Saturday, August 30, 2025

Multifocus Microscope Pushes Limits of 3D Biological Imaging





A high-speed 3D imaging microscope developed by researchers at the University of California, Santa Cruz can capture detailed cell dynamics of an entire small whole organism at once. The ability to image 3D changes in real time over a large field of view could lead to new insights in developmental biology and neuroscience.

“Traditional microscopes are constrained by how quickly they can refocus or scan through different depths, which makes it difficult to capture fast, 3D biological processes without distortion or missing information,” said Eduardo Hirata Miyasaki, who performed the work while in Sara Abrahamsson’s lab at the University of California Santa Cruz (UCSC). “Our new system extends the multifocus microscopy (MFM) technique Abrahamsson developed by using a 25-camera array to push the limits of speed and volumetric imaging. This leap in efficiency opens the door to studying small living systems in motion without disrupting them.”

The researchers describe their new microscope, which combines diffractive optics with 25 tiny cameras to synchronously and simultaneously image at multiple depths. They demonstrate live imaging of 25-plane 3D volumes measuring up to 180 × 180 × 50 μm at acquisition speeds of more than 100 volumes per second.

“The new microscope, which we call the M25, is particularly useful for imaging swimming C. elegans worms, a model organism used to study development, neuroscience and locomotion,” said Hirata Miyasaki, now at the Chan Zuckerberg Biohub. “Traditionally, scientists could only see part of the organism clearly at any one time. With our new microscope, it is possible to watch the entire worm move naturally in 3D, allowing researchers to study how its nervous system controls movement and how behavior might change in response to a genetic mutation, disease or drug treatment.”

A key part of the new microscope is the diffractive optical elements used to distribute the various focal planes across an array of 25 cameras. Diffractive optics use microstructures to manipulate light, allowing more complex light control via a thinner, lighter component than traditional optical components such as prisms.

Building upon the original MFM technique, the researchers designed a multi-focus grating to split the incoming light so that each camera captures the same scene but with a focus at a different depth. They also made customized gratings to use in front of each camera lens to correct the chromatic dispersion introduced by the multi-focus grating. By replacing the traditional chromatic-correcting prism, which was difficult to scale beyond 3×3 arrays, these blazed gratings enabled high-resolution, high-speed bioimaging across more planes.

The gratings are made from nanometer-scale patterns that require specialized fabrication tools. After using simulations to determine the optimal designs, the researchers used the University of California Santa Barbara nanofabrication facility to etch the patterns into glass. With the fabrication process now established, these diffractive elements can be accurately reproduced at higher volumes.

“One of the key innovations of the M25 is its use of simplified chromatic correction architecture: By replacing bulky prism-based components with custom-designed blazed gratings, the system achieves efficient dispersion correction across all focal planes while remaining compact and scalable,” said Abrahamsson. “This streamlined optical design not only enables high-speed imaging but also supports compatibility with label-free modalities — a major advantage for applications like embryology, where minimally invasive imaging is essential.”

“When combined, the 25 images — all acquired simultaneously, with no mechanical scanning or moving parts — form a complete 3D snapshot,” said Hirata Miyasaki. “Because this happens at high speed, limited only by the camera’s acquisition speed and the sample’s brightness, we can record entire volumes over time, enabling studies of real biological dynamics.”

The M25 microscope can be used for both fluorescence and label-free modalities, such as brightfield and polarization microscopy, which are especially useful for imaging sensitive biological systems without introducing dyes or labels. This compatibility with minimally invasive techniques makes the M25 well-suited for applications like embryology, where preserving native physiology is critical.

To validate the instrument, the researchers built a prototype and confirmed that it could capture 25 distinct, evenly spaced focal planes simultaneously, without distortion or overlap, by imaging calibration targets. They also used the microscope to image live biological specimens, including common model organisms such as C. elegans, D. melanogaster and P. marinus, demonstrating real-time 3D imaging of moving organisms without the need for scanning or motion compensation.

The system mounts to the side port of a standard commercial microscope. Aside from the diffractive optics, it requires no specialized hardware, making it more straightforward to replicate than systems that rely on custom prisms or complex light path modifications.

Next, the researchers aim to further expand the system’s scale and applications. For example, they plan to use the system’s rich imaging data to train machine learning models that can identify cell states, track dynamic behaviors and detect disease-related changes directly from images.

