space Archives | 鶹ӳý News Central Florida Research, Arts, Technology, Student Life and College News, Stories and More Thu, 23 Jul 2026 15:44:07 +0000 en-US hourly 1 https://wordpress.org/?v=7.0.2 /wp-content/blogs.dir/20/files/2019/05/cropped-logo-150x150.png space Archives | 鶹ӳý News 32 32 鶹ӳý Engineering Students’ Excellence Celebrated With 2026 Astronaut Scholarship /news/ucf-engineering-students-excellence-celebrated-with-2026-astronaut-scholarship/ Fri, 24 Jul 2026 13:03:42 +0000 /news/?p=154412 The prestigious scholarship offers financial support up to $15,000 in addition to mentorship and extensive networking opportunities.

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Joshua Taggart knew he wanted to work for the space industry the day he experienced his first launch while attending a camp at Kennedy Space Center, seeing the space shuttle Endeavour soar into the sky. He’s now closer to making that dream a reality after being recognized with one of the industry’s most distinguished awards.

Taggart is the latest Knight to receive the coveted Astronaut Foundation Scholarship, a national award that provides more than 70 scholarships of up to $15,000 each for some of the nation’s very best STEM students. He will be recognized with the 2026 class of scholars at the foundation’s gala, to be held next month in Houston.

Taggart says he chose 鶹ӳý for its reputation in engineering as the No. 1 supplier of talent to the nation’s aerospace and defense industries (Aviation Week Network). He is in good company as part of a trio of Astronaut Scholars this year from the College of Engineering and Computer Science, joining mechanical engineering student Keanu Brayman and computer engineering student Kyle Coutray (a biomedical sciences double major), who have received the scholarship for second consecutive year.

As Taggart works to complete his final year at 鶹ӳý, his latest accomplishment fuels his path to make an impact as a future space researcher.

Man with shoulder length dark hair and glasses wearing a blue NASA collar shirt stands in front of white wall with NASA logo
Joshua Taggart chose 鶹ӳý for its reputation in engineering as the No. 1 supplier of talent to the nation’s aerospace and defense industries (Aviation Week Network). (Photo courtesy of Joshua Taggart)

Future Focused

Driven to contribute to humanity’s exploration of our universe, Taggart is already working on future-focused innovations that can benefit the space industry.

Through NASA Office of STEM Engagement, he interned at the Johnson Space Center working on communications, avionics, propulsion and flight software for CubeSat subsystems.

This summer at NASA’s Glenn Research Center, he is researching packaging materials for silicon carbide pressure sensors, working to make sure they perform reliably above 1,000 degrees Celsius (1,832 degrees Fahrenheit), and on integrating thermocouple sensors for temperature compensation.

“I chose this field of research because I want to be involved in next-generation electronics that can withstand the extreme nature of outer space.” — Joshua Taggart

“With the harsh environment that outer space is and planet surfaces like Venus, electronics must survive very high temperatures and radiation effects,” he says. “I chose this field of research because I want to be involved in next-generation electronics that can withstand the extreme nature of outer space.”

His work as an undergraduate researcher for the Q-Sim Lab, directed by Assistant Professor Jaesung Lee, also centers around developing technology designed to operate in outer space. Taggart is working on microelectromechanical systems (MEMS) resonators designed to perform under extreme conditions, such as elevated temperatures and increased exposure to radiation.

He recently won a Judge’s Choice Award at 鶹ӳý Student Research Week for his Honors Undergraduate Thesis, “Robust AlN MEMS Resonators for High Temperature Space Environments.”

His passion for space has only grown over the years, reflected by his ongoing research at 鶹ӳý and for NASA. As an Astronaut Scholar, Taggart is launching into a future full of possibilities.

“Aside from the financial support that this scholarship will provide me as I complete my undergraduate program, I am very eager for all of the networking opportunities I will have,” Taggart says. “I look forward to networking with other students and industry leaders to learn and grow as much as I can thanks to the Astronaut Scholarship Foundation.”

Those interested in the Astronaut Scholarship and other opportunities should reach out to the Office of Prestigious Awards atOPA@ucf.edu.

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Joshua Taggart – ucf – nasa Joshua Taggart chose 鶹ӳý for its reputation in engineering as the No. 1 supplier of talent to the nation’s aerospace and defense industries (Aviation Week Network). (Photo courtesy of Joshua Taggart)
From Earth to Titan: 鶹ӳý Researchers Model Landscapes Using River Geometry /news/from-earth-to-titan-ucf-researchers-model-landscapes-using-river-geometry/ Wed, 22 Jul 2026 13:00:48 +0000 /news/?p=154266 The research could help scientists better understand how rivers shape Earth — and how ancient landscapes formed on Mars and Saturn’s largest moon, Titan.

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Long before roads, cities or borders, rivers carved the contours of the world.

Over millions of years, flowing water etched valleys, shaped mountainsides and formed the branching blue and green scars visible across Earth — and potentially those on other celestial bodies.

Now, 鶹ӳý researchers and collaborating institutions developed a framework capable of reconstructing realistic 3D landscapes using only 2D river network patterns. By combining computer models that simulate how river networksform with principles of hydraulic geometry — the study of how rivers naturally shape themselves over time — the researchers were able to estimate terrain features such as elevation, channel depth, slope and sediment transport.

The approach could help scientists better understand how landscapes evolve under different environmental conditions on Earth and potentially other planetary bodies such as Mars and Titan.

Rivers as Geological Records

鶹ӳý associate professor Arvind Singh stands with another researcher in front of a large hydraulic flume used to study river flow, erosion and landscape evolution.
Associate Professor Arvind Singh (left) and postdoctoral scholar Dnyanesh Borse (right) stand in the Hydraulics Laboratory with another researcher beside a large hydraulic flume used to study river flow and landscape evolution.

According to Arvind Singh, an associate professor in 鶹ӳý’s Department of Civil, Environmental and Construction Engineering, river networks preserve traces of the physical processes and external forcings that shaped them over time.

“River networks encode the integrated effects of hydrologic and geomorphic processes, reflected in metrics such as drainage structure, channel geometry, relief and hypsometry (the measurement of elevation and depth),” Singh says.

Reconstructing Landscapes from Networks

Traditionally, researchers study river systems by starting with 3D topographic data gathered through satellite imaging and digital elevation models, then extracting river networks from the terrain.

The new framework flips that process.

Instead of beginning with terrain itself, the researchers investigated whether river networks contain enough information to reconstruct landscapes from the ground up.

