Light/fluorescence microscopy of cells & tissues, and electron/cryo-EM imaging of macromolecular structures — a metadata catalog with a durable link back to the source archive, not a hosted image gallery. These are primary research datasets (often multi-GB to multi-TB), so this platform never downloads or stores the underlying imaging data itself. Datasets already in either source archive are ingested via accession paste/CSV at /mirroring by a Continental Admin (no automated harvesting — neither source archive supports geography-filterable search); a dataset not yet in either archive can instead be submitted directly below by any node operator, for Continental Admin review. Either way, whoever submits an accession or a self-submitted dataset is the one asserting African origin — this platform does not verify it.
Manuscript abstract:
Malaria transmission relies on sporozoite formation in the mosquito midgut and subsequent salivary gland invasion. Despite their importance, the cell biology of these processes remains poorly understood. We apply Mosquito Tissue Ultrastructure Expansion Microscopy (MoTissU-ExM), which physically expands infected mosquito tissues while preserving host and parasite ultrastructure. MoTissU-ExM reveals parasite structures and organelles, including features previously seen only by electron microscopy and novel structures not observed before. We use MoTissU-ExM to investigate sporozoite formation and salivary gland invasion, focusing on rhoptries - secretory organelles critical for host cell invasion. We establish a timeline for rhoptry biogenesis, show that two rhoptries are consumed during salivary gland invasion, and provide the first evidence that rhoptry pairs are specialized for different invasion events. We further characterize RON11 as the first protein involved in sporozoite rhoptry biogenesis; its disruption produces sporozoites that specifically fail to invade salivary gland epithelial cells, blocking parasite transmission.
Dataset description:
This dataset contains all microscopy data associated with the linked publication "Unlocking new understanding of Plasmodium sporozoite biology with expansion microscopy".
All samples were prepared by ultrastructure-expansion microscopy (U-ExM).
All samples were imaged on either a Zeiss LSM900 or LSM980 microscope, using either Airyscan-SR or Airyscan-MPLX modes.
File names will include the magnification of the objective lens used as follows:
5x = EC Plan-Neofluar 5x/0.16NA Air
10x = Ziess Plan-Apochromat 10x/0.45NA air
20x = Ziess Plan-Apochromat 20x/0.8NA air
40x = Zeiss C-Apochromat 40x/1.2NA water-immersion autocorr M27
63x = Zeiss Plan-Apochromat 63x/1.4NA oil-immersion M27
Images are of mosquito tissues, or isolated parasites, from three Plasmodium species - berghei (Pb), falciparum (Pf), and yoelii (Py).
Images are sorted and named as follows (folder name, file name)
Plasmodium species > Tissue type/site of isolation > Parasite strain > Species abbreviation, MG/SG, Harvest day(dpi), Dye/Fluorophores (405nm -> 647nm), Objective, Image number (1->X), as (airyscan)
For example, the third image taken of a P. berghei oocyst with the RON11iKD parasite line, that was harvested on Day 14 post infection, stained with NHS Ester AF405, BODIPY-FL, anti-Tubulin AF555, and Sytox Red, and imaged on the 40x-objective would be listed as follows:
Plasmodium berghei > Infected midguts > RON11iKD > RON11KD MG 14dpi NHSBFlTub-SytR 40x 1 as
The majority of images in this dataset are z-stacked images, but for many oocysts a single-slice image of the whole oocyst was taken. When this is the case, the single-slice image will be indicated with "SNAP".
A list of the acronyms and abbreviations used in file names are as follows
MG = Midgut
SG = Salivary gland
Spz = Sporozoite
HC = Haemocoel
dpi = Days post infection
NHS = NHS Ester Alexa Fluor 405
BFl = Bodipy-FL-Ceramide
BTRc = Bodipy-TR-Ceramide
SytR = Sytox Deep Red
Tub = anti-tubulin antibody
CSP = anti-circumsporozoite protein antibody
RAP1 = anti-rhoptry associated protein 1 antibody
iKD = Inducible knockdown
Ctrl = Control
KD = Knockdown
RON4 = anti-rhoptry neck protein 4 antibody
GFP = anti-green fluorescent protein antibody
WGA = Wheat germ aglutinnin
BIP = anti-BiP antibody
ERD2 = anti-ERD2 antibody
Manuscript abstract:
Malaria transmission relies on sporozoite formation in the mosquito midgut and subsequent salivary gland invasion. Despite their importance, the cell biology of these processes remains poorly understood. We apply Mosquito Tissue Ultrastructure Expansion Microscopy (MoTissU-ExM), which physically expands infected mosquito tissues while preserving host and parasite ultrastructure. MoTissU-ExM reveals parasite structures and organelles, including features previously seen only by electron microscopy and novel structures not observed before. We use MoTissU-ExM to investigate sporozoite formation and salivary gland invasion, focusing on rhoptries - secretory organelles critical for host cell invasion. We establish a timeline for rhoptry biogenesis, show that two rhoptries are consumed during salivary gland invasion, and provide the first evidence that rhoptry pairs are specialized for different invasion events. We further characterize RON11 as the first protein involved in sporozoite rhoptry biogenesis; its disruption produces sporozoites that specifically fail to invade salivary gland epithelial cells, blocking parasite transmission.