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Thursday, August 28, 2025

Microscope Design Uses Resonator to "Store" Light, Avoid Sample Degradation





In photography, taking a detailed image requires a lot of light. But in microscopy, too much light is often harmful to the sample, such as when imaging sensitive biological structures or investigating quantum particles. The aim is therefore to gather as much information as possible about the object under observation with a given amount of light.

In collaboration with the University of Vienna and the University of Siegen, researchers at TU Wien have developed a novel trick to achieve this: storing the light in a resonator in which the sample is also located. This allows them to obtain a clearer signal than with other methods.

“In a normal microscope, the light hits the sample once and then enters a lens,” said Maximilian Prüfer, who led the study as part of his fellowship at the Atomic Research Institute of TU Wien. “In our microscope, we place the sample in an optical resonator — between two mirrors.”

To turn this resonator into a microscope, the team developed an unusual experimental setup with additional lenses: After the light beam has passed through the sample, it is guided in a circle and hits the sample again. “Now the sample is illuminated again, but not with a normal, uniform beam of light as in the beginning, but with a beam of light that already contains the image of the sample, so to speak,” said Oliver Lueghamer of TU Wien, who built the microscope as part of his master's thesis.

Similar to a stamp that is pressed several times on the same spot, producing a clearly visible image even with faint ink, the image of the sample becomes clearer and clearer as it completes several rounds in the microscope.

Both theoretical calculations, which were developed in collaboration with Thomas Juffmann of the University of Vienna and Stefan Nimmrichter of the University of Siegen, and experiments show that this method provides more information than other microscopy techniques at a given light intensity. “The key figure is the signal-to-noise ratio,” said Maximilian Prüfer. “This ratio is better here than with other methods due to multiple scattering with the same disturbance of the sample.”

However, the practical suitability of the developed instrument and method also depends on how susceptible it is to disturbances. “When using optical resonators, as we do, it is often important to keep their length extremely constant,” Prüfer said.

“Normally, you have to go make a great effort to ensure that the distance between the two mirrors varies only minimally, otherwise the desired effect is lost. With our method, however, this is not the case.”

The distance between the mirrors can also show a certain instability without the enhancement disappearing. “This is important because it means that the method not only works in theory, but can also be used in practice with manageable effort,” Prüfer said.

One of the goals of the new microscopy technique is to image ultra-cold Bose-Einstein condensates and thereby study their quantum physical behavior.

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Tuesday, August 26, 2025

OLED Contact Lenses Expand Options for Diagnostics and Treatment





A wireless contact lens that integrates OLED technology into ophthalmic diagnostics could transform the way in which ocular health is monitored, benefiting both patients and practitioners.

The lens is the result of a collaboration among the Korea Advanced Institute of Science and Technology (KAIST), the Electronics and Telecommunications Research Institute (ETRI), and the Seoul National University Bundang Hospital. To create the wearable light source, the team led by professor Seunghyup Yoo designed a configuration and process flow that integrated an ultrathin OLED, an antenna, and a controller chip for wireless power reception with a contact lens.

Using a 433 megahertz (MHz) resonant frequency for power transmission, the researchers implemented a robust wireless power system for the lens. They embedded a wireless microcontroller into a sleep mask to optimize the lens and allow it to be synchronized with a smartphone.

The team demonstrated the efficacy of the OLED contact lens as a robust lighting solution for electroretinography (ERG) examinations in clinical settings.

It showed that the wearable light source could generate an ERG signal comparable to that of conventional, full-field light stimulation, and that the OLED lens system could be used for ERG measurement with minimal signal interference.

In an in vivo animal experiment, the researchers observed that the animal’s eye temperature remained well within safe limits while it was wearing the lens, mitigating the risk of corneal heat damage from the OLED. The researchers also found that the lens continued to maintain a robust optical performance during exposure to humid environments — an indicator of its potential for practical use in real-world settings.

In earlier lens designs, the light diffusion provided by inorganic LEDs was often inadequate, leading to excessive heat buildup. OLEDs offer a superior solution to LEDs due to their ability to emit light more uniformly across the surface area of the lens. This feature helps reduce heat generation and ensures retinal responses can be achieved even under low-light conditions.

During the study, the researchers observed retinal response results at a luminance level considerably lower than that of standard devices, further demonstrating the viability of the OLED technology as a diagnostic tool.

The 12.5-μm-thick OLED contact lens is designed to optimize both comfort and function. It is engineered to be an effective, yet unobtrusive, device that will allow patients to engage actively during retinal diagnoses. Unlike conventional ERG, which requires a darkened space and restricts patient mobility for prolonged periods, the OLED contact lens allows patients to rest comfortably, even with their eyes closed, while they undergo retinal evaluations.