“Because traditional approaches require full topography and only describe patterns, reverse engineering (e.g., from networks) can reveal the underlying physical processes that govern landscape form,” Singh says.

The researchers say river networks can reveal far more than simple drainage patterns. Under the framework, the geometry of the networks can also help estimate hidden environmental variables tied to landscape formation.

“A key insight is that realistic 3D landscapes, and even unobservable quantities like discharge or sediment transport, can be reconstructed from 2D network structure alone, revealing strong constraints imposed by fundamental scaling laws,” Singh says.

Testing Alien Worlds

Because the framework is dimensionless and scalable, researchers were also able to adapt the model to hypothetical landscapes on Mars and Titan by changing variables such as gravity and sediment density.

The resulting simulations revealed how river valleys and terrain formations may differ across planetary environments. Compared to Earth and Mars, Titan’s lower gravity and unique environmental conditions produced wider channels, deeper river systems and flatter overall landscapes.

“Mars and Titan provide natural laboratories with different gravity and fluid/sediment properties, allowing the framework to test how identical network structures yield different landscapes under altered physical conditions.”—Arvind Singh, associate professor

The planetary comparisons allowed the researchers to test how different environmental conditions influence landscape formation even when river structures remain similar.

“Mars and Titan provide natural laboratories with different gravity and fluid/sediment properties, allowing the framework to test how identical network structures yield different landscapes under altered physical conditions,” Singh says.

The simulations also demonstrated how gravity and sediment behavior can dramatically alter the shape of landscapes over time.

“Differences in gravity and sediment properties directly alter channel width, depth, slope, and relief, leading to distinct landscape geometries even with the same network structure,” Singh says.

The researchers say the framework may also help scientists better understand how precipitation, sediment size and watershed structure influence the evolution of landscapes over time. Unlike many traditional landscape evolution models, the framework explicitly resolves river channels and their physical characteristics, including depth, slope and gravel transport.

A New Framework for Landscape Evolution

The researchers say the framework differs from many traditional landscape evolution models because it directly incorporates the physical properties of river channels into the simulations.

“This framework couples probabilistic 2D channel network generation with physically based, dimensionally consistent hydraulic geometry and hillslope models, explicitly resolving channel properties and producing fully scalable 3D landscapes,” Singh says.

By revealing how river networks preserve hidden information about the worlds they shape, the researchers hope the framework can help scientists better understand not only Earth’s geological past, but also the ancient landscapes of distant planetary environments.


The study was conducted by researchers from 鶹ӳý, the University of Illinois Urbana-Champaign, and collaborating institutions, with support from the 鶹ӳý P3 program and other funding sources.

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Arvind Singh 鶹ӳý associate professor Arvind Singh (left) stands in the Hydraulics Laboratory with another researcher beside a large hydraulic flume used to study river flow and landscape evolution. (Photo by Antoine Hart)
鶹ӳý Researchers Advance Tech That Could Help Scientists Detect Habitable Worlds Beyond Our Solar System /news/ucf-researchers-advance-tech-that-could-help-scientists-detect-habitable-worlds-beyond-our-solar-system/ Fri, 17 Jul 2026 13:00:18 +0000 /news/?p=154191 Supporting NASA’s proposed Habitable Worlds Observatory, 鶹ӳý researchers aim to help overcome one of the greatest challenges in modern astronomy: directly imaging Earth-like planets orbiting stars.

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Are we alone in the universe?

For scientists working on NASA’s proposed Habitable Worlds Observatory, that question is no longer purely philosophical. It is increasingly becoming an engineering problem.

Researchers at 鶹ӳý’s are helping develop technology designed to help future space telescopes detect potentially habitable planets orbiting distant stars.

The NASA-funded project, known as PEEPSS (Photonics-Enabled Exoplanet Spectroscopic System), aims to help astronomers directly observe planets hidden within the overwhelming brightness of their parent stars.

“If they’re in the habitable zone, that means they are orbiting close to their host star, and that host star is typically going to be 10 billion times brighter than the planet,” says Professor Stephen Eikenberry, principal investigator on the project.

To explain the difficulty, Eikenberry compares the task to trying to spot “a tiny blinking light while someone is shining a spotlight directly in your face.”

The work supports the long-term goals of NASA’s proposed Habitable Worlds Observatory (HWO), a future flagship space telescope intended to search for Earth-like planets beyond our solar system and analyze their atmospheres for signs of life.

Solving One of Astronomy’s Hardest Problems

Astronomers already know planets are common throughout the universe. The challenge now is identifying Earth-like planets that are extraordinarily faint compared to the stars they orbit.

Astronomers use instruments called coronagraphs to block a star’s glare while allowing faint planetary signals to reach a telescope’s detectors.

Even then, however, microscopic imperfections in a telescope’s optics can allow enormous amounts of starlight to leak through the system.

“And you can say, ‘Well, that’s only a part in a million,’ ” Eikenberry says. “Guess what? A part in a million means it’s still 10,000 times brighter than your exoplanet. You’re doomed.”

The system performs an advanced form of wavefront sensing that detects and corrects tiny distortions in incoming light before they overwhelm planetary signals.

Unlike many existing systems that monitor light earlier in the optical process, PEEPSS performs wavefront sensing directly at the telescope’s focal plane, the same location where scientific imaging occurs.

That distinction is important because it allows researchers to detect and correct optical errors that emerge after light passes through a telescope’s coronagraph. Scientists refer to these distortions as “non-common-path aberrations.”

To explain the concept, Eikenberry compares the system to trying to monitor a room you cannot fully see.

“Imagine you’re in a house and you want the entire house to be perfectly clean,” he says. “You can see people walking into the bedroom, but you can’t actually see inside the bedroom itself. That’s the non-common path.”

By monitoring the complete optical pathway all the way through to the focal plane, researchers hope PEEPSS can help future observatories achieve the extraordinary precision necessary to detect habitable worlds.

鶹ӳý graduate students Liza Fernanda Quinn Reyes and Genevieve Markees operate photonic lantern fabrication equipment in a CREOL laboratory.
鶹ӳý graduate students Liza Fernanda Quinn Reyes (foreground) and Genevieve Markees work with photonic lantern fabrication equipment in a CREOL laboratory. The technology is being developed as part of the NASA-funded PEEPSS project to improve future exoplanet imaging. (Photo by Antoine Hart)

A New Approach Using Photonic Lanterns

At the center of the project is an emerging technology known as a photonic lantern.

