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Deposition

The POPSICLE Bacterial Segmentation Dataset: multi-class compartment segmentations for bacterial cryo-ET data

  • Deposition ID:CZCDP-10350

Release Date: 2026-05-04

Last Modified: 2026-05-04

key visualization for The POPSICLE Bacterial Segmentation Dataset: multi-class compartment segmentations for bacterial cryo-ET data

Photo Caption: Central slab of 4 representative tomograms with selected sets of annotations.

Deposition Overview

The bacterial segmentation dataset of POPSICLE (Particle/Object Picking & Segmentation In CryoET Learning & Evaluation), a benchmark suite released to support reproducible evaluation of machine-learning models for dense voxel-wise compartment segmentation in bacterial cryo-ET. The deposition provides semantic segmentations for five classes (cytoplasm, bacterial-type flagellum, membrane, dense body, and periplasmic space / intermembrane space) together with matching 20 Å re-binned WBP tomograms for 80 cryo-ET acquisitions of bacteria drawn from 13 datasets spanning multiple species. Initial annotations were produced semi-manually using napari-nnInteractive, then refined through an agent-designed copick curation pipeline (copick-utils + copick-mcp), followed by manual inspection and correction. Only the final curated segmentation is ingested in this deposition. The accompanying 20 Å tomograms are the resampled volumes used for segmentation (WBP, IMOD reconstruction pipeline; alignment via RAPTOR per the original pipeline) and serve as the visualization base for the segmentations at this voxel spacing.

Deposition Data

Annotations:317

Tomograms:80

Publications

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Methods Summary

Annotations
Method Type
Method Details
Method Links
317
Hybrid
semi-manual annotation using napari-nnInteractive, followed by an agent-designed copick curation pipeline and manual correction
Source Code:copick-mcp
+2 more

Deposited Data

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Data Contents

Tilt SeriesAvailable
FramesNA
CTFNA
AlignmentNA

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317 of 317 Annotations

Annotation Name
Object Shape Type
Method Type
Deposited In

104periplasmic space

Annotation ID: AN-141957

Ground Truth
SegmentationMask
Hybrid

103dense body

Annotation ID: AN-141956

Ground Truth
SegmentationMask
Hybrid

102membrane

Annotation ID: AN-141955

Ground Truth
SegmentationMask
Hybrid

101bacterial-type flagellum

Annotation ID: AN-141954

Ground Truth
SegmentationMask
Hybrid

100cytoplasm

Annotation ID: AN-141953

Ground Truth
SegmentationMask
Hybrid

104periplasmic space

Annotation ID: AN-141952

Ground Truth
SegmentationMask
Hybrid

103dense body

Annotation ID: AN-141951

Ground Truth
SegmentationMask
Hybrid

102membrane

Annotation ID: AN-141950

Ground Truth
SegmentationMask
Hybrid

100cytoplasm

Annotation ID: AN-141949

Ground Truth
SegmentationMask
Hybrid

104periplasmic space

Annotation ID: AN-141948

Ground Truth
SegmentationMask
Hybrid

103dense body

Annotation ID: AN-141947

Ground Truth
SegmentationMask
Hybrid

102membrane

Annotation ID: AN-141946

Ground Truth
SegmentationMask
Hybrid

101bacterial-type flagellum

Annotation ID: AN-141945

Ground Truth
SegmentationMask
Hybrid

100cytoplasm

Annotation ID: AN-141944

Ground Truth
SegmentationMask
Hybrid

104periplasmic space

Annotation ID: AN-141943

Ground Truth
SegmentationMask
Hybrid

103dense body

Annotation ID: AN-141942

Ground Truth
SegmentationMask
Hybrid

102membrane

Annotation ID: AN-141941

Ground Truth
SegmentationMask
Hybrid

100cytoplasm

Annotation ID: AN-141940

Ground Truth
SegmentationMask
Hybrid

104periplasmic space

Annotation ID: AN-141939

Ground Truth
SegmentationMask
Hybrid

103dense body

Annotation ID: AN-141938

Ground Truth
SegmentationMask
Hybrid
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