Expression of StMYB1R-1, a Novel Potato Single MYB-Like Domain Transcription Factor, Increases Drought Tolerance

Author:

Shin Dongjin1,Moon Seok-Jun1,Han Seyoun1,Kim Beom-Gi1,Park Sang Ryeol1,Lee Seong-Kon1,Yoon Hye-Jin1,Lee Hye Eun1,Kwon Hawk-Bin1,Baek Dongwon1,Yi Bu Young1,Byun Myung-Ok1

Affiliation:

1. Bio-crop Development Division, National Academy of Agricultural Science, Rural Development Administration, Suwon 441–857, Republic of Korea (D.S., S.-J.M., S.H., B.-G.K., S.R.P., S.-K.L., H.-J.Y., M.-O.B.); Vegetable Research Division, National Institute of Horticultural and Herbal Science, Rural Development Administration, Suwon 440–706, Republic of Korea (H.E.L.); Department of Biomedical Scien

Abstract

Abstract Potato (Solanum tuberosum) is relatively vulnerable to abiotic stress conditions such as drought, but the tolerance mechanisms for such stresses in potato are largely unknown. To identify stress-related factors in potato, we previously carried out a genetic screen of potato plants exposed to abiotic environmental stress conditions using reverse northern-blot analysis. A cDNA encoding a putative R1-type MYB-like transcription factor (StMYB1R-1) was identified as a putative stress-response gene. Here, the transcript levels of StMYB1R-1 were enhanced in response to several environmental stresses in addition to drought but were unaffected by biotic stresses. The results of intracellular targeting and quadruple 9-mer protein-binding microarray analysis indicated that StMYB1R-1 localizes to the nucleus and binds to the DNA sequence G/AGATAA. Overexpression of a StMYB1R-1 transgene in potato plants improved plant tolerance to drought stress while having no significant effects on other agricultural traits. Transgenic plants exhibited reduced rates of water loss and more rapid stomatal closing than wild-type plants under drought stress conditions. In addition, overexpression of StMYB1R-1 enhanced the expression of drought-regulated genes such as AtHB  -  7, RD28, ALDH22a1, and ERD1-like. Thus, the expression of StMYB1R-1 in potato enhanced drought tolerance via regulation of water loss. These results indicated that StMYB1R-1 functions as a transcription factor involved in the activation of drought-related genes.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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