The device separates complex incoming light into individual optical channels, allowing researchers to recover not only brightness information, but also phase information carried by light waves, data that conventional imaging systems typically discard.

Close-up of a precision optical fabrication system used to manufacture photonic lanterns for astrophotonics research.
Precision fabrication equipment used by 鶹ӳý researchers to develop photonic lanterns for the NASA-funded PEEPSS project. The technology is designed to improve future observations of Earth-like exoplanets. (Photo by Antoine Hart)

“Traditional detectors wipe that information out,” Eikenberry says. “Photonic lanterns allow us to recover it.”

That additional information enables what researchers describe as “quantum-inspired imaging,” an emerging technique that uses light behavior to improve image resolution and filter out the remaining starlight.

Researchers at CREOL have become major contributors to the rapidly growing field of astrophotonics, which combines astronomy, fiber optics and advanced photonic technologies.

“There are really only two major centers doing cutting-edge work on photonic lanterns,” Eikenberry says. “Us and the University of Sydney in Australia.”

The project brings together collaborators from 鶹ӳý, University of California, Santa Cruz, the University of Sydney, and the Space Telescope Science Institute. At 鶹ӳý, Eikenberry works alongside graduate student Genevieve Markees and researchers including Rodrigo Amezcua Correa, Miguel Bandres and Jose-Enrique Antonio-Lopez, whose expertise in fiber optics and photonics helped establish the collaboration.

Looking Toward Habitable Worlds

The current PEEPSS project is structured as a three-year effort focused on building and testing prototype photonic lantern systems in laboratory and telescope environments.

Some versions of the technology have already undergone testing on telescopes in Hawaii through collaborations with the Air Force Research Laboratory and international research partners.

Ultimately, researchers hope the technology could become part of the future NASA missions searching for habitable planets around distant stars.

“If we can identify habitable worlds around other stars and show they possess conditions where Earth-like life could survive, that’s already revolutionary,” Eikenberry says. “If we discover actual evidence of life, then we’re talking about one of the greatest scientific discoveries in human history.”

For Eikenberry, humanity may now be approaching a historic turning point.

“We are one mission away,” he says.

And if future observations succeed, humanity may no longer simply wonder whether life exists elsewhere in the universe. For researchers involved in the project, that possibility is what makes the work so compelling.

“We’ll look up and know.”


The PEEPSS project is supported by NASA through award No. 80NSSC26K0577 and brings together researchers from 鶹ӳý, the University of Sydney and the University of California, Santa Cruz to develop advanced photonic technologies for future exoplanet imaging and spectroscopy missions, including NASA’s proposed Habitable Worlds Observatory. The initial PEEPSS concept development was supported by the 鶹ӳý through its SPICE Academic Excellence Program.

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Stephen Eikenberry PEEPSS/Habitable Planets Observatory story 鶹ӳý graduate students Liza Fernanda Quinn Reyes (foreground) and Genevieve Markees work with photonic lantern fabrication equipment in a CREOL laboratory. The technology is being developed as part of the NASA-funded PEEPSS project to improve future exoplanet imaging. (Photo by Antoine Hart) Stephen Eikenberry PEEPSS/Habitable Planets Observatory story 鶹ӳý graduate students Liza Fernanda Quinn Reyes (foreground) and Genevieve Markees work with photonic lantern fabrication equipment in a CREOL laboratory. The technology is being developed as part of the NASA-funded PEEPSS project to improve future exoplanet imaging. (Photo by Antoine Hart)
New 鶹ӳý Study Links Microgravity, Space Radiation to Accelerated Aging /news/new-ucf-study-links-microgravity-space-radiation-to-accelerated-aging/ Tue, 07 Jul 2026 14:12:21 +0000 /news/?p=154085 Findings from College of Medicine Professor Michal Masternak and his team suggest spaceflight stressors may accelerate aging in the liver. This discovery could inform future medical research to understand aging on Earth and protect space travelers.

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What happens to the human body in space may help scientists create new anti-aging therapies.

鶹ӳý Professor Michal Masternak and his team have identified molecular changes in the liver that happen when space travelers experience radiation and microgravity. These changes – that resemble accelerated aging – provide new insight into how prolonged space missions may increase health risks for astronauts and reveal potential targets for therapies that could combat age-related diseases on Earth.

“Just 24 hours after radiation exposure, there are many genetic changes in the liver that are remarkably similar to what happens during aging.” — Professor Michal Masternak

“We focused on the liver because it is one of the major metabolic organs in our body,” says Masternak, leader of the College of Medicine’s aging and space medicine research efforts. “What we found was that just 24 hours after radiation exposure, there are many genetic changes in the liver that are remarkably similar to what happens during aging. We can assume that if someone were in space much longer, the damage could be much greater.”

The findings were recently published inGeroScience.

Portrait of bald man wearing glasses and white lab coat standing in front of blue lab bench
Professor Michal Masternak says the space industry provides unique opportunities to study aging at an accelerated pace. (Photo by Eddy Duryea ’13 )

 

Navigating the Science

For their study, 鶹ӳý researchers and scientists from the U.S. created a simulated deep space environment in the lab. The team exposed animal models to simulated microgravity for 14 days and galactic cosmic radiation and solar particle events at NASA Space Radiation Laboratory trying to mimic the dosage that astronauts would be exposed to during a trip to Mars.

The exposure triggered noticeable and potentially harmful changes in the liver, including increased cellular senescence (aging and decreased cell function), inflammation and fibrosis. Left untreated, these conditions can eventually lead to declining and even failing organ function.

The research team then compared their results with data collected from astronaut blood samples taken during the NASA Twins Study and Inspiration4 astronauts. They saw similar genetic changes in blood.

“We’ve got this raw data from human studies, and they show that some of these changes are similar,” Masternak says. “That tells us we’re identifying useful molecular targets that one day could help protect astronauts during long-duration space missions.”

Theyalsowent a step further to seewhether thechanges could be treated. Theyidentifieda group of molecules known as antagomirs that alter several aging and inflammatory genetic pathwaysby interacting with the body’smicroRNA. This system could pinpoint promisingfuturetherapies for space travelers.

Three men and one woman dressed in white lab coats and blue gloves on their hands stand shoulder to shoulder in lab setting
(From left to right): Biotechnology graduate student Sarah Siddiqi, researcher Mishfak Mansoor, 鶹ӳý Professor Michal Masternak and biomedical sciences doctoral student Md Tanjim Alam. (Photo by Eddy Duryea ’13 )

Understanding Aging in the Space Age

Masternak saysthe nation’sgrowing space industry provides a unique opportunity to study aging at an accelerated pace.

