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An efficient genetic manipulation protocol for Ustilago esculenta.

Authors :
Jiajia Yu
Yafen Zhang
Haifeng Cui
Peng Hu
Xiaoping Yu
Zihong Ye
Source :
FEMS Microbiology Letters. Jun2015, Vol. 362 Issue 12, p1-7. 7p. 3 Color Photographs, 1 Chart, 2 Graphs.
Publication Year :
2015

Abstract

Ustilago esculenta grows within the flowering stem of the aquatic grass Zizania latifolia, resembling a fungal endophyte. The fungus colonizes Z. latifolia and induces swelling which results in the formation of galls near the base of the plant. Due to their unique flavor and textures these galls are considered as a delicacy in southern China. Efficient genetic manipulation is required to determine the relationship between U. esculenta and Z. latifolia. In this study, we report a protoplast-based transformation system for this unique fungal species. We have explored various factors (enzyme digesting conditions, osmotic pressure stabilizers, vectors and selection agents) that might impact protoplast yield and high frequencies of transformation. A haploid strain (UeT55) of U. esculenta was found to produce higher yields of protoplasts when treating with 15 mg mL-1 lywallzyme in a sucrose-containing solution at 30°C for 3 h. The transformation frequencies were higher when fungal strain was transformed with a linear plasmid harboring hygromycin or carboxin resistance gene and regenerated on a sucrose-containing medium. A UeICL gene (coding isocitrate lyase) was disrupted and an EGFP (coding enhanced green fluorescent protein) gene was overexpressed successfully in the UeT55 strain using the developed conditions. The genetic manipulation system reported in this study will open up new opportunities for forward and reverse genetics in U. esculenta. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03781097
Volume :
362
Issue :
12
Database :
Academic Search Index
Journal :
FEMS Microbiology Letters
Publication Type :
Academic Journal
Accession number :
110238584
Full Text :
https://doi.org/10.1093/femsle/fnv087