A research collaboration to screen diverse Agrobacterium strains for new T-DNA tools that enable efficient in planta transformation and regeneration of transgenic shoots in dicot crops, overcoming limitations of existing strains that produce galls or callus rather than usable plant tissue.
This research initiative seeks to discover and characterize novel Agrobacterium strains that can transform plants directly in tissue (in planta) without the need for traditional tissue culture. Current transformation tools using the standard C58 strain are effective at delivering genes but tend to produce galls or undifferentiated callus tissue, leaving researchers with "trapped" transgenic material that is difficult to regenerate into whole plants. By systematically screening a diverse collection of Agrobacterium strains, this project aims to identify strains whose T-DNA (the segment of DNA transferred into the plant) carries hormone biosynthesis genes that promote shoot development, enabling regeneration of fertile transgenic plants.
The work builds on a previously identified "shooty" strain (82.139) that demonstrated the ability to induce shoots near gall tissue. Success would expand the toolkit available for crop improvement, particularly for dicot plant species (broadleaf plants such as soybean, tomato, and cotton) that are important to agriculture.
Research approach:
Key innovation:
The project moves beyond the single-strain paradigm by leveraging the natural diversity of Agrobacterium genomes to find strains with optimized hormone gene combinations for shoot regeneration.
This research is at an early discovery stage (TRL 2–3). Preliminary work has shown that the T-DNA from a known shooty strain can induce shoots near galls both in vitro (in laboratory culture) and in vivo (in living plants), though at low frequency. The current project represents a systematic expansion of this proof-of-concept into a broader strain screen. Future stages will require optimization of identified strains, validation in target crop species, and development of domesticated strain backgrounds suitable for broader research and commercial use. Partnerships with industry or other research institutions could accelerate validation in commercially relevant crops.
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