Dataset description:
This dataset contains all microscopy data associated with the linked publication "Unlocking new understanding of Plasmodium sporozoite biology with expansion microscopy".
All samples were prepared by ultrastructure-expansion microscopy (U-ExM).
All samples were imaged on either a Zeiss LSM900 or LSM980 microscope, using either Airyscan-SR or Airyscan-MPLX modes.
File names will include the magnification of the objective lens used as follows:
5x = EC Plan-Neofluar 5x/0.16NA Air
10x = Ziess Plan-Apochromat 10x/0.45NA air
20x = Ziess Plan-Apochromat 20x/0.8NA air
40x = Zeiss C-Apochromat 40x/1.2NA water-immersion autocorr M27
63x = Zeiss Plan-Apochromat 63x/1.4NA oil-immersion M27
Images are of mosquito tissues, or isolated parasites, from three Plasmodium species - berghei (Pb), falciparum (Pf), and yoelii (Py).
Images are sorted and named as follows (folder name, file name)
Plasmodium species > Tissue type/site of isolation > Parasite strain > Species abbreviation, MG/SG, Harvest day(dpi), Dye/Fluorophores (405nm -> 647nm), Objective, Image number (1->X), as (airyscan)
For example, the third image taken of a P. berghei oocyst with the RON11iKD parasite line, that was harvested on Day 14 post infection, stained with NHS Ester AF405, BODIPY-FL, anti-Tubulin AF555, and Sytox Red, and imaged on the 40x-objective would be listed as follows:
Plasmodium berghei > Infected midguts > RON11iKD > RON11KD MG 14dpi NHSBFlTub-SytR 40x 1 as
The majority of images in this dataset are z-stacked images, but for many oocysts a single-slice image of the whole oocyst was taken. When this is the case, the single-slice image will be indicated with "SNAP".
A list of the acronyms and abbreviations used in file names are as follows
MG = Midgut
SG = Salivary gland
Spz = Sporozoite
HC = Haemocoel
dpi = Days post infection
NHS = NHS Ester Alexa Fluor 405
BFl = Bodipy-FL-Ceramide
BTRc = Bodipy-TR-Ceramide
SytR = Sytox Deep Red
Tub = anti-tubulin antibody
CSP = anti-circumsporozoite protein antibody
RAP1 = anti-rhoptry associated protein 1 antibody
iKD = Inducible knockdown
Ctrl = Control
KD = Knockdown
RON4 = anti-rhoptry neck protein 4 antibody
GFP = anti-green fluorescent protein antibody
WGA = Wheat germ aglutinnin
BIP = anti-BiP antibody
ERD2 = anti-ERD2 antibody
Comprehensive Dipteran Wing Image Repository for Advancing Research on Geometric Morphometric- and AI-Based Identification
BioImage Archive:S-BIAD1478 · Kristopher Nolte (Bernhard Nocht Institute for Tropical Medicine) · Anopheles gambiae
This dataset contains over 20000 images of Dipteran wings collected, mostly of mosquitos. Each image is accompanied by extensive metadata, accessible in the 00_metadata.* files. The dataset aims to facilitate research in wing geometric morphometry and support the development of machine learning models for advancing vector surveillance and research. It is a retrospective collection, harmonizing contributions from research projects conducted between 2008 and 2026. The detailed metadata on each sample and image is available in the 00_metadata.*. This table below will provide an overview of the scope and range of the collected metadata. Due to the retrospective nature of the dataset, images may vary significantly in aspects such as lighting, background, and capture conditions across different projects. Although extensive efforts were made to ensure comprehensive metadata, some entries remain incomplete. Missing metadata entries are marked as MISSING VALUE," while fields intentionally left blank are indicated with "-". For the full description of the dataset we refer to the associated publication: https://www.nature.com/articles/s41597-025-05043-3#Sec5
CAR19 Tregs treat murine chronic Graft-Versus-Host Disease through immune suppression without measurable B-cell cytolysis
BioImage Archive:S-BIAD3501 · (University of Minnesota) · Bos indicus
