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The dataset provides fluorescence images of myocytes in subepicardial myocardium of Langendorff-perfused rat hearts, which were rapidly-frozen (RF) during different contractile state including systole, diastole, and ventricular fibrillation (VF). The RF hearts were subsequently fixed with acetone and paraformaldehyde (PFA) by freeze-substitution procedure, then α-actinin in myocytes of them was immuno-stained with fluorescence labels. As control, hearts rapidly-frozen under mechanical relaxation induced by 2,3-butanedione monoxime (BDM), hearts fixed with PFA solely, hearts rapidly-frozen after PFA-fixation were also prepared.

2D and 3D instance segmentation of nuclei from array tomography (AT) and FIB-SEM datasets, respectively. In this deposition, 10 AT and 2 FIB-SEM datasets and paired annotations are included. Note: in several datasets, partial annotations of nuclei at image edges have been deleted. These are indicated in the annotation metadata.

Calcium transients drive cells to discharge prostaglandin E2 (PGE2). The authors visualized PGE2-induced protein kinase A (PKA) activation and quantitated PGE2 secreted from a single cell by combining fluorescence microscopy and a simulation model. For this purpose, they first prepared PGE2-producer cells that express either an optogenetic or a chemogenetic calcium channel stimulator: OptoSTIM1 (CRY2clust) or Gq-DREADD, respectively. Second, they prepared reporter cells expressing the Gs-coupled PGE2 reporter EP2 and the PKA biosensor Booster-PKA, which is based on the principle of Forster resonance FRET. Upon the stimulation-induced triggering of calcium transients, a single producer cell discharges PGE2 to stimulate PKA in the surrounding reporter cells. Due to the flow of the medium, the PKA-activated area exhibited a comet-like smear when HeLa cells were used. In contrast, radial PKA activation was observed when confluent MDCK cells were used, indicating that PGE2 diffusion was restricted to the basolateral space. By fitting the radius of the PKA-activated area to a simulation model based on simple diffusion, the authors estimated that a single HeLa cell secretes 0.25 fmol PGE2 upon a single calcium transient to activate PKA in more than 1000 neighboring cells. This model also predicts that the PGE2 discharge rate is comparable to the diffusion rate. Thus, their method quantitatively envisions that a single calcium transient affects more than 1000 neighboring cells via PGE2.

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Dynamics of pollen tube in Arabidopsis thaliana

Identifier: 454-Mizuta-PollenTubeGuidance

Yoko Mizuta, Yoko Mizuta, Daigo Sakakibara, Shiori Nagahara, Ikuma Kaneshiro

Published: 2026-01-21   Licence: CC BY 4.0   Publisher: SSBD:database

In the pistil of flowering plants, each ovule usually associates with a single pollen tube for fertilization. This one-to-one pollen tube guidance, which contributes to polyspermy blocking and efficient seed production, is largely different from animal chemotaxis of many sperms to one egg. However, the functional mechanisms underlying the directional cues and polytubey blocks in the depths of the pistil remain unknown. Here, the authors develop a two-photon live imaging method to directly observe pollen tube guidance in the pistil of Arabidopsis thaliana, clarifying signaling and cellular behaviors in the one-to-one guidance. Ovules are suggested to emit multiple signals for pollen tubes, including an integument- dependent directional signal that reaches the inner surface of the septum and adhesion signals for emerged pollen tubes on the septum. Not only FERONIA in the septum but ovular gametophytic FERONIA and LORELEI, as well as FERONIA- and LORELEI- independent repulsion signal, are involved in polytubey blocks on the ovular funiculus. However, these funicular blocks are not strictly maintained in the first 45 min, explaining previous reports of polyspermy in flowering plants.

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Dynamics of radial axis formation in Arabidopsis thaliana zygote

Identifier: 460-Tanaka-RadialAxisDyn

Minako Ueda, Sayuri Tanaka

Published: 2026-01-21   Licence: CC BY 4.0   Publisher: SSBD:database

Plants develop along apical-basal and radial axes. In Arabidopsis thaliana, the radial axis becomes evident when the cells of the 8-cell proembryo divide periclinally, forming inner and outer cell layers. Although changes in cell polarity or morphology likely precede this oriented cell division, the initial events and the factors regulating radial axis formation remain elusive. Here, we report that three transcription factors belonging to the class IV homeodomain-leucine zipper (HD-ZIP IV) family redundantly regulate radial pattern formation:HOMEODOMAIN GLABROUS11 (HDG11), HDG12, and PROTODERMAL FACTOR2 (PDF2). The hdg11 hdg12 pdf2 triple mutant failed to undergo periclinal division at the 8-cell stage and cell differentiation along the radial axis. Live-cell imaging revealed that the mutant defect is already evident in the behavior of the embryo’s initial cell (apical cell), which is generated by zygote division. In the wild type, the apical cell grows longitudinally and then radially, and its nucleus remains at the bottom of the cell, where the vertical cell plate emerges. By contrast, the mutant apical cell elongates longitudinally, and its nucleus releases from its basal position, resulting in a transverse division. Computer simulations based on the live-cell imaging data confirmed the importance of the geometric rule (the minimal plane principle and nucleus-passing principle) in determining the cell division plane. We propose that HDG11, HDG12, and PDF2 promote apical cell polarization, i.e., radial cell growth and basal nuclear retention, and set proper radial axis formation during embryogenesis.

