Freeze-framing the cellular world to capture a fleeting moment of cellular activity
Researchers from The University of Osaka develop time-deterministic cryo-optical microscopy, which freezes cells with millisecond precision, enabling accurate, high-resolution visualization of transient moments during dynamic cellular processes
2025-08-23
(Press-News.org)
Osaka, Japan – Optical microscopy is a key technique for understanding dynamic biological processes in cells, but observing these high-speed cellular dynamics accurately, at high spatial resolution, has long been a formidable task.
Now, in an article published in Light: Science & Applications, researchers from The University of Osaka, together with collaborating institutions, have unveiled a cryo-optical microscopy technique that take a high-resolution, quantitatively accurate snapshot at a precisely selected timepoint in dynamic cellular activity.
Capturing fast dynamic cellular events with spatial detail and quantifiability has been a major challenge owing to a fundamental trade-off between temporal resolution and the ‘photon budget’, that is, how much light can be collected for the image. With limited photons and only dim, noisy images, important features in both space and time become lost in the noise.
“Instead of chasing speed in imaging, we decided to freeze the entire scene,” explains one of the lead authors Kosuke Tsuji. “We developed a special sample-freezing chamber to combine the advantages of live-cell and cryo-fixation microscopy. By rapidly freezing live cells under the optical microscope, we could observe a frozen snapshot of the cellular dynamics at high resolutions.”
For instance, the team froze calcium ion wave propagation in live heart-muscle cells. The intricately detailed frozen wave was then observed in three dimensions using a super-resolution technique that cannot normally observe fast cellular dynamics due to its slow imaging acquisition speed.
“This research began with a bold shift in perspective: to arrest dynamic cellular processes during optical imaging rather than struggle to track them in motion. We believe this will serve as a powerful foundational technique, offering new insights across life-science and medical research,” says senior author Katsumasa Fujita. One of the lead authors, Masahito Yamanaka, adds “Our technique preserves both spatial and temporal features of live cells with instantaneous freezing, making it possible to observe their states in detail. While cells are immobilized, we can take the opportunity to perform highly accurate quantitative measurements with a variety of optical microscopy tools.”
The researchers also demonstrated how this technique improves quantification accuracy. By freezing cells labeled with a fluorescent calcium ion probe, they were able to use exposure times 1000 times longer than practical in live-cell imaging, substantially increasing the measurement accuracy.
To capture transient biological events at precisely defined moments, the researcher integrated an electrically triggered cryogen injection system. With UV light stimulation to induce calcium ion waves, this system enabled freezing of the calcium ion waves at a specific time point after the initiation of the event, with 10 ms precision. This allowed the team to arrest transient biological processes with unprecedented temporal accuracy.
Finally, the team tuned their attention to combining different imaging techniques, which are often difficult to align in time. By the near-instantaneous freezing of samples, multiple imaging modalities can now be applied sequentially without worrying about temporal mismatch. In their study, the team combined spontaneous Raman microscopy and super-resolution fluorescence microscopy on the same cryofixed cells. This allowed them to view intricate cellular information from a number of perspectives at the exact same point in time.
This innovation opens new avenues for observing fast, transient cellular events, providing researchers with a powerful tool to explore the mechanisms underlying dynamic biological processes.
###
The article, “Time-deterministic cryo-optical microscopy,” appears in Light: Science & Applications at https://doi.org/10.1038/s41377-025-01941-8
About The University of Osaka
The University of Osaka was founded in 1931 as one of the seven imperial universities of Japan and is now one of Japan's leading comprehensive universities with a broad disciplinary spectrum. This strength is coupled with a singular drive for innovation that extends throughout the scientific process, from fundamental research to the creation of applied technology with positive economic impacts. Its commitment to innovation has been recognized in Japan and around the world. Now, The University of Osaka is leveraging its role as a Designated National University Corporation selected by the Ministry of Education, Culture, Sports, Science and Technology to contribute to innovation for human welfare, sustainable development of society, and social transformation.
Website: https://resou.osaka-u.ac.jp/en
END
ELSE PRESS RELEASES FROM THIS DATE:
2025-08-22
A line of engineering research seeks to develop computers that can tackle a class of challenges called combinatorial optimization problems. These are common in real-world applications such as arranging telecommunications, scheduling, and travel routing to maximize efficiency.
Unfortunately, today’s technologies run into limits for how much processing power can be packed into a computer chip, while training artificial-intelligence models demands tremendous amounts of energy.
Researchers at UCLA and UC Riverside have demonstrated a new approach that overcomes these ...
2025-08-22
Prostate cancer remains a global health challenge, ranking as the second most common malignancy among men. While early-stage disease can be effectively managed, advanced forms—particularly metastatic castration-resistant prostate cancer (mCRPC)—pose significant therapeutic hurdles. A growing body of evidence highlights the pivotal role of SOX transcription factors, with SOX2 emerging as a central driver in tumor growth, spread, and resistance to therapy.
