Fitness benefits play a vital role in the retention of the Pi-ta susceptible alleles

Author:

Liu Jia1ORCID,Zhang Suobing2ORCID,Xie Pengfei1ORCID,Wang Long3ORCID,Xue Jia-Yu14ORCID,Zhang Yanmei1ORCID,Lu Ruisen1ORCID,Hang Yueyu1ORCID,Wang Yue1ORCID,Sun Xiaoqin1ORCID

Affiliation:

1. Institute of Botany, Jiangsu Province and Chinese Academy of Sciences, Nanjing 210014, China

2. Institute of Crop Germplasm and Biotechnology, Jiangsu Academy of Agricultural Sciences/The Jiangsu Provincial Platform for Conservation and Utilization of Agricultural Germplasm, Nanjing 210014, China

3. State Key Laboratory of Pharmaceutical Biotechnology, School of Life Sciences, Nanjing University, Nanjing 210023, China

4. College of Horticulture, Academy for Advanced Interdisciplinary Studies, Nanjing Agricultural University, Nanjing 210095, China

Abstract

Abstract In plants, large numbers of R genes, which segregate as loci with alternative alleles conferring different levels of disease resistance to pathogens, have been maintained over a long period of evolution. The reason why hosts harbor susceptible alleles in view of their null contribution to resistance is unclear. In rice, a single copy gene, Pi-ta, segregates for 2 expressed clades of alleles, 1 resistant and the other susceptible. We simulated loss-of-function of the Pi-ta susceptible allele using the CRISPR/Cas9 system to detect subsequent fitness changes and obtained insights into fitness effects related to the retention of the Pi-ta susceptible allele. Our creation of an artificial knockout of the Pi-ta susceptible allele suffered fitness-related trait declines of up to 49% in terms of filled grain yield upon the loss of Pi-ta function. The Pi-ta susceptible alleles might serve as an off-switch to downstream immune signaling, thus contributing to the fine-tuning of plant defense responses. The results demonstrated that the susceptible Pi-ta alleles should have evolved pleiotropic functions, facilitating their retention in populations. As Pi-ta is a single copy gene with no paralogs in the genome, its function cannot be compensated by an alternative gene; whereas most other R genes form gene clusters by tandem duplications, and the function could be compensated by paralogs with high sequence similarity. This attempt to evaluate the fitness effects of the R gene in crops indicates that not all disease resistance genes incur fitness costs, which also provides a plausible explanation for how host genomes can tolerate the possible genetic load associated with a vast repertoire of R genes.

Funder

National Natural Science Foundation of China to X.Q.S.

Jiangsu Key Laboratory of Plant Resources Research and Utilization grant to X.Q.S.

Changshu Agricultural Production and Public Service Project and Natural Science Foundation of Jiangsu Province to J.L.

Publisher

Oxford University Press (OUP)

Subject

Genetics

Reference52 articles.

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2. Yield penalties of disease resistance in crops;Brown;Curr Opin Plant Biol,2002

3. A single amino acid difference distinguishes resistant and susceptible alleles of the rice blast resistance gene Pi-ta;Bryan;Plant Cell,2000

4. Alternatively spliced transcripts of Pi-ta blast resistance gene in Oryza sativa;Costanzo;Plant Sci,2009

5. A plant DNA minipreparation: version II;Dellaporta;Plant Mol Biol Rep,1983

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