“Very often when we study different aging processes, it takes time,” he says. “Even in humans, it’s almost impossible because it would take decades. But if we see some acceleration of aging in space, then we can translate it to human studies. We can observe processes happening much faster, understand them better and eventually use that knowledge to improve health for people here on Earth.”

“If we see some acceleration of aging in space, then … we can observe processes happening much faster, understand them better and eventually use that knowledge to improve health for people here on Earth.” — Masternak

Those discoveries could eventually lead to therapies that slow age-related diseases, preserve organ function and improve quality of life for everyone as they age.

“Our understanding of aging is very complex,” Masternak says. “Aging isn’t simply wrinkles or cosmetic changes. It’s the gradual and cascading failure of multiple organs and biological systems that happen at the same time. By understanding what starts that process and where it happens, we have a better chance of preventing many diseases before they develop. That is one of the biggest outstanding questions.”

Students Positioned at the Forefront of Space Medicine

College of Medicine students are also benefitting from space medicine research. Biomedical sciences Ph.D. student MdTanjim Alam’25MSjoined Masternak’s laboratory during hisbiotechnologymaster’s program after initially planning to study cancer in relation to aging biology. Then he was introduced to space medicine, including processing astronaut samples from commercial space travelers to study how extreme environments affect human biology. That research has inspired him.

“I want to keep exploring the unknown,” Alam says. “I really want to understand how space travel influences human health, particularly its effects on aging and cancer.”

BiotechnologygraduatestudentSarahS.Siddiqi’24says the interdisciplinary nature of the research attracted her to the space medicine and aging lab.

“When people think of aging, they think only about elderly populations,” says Siddiqi, who earned her bachelor’s degree as a Burnett Honors Scholar in biomedical sciences. “But we study aging across different stages of life and different environments, including space. I’ll always be focused on improving quality of life. I want to better understand diseases that are increasingly prevalent and find ways to recognize them earlier, before they progress to later stages.”


Funding and Disclosure:

Representing鶹ӳý,Natalie Hayslip’24served as first author, whileSarah Ashiqueali’21MS ’24PhD, Xiang Zhu, Ridwan Hussein’22andMishfakMansoor also contributed to the research.Researchers fromRensselaer Polytechnic Institute, Weill Cornell Medicine,UniversidadeFederal de Pelotas,theUniversity ofPittsburghandtheUniversity of North Carolina at ChapelHillalsocontributed.

This work was supported by the National Science Foundation Award Number (FAIN): 2317758(MMM), Ed and Ethel Moore Alzheimer’s Disease Research Program of theFlorida Department of Health,Public Health Research, Biomedical Research Program24A12 (MMM), and the National Science Centre, Poland UMO-2023/51/B/NZ5/00498 (MMM).

Any opinions, findings, and conclusions or recommendations expressed in this publication are those of the author(s) and do not necessarily reflect the views of the awarding agencies.

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Dr. Masternak and students, space aging research-medicine Professor Michal Masternak says the space industry provides unique opportunities to study aging. Michal Masternak-鶹ӳý-space-aging-research From L to R: Sarah Siddiqi, Mishfak Mansoor, Dr. Michal Masternak and Md Tanjim Alam. (Photo by 鶹ӳý College of Medicine)
Florida Space Research Consortium Names 鶹ӳý’s Alain Berinstain as Director /news/florida-space-research-consortium-names-ucfs-alain-berinstain-as-director/ Tue, 23 Jun 2026 15:36:41 +0000 /news/?p=153881 Alain Berinstain, who joined 鶹ӳý in January as director of the Florida Space Institute, now leads the eight-university initiative that aims to accelerate space‑related research, innovation and workforce development.

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, an internationally recognized leader in space research and business, has been named director of the Florida Space Research Consortium, a statewide partnership designed to align Florida’s universities around research, innovation and workforce development.

Berinstain, director of the Florida Space Institute at 鶹ӳý, has more than 30 years of experience spanning government, industry and academia. Throughout his career, he has led major space initiatives, advanced international collaborations and worked to expand opportunities across the rapidly evolving space sector.

Founded in 1963 to fuel the space race, 鶹ӳý is America’s Space University. Berinstain’s appointment to lead the Florida Space Research Consortium underscores 鶹ӳý’s leadership and expertise in this evolving field.

The consortium is a statewide partnership uniting Florida’s major research universities — Embry‑Riddle Aeronautical University, Florida A&M University, Florida Institute of Technology, Florida International University, Florida State University, 鶹ӳý, the University of Florida and the University of South Florida — with government, industry and investment partners.

“I am honored to lead the Florida Space Research Consortium at a time of tremendous opportunity for space research and innovation.” — Alain Berinstain, Florida Space Institute director at 鶹ӳý

“I am honored to lead the Florida Space Research Consortium at a time of tremendous opportunity for space research and innovation,” says Berinstain, who is a resident of Florida’s Space Coast. “Florida is the world’s busiest and best place to launch to space. I look forward to working with Florida universities, industry and government partners to accomplish together what no individual member of the consortium can achieve on their own and to advance Florida’s leadership in space.”

From 1997 to 2013, Berinstain worked at the Canadian Space Agency, including serving as director of planetary exploration and space astronomy. He has advised companies such as Virgin Galactic and served as chief strategy officer at Space Tango and at CSS Inc.

“Dr. Berinstain brings a unique combination of leadership experience, strategic vision and deep knowledge of the space sector,” says David Norton, vice president for research at the University of Florida and chair of the Florida Space Research Consortium board. “He has a proven ability to build partnerships and advance the collaborative mission of the Florida Space Research Consortium.”

“Dr. Berinstain brings a unique combination of leadership experience, strategic vision and deep knowledge of the space sector.” — David Norton, chair of the Florida Space Research Consortium board

Faculty and students at the member universities are advancing a wide range of space research that supports everything from exploration and discovery to practical technologies needed for future missions. Ongoing work across the consortium includes developing smarter spacecraft and satellites; improving propulsion, navigation and communications systems; designing new materials that can withstand the harsh conditions of space; and creating technologies to manufacture, build and operate in space and on the lunar surface.

“Researchers are also focused on using space for the benefit of Earth, addressing human health issues including aging, cancer, Alzheimer’s and Parkinson’s disease,” Berinstain says. “As Earthlings prepare to explore the moon, mars and beyond, understanding the human side of spaceflight is key. This includes studies of how people, plants and biological systems function in space; efforts to grow food in lunar and Martian conditions; and research in planetary science, astrophysics, space weather and Earth observation. As a team, we can take on bold, new challenges.”

