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A new metal-free and water-soluble molecule that can produce florescence and used as MRI contrast material

Researchers at Kyushu University have developed a novel molecule that can produce fluorescence and serve as an MRI contrast agent, addressing limitations of current imaging techniques. The molecule, a water-soluble and metal-free compound, demonstrates improved imaging depth and reduced toxicity compared to existing agents.

SourceKyushu University·JournalAdvanced Science·TypeExperimental study·DateSep 28, 2026

The right timing of treatment keeps resistant cells in check

A new study from the Max Planck Institute for the Science of Light reveals that physical processes in growing tumors and microbial biofilms play a crucial role in determining the optimal timing of treatment cycles. The researchers used a 'Real-To-Sim-To-Real' approach, combining microbial model systems and computer simulations, to show...

SourceMax Planck Institute for the Science of Light·JournalNature Ecology & Evolution·TypeExperimental study·DateSep 28, 2026

Oxygen delivery on display

Researchers at Washington University in St. Louis have developed a new technique to visualize the coupling between neuronal activity and oxygen delivery at the cellular scale. This breakthrough could have profound implications for studying neurodegenerative disease, stroke, and other conditions connected to neurovascular coupling.

SourceWashington University in St. Louis·JournalNature Communications·DateSep 10, 2026

New imaging technique reveals the inner workings of immune cells

Researchers have developed a nondestructive imaging technique to measure single-cell immune metabolism in real patient blood samples, providing a higher level of information than current clinical techniques. This breakthrough could improve disease diagnosis and treatment for conditions like blood cancers, lupus, and sepsis.

SourceMorgridge Institute for Research·JournalBiophotonics Discovery·TypeImaging analysis·DateSep 1, 2026

DNA origami illuminates invisible molecular movements

Researchers at Salk Institute develop novel 'dye-cycling' strategy to measure RNA polymerase movement along DNA with unprecedented lengths of time. This breakthrough provides critical mechanical insights into how genes are transcribed in cells, shedding light on the fundamental processes of life.

SourceSalk Institute·JournalCell Reports Methods·DateAug 13, 2026

Beyond color: Fluorescence lifetime imaging expands multiplex imaging in living plant cells

Researchers distinguish multiple fluorescent proteins with overlapping emission colors by their lifetime using fluorescence lifetime imaging microscopy (FLIM). FLIM successfully distinguishes several fluorescent proteins with overlapping color emissions within plant cells, enabling simultaneous analysis of multiple proteins.

SourceInstitute of Transformative Bio-Molecules (ITbM), Nagoya University·JournalPLANT PHYSIOLOGY·TypeExperimental study·DateAug 11, 2026

Breaking the 'tunnel vision' limitation: Xi Peng laboratory develops a generic large-view-aggregation fluorescence image restoration network

The Xi Peng laboratory has developed LargePNet, a novel general-purpose fluorescence image restoration network that aggregates large-view structural information to overcome the loss of global contextual information caused by conventional patch-based training. This results in improved restoration accuracy and large-size image inference ...

SourcePeking University·JournalNature Communications·DateJun 9, 2026

Making biomolecules glow: new dye solves problem

Researchers at the University of Göttingen have developed a new method to make biomolecules glow in real-time, eliminating unwanted signals in microscopy. This approach ensures only labelled biological molecules emit fluorescence, making experiments clearer and easier to interpret.

SourceUniversity of Göttingen·JournalAngewandte Chemie·TypeExperimental study·DateMay 22, 2026

Garvan scientists capture ‘housekeeping’ immune cells attacking live melanoma

Scientists at the Garvan Institute of Medical Research captured 'housekeeping' immune cells actively attacking and engulfing live melanoma cells. These macrophages patrol the edges of melanoma tumours, steadily engulfing cancer cells and slowing tumour growth. The discovery has big implications for immunotherapy.

SourceGarvan Institute of Medical Research·JournalJournal of Experimental Medicine·TypeExperimental study·DateMay 21, 2026

When cells reveal their inner workings

Researchers at Max Planck Institute for the Science of Light create a 'map' of glycocalyx by mapping individual sugar structures using super-high-resolution microscopy technology. The results show that the spatial arrangement of sugar structures relates to cell physiological state, providing a structured display to the outside world.

SourceMax Planck Institute for the Science of Light·JournalNature Nanotechnology·TypeExperimental study·DateMay 15, 2026

New microscopy technique reveals hidden magnetic chemistry in living systems

A University of Tokyo team developed a fluorescence imaging method to track short-lived molecular intermediates and their magnetic responses in real time. The approach isolates spin-dependent part of chemistry, revealing how magnetically sensitive intermediates appear and disappear.

SourceGraduate School of Arts and Sciences, College of Arts and Sciences, The University of Tokyo·JournalJournal of the American Chemical Society·TypeCommentary/editorial·DateApr 6, 2026

A new reagent makes living brains transparent for deeper, non-invasive imaging

Researchers at Kyushu University develop a new tissue-clearing reagent, SeeDB-Live, enabling repeated, reversible, and real-time imaging of living brains at greater depth and clarity. This breakthrough allows scientists to visualize neural activity in living mice and brain slices, offering new insights into brain dynamics and function.

SourceKyushu University·JournalNature Methods·TypeExperimental study·DateMar 12, 2026

New fluorescent strategy could unlock the hidden life cycle of microplastics inside living organisms

A new study proposes a fluorescence-based strategy to track microplastics in real time as they move, transform, and degrade inside biological systems. This approach allows precise control over particle brightness, emission wavelength, size, and shape, enabling the tracking of microplastic life cycles from ingestion to breakdown.

