Map-Based Cloning and Characterization of a Major QTL Gene, FfR1, Which Confers Resistance to Rice Bakanae Disease

Author:

Ji Hyeonso1,Cheon Kyeong-Seong2ORCID,Shin Yunji1,Lee Chaewon3,Son Seungmin1ORCID,Oh Hyoja1,Yoon Dong-Kyung14ORCID,Lee Seoyeon1,Cho Mihyun1,Jun Soojin1,Lee Gang-Seob15,Baek Jeongho1ORCID,Kim Song Lim1,Ahn Il-Pyung1,Oh Jae-Hyeon1ORCID,Yoon Hye-Jin1,Cha Young-Soon1,Kim Kyung-Hwan1

Affiliation:

1. Department of Agricultural Biotechnology, National Institute of Agricultural Sciences, Rural Development Administration (RDA), Jeonju 54874, Republic of Korea

2. Department of Forest Bioresources, National Institute of Forest Science, Suwon 16631, Republic of Korea

3. Department of Central Area Crop Science, National Institute of Crop Science, Rural Development Administration (RDA), Suwon 16429, Republic of Korea

4. Department of Southern Area Crop Science, National Institute of Crop Science, Rural Development Administration (RDA), Miryang 50424, Republic of Korea

5. Coastal Agriculture Research Institute, Kyungpook National University, Daegu 41566, Republic of Korea

Abstract

Bakanae disease (BD), caused by the fungal pathogen Fusarium fujikuroi, is a serious threat to rice production worldwide. Breeding elite rice varieties resistant to BD requires the identification of resistance genes. Previously, we discovered a resistant quantitative trait locus (QTL), qFfR1, in a Korean japonica rice variety, Nampyeong. In this study, we fine-mapped qFfR1 with a Junam*4/Nampyeong BC3F3 population and delimited its location to a 37.1 kb region on chromosome 1. Complementation experiments with seven candidate genes in this region revealed that OsI_02728 is the gene for qFfR1. This gene encodes a protein with a typical leucine-rich repeat (LRR) receptor-like protein structure. RNA-sequencing-based transcriptomic analysis revealed that FfR1 induces the transcription of defense genes, including lignin and terpenoid biosynthesis genes, pathogenesis-related genes, and thionin genes. These results may facilitate investigations into the molecular mechanisms underlying BD resistance, including molecular patterns of Fusarium fujikuroi interacting with FfR1 and players working in signal transduction pathways downstream of FfR1, and the breeding of new BD-resistant varieties by providing a BD resistance gene with its precise selection marker. This will contribute to efficient control of BD, which is becoming more prevalent according to temperature rises due to climate change.

Funder

National Institute of Agricultural Sciences

Publisher

MDPI AG

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