SOX2 is intricately linked to the fate of cancer stem/progenitor cells, influencing processes ...
2025-08-22
The non-coding genome, once dismissed as "junk DNA", is now recognized as a fundamental regulator of gene expression and a key player in understanding complex diseases. Following the landmark achievements of the Human Genome Project (HGP), scientists have increasingly focused on deciphering the non-coding regions of the human genome, which comprise approximately 98% of the genetic material. These regions, long overlooked due to their non-protein-coding nature, are now known to harbor ...
2025-08-22
The identification of Chitinase-3-like protein 1 (CHI3L1) as a crucial biomarker in liver disease is revolutionizing how clinicians approach the diagnosis, monitoring, and treatment of various liver conditions. As a member of the glycoside hydrolase family 18, CHI3L1 is recognized for its unique ability to bind to ligands and influence multiple pathophysiological processes, despite lacking enzymatic activity. This distinctive protein plays a key role in mediating cell proliferation, inflammation, fibrosis, and carcinogenesis.
Liver diseases, including hepatitis-related fibrosis, non-alcoholic fatty liver disease (NAFLD), alcoholic liver disease ...
2025-08-22
Reston, VA (August 22, 2025)—New research has been published ahead-of-print by The Journal of Nuclear Medicine (JNM). JNM is published by the Society of Nuclear Medicine and Molecular Imaging, an international scientific and medical organization dedicated to advancing nuclear medicine, molecular imaging, and theranostics—precision medicine that allows diagnosis and treatment to be tailored to individual patients in order to achieve the best possible outcomes.
Summaries of the newly published research articles are provided below.
Mapping Tiny Lifetimes ...
2025-08-22
Center for BrainHealth® at The University of Texas at Dallas is proud to announce that one of its flagship programs, Charisma™ Virtual Social Coaching, has been selected as a Top 3 Finalist for the 2025 Global Innovation Management Institute (GIMI) Innovation Award in the category of Most Innovative Project – Social Sector/Non-Profit.
GIMI is the world’s largest certifying body and professional organization for innovation and innovation management. The Innovation Awards recognize projects that demonstrate exceptional creativity, measurable impact and scalable solutions across public, private and social sectors. With ten award categories, the competition ...
2025-08-22
A new study published by researchers at the University of Hawai‘i (UH) at Mānoa sheds light on the critical role of iron in Earth’s climate history, revealing how its sources in the South Pacific Ocean have shifted over the past 93 million years. This groundbreaking research, based on the analysis of deep-sea sediment cores, provides crucial insights into the interplay between iron, marine life, and atmospheric carbon dioxide levels.
Iron is a vital nutrient for marine life and plays a significant role in regulating atmospheric carbon dioxide by influencing the growth of phytoplankton, which absorb carbon dioxide. Although the importance of iron ...
2025-08-22
UCL Press Release
Peer-reviewed | modelling study | people
Under embargo until Friday 22 August 2025, 19:00 UK time / 14:00 US Eastern time
US oil and gas air pollution causes unequal health impacts
Air pollution from oil and gas is causing 91,000 premature deaths and hundreds of thousands of health issues across the United States annually, with Black, Asian, Native American and Hispanic groups consistently the most affected, finds a major new study led by researchers at UCL and the Stockholm Environment Institute (SEI).
The research, published in Science Advances, is the first to comprehensively quantify the health impacts of outdoor air pollution across ...
2025-08-22
Methane — a potent greenhouse gas — constantly seeps from the ocean floor and can rise into the atmosphere. Now, an international team led by scientists with the USC Dornsife College of Letters, Arts and Sciences has uncovered how tiny microorganisms work together as a living electrical network to consume some of this gas before it escapes, acting as a powerful living filter.
By revealing how these microbes naturally reduce methane emissions, the findings could lead to innovative strategies ...
2025-08-22
A University of Massachusetts Amherst kinesiologist has received a five-year, $2 million grant from the National Institutes of Health (NIH) to advance his research on how myosin molecules—molecular motors crucial for muscle contraction— work together to drive different processes within cells.
This multi-pronged research will lead to a better understanding of many important myosin-related functions, from how our muscles and heart contract to how the ear’s stereocilia facilitate hearing. The long-term goal is to use these findings to pinpoint the causes of dysfunction in myosin-associated diseases and to identify ...
LAST 30 PRESS RELEASES:
[Press-News.org] Freeze-framing the cellular world to capture a fleeting moment of cellular activity
Researchers from The University of Osaka develop time-deterministic cryo-optical microscopy, which freezes cells with millisecond precision, enabling accurate, high-resolution visualization of transient moments during dynamic cellular processes