Abstract
The intrinsic totipotency of plant cells is demonstrated by plant tissue culture, which is the foundation for significant developments in plant biotechnology. Through carefully monitored organogenic and embryogenic pathways, somatic cells may be stimulated to regenerate whole plants by replicating controlled in vitro settings. Plant growth regulators, nutrient composition, and physical conditions all work together to shape these developmental transitions. Recent molecular research has elucidated the role of auxin signaling networks, developmental regulators, chromatin dynamics, and stress-associated epigenetic modifications in cellular reprogramming. Reproducibility and propagation efficiency have been increased due to advancements in temporary immersion systems, environmental control, and medium optimization. Simultaneously, tissue culture platforms are becoming more and more integrated with high-throughput omics studies, genome editing technologies, and nanomaterial-based delivery systems, boosting the accuracy and scalability of plant transformation beyond traditional callus-dependent methods. In commercial and research contexts, automation and automated monitoring systems further improve scalability and consistency. Also, early detection of adaptive characteristics is made easier by the deliberate use of somaclonal variations and in vitro stress selection. Collectively, these advancements reinforce plant tissue culture as a dynamic and progressive framework that connects fundamental developmental biology with practical crop enhancement and sustainable agricultural innovation.
Keywords
References
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