Together, these efforts reflect a shared commitment to advancing knowledge, supporting long‑duration space missions, strengthening the space economy and translating scientific breakthroughs into real‑world benefits, Norton says.

 

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America’s Space University to Launch New Space MBA in Spring 2026 /news/americas-space-university-to-launch-new-space-mba-in-spring-2026/ Tue, 05 May 2026 14:57:54 +0000 /news/?p=148214 Applications for the new degree, which is a fully online, part-time graduate business program spanning 24 months, are open now until Dec. 1.

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Rockets blast. Satellites connect. Space tourism rises. Nearly every week, a breakthrough pushes the boundaries of what’s possible beyond Earth. By 2035, the global space economy — spanning launchers, defense systems, satellites and more — is projected to soar to $1.8 trillion, according to the World Economic Forum. 鶹ӳý is preparing skilled business professionals to guide it.

“I want students to come to 鶹ӳý knowing they can participate in an industry that’s about to take off, no matter what field they’re interested in. This is the place to launch the next stage of your career.” — Greg Autry, 鶹ӳý’s associate provost for space commercialization

A national leader in online education, and the top supplier of talent to the nation’s aerospace and defense industries, 鶹ӳý launched a in Spring 2026. It aims to meet the expanding needs of the booming industry on Florida’s Space Coast and around the world. Graduates will emerge ready to shape a fast-growing, high-impact global industry, applying their skills across aerospace, commercial space, government, startups and emerging tech.

“We have world-class researchers, direct connections to the space industry and the very best location,” says Greg Autry, creator of the pioneering program and associate provost for space commercialization and strategy at 鶹ӳý. “I want students to come to 鶹ӳý knowing they can participate in an industry that’s about to take off, no matter what field they’re interested in. This is the place to launch the next stage of your career.”

The space MBA merges the university’s excellence in both space and online education to develop forward-thinking leaders ready to shape the future of the space sector. This part-time, fully online graduate business program spans 24 months and blends core MBA courses with four specialized electives in space entrepreneurship, governmental and commercial space finance, space leadership and the global space domain. With its flexible, asynchronous format, students can learn from anywhere on Earth — or even in orbit.

At the forefront of this future-ready pathway is Zaheer Ali, a new instructor in the College of Business, and program director of 鶹ӳý’s space commercialization and strategy initiative. He spent more than a decade at NASA and previously led space efforts across the defense and national security enterprise.

“The space industry isn’t the future. It’s happening now. Our new space MBA will put talent at the center of that movement.”— Paul Jarley, 鶹ӳý College of Business dean

Ali is ready to guide the next generation of space business leaders at SpaceU — and he’s hoping to recruit students from every major to find their place in space.“I’m here helping build what I think is the greatest program in the world for space

business,” Ali says. “Our students are … given direct access to leaders in every aspect of space, creating a space network for them that will be unmatched by graduates of any other program.”

Through more than 25 years of providing highly ranked online degrees, 鶹ӳý is a trusted source for innovative academic programs and pathways, and is recognized among the nation’s leaders in online education. Courses across more than 130 fully online degree programs are led by world-class faculty with extensive industry and academic experience, equipped to prepare students to succeed in their

careers and advance their fields. “The space industry isn’t the future. It’s happening now. Our new space MBA will put talent at the center of that movement,” says Paul Jarley, dean of the College of Business, which houses the program. As the business school at Florida’s Technological University, our goal is not just to fuel the talent pipeline, but to help shape the market — even if it’s in space.

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4 Knights Named Goldwater Scholars, Elevating 鶹ӳý to a Historic National Milestone /news/4-knights-named-goldwater-scholars-elevating-ucf-to-a-historic-national-milestone/ Wed, 29 Apr 2026 13:30:04 +0000 /news/?p=152674 The four recipients are bridging the gap between cutting-edge lab research and real-world impact in engineering, medicine and science to solve global challenges.

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Four outstanding undergraduate students are redefining the boundaries of STEM through their high-impact research — and in doing so, placing the university among the nation’s top producers of Goldwater Scholars.

The prestigious Goldwater Scholarship identifies and supports the nation’s best student researchers in the fields of engineering, mathematics and natural sciences.

This year’s honorees — all expected to graduate next spring — have propelled 鶹ӳý into an elite tier of research institutions, surpassing several Ivy League institutions and tying for fourth in the nation in total Goldwater Scholars produced alongside Stanford University, the University of Notre Dame and the University of Chicago. Their impactful work reflects 鶹ӳý’s commitment to building a high-level research environment that empowers students to lead projects addressing significant global and scientific challenges.

Supporting Space Exploration

Goldwater Scholar: Keanu Brayman

Major: Mechanical engineering

Ultimate Goal: To develop robotic systems to support human exploration on Mars.

Keanu Brayman’s passion for space began early.

“One of my earliest memories is watching a Space Shuttle streak across the sky from a beach in South Florida,” Brayman says. “I remember being amazed there were people on board and feeling drawn to one day help explore the stars and discover what lies beyond our planet.”

At 鶹ӳý, Brayman has refined that dream with the support of faculty and mentors — including Department of Physics Chair and Professor Adrienne Dove, Associate Professor of Mechanical and Aerospace Engineering Tarek Elgohary and NASA Marshall Space Flight Center Engineer Christopher Proctor — as well as through programs like the .

He plans to pursue a doctoral degree in aerospace engineering to support lunar exploration and NASA’s Artemis program, as well as develop robotic systems that can extract resources and build infrastructure to support human exploration on Mars.

Engineering the Brain

Goldwater Scholar: Kyle Coutray

Majors: Computer engineering and biomedical sciences

Ultimate Goal: To research ways to restore communication, movement and cognitive function to the brain through engineering methods.

Kyle Coutray is focused on the intersection of neuroscience and technology.

“I’m interested in building systems that interact directly with the brain,” Coutray says. “In the lab, … [I’m] blending [both majors] into one approach.”

He aims to pursue a doctoral degree in neural engineering to further his research on brain-computer interfaces that translate complex brain activity into useful functions.

A 2026 Order of Pegasus inductee and a Burnett Honors Scholar, Coutray credits his success to disciplined focus and strong mentorship, particularly from Charles N. Millican Professor of Computer Science Joseph LaViola and Associate Professor of Mechanical and Aerospace Engineering Helen Huang.