In addition to ensuring efficiency and patient comfort during retinal exams, the ultrathin OLED contact lens could be a valuable tool for personalized healthcare monitoring. By combining wearable technology and healthcare, the OLED contact lens could help shape the future of ocular care.

Further integration of smart contact lens technology into ocular diagnostics and therapies could expand the scope of digital healthcare applications. As digital healthcare technology evolves, the adaptability and functionality of the OLED contact lens could give it an important role in many future ocular innovations.

An interdisciplinary approach to OLED lens development could lead to solutions for myopia and other ocular issues. The fields of augmented reality and light-based neurostimulation could also benefit from the new OLED lens technology.

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Monday, August 25, 2025

Single-Cell Analysis Optofluidics Tool Delivers on Demand





An on-demand optical system for exporting target droplets from a static droplet array (SDA) provides a simple way to export specific cells or analytes for analysis without compromising efficiency or accuracy. Researchers at the Qingdao Institute of Bioenergy and Bioprocess Technology of the Chinese Academy of Sciences developed the system, called optical on-demand droplet release (OODR). The developers and their collaborators believe that OODR could promote SDAs as a valuable tool for use with high-capacity screening assays with applications in diverse fields. They said that the technique in its current stage of development has the potential to be used in single-molecule/cell analysis, drug screening, and phenotype-based cell sorting.

The OODR system incorporates a 1064-nm laser-responsive indium tin oxide (ITO) layer into a microchamber, array-based, droplet microfluidic chip. When the laser is focused onto the ITO layer of the chip, local heating causes microbubbles to form. The microbubbles push the droplets out of the chamber on a selective basis.

The researchers fabricated the chip using a low-cost, readily available ITO glass as a photoresponsive layer. The ITO layer was bonded to a PDMS layer with an array of microchambers to provide the capability to selectively release target droplets and enable the SDA to work rapidly.

According to the researchers, the size of the microbubble proved to be critical to the successful release of the droplet based on the chip design used by the team. They identified the optimal size for the microbubble as 40 μm, and they tuned the laser to the range necessary to generate the amount of heat needed to form a correctly sized microbubble without degrading the integrity of the cell. Under the appropriate conditions, OODR can release a droplet within three seconds.

OODR precisely heats the ITO layer, via laser, to create microbubbles that allow for the selective pushing of a target droplet out of the chamber on the microfluidics chip. This is based on the microdroplet single-cell sorting system, such as EasySort Compact, for example. The team used the EasySort Compact system to achieve automatic single-cell sorting, said professor Bo Ma.

Once the released droplet is pushed out of the chamber, it is carried by the flow to the outlet. The droplet can be easily exported in the one-droplet-one-tube (ODOT) manner by a pipette tip, via the inherent capillary force, which allows the movement of liquid without applying external force. The droplet is exported into a well or tube in a high-throughput manner for further analysis.

The released droplet is identified by using white or fluorescent imaging. These images can be used to sort the morphology of the target bacteria, which can be a challenge without a static image for reference.

The researchers used OODR to selectively release droplets containing fluorescein sodium from an SDA consisting of 6400 microchambers. OODR achieved a success rate of about 100% (nine out of 6400 droplets were successfully released). It also exhibited low residual, with only about 5% of the droplet volume remaining in the chamber.

The team demonstrated on-demand release of single-cell and multicell droplets for both E. coli and yeast, based on white or fluorescence imaging. The successful use of OODR with E. coli and yeast cells suggests that the system is applicable to other types of cells. According to Ma, the technique not only targets single cells, but enables the sorting of microdroplets that contain one cell, multiple cells, and/or reagents only.

Beyond avoiding causing any effect to the cell’s ability to be cultivated, or accuracy, the researchers said, the successful cultivation of the cell-containing droplets in an ODOT manner indicates that the isolation method has minimal impact on cell viability. This, they said, is essential when further live-cell analyses are needed. It also demonstrates the potential to seamlessly couple OODR with downstream ODOT-based assays, such as human or microbial single-cell sequencing. OODR also reduces the sample size and amount of reagent needed for analysis, making SDA more efficient and cost-effective. And the current system is user-friendly, the researchers said.

Professor Jian Xu said that the team is currently using artificial intelligence and machine learning to automate the system via EasySort. This will reduce human involvement in the system’s operation, making it easier for nonprofessionals to use, which could further expand the use of OODR and SDA.

