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Fluorescence microscopy (FM) and electron microscopy (EM) are complementary techniques. FM affords examination of large fields of view and identifying regions of interest but has a low resolution. EM exhibits excellent resolution over a limited field of view. The combination of these two techniques, correlative microscopy, received considerable interest in the past years and has proven its potential in biology and material science. Accurate correlation of FM and EM images is, however, challenging due to the differences in contrast mechanism, size of field of view and resolution. We report an accurate, fast and robust method to correlate FM and EM images using low densities of fiducial markers. Here, 120 nm diameter fiducial markers consisting of fluorescently labelled silica coated gold nanoparticles are used. The method relies on recording FM, low magnification EM and high magnification EM images. Two linear transformation matrices are constructed, FM to low magnification EM and low magnification EM to high magnification EM. Combination of these matrices results in a high accuracy transformation of FM to high magnification EM coordinates. The method was tested using two different transmission electron microscopes and different Tokuyasu and Lowicryl sections. The overall accuracy of the correlation method is high, 5-30 nm.
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http://dx.doi.org/10.1038/s41598-019-40098-4 | DOI Listing |
J Neurosurg Case Lessons
September 2025
Department of Neurosurgery, Fleming Neuroscience Institute, Allentown, Pennsylvania.
Background: High-grade astrocytoma with piloid features (HGAP) was recently added to the WHO 2021 CNS classification system among the group of circumscribed astrocytic gliomas. These tumors present with high-grade piloid histology with similarities to glioblastoma. HGAPs in the pineal region become particularly challenging due to its deep location and proximity to deep venous structures, the midbrain, and the thalamus.
View Article and Find Full Text PDFMar Pollut Bull
September 2025
Fishery College, Zhejiang Ocean University, Zhoushan 316022, China. Electronic address:
This study investigated the trophic transfer of heavy metals and assessed their potential health risks in waters adjacent to Yanpu Bay, China, to elucidate their ecological and public health implications, integrating stable isotope analysis (δC, δN) and heavy metal concentration measurements across biotic and abiotic components. The δC values ranged from -24.85 (plankton) to -13.
View Article and Find Full Text PDFPflugers Arch
September 2025
Research Institute for Medicines (iMed.ULisboa), Faculdade de Farmácia, Universidade de Lisboa, Av. Prof. Gama Pinto, 1649-003, Lisbon, Portugal.
Post-occlusive reactive hyperemia (PORH) is a physiological response marked by a transient increase in microvascular perfusion following ischemia. While cutaneous perfusion during PORH has been extensively characterized using optical approaches such as Doppler-based techniques, low-cost alternatives like photoplethysmography (PPG), videocapillaroscopy (VC) and near-infrared reflectance imaging (NIRI) may provide complementary insights into both microvascular and venous dynamics. However, their role in quantifying PORH remains underexplored.
View Article and Find Full Text PDFJ Paleolit Archaeol
August 2025
Faculty of Archaeology, Leiden University, Einsteinweg 2, 2333CC Leiden, Netherlands.
Unlabelled: Microwear analysis of lithic artifacts offers potential to reconstruct the post-depositional history of prehistoric assemblages, as flint's microcrystalline structure preserves mechanical and chemical traces over time. While micro-use-wear studies have long examined tool function, their application to taphonomic processes remains underexplored. The techniques and protocols used in use-wear studies could be applied to reconstruct the taphonomic life-history of these artifacts, but this approach has not yet become mainstream.
View Article and Find Full Text PDFSensors (Basel)
August 2025
School of Civil and Transportation Engineering, Shenzhen University, Shenzhen 518060, China.
Due to the slender geometry and low-amplitude vibrations of stayed cables, existing vision-based methods often fail to accurately identify their full-field dynamic parameters, especially the higher-order modes. This paper proposes a novel holographic vision-based method to accurately identify the high-order full-field dynamic parameters and estimate the tension of the stayed cables. Particularly, a full-field optical flow tracking algorithm is proposed to obtain the full-field dynamic displacement information of the stayed cable by tracking the changes in the optical flow field of the continuous motion signal spectral components of holographic feature points.
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