Chronic Graft-Versus-Host disease (cGVHD) remains a major cause of morbidity and mortality after allogeneic hematopoietic transplantation. CGVHD pathophysiology involves cooperation between Tfollicular helper cells (TFH) and germinal center B-cells (GCB), allo- and auto-antibody depositions in cGVHD tissues, and fibrosis. We evaluated human CD19-directed chimeric antigen receptor (CAR19) T-cell therapy in a clinically relevant murine cGVHD model with bronchiolitis obliterans syndrome (BOS). Although CD8 CAR19 T-cells effectively reduced peripheral B-cell and GCB frequencies, pulmonary function was unimproved. In contrast, a single CAR19 CD4 regulatory T-cells (Treg) infusion mitigated ongoing pulmonary disease and modulated germinal centers (GC) associated with reduced TFH frequencies compared to control Tregs but without measurable B-cell depletion. Compared to EGFR Treg infusion, mice receiving CAR19 Tregs exhibited enhanced suppression of B-cell activation, preserved splenic architecture, and provided greater opportunities for interaction with CD19+ B-cells at the B-cell follicle boundary zones. Taken together with the absence of detectable B-cell cytolysis, these findings are most consistent with GC suppression rather than B-cell depletion as the dominant mechanism. Overall, our findings suggest that CAR19 Tregs represent a promising and safe cGVHD/BOS therapeutic strategy, offering immunosuppressive benefits and improved disease outcomes that may be more limited with CD8 CAR19 T-cell treatment.
Comprehensive Dipteran Wing Image Repository for Advancing Research on Geometric Morphometric- and AI-Based Identification
BioImage Archive:S-BIAD1478 · Kristopher Nolte (Bernhard Nocht Institute for Tropical Medicine) · Anopheles squamosus
This dataset contains over 20000 images of Dipteran wings collected, mostly of mosquitos. Each image is accompanied by extensive metadata, accessible in the 00_metadata.* files. The dataset aims to facilitate research in wing geometric morphometry and support the development of machine learning models for advancing vector surveillance and research. It is a retrospective collection, harmonizing contributions from research projects conducted between 2008 and 2026. The detailed metadata on each sample and image is available in the 00_metadata.*. This table below will provide an overview of the scope and range of the collected metadata. Due to the retrospective nature of the dataset, images may vary significantly in aspects such as lighting, background, and capture conditions across different projects. Although extensive efforts were made to ensure comprehensive metadata, some entries remain incomplete. Missing metadata entries are marked as MISSING VALUE," while fields intentionally left blank are indicated with "-". For the full description of the dataset we refer to the associated publication: https://www.nature.com/articles/s41597-025-05043-3#Sec5
Laboratory An. gambiae s.l. mosquito colonies show sustained high transmission of Microsporidia sp. MB and a small decrease in egg viability
BioImage Archive:S-BIAD2518 · (University of Glasgow) · Anopheles maculipalpis
Background
Microsporidia sp. MB, a microsporidian symbiont found naturally in Anopheles mosquitoes, has potential as a novel malaria control tool since it can inhibit Plasmodium development and transmission. The most feasible MB-based Plasmodium control strategy would involve dissemination through live mosquito releases, or release of spores infective to mosquito larvae. To implement either strategy, establishment of stable mosquito colonies carrying MB at a high frequency is likely to be essential.
The progeny of field caught An. gambiae s.l from Burkina Faso were isolated for individual egg laying and tested for MB. The progeny of the MB positive females were pooled and this process was repeated for multiple generations. The relative density of MB in different life stages and tissues of the An. coluzzii host was examined using a novel duplex qPCR assay. We also examined the impact of MB on fecundity through individualization for egg laying and counting of eggs. Finally, we examined laid eggs for presence of MB spores.