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Saturday, August 23, 2025

SPAD Camera Characterizes Large Samples of Molecules at Same Time




 


A new widefield fluorescence lifetime imaging technique, achieved with a time-gated, single-photon avalanche diode (SPAD) camera, enables thousands of molecules to be characterized rapidly, accurately, and at the same time.

Developed by a team at the Swiss Federal Institute of Technology in Lausanne (EPFL), single-molecule fluorescence lifetime imaging microscopy (smFLIM) could be a significant advancement for multitarget, single-molecule localization microscopy.

Traditional FLIM typically relies on time-correlated single-photon counting (TCSPC), a precise but low-throughput method, to discriminate molecules or probe their nanoscale environment.

Unlike conventional imaging methods, smFLIM detects molecules at a specific point in time immediately after they are subjected to an excitation pulse. It captures an alternating series of images — one image immediately after excitation and another a few nanoseconds later — with picosecond-scale resolution.

The images are analyzed to determine the molecule’s fluorescence lifetime — that is, the short delay between the excitation laser pulse and the fluorescence emitted by the molecule — and the individual molecules in the sample are characterized.

Using smFLIM, the researchers obtained measurements with a precision only about 3x less than TCSPC — but with a system capable of imaging with multiple pixels (512 × 512) to enable the spatial multiplexing of more than 3000 molecules. The new technique can take precise measurements of a molecule’s unique light-emission signature at the scale of a billionth of a second.

SmFLIM can provide precise information on thousands of molecules in less than one minute, compared to the one hour required for existing techniques. “Our method is slightly less accurate than conventional ones, but it is faster and can detect an unprecedented number of molecules at once,” professor Aleksandra Radenovic said.

For the design of smFLIM, the researchers revisited a gated imaging scheme introduced 35 years ago. Although time-gated cameras have shown potential for high-throughput FLIM, until now their use in single-molecule microscopy has not been explored extensively. The time-gated SPAD camera used for smFLIM has almost one million sensors, each of which detect a photon.

The team used smFLIM to demonstrate parallelized lifetime measurements of many labeled, pore-forming proteins on supported lipid bilayers, and temporal, single-molecule Förster resonance energy transfer (FRET) measurements to detect the distance between molecules.

“Measuring the fluorescence lifetime of a pair of molecules provides information on the distance between them at a scale of just a few nanometers,” researcher Nathan Ronceray said. “The current approach can only be applied to small samples, but our system can expand it to allow for the rapid study of dynamic phenomena on thousands of molecules.”

The team said that, although it chose single-molecule FRET for its demonstration, smFLIM can be used with other lifetime-changing phenomena, such as non-radiative energy transfer to bulk metal or 2D materials.

Based on the results of the study, smFLIM is a promising tool for diverse areas of science and technology. “One promising direction is its potential to improve multiplexed analyses, that is, to measure several parameters simultaneously in a single sample,” Radenovic said. “It is likely to be useful in fields such as spatial transcriptomics, which aims to measure gene expression in a tissue while preserving spatial information about the exact location of cells or structures in the tissue.”

This approach could benefit lifetime-based assays of biomolecules for structural biology, diagnostic assays, biopolymer sequencing, and single-molecule superresolution microscopy.

By enabling the simultaneous reading of many molecular species throughout life, the method could serve as a powerful complement to high-resolution omics tools used to study the different biological layers of an organism in a comprehensive and systematic way, often on a cellular or molecular scale.

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Friday, August 22, 2025

High-Throughput Imaging Reveals Multi-Particle Cellular Activity




 


A new software program can map the movements of multiple particles within cells simultaneously, providing insight into cellular functions that are difficult — and sometimes impossible — to investigate using single-cell tracking methods.

The software, developed by researchers at the University of Bonn and Wageningen University and Research, speeds the high-throughput process used to observe molecules in cells, enabling fivefold shorter measurement times than single-particle tracking, according to the researchers.

In single-particle tracking, the molecule is marked with fluorescent light, and hundreds of photos per second are taken using a high-resolution microscope. By looking at the gaps between molecules and the distances traveled by a single molecule from one photograph to another, the researcher can tell whether the particles are moving freely inside the cell or interacting with other molecules.

Biomolecules move faster than cameras can capture, leading to gaps in the film. If a single particle is being tracked, its missing movements can largely be filled in.

“However, if two or more identical looking particles ‘glitch,’ it is often impossible to determine which particle on the first frame corresponds to which on the next frame,” said Koen Martens, postdoctoral researcher at the University of Bonn.

