WUSCHEL controls genotype-dependent shoot regeneration capacity in potato

Author:

Park Ji-Sun12,Park Kwang Hyun3ORCID,Park Su-Jin14,Ko Seo-Rin1ORCID,Moon Ki-Beom1,Koo Hyunjin1ORCID,Cho Hye Sun14ORCID,Park Sang Un2,Jeon Jae-Heung1,Kim Hyun-Soon14ORCID,Lee Hyo-Jun156ORCID

Affiliation:

1. Plant Systems Engineering Research Center, Korea Research Institute of Bioscience and Biotechnology , Daejeon 34141 , South Korea

2. Department of Crop Science, Chungnam National University , Daejeon 34134 , South Korea

3. Disease Target Structure Research Center, Korea Research Institute of Bioscience & Biotechnology , Daejeon 34141 , South Korea

4. Department of Biosystems and Bioengineering, KRIBB School of Biotechnology, University of Science and Technology , Daejeon 34113 , South Korea

5. Department of Functional Genomics, KRIBB School of Bioscience, University of Science and Technology , Daejeon 34113 , South Korea

6. Department of Biological Sciences, Sungkyunkwan University , Suwon 16419 , South Korea

Abstract

Abstract Plant cells can reprogram their fate. The combinatorial actions of auxin and cytokinin dedifferentiate somatic cells to regenerate organs, which can develop into individual plants. As transgenic plants can be generated from genetically modified somatic cells through these processes, cell fate transition is an unavoidable step in crop genetic engineering. However, regeneration capacity closely depends on the genotype, and the molecular events underlying these variances remain elusive. In the present study, we demonstrated that WUSCHEL (WUS)—a homeodomain transcription factor—determines regeneration capacity in different potato (Solanum tuberosum) genotypes. Comparative analysis of shoot regeneration efficiency and expression of genes related to cell fate transition revealed that WUS expression coincided with regeneration rate in different potato genotypes. Moreover, in a high-efficiency genotype, WUS silencing suppressed shoot regeneration. Meanwhile, in a low-efficiency genotype, regeneration could be enhanced through the supplementation of a different type of cytokinin that promoted WUS expression. Computational modeling of cytokinin receptor–ligand interactions suggested that the docking pose of cytokinins mediated by hydrogen bonding with the core residues may be pivotal for WUS expression and shoot regeneration in potatoes. Furthermore, our whole-genome sequencing analysis revealed core sequence variations in the WUS promoters that differentiate low- and high-efficiency genotypes. The present study revealed that cytokinin responses, particularly WUS expression, determine shoot regeneration efficiency in different potato genotypes.

Funder

New Breeding Technologies Development Program

Rural Development Administration of Korea

Basic Research Program

National Research Foundation of Korea

KRIBB Research Initiative Programs

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

Reference54 articles.

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