Jul 2026· Journal of Genetic Engineering and Biotechnology· Vol 24, pp. 100767· 0 citations· 54 references
Medicine
TL;DR
This robust protoplast-to-plant protocol serves as a crucial resource for the introduction of ribonucleoprotein complexes into plant cells, facilitating accurate, transgene-free genome editing.
Abstract
An effective system for isolating and regenerating protoplasts is crucial for research in genome engineering. This study focused on refining a protocol for the isolation and regeneration of mesophyll protoplasts from the leaves of Solanum tuberosum cv. Kufri Jyoti. Key factors influencing protoplast yield and viability, such as dark pretreatment, pre-plasmolysis, enzyme concentrations, and osmoticum levels, were thoroughly assessed and optimized. The highest protoplast yield and viability were achieved with an enzyme mixture of 1.0% cellulase R-10 and 0.5% macerozyme R-10 after 16 h of incubation. Furthermore, culturing on a Murashige and Skoog-based medium (MSPI) without ammonium nitrate, enriched with an osmoticum concentration of 0.4 M and a carefully adjusted auxin-to-cytokinin ratio, successfully facilitated protoplast division, microcalli proliferation, and minicalli formation. Callus proliferation and shoot induction were accomplished on MS13K medium supplemented with naphthaleneacetic acid (NAA) and zeatin riboside. Root initiation and elongation were promoted on MS basal medium supplemented with indole-3-butyric acid (IBA) at 1 mg/L. The regenerated plantlets were subsequently acclimatized and hardened under controlled greenhouse conditions. This robust protoplast-to-plant protocol serves as a crucial resource for the introduction of ribonucleoprotein complexes into plant cells, facilitating accurate, transgene-free genome editing.
Stable transformation in rose is slow and genotype-dependent, motivating rapid cellular assays for candidate-gene testing. We systematically evaluated mesophyll protoplast isolation and PEG-mediated transient expression in Rosa chinensis ‘Old Blush’. Sequential experiments compared enzyme preparations, digestion time,...
Highly efficient tissue culture and transformation systems are indispensable for micropropagation, the molecular studies of secondary metabolism, the biotechnological enhancement of bioactive compounds, and genome editing in plants. Solanum americanum is a diploid species with both vegetable and medicinal value, yet re...
Prunus sibirica possesses substantial ecological and economic value and is recognized as an emerging woody energy crop; however, its regeneration and genetic transformation remain challenging. The present study established an efficient regeneration and Agrobacterium tumefaciens‐mediated transformation system for P. sib...
Shi-Peng Wang, Jian-Hua Chen, Yong-Qiang Sun et al.· Physiologia Plantarum : An I...· 0 citations
Rice blast disease is one of most devastating fungal diseases caused by Magnaporthe oryzae. The preparation and transformation of protoplasm are of vital importance for understanding the pathogenic mechanism of M. oryzae and achieving the control of rice blast disease. In this study, we aim to optimize conditions for p...
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Efficient Agrobacterium-mediated transformation (AMT) is vital for the biotechnological improvement of sugarcane (Saccharum spp.). Saccharum officinarum is the main ancestor of all modern cultivars, yet little research has been conducted on its AMT system. In this work, an efficient AMT protocol for S. officinarum was...
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Gene editing techniques are well-developed for model microalgae like Chlorella and Chlamydomonas. However, for the high-value species Porphyridium purpureum, its thick cell wall poses a significant barrier to genetic manipulation. Overcoming this challenge requires a robust method for preparing highly viable protoplast...
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