Real-time imaging of contact between cells and between a single neuron’s extensions

Scientists from The University of Osaka have created two new fluorescent markers, Gachapin and Gachapin-C, that can visualize dynamic cell-to-cell contacts and connections within a single neuron's extensions. These indicators allow for the monitoring of complex patterns of connectivity in various cell types, including neurons.

SourceThe University of Osaka·JournalCell Reports Methods·TypeExperimental study·DateJan 28, 2026

Stick and Glue! Researchers at IOCB Prague introduce a new biomolecule-labeling method for more precise observation of cellular processes

A team of researchers from IOCB Prague introduces a novel method for labeling molecules with fluorescent dyes, surpassing existing approaches in precision and stability. This enables scientists to track labeled molecules over long periods with high reliability, expanding possibilities for research in biology, chemistry, and medicine.

SourceInstitute of Organic Chemistry and Biochemistry of the Czech Academy of Sciences (IOCB Prague)·JournalAngewandte Chemie International Edition·TypeExperimental study·DateNov 21, 2025

Szeged researchers accelerate personalized medicine with AI-powered 3D cell analysis

Researchers at HUN-REN Szegedi Biológiai Kutatóközpont have developed an AI-powered platform for automated 3D cell culture analysis, enabling high-precision screening of cellular models. The technology removes the limitation of throughput in personalized medicine, allowing for fast and accurate analysis of clinical samples.

SourceHUN-REN Szegedi Biológiai Kutatóközpont·JournalNature Communications·DateOct 21, 2025

New insights into soft material deformation

A new study maps the internal behavior of soft materials when deformed, revealing localized fracture events and heterogeneous flows. The findings challenge long-standing assumptions and provide valuable insights for improving manufacturing techniques.

SourceUniversity of Liverpool·JournalColloids and Interface Science Communications·TypeExperimental study·DateJul 7, 2025

Viewing organs in 3D

Researchers developed a new method for imaging enzyme activity in whole organs with high-resolution 3D mapping. This allowed them to visualize differences in aminopeptidase N activity and the effects of inhibitors in mouse kidneys. The study opens up an unbiased evaluation method for drug development.

SourceWiley·JournalAngewandte Chemie International Edition·TypeExperimental study·DateApr 28, 2025

DNA origami guides new possibilities in the fight against pancreatic cancer

Researchers developed DNA origami structures that selectively deliver fluorescent imaging agents to pancreatic cancer cells, enabling more accurate cancer imaging and selective chemotherapy delivery. The study also explored the use of origami-folded DNA molecules loaded with chemotherapy drugs for targeted delivery to cancer cells.

SourceUniversity of Illinois at Urbana-Champaign, News Bureau·JournalAdvanced Science·TypeImaging analysis·DateApr 22, 2025

Prof. Xiaozhen Li from Northwestern Polytechnical University reviewed the rencent advancement in conjugated small molecular nanoparticles for near-infrared biomedical applications

Conjugated small molecular nanoparticles (CSMNs) have shown promise in near-infrared phototheranostics (NIR PTs) for imaging, therapy, and synergistic treatment. Strategies to improve performances and extend absorption wavelengths are crucial for their clinical translations.

SourceResearch·JournalResearch·TypeNews article·DateMar 21, 2025

Pediatric investigation study releases updated guidelines for pediatric mycoplasma pneumoniae infection

The Chinese Medical Association has released updated guidelines for pediatric mycoplasma pneumoniae infection, emphasizing a multi-faceted diagnostic approach and evidence-based treatment strategies. The guidelines highlight the importance of accurate diagnosis and responsible antibiotic use to combat rising resistance.

SourcePediatric Investigation·JournalPediatric Investigation·TypeSystematic review·DateMar 19, 2025

New photochemical tools based on thioketal

A new universal photocage modification strategy based on thioketal enables real-time live cell subcellular imaging. The thioketal-based probe SiR-EDT exhibits improved dark stability and can be specifically activated by UV-visible light.

SourceScience China Press·JournalScience Bulletin·TypeRandomized controlled/clinical trial·DateFeb 25, 2025

AI transforms label-free photoacoustic microscopy into confocal microscopy: A new frontiers in cell imaging technology

Researchers developed an AI-powered technology that transforms low-resolution, label-free images into high-resolution, virtually stained ones without fluorescent dyes. This innovation delivers stable and accurate cell visualization, overcoming limitations of traditional imaging methods.

SourcePohang University of Science & Technology (POSTECH)·JournalNature Communications·DateJan 16, 2025

New AI technique generates clear images of thick biological samples without the fancy hardware

Researchers have developed a new AI method that produces sharp microscopy images throughout a thick biological sample, count cells more accurately, and trace vessels in embryos. The technique doesn't require additional equipment beyond a standard microscope and is more accessible than traditional adaptive optics techniques.

SourceHoward Hughes Medical Institute·JournalNature Communications·DateJan 7, 2025

New imaging platform developed by Rice researchers revolutionizes 3D visualization of cellular structures

Researchers at Rice University developed soTILT3D, an innovative imaging platform that enables fast and precise 3D imaging of multiple cellular structures while controlling the extracellular environment. The platform improves upon conventional fluorescence microscopy by reducing background fluorescence and increasing imaging speed.

SourceRice University·JournalNature Communications·DateNov 26, 2024