It May Explain the Rise in Early-Onset Cancer