A Protoplast-based method to visualize early cell biological events in plant cellular reprogramming and regeneration

Plant developmental biology lacks cell-based experimental systems comparable to the organoids and live-imaging platforms that have transformed mechanistic discovery in animal research. To address this gap, we present a robust, trackable protoplast regeneration platform in Arabidopsis thaliana that enables high-resolution, time-resolved analysis from the single-cell stage through microcolony formation and early regenerative development. Protoplasts are embedded in thin alginate matrices containing fluorescent fiducial beads, maintaining physical separation and allowing repeated return to the same cells over days to weeks. This design supports long-term imaging using epifluorescence, confocal, and lattice light sheet microscopy, enabling visualization of cell-cycle re-entry, asymmetric division, organelle dynamics, dedifferentiation, redifferentiation, and regenerative competence. Fluorescent reporters for nuclei, membranes, microtubules, Golgi, and hormone signaling further permit observation of subcellular organization and signaling heterogeneity during early reprogramming. Together, this platform provides an accessible, scalable system for studying plant cellular plasticity at single-cell resolution and offers a foundation for plant organoid-like models. By enabling high-resolution study of regeneration from single cells, this method expands the experimental toolkit and supports efforts to overcome species- and genotype-dependent barriers to transformation and plant biotechnology.

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Publication Details

Journal
Development
Published
2026-09-09
DOI
https://doi.org/10.1242/dev.205715
Primary Topic
Plant Molecular Biology Research
Type
article
Field-Weighted Citation Impact
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article

A Protoplast-based method to visualize early cell biological events in plant cellular reprogramming and regeneration

Emery L. Ng, Bastiaan O. R. Bargmann, Mao Li, Kelsey Reed et al.
Development
Plant Molecular Biology Research
article

A Protoplast-based method to visualize early cell biological events in plant cellular reprogramming and regeneration

Emery L. Ng, Bastiaan O. R. Bargmann, Mao Li, Kelsey Reed, Andrew J. Hanrahan, Abigail A. Masri
article en

Abstract

Plant developmental biology lacks cell-based experimental systems comparable to the organoids and live-imaging platforms that have transformed mechanistic discovery in animal research. To address this gap, we present a robust, trackable protoplast regeneration platform in Arabidopsis thaliana that enables high-resolution, time-resolved analysis from the single-cell stage through microcolony formation and early regenerative development. Protoplasts are embedded in thin alginate matrices containing fluorescent fiducial beads, maintaining physical separation and allowing repeated return to the same cells over days to weeks. This design supports long-term imaging using epifluorescence, confocal, and lattice light sheet microscopy, enabling visualization of cell-cycle re-entry, asymmetric division, organelle dynamics, dedifferentiation, redifferentiation, and regenerative competence. Fluorescent reporters for nuclei, membranes, microtubules, Golgi, and hormone signaling further permit observation of subcellular organization and signaling heterogeneity during early reprogramming. Together, this platform provides an accessible, scalable system for studying plant cellular plasticity at single-cell resolution and offers a foundation for plant organoid-like models. By enabling high-resolution study of regeneration from single cells, this method expands the experimental toolkit and supports efforts to overcome species- and genotype-dependent barriers to transformation and plant biotechnology.

Development
Donald Danforth Plant Science Center (US), Virginia Tech (US)
Openalex Percentile: Top 12%
Plant Molecular Biology Research
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