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January 14, 2026Plant Cell & Environment4 citationsOpen Access

Protoplast‐Based Functional Genomics and Genome Editing: Progress, Challenges and Applications

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JHJo‐Wei Allison HsiehFWFu‐Hui WuDYDian‐Xuan Yang

Key Points

  • This review examines the progress and challenges of protoplast-based systems for functional genomics and genome editing in plants.
  • Analysis of 1050 articles on protoplast applications.
  • Categorization by delivery methods, research focus, plant species, and tissue types.
  • Exploration of single-cell transcriptomics for cellular response dissection.
  • Protoplast regeneration shows promise for cellular reprogramming and crop improvement.
  • Protoplast fusion enhances tolerance to biotic and abiotic stresses.
  • CRISPR/Cas RNP delivery offers a strategy for stress-resilient gene targeting in crops.

Abstract

ABSTRACT Protoplast‐based systems provide a powerful and versatile platform for exploring how plants sense and respond to their environment. By enabling the direct delivery of proteins, DNA, and RNA into plant cells after cell wall removal, this approach facilitates precise molecular dissection of signaling, stress adaptation, and gene regulation across both model species and economically important crops. In this review, we analyzed 1050 published articles and categorizing them by delivery methods, research focus, plant species, and tissue types. We further highlight recent advances, including the application of single‐cell transcriptomics, which provides unprecedented resolution for dissecting cellular responses and offers deeper insights into the mechanisms underlying stress resilience. Importantly, protoplast regeneration is gaining renewed attention not only as a model system for studying cellular reprogramming but also as a practical platform for crop improvement. Applications of protoplast regeneration include protoplast fusion, which integrates nuclear and organellar DNA/genomes from divergent parents to accelerate breeding and enhance tolerance to both biotic and abiotic stresses. Another important application is CRISPR/Cas ribonucleoprotein (RNP)‐based editing targeting stress‐resilience‐related genes. In asexually propagated or highly heterozygous perennial crops with limited sexual reproduction, protoplast‐based RNP delivery offers a viable and regulation‐compliant strategy. This approach may help address public concerns over transgenic technologies while enabling the rapid development of stress‐tolerant cultivars.

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Cite This Study

Hsieh et al. (2026) studied this question.

synapsesocial.com/papers/6966e73513bf7a6f02bffcdchttps://doi.org/10.1111/pce.70375
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