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Transient Expression and Cellular Localization of Recombinant Proteins in Cultured Insect Cells
Published on: April 20, 2017
Development of a rapid transformation and amplification system in Byblis guehoi unveils an atypical protein secretion
You-Xian Li1,2, Chia-Hua Yu1, I-Jou Hsu1
1Graduate Institute of Biotechnology, National Chung Hsing University, 145 Xingda Rd., South Dist., Taichung, 402, Taiwan.
Abstract:
The leaves of the carnivorous plant Byblis guehoi are densely covered with structurally simple sessile trichomes, each composed of eight flattened cells arranged in a ring. These trichomes exhibit robust protein exocytosis and endocytosis, making them a suitable system for studying these processes. To track protein secretion, we established an Agrobacterium-mediated transformation protocol using root explants. Calli were induced on Byblis callus induction medium, and transgenic shoots were regenerated within two months on hygromycin-containing Byblis selection and regeneration medium. In addition, a temporary immersion system was implemented to rapidly propagate transgenic lines, enhancing growth and facilitating acclimation. Four 35S promoter-driven constructs expressing β-glucuronidase, betalain reporter (RUBY), modified green fluorescent protein (mGFP), or CLAVATA3 signal peptide fusion modified green fluorescent protein (CLV3sp-mGFP5) validated the protocol, yielding transformation efficiencies of 24.9%-59.4% and regeneration efficiencies of 22.3%-73.7%. Confocal microscopy revealed predominantly cytoplasmic signals for mGFP5 and plasma membrane-localized signals for CLV3sp-mGFP5 in epidermal cells. Unexpectedly, both constructs exhibited GFP signals at the plasma membrane and in the extracellular space of sessile trichome cells, regardless of the presence of a signal peptide. Western blot analysis further confirmed that mGFP5 was secreted into the mucilage independently of signal peptide presence. These findings reveal signal peptide-independent extracellular protein accumulation in glandular trichomes, deviating from the classical endoplasmic reticulum-Golgi pathway. Given that sessile trichomes of B. guehoi possess a specialized cuticular pore lacking a rigid cell wall, this structural feature may provide a plausible interface for nonclassical protein export. This study establishes a rapid transformation-propagation pipeline for B. guehoi, highlighting its potential as an experimental platform for investigating protein secretion in plant glandular cells.