Results
Three An. coluzzii colonies and one An. gambiae s.l hybrid colony were established with high prevalence and density of MB and were maintained for more than two years with minimal intervention. MB prevalence and density was highest in eggs and adult females and lowest in L4 larvae; in adults density was highest in the gonads. Additionally, MB density increased in ovary samples following blood feeding which was likely due to the activation of sporogony. The production of spores is the reason why MB-carrying females lay more white non-hatching eggs and show a small reduction in fecundity.
Conclusions
Establishment of several stable MB carrying An. gambiae s.l colonies and understanding the impact of spores on fecundity are significant steps forward in developing MB as a malaria control tool.
Manuscript abstract:
Malaria transmission relies on sporozoite formation in the mosquito midgut and subsequent salivary gland invasion. Despite their importance, the cell biology of these processes remains poorly understood. We apply Mosquito Tissue Ultrastructure Expansion Microscopy (MoTissU-ExM), which physically expands infected mosquito tissues while preserving host and parasite ultrastructure. MoTissU-ExM reveals parasite structures and organelles, including features previously seen only by electron microscopy and novel structures not observed before. We use MoTissU-ExM to investigate sporozoite formation and salivary gland invasion, focusing on rhoptries - secretory organelles critical for host cell invasion. We establish a timeline for rhoptry biogenesis, show that two rhoptries are consumed during salivary gland invasion, and provide the first evidence that rhoptry pairs are specialized for different invasion events. We further characterize RON11 as the first protein involved in sporozoite rhoptry biogenesis; its disruption produces sporozoites that specifically fail to invade salivary gland epithelial cells, blocking parasite transmission.
Dataset description:
This dataset contains all microscopy data associated with the linked publication "Unlocking new understanding of Plasmodium sporozoite biology with expansion microscopy".
All samples were prepared by ultrastructure-expansion microscopy (U-ExM).
All samples were imaged on either a Zeiss LSM900 or LSM980 microscope, using either Airyscan-SR or Airyscan-MPLX modes.
File names will include the magnification of the objective lens used as follows:
5x = EC Plan-Neofluar 5x/0.16NA Air
10x = Ziess Plan-Apochromat 10x/0.45NA air
20x = Ziess Plan-Apochromat 20x/0.8NA air
40x = Zeiss C-Apochromat 40x/1.2NA water-immersion autocorr M27
63x = Zeiss Plan-Apochromat 63x/1.4NA oil-immersion M27
Images are of mosquito tissues, or isolated parasites, from three Plasmodium species - berghei (Pb), falciparum (Pf), and yoelii (Py).
Images are sorted and named as follows (folder name, file name)
Plasmodium species > Tissue type/site of isolation > Parasite strain > Species abbreviation, MG/SG, Harvest day(dpi), Dye/Fluorophores (405nm -> 647nm), Objective, Image number (1->X), as (airyscan)
For example, the third image taken of a P. berghei oocyst with the RON11iKD parasite line, that was harvested on Day 14 post infection, stained with NHS Ester AF405, BODIPY-FL, anti-Tubulin AF555, and Sytox Red, and imaged on the 40x-objective would be listed as follows:
Plasmodium berghei > Infected midguts > RON11iKD > RON11KD MG 14dpi NHSBFlTub-SytR 40x 1 as
The majority of images in this dataset are z-stacked images, but for many oocysts a single-slice image of the whole oocyst was taken. When this is the case, the single-slice image will be indicated with "SNAP".
A list of the acronyms and abbreviations used in file names are as follows
MG = Midgut
SG = Salivary gland
Spz = Sporozoite
HC = Haemocoel
dpi = Days post infection
NHS = NHS Ester Alexa Fluor 405
BFl = Bodipy-FL-Ceramide
BTRc = Bodipy-TR-Ceramide
SytR = Sytox Deep Red
Tub = anti-tubulin antibody
CSP = anti-circumsporozoite protein antibody
RAP1 = anti-rhoptry associated protein 1 antibody
iKD = Inducible knockdown
Ctrl = Control
KD = Knockdown
RON4 = anti-rhoptry neck protein 4 antibody
GFP = anti-green fluorescent protein antibody
WGA = Wheat germ aglutinnin
BIP = anti-BiP antibody
ERD2 = anti-ERD2 antibody
The Darwin Tree of Life project has the goal to sequence the genomes of 70,000 species of eukaryotic organisms in Britain and Ireland. This is a collection of photographs of the samples included in the study, provided by the National History Museum (NHM).