Advancing Patient Care

Goldwater Scholar: Varun Nannuri

Major: Molecular and cellular biology

Ultimate Goal: To pursue a career as a physician-scientist.

Varun Nannuri is driven by a desire to understand why people experience different health outcomes and improve care.

“Through my clinical experiences, I have seen how much patients and families rely on physicians during some of the most difficult moments of their lives,” Nannuri says. “My research experiences have shown me that better care depends on asking better questions.”

Nannuri plans to pursue a dual M.D./Ph.D. degree and become a physician-scientist. His ambition earned him recognition as a 2026 Order of Pegasus inductee while also completing his Honors Undergraduate Thesis. Nannuri is also a member of the Burnett Honors College as a Burnett Medical Scholar, a program that offers guaranteed admission to the 鶹ӳý College of Medicine upon completion.

“鶹ӳý has given me opportunities to grow as a student, researcher, leader and future physician,” Nannuri says.

Restoring Human Senses

Goldwater Scholar: Trevor Overton

Majors: Electrical engineering and biomedical sciences

Ultimate Goal: To improve the lives of people with disabilities through advanced robotic prostheses.

Burnett Honors Scholar Trevor Overton’s work centers on neuroengineering and next-generation prosthetics.

“I’ve always had a passion for building things, and I also love reading and watching sci-fi,” Overton says. “When 鶹ӳý offered me the opportunity to join the MEDD [ … I knew I had to take it.”

鶹ӳý’s MEDD program provides scientifically driven students like Overton with a unique opportunity to integrate engineering principles into medicine.

Much like the development of cochlear implants, Overton imagines similar breakthroughs with vision and touch.

“I envision a future where robotic prostheses are so advanced that they could completely replace or enhance the abilities of humans,” Overton says. “It’s not entirely impossible.”

After earning a doctoral degree in electrical engineering with a focus on neuroengineering, he hopes to inspire the next generation — just as his professors inspired him — emphasizing that 鶹ӳý’s strength lies in professors who actively invest in their students.

A Growing Research Powerhouse

With four 2026 Goldwater Scholarship recipients, 鶹ӳý continues to strengthen its position as a leader in undergraduate research. The achievement reflects both students’ immense dedication and a university-wide commitment to driving innovation, mentorship and hands-on discovery. As these Knights prepare for the next steps in their academic journeys, they carry forward a shared mission: to turn research into real-world impact.

Students interested in applying for the Goldwater Scholarship or other major national awards should contact the Office of Prestigious Awards atopa@ucf.edu.

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鶹ӳý, Industry Experts Share Insight on Evolution of Space Medicine /news/ucf-industry-experts-share-insight-on-evolution-of-space-medicine/ Fri, 24 Apr 2026 14:06:35 +0000 /news/?p=152631 As NASA continues to advance the Artemis program, 鶹ӳý researchers and space experts are collaborating to ensure future travelers to the moon, Mars stay safe and healthy.

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Hours before Artemis II splashed down safely into the Pacific Ocean on April 10, 鶹ӳý researchers, university partners, an astronaut, and the former head of NASA gathered to start developing new technologies to keep space travelers healthy.

They proclaimed there is no better place than 鶹ӳý, the closest medical school to Kennedy Space Center, to create a new frontier in healthcare as humans prepare for longer missions to the moon, Mars and beyond.

Michal Masternak
Professor of Medicine Michal Masternak

“You are in a global destination for medical innovation,” Michal Masternak told participants in the Star Nona 2026 event in Lake Nona’s Medical City. An anti-aging and cancer researcher at the 鶹ӳý College of Medicine, Masternak organized the event as part of the Lake Nona Research Council, which is focused on encouraging interdisciplinary scientific partnerships between industry, academia and healthcare.

Space medicine is one of the council’s priorities. Deep space travel and the commercialization of space bring unique health challenges that science is just beginning to explore. The College of Medicine’s focuses on how factors such as microgravity, radiation and isolation impact the human body in space and how that knowledge can drive innovation into diagnostics, treatment and disease prevention for patients on Earth.

Former NASA Administrator and U.S. Senator Bill Nelson told attendees the Artemis voyage’s return to the moon should inspire space medicine experts to make new discoveries.

“We’re in a whole new era, an exciting era, of space exploration that makes this time so special,” Nelson said.

Star Nona’s goal was to bring together experts to understand current research on the health impacts of space travel and what challenges need to be addressed as more professional and commercial space travelers go to the moon and beyond.

Robert Curbeam and Bill Nelson
Former NASA astronaut Robert Curbeam (left) and former NASA Administrator and Florida senator Bill Nelson (right) at the Star Nona 2026 event.

The Physical Challenges of Space Flight

Former NASA astronaut Robert Curbeam holds the record for most spacewalks on a single mission. He described how the body feels during launch and splashdown when G-forces are so strong you must remind yourself to breathe. He presented with his former NASA flight surgeon, Smith Johnson, now a faculty member at 鶹ӳý’s new Center for Aerospace and Extreme Environments Medicine (CASEEM). The two discussed the important relationship between physicians and space travelers before, during and after a mission.

“I loved being an astronaut and flying space shuttles,” Curbeam says. “The only problem with space travel is that not a lot of people get to do it.”

Your Brain Actually Shifts in Space

Living in space causes the body’s fluids to move up to the head and brain. But symptoms of that condition do more than cause puffy faces. Space travel actually causes the brain to shift. Jogi Pattisapu, of the Hydrocephalus and Neuroscience Institute, said as astronauts go to Mars for years-long missions and settle on the moon, scientists will have to understand how living in space affects brain function and create predictive tests and preventative measures. Eye health will be key, as fluid buildup has caused spaceflight-associated neuro-ocular syndrome (SANS)in 70% of astronauts on the International Space Station, leading to farsightedness, optic nerve swelling and eyeball flattening.

“What are we going to do if the pilot goes blind 210 million miles from Earth?” he said.

Team Dynamics in Space

Shawn Burke
鶹ӳý Institute for Simulation and Training Professor Shawn Burke

Interpersonal communication is key to any team’s success, but how do relationships change for crews in confined spaces and face additional challenges such as sleep deprivation, isolation and differences in rank and roles. Shawn Burke and Stephen Fiore from 鶹ӳý’s Institute for Simulation and Training have researched team dynamics in space to understand and prevent collaboration failures that can impact mission success.
_Stephen Fiore
Their research has also identified the formal and informal roles crew members play in encouraging positive social interactions and teamwork, especially in long-term missions. Missions to Mars may take up to 36 months and include 20-minute communications delays to and from Mission Control. Team dynamics will impact performance, mental health and affect, Burke said, because “you’re stuck with the people you have.”