When the paths of two particles cross or the particles are too close together, their movements cannot be identified using single-particle tracking, Martens said. Therefore, the molecules must be studied one after the other, in a time-consuming process that makes it difficult to observe the molecular activity.

The software developed by Martens and his colleagues, called TARDIS, which stands for Temporal Analysis of Relative DIStances, resolves this problem.

With TARDIS, an all-to-all distance analysis between localizations (that is, between the positions of the molecule in the individual photographs) is performed with increasing temporal shifts. These pairwise distances represent either intraparticle distances originating from the same particle, or interparticle distances originating from unrelated particles.

The software uses probability calculations to compute all possible paths of the particles and determines which particles on each frame correspond to the particles on the subsequent frames. Instead of focusing on individual points, TARDIS looks at the entire sequence of movements within the cell and examines all the molecules simultaneously.

“TARDIS makes the measurement process at least five times faster without any loss of information,” Martens said.

The researchers tested the software on well-known molecular movement patterns such as diffusion. TARDIS performed accurately in complex conditions characterized by high particle density, strong emitter blinking, or false-positive localizations. It outperformed tracking algorithms when benchmarked on simulated and experimental data of varying complexity.

“Our program calculated the correct movement,” Martens said. The computer does not require a lot of information for its calculations — just the coordinates of the particles at different time points, as measured with a microscope.

TARDIS could help expand the possibilities for microbiological research. For example, it could be helpful in studying the effects of antibiotics and other medications on the molecular processes within cells.

“Some antibiotics work by blocking specific molecular machines in the cell,” Martens said. By enabling the behavior of multiple molecular machines to be studied at the same time, TARDIS could provide insight into the effectiveness of an antibiotic and could do so rapidly.

The technique is currently being used in research studying the process of DNA repair in single-celled organisms by observing the speed at which the repair function works.

“Damage to our DNA activates molecules that repair it quickly, ideally before the cell divides and the damage spreads,” he said. “I don’t have a biological interpretation yet, but with my software, I can now, for the first time, follow the cell’s repair kit minute by minute.”


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Thursday, August 21, 2025

Light-Based Approach Reduces Damage to Healthy Tissues in Cancer Treatment





A technique developed at Northeastern University targets two of the deadliest cancer types, melanoma and triple negative breast cancer, with chemotherapy drugs but without the usual associated harms. Both cancers are typically resistant to chemotherapy, said Fleury Augustin Nsole Biteghe, a lecturer in biotechnology, chemistry and chemical biology. But by attaching a light-sensitive drug to a protein called MTf — which appears abundantly in both cancers — and bathing the drug-infused protein in near-infrared light, cancer cells die.

Using antibodies to target cancer proteins is typically performed by using multiple drugs at once, Nsole Biteghe said. But this approach stimulates the immune system so much that it can end up attacking healthy body tissues.

“By using just one drug, we enhanced the efficacy,” Nsole Biteghe said. “It enables doctors to directly correlate the drug that is going into the cells with the therapeutic outcome.”

His innovation is to use local light, or photoimmunotherapy, to induce a chemotherapy drug to kill cancer cells with minimal toxicity to healthy tissues. His research focused on using a “SNAP-tag” protein to connect an antibody to a light-sensitive drug, which creates a stable, single-drug delivery system to target cancer cells.

Triple negative breast cancer gets its name from its lack of three receptors: estrogen, progesterone and human epidermal growth factor2, making treatments that target those receptors ineffective.

“Due to the lack of well-defined molecular targets, treatment relies heavily on surgery, radiotherapy, and chemotherapy,” Nsole Biteght said, “despite growing evidence of adverse effects and disease relapses.”

Chemotherapy infusions can create a whole cascade of problems, including hair loss, nausea and fatigue. Unlike infusions, light therapy is highly targeted, Nsole Biteghe said. The near-infrared light activates the drug attached to an antibody that precisely bonds with MTf, making it possible to target cancer cells with chemotherapy drugs.

Shining light on it, he said, creates a “bomb” at the cellular level. The antibody reacts by producing cytotoxic reactive oxygen species, he said, which accumulate and cause tumor cell death.

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24th Edition of World Biophotonics Research Awards 2026 | International Scientific Awards in Kuala Lumpur, Malaysia

  24th World Biophotonics Research Awards 2026: A Global Platform for Scientific Excellence and Innovation Science has always been the drivi...