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Updated: Jul 10, 2026

Fluorescence Activated Cell Sorting of Plant Protoplasts
Published on: February 18, 2010
An efficient method for tissue-specific protoplast isolation suitable for single-cell RNA sequencing and transient
Xiaoyuan Xi1,2,3, Jia Song1, Mengqing Feng4
1TCM (Traditional Chinese Medicine) Key Laboratory Cultivation Base of Zhejiang Province for the Development and Clinical Transformation of Immunomodulatory drugs, Huzhou Central Hospital, Fifth School of Clinical Medicine of Zhejiang, Chinese Medical University, 1558 Sanhuan North Road, Huzhou, Zhejiang, 313000, China.
Background:
Protoplasts have been widely utilized in tissue culture, single-cell RNA sequencing, and transient gene expression analyses. However, the primary challenge in their preparation lies in the efficient removal of rigid cell walls to obtain high-quality plant cells. The aim of this study is to establish an effective method for protoplast isolation from saffron (Crocus sativus L.), thereby accelerating advances in molecular biology research in this species.
Result:
Tissue-specific protoplasts were successfully isolated from apical buds, petals, leaves, and roots of saffron, with yields of approximately 8.81 × 106, 1.36 × 10⁷, 7.84 × 10⁵, and 5.69 × 10⁵/g FW, and viabilities of ~ 95%, ~ 94%, ~ 96%, and ~ 61%, respectively. The optimal enzymatic digestion conditions varied by tissue type: apical buds (0.6 M D-mannitol, 1.5% cellulase, 0.5% macerozyme, 28 °C, 3 h); roots (0.7 M D-mannitol, 2.0% cellulase, 0.5% macerozyme, 0.5% pectinase, 28 °C, 4 h); petals (0.7 M D-mannitol, 1.5% cellulase, 0.5% macerozyme, 28 °C, 3.5 h); and mesophyll (0.7 M D-mannitol, 1.5% cellulase, 0.5% macerozyme, 28 °C, 4 h). The quality of the protoplasts was affected by developmental stages and sampling locations. Furthermore, two high-quality single-cell libraries were constructed using protoplasts from non-flowering and flowering apical buds, respectively. We successfully visualized the subcellular localization of GFP in the mesophyll protoplasts.
Conclusion:
This study presents the first detailed report on protoplast isolation, evaluation, and application in saffron. By overcoming the technical challenges of tissue-specific protoplast isolation from diverse organs, we established a highly efficient method that enables both the development of novel germplasm and mechanistic insights into saffron organogenesis, growth, and development.