 

Conducting Medical Research in Microgravity: Everything’s Upside Down

Alain Berinstain, director of the Florida Space Institute at 鶹ӳý.
Florida Space Institute Director Alain Berinstain

The weightlessness of space provides a unique research environment for new discoveries in areas including nutrient production, waste treatment, crystallization and biomanufacturing, said Alain Berinstain, director of the Florida Space Institute at 鶹ӳý.

“Terrestrially, whenever space can make a difference, it’s a great economic driver,” he said.

In space, air doesn’t slow down processes, he explained, so experiments that involve weight, separation, sedimentation, fluid flow and buoyancy change. His advice to researchers considering space as a lab?

“Turn your experiment upside down. Does it still work? If the answer is no, you have a lot of work to do.”

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鶹ӳý_Michal Masternak 鶹ӳý_Bill-Nelson_Robert-Curbeam Shawn Burke Professor Shawn Burke was recognized for her exceptional contributions to advancing the science and practice of industrial-organizational psychology, as well as her sustained impact on the professional community. The distinction of SIOP Fellow is awarded to individuals who have made significant, enduring contributions to research, leadership and application within the field. (Photo by Antoine Hart) 鶹ӳý_Stephen Fiore Alain-Berinstain_FSI Director
鶹ӳý’s 2026 Football Schedule /news/ucfs-2026-football-schedule/ Fri, 10 Apr 2026 15:38:20 +0000 /news/?p=150550 鶹ӳý’s Big 12 Conference home matchups will feature TCU, Baylor, BYU, Arizona State and Iowa State.

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Playing our 20th season in Acrisure Bounce House, the 鶹ӳý football team will host seven games in the 2026 season.

鶹ӳý and the Big 12 unveiled the 2026 conference slate in January, with every game initially scheduled on Saturday. Two of those games are now shifted to Friday:

  • Oct. 30 vs. Baylor (Mission X Space Game)
  • Nov. 20 vs. Iowa State (Senior Knight)

TV and streaming designations and kickoff times will be added as announced.

2026 Schedule & Game Day Themes

-Home games in bold-

9/3 vs. Bethune-Cookman, 7 p.m., ESPN+ (Season-Opener)
9/12 at Pittsburgh
9/19 vs. Georgia State, 7 p.m., ESPN+ (Family Weekend)
9/26 vs. TCU (Big 12 Opener)
10/3 at Houston
10/10 at Oklahoma State
10/24 vs. BYU (Homecoming)
10/30 vs. Baylor, 7:30 p.m., ESPN (Mission X Space Game)
11/7 at Kansas
11/14 vs. Arizona State
11/20 vs. Iowa State, 6 p.m., FS1 (Senior Knight)
11/28 at Colorado

The Big 12 Championship Game is scheduled for Friday, Dec. 4, and will once again be played at AT&T Stadium, home of the Dallas Cowboys, in Dallas, Texas.

Under the direction of head coach Scott Frost, 鶹ӳý carries early momentum into the 2026 season after landing quarterback Alonza Barnett III and a strong group of transfers through the portal. The Knights also secured a pair of four-star high school recruits, highlighting a solid overall class.

Tickets

Season tickets, mini plans and single-game tickets for the 2026 campaign can be purchased at .

Why We Bounce

The 2026 campaign will mark the 20th season that 鶹ӳý football plays its home games in Acrisure Bounce House. To recognize 鶹ӳý’s 20 years of Acrisure Bounce House, a season-long celebration of the countless memories made inside the place Knight Nation calls home. The 2026 campaign is more than just another season. It is a chance to tell our story.

We want to know why YOU bounce. If you’d like to help us tell our story of the bonds built through game day experiences, , and be ready to include photos.

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Artemis II Brings Unique Space Medicine Opportunities /news/artemis-ii-brings-unique-space-medicine-opportunities/ Tue, 31 Mar 2026 15:50:41 +0000 /news/?p=151973 As astronauts travel closer to the moon than any human has in more than 50 years, physicians and scientists will learn more about how space travel affects physical and mental health.

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NASA’s upcoming Artemis II mission will witness astronauts orbiting the moon for the first time in more than half a century — providing new opportunities for space medicine research, 鶹ӳý experts say.

The mission will include multiple health studies on the four astronauts to determine how radiation, microgravity, isolation and other factors impact their physical health, mind and behavior — crucial information that will help pave the way for future lunar surface missions and develop our understanding about humans’ deep space capabilities.

Thanks to new technology and modern medicine, researchers have better ways to understand the impact of space flight on human health.

“Artemis II is both a historic and biomedically important mission,” says Emmanuel Urquieta, the 鶹ӳý College of Medicine’s vice chair for aerospace medicine and director of the university’s new Center for Aerospace and Extreme Environments Medicine (CASEEM).

“For the first time since Apollo 17, humans will travel beyond the Earth’s magnetic field. That matters enormously from a research perspective, because now we have technology to thoroughly understand the health impact of embarking into deep space. The knowledge gained from Artemis II will help shape the future of safe human space exploration and drive innovations that can benefit medicine here on Earth and help us start preparing us for a mission to Mars.”

View of crescent Earth from moon's surface
The crescent Earth rises above the lunar horizon in this photograph taken from the Apollo 17 spacecraft in lunar orbit during NASA’s final lunar landing mission in the Apollo program. (Photo courtesy of NASA)

The Space Coast’s College of Medicine

As the closest medical school to the Kennedy Space Center, 鶹ӳý’s College of Medicine is charting a new frontier in healthcare as humans prepare for longer missions to the moon and Mars, and commercial space flights take more civilians into space.

The goal: explore how factors such as microgravity, radiation and isolation impact the human body in space and how that knowledge can drive innovation into diagnostics, treatment and disease prevention on Earth.