This dataset contains high-content, live-cell, time-lapse imaging of HeLa cells undergoing apoptosis across a 10-point dose response to the apoptosis inducer staurosporine. Using the ChromaLIVE™ Live Cell Painting assay, cells were imaged every 30 minutes over a six-hour period on the Yokogawa CellVoyager CQ1 spinning-disk confocal platform, capturing multiplexed fluorescence signals (Hoechst, ChromaLIVE 488_yellow, ChromaLIVE 488_red, and ChromaLIVE 561) across three z-planes at four fields of view per well. After live imaging, cells were fixed and stained with AnnexinV to provide a single-cell ground-truth readout of apoptosis. The dataset includes raw and illumination-corrected images, cell segmentation masks, single-cell tracking outputs, and extracted morphological features generated using CellProfiler and scDINO deep-learning embeddings. In total, the dataset comprises over 188,000 single-cell observations and 20,677 cell tracks across time, with 2,336 curated morphology features per cell. These measurements quantify the dynamic morphological signatures preceding apoptosis and capture dose- and time-dependent phenotypic trajectories. This resource enables the study of temporal morphology changes, benchmarking of image-based profiling pipelines, development of machine-learning models for early apoptosis prediction, and exploration of dynamic cell-state transitions. It supports future work such as profiling additional forms of regulated cell death and constructing temporal morphology atlases.

Organisms: Homo sapiens

Plasma membrane calcium ATPases (PMCAs) are believed to function exclusively at the plasma membrane where they expel calcium from the cytosol. We have unexpectedly identified a splice variant-dependent localisation of the PMCA isoform PMCA2 to the lysosome, where it forms an evolutionarily conserved complex with NPC1, the lysosomal membrane protein defective in the rare lysosomal storage disease Niemann-Pick disease type C (NPC). This interaction is required for lysosomal Ca2+ homeostasis and implicates PMCA2 as a mediator of Ca2+ uptake into lysosomes. Disruption of the NPC1-PMCA2 complex contributes to the pathophysiology of both Niemann-Pick disease type C and Parkinson’s disease, revealing an unrecognised intracellular function for PMCA2 and a shared mechanism linking lysosomal Ca2+ and lipid regulation in neurodegeneration.

Imaging Methods: confocal microscopy

Organisms: Rattus norvegicus

Intracellular signaling observed using giant Dictyostelium cells

Identifier: ssbd-repos-000452

Yusuke V. Morimoto

Published: 2026-01-21   Licence: CC BY 4.0   Publisher: SSBD:repository

We developed a method to enlarge Dictyostelium discoideum cells by partial cytokinesis inhibition, generating multinucleated yet functional giant cells. These cells retained chemotactic signaling, polarity, and motility, enabling high-resolution live-cell imaging. Using fluorescent probes for cAMP and Ca2+, we uncovered a directional, front-to-rear propagation of cAMP signaling and a biphasic Ca2+ response coordinated with actin wave dynamics.

Dynamics of pollen tube in Arabidopsis thaliana

Identifier: ssbd-repos-000454

Yoko Mizuta

Published: 2026-01-21   Licence: CC BY 4.0   Publisher: SSBD:repository

In the pistil of flowering plants, each ovule usually associates with a single pollen tube for fertilization. This one-to-one pollen tube guidance, which contributes to polyspermy blocking and efficient seed production, is largely different from animal chemotaxis of many sperms to one egg. However, the functional mechanisms underlying the directional cues and polytubey blocks in the depths of the pistil remain unknown. Here, the authors develop a two-photon live imaging method to directly observe pollen tube guidance in the pistil of Arabidopsis thaliana, clarifying signaling and cellular behaviors in the one-to-one guidance. Ovules are suggested to emit multiple signals for pollen tubes, including an integument- dependent directional signal that reaches the inner surface of the septum and adhesion signals for emerged pollen tubes on the septum. Not only FERONIA in the septum but ovular gametophytic FERONIA and LORELEI, as well as FERONIA- and LORELEI- independent repulsion signal, are involved in polytubey blocks on the ovular funiculus. However, these funicular blocks are not strictly maintained in the first 45 min, explaining previous reports of polyspermy in flowering plants.

Imaging Methods: recorded image

Organisms: Arabidopsis thaliana

We present MitoEM 2.0, a curated benchmark resource for training and evaluating three-dimensional (3D) mitochondria instance segmentation in volume electron microscopy (vEM). The collection assembles multiscale vEM datasets (FIB-SEM, SBF-SEM, and ssSEM) spanning diverse tissues and species, with expert-verified instance labels emphasizing biologically difficult scenarios, including dense mitochondrial packing, hyperfused networks, and thin filamentous connections with ambiguous boundaries. All releases include native-resolution volumes and standardized processed versions, per-volume metadata (voxel size, modality, tissue, and data splits), and official train/validation/test partitions to enable reproducible benchmarking. Annotations follow a consistent protocol with quality checks and instance reindexing. Data are provided in NIfTI format with an nnU-Net–compatible layout, alongside machine-readable split files and checksums. MitoEM 2.0 facilitates robust model development and fair comparison across methods while supporting reuse in bioimage analysis, algorithm benchmarking, and teaching.

The chicken embryo has been a long-standing model for studying embryonic development. Its easy access for in vivo experiments, together with the development of ex ovo culture techniques, has made it a choice model system for elaborate experimental manipulations. Here we present a time-lapse imaging dataset of the developing chicken embryo in ex ovo culture covering a range of HH3 to HH14+ embryonic stages, with 3-6 min temporal resolution.

Imaging Methods: bright-field microscopy

Organisms: Gallus gallus