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Transgenic miR156 Switchgrass in the Field: Growth, Recalcitrance and Rust Susceptibility

Source Publication
Plant Biotechnology Journal
Date Issued
June 20, 2017
Author(s)
Baxter, Holly L.  
Mazarei, Mitra  
Dumitrache, Alexandru
Natzke, Jace M.
Rodriguez, Miguel Jr
Gou, Jiqing
Fu, Chunxiang
Sykes, Robert W.
Turner, Geoffrey B.
Davis, Mark F.
Brown, Steven D.
Davison, Brian H.
Wang, Zen-Yu
Stewart, C. Neal Jr
DOI
10.1111/pbi.12747
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/50530
Abstract

Sustainable utilization of lignocellulosic perennial grass feedstocks will be enabled by high biomass production and optimized cell wall chemistry for efficient conversion into biofuels. MicroRNAs are regulatory elements that modulate the expression of genes involved in various biological functions in plants, including growth and development. In greenhouse studies, overexpressing a microRNA (miR156) gene in switchgrass had dramatic effects on plant architecture and flowering, which appeared to be driven by transgene expression levels. Highexpressing lines were extremely dwarfed, whereas low and moderate-expressing lines had higher biomass yields, improved sugar release and delayed flowering. Four lines with moderate or low miR156 overexpression from the prior greenhouse study were selected for a field experiment to assess the relationship between miR156 expression and biomass production over three years. We also analysed important bioenergy feedstock traits such as flowering, disease resistance, cell wall chemistry and biofuel production. Phenotypes of the transgenic lines were inconsistent between the greenhouse and the field as well as among different field growing seasons. One low expressing transgenic line consistently produced more biomass (25%–56%) than the control across all three seasons, which translated to the production of 30% more biofuel per plant during the final season. The other three transgenic lines produced less biomass than the control by the final season, and the two lines with moderate expression levels also exhibited altered disease susceptibilities. Results of this study emphasize the importance of performing multiyear field studies for plants with altered regulatory transgenes that target plant growth and development.

Subjects

microRNA156

biomass

transgene regulation

switchgrass

flowering

bioconfinement

Comments

This article was published openly thanks to the University of Tennessee Open Publishing Support Fund.


Licensed under a Creative Commons Attribution 4.0 International license.

Recommended Citation
Baxter, Holly L., Mitra Mazarei, Alexandru Dumitrache, Jace M. Natzke, Miguel Rodriguez Jr, Jiqing Gou, Chunxiang Fu, Robert W. Sykes, Geoffrey B. Turner, Mark F. Davis, Steven D. Brown, Brian H. Davison, Zeng-Yu Wang, C. Neal Stewart Jr, “Transgenic miR156 Switchgrass in the Field: Growth, Recalcitrance and Rust Susceptibility,” Plant Biotechnology Journal, (2017). doi: 10.1111/pbi.12747
Submission Type
Publisher's Version
File(s)
Thumbnail Image
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Stewart_Neal3.pdf

Size

669.41 KB

Format

Adobe PDF

Checksum (MD5)

6675ff7b6f43f183497636d36904c11d


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