To further those efforts, 鶹ӳý’s CASEEM includes faculty experts in medicine, engineering, computer science, psychology, arts and educational leadership. This interdisciplinary group will work together to research and develop new technologies for keeping space travelers healthy, as well as soldiers on military missions, deep sea explorers and mountain climbers.

black and white photo of four astronauts walking through steel tunnel in their space suits
Artemis II crewmembers NASA astronauts Reid Wiseman, commander; Victor Glover, pilot; Christina Koch, mission specialist; and CSA (Canadian Space Agency) astronaut Jeremy Hansen, mission specialist; are led by Bill Owens of the Closeout Crew from the elevator at the 275-foot level of the mobile launcher to the crew access arm as they prepare to board their Orion spacecraft atop NASA’s Space Launch System rocket during the Artemis II countdown demonstration test. (Photo Credit: NASA/Joel Kowsky)

What Lies Ahead for Artemis II’s Astronauts

  • Understanding Radiation Exposure Effects

Traveling to the moon — which humans haven’t returned to since 1972 — means astronauts will go beyond Earth’s Van Allen belts, which protect humans from cosmic radiation and solar storms. Space travelers to the International Space Station stay within Earth’s magnetic field. During their 10-day mission, Artemis II is anticipated to break Apollo 13’s record (248,655 miles) for the farthest distance humans have traveled from Earth.

Fifty years ago, researchers could do little more than measure radiation. This time will be different, says 鶹ӳý’s William “Ed” Powers, chief medical officer of CASEEM and the former chief of NASA’s Medical Operations branch where he was a primary medical support physician for six shuttle missions.

“Medical knowledge, technology and the ability to diagnose disease have advanced significantly since then,” he says.

Physicians and scientists will be able to determine how radiation impacts cells, organs, blood proteins and other molecular functions.

Artemis crew members will carry dosimeters in their pockets that measure radiation exposure in real time. Monitors inside the Orion spacecraft will also gather radiation information throughout the flight for future analysis.

An astronaut suffering a medical condition in space is always a concern, but deep space travel brings additional challenges, Powers explains. While astronauts on the International Space Station can be returned to Earth in about a day, as happened recently when a crew member became ill, returning from the moon may take several days or more.

“None of the four astronauts on this flight is a physician,” Powers says. “And a space capsule certainly doesn’t have the same equipment you’d have in a hospital emergency room.”

  • Does Space Flight Reduce Immunity?

Previous research has shown that spaceflight missions alter the and reactivate dormant viruses in the human body. As part of the Artemis II mission, NASA will conduct an AVATAR (A Virtual Astronaut Tissue Analog Response) experiment that will investigate how deep space impacts specific cells and tissues as well as some vital bodily functions including immune system responses.

For this experiment, NASA-funded scientists created “organ-on-a-chip” devices that contain each astronaut’s bone marrow cells. This technology allows scientists to examine molecular changes and cell function.

Closeup of purple gloved hand holding clear small chip between two fingertips
Organ-on-a-chip device (Photo Credit: Emulate)

“With this technology we can see how the body responds to stimuli across the whole mission,” says Jennifer Fogarty, CASEEM’s chief scientist who came to 鶹ӳý after serving as chief scientist for NASA’s Human Research Program. “This capability will help us map the body’s molecular changes with tissue/organ function and much better predictive capabilities.”

As the “organ-on-a-chip” technology advances and proves accurate, it will allow NASA physicians to provide personalized and proactive medicine to astronauts because they will be able to predict a crew member’s biological response to space flight. Such technology could be used before NASA sends an actual crew to Mars. The space agency could place the crew’s personalized chips on unmanned flights to the Red Planet to better understand the potential health risks for each individual.

“It’s basically sending small versions of astronauts to Mars before we send astronauts to Mars,” Fogarty says.

Three male and one female astronaut in blue NASA jumpsuits stand side by side on tarmac with NASA white jet behind them
The crew of Artemis II: Jeremy Hansen, Christina Koch, Reid Wiseman and Victor Glover. (Photo courtesy of NASA)
  • Teamwork and Behavior

Selecting an astronaut crew that will perform well under the stresses of space flight is always a top NASA priority. But deep space missions present additional personnel challenges, including communication delays, increased isolation and resource constraints.

Astronauts on moon and Mars missions also must live in a capsule that is significantly smaller than the International Space Station, highlighting the need for crews to work together seamlessly and be able to manage any conflicts.

The Artemis flight will conduct an experiment called ARCHeR (Artemis Research for Crew Health and Readiness) that will evaluate how astronauts perform individually and as a team during the mission.

They will wear sleep and movement monitors before, during and after the mission to evaluate their cognition and team dynamics.

“You watch the astronauts on TV, and it looks so easy,” Fogarty says. “But human performance is critical in space. You have multiple duties to conduct and you’re always pushing operations. So we need to understand how the team performs, their reserve and resilience. The mission itself is the experiment.”

Star Nona 2026

鶹ӳý’s leading space medicine experts, valued strategic partners and an astronaut who holds NASA’s record for spacewalks will gather April 10 in Lake Nona’s Medical City to discuss how they can work together to keep space travelers healthy and use that research to create groundbreaking clinical innovations on Earth.

The “Star Nona 2026” event is led by the Lake Nona Research Council, which is focused on encouraging interdisciplinary scientific partnerships between industry, academia and healthcare.

The council includes physicians and researchers from 鶹ӳý, Orlando Health, AdventHealth, the Florida Space Institute, the Orlando VA Medical Center, Nemours Children’s Health, business and industry.

For more information, including how to register for the event, visit www.ucf.edu/news/progressing-the-final-frontier-of-medicine-space.

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NASA-Earthrise-over-the-moon-1972 The crescent Earth rises above the lunar horizon in this photograph taken from the Apollo 17 spacecraft in lunar orbit during National Aeronautics and Space Administration's (NASA) final lunar landing mission in the Apollo program. While astronauts Eugene A. Cernan, commander, and Harrison H. Schmitt, lunar module pilot, descended in the Lunar Module (LM) "Challenger" to explore the Taurus-Littrow region of the moon, astronaut Ronald E. Evans, command module pilot, remained with the Command and Service Modules (CSM) "America" in lunar orbit. (Photo courtesy of NASA) NASA-Artemis II – crew Artemis II crewmembers NASA astronauts Reid Wiseman, commander; Victor Glover, pilot; Christina Koch, mission specialist; and CSA (Canadian Space Agency) astronaut Jeremy Hansen, mission specialist; are led by Bill Owens of the Closeout Crew from the elevator at the 275-foot level of the mobile launcher to the crew access arm as they prepare to board their Orion spacecraft atop NASA’s Space Launch System rocket during the Artemis II countdown demonstration test. (Photo Credit: NASA/Joel Kowsky) Emulate_Organ-Chip_blue_glove_2-Photo Credit- Emulate Organ Chip (Photo Credit: Emulate) NASA Artemis II crew (Photo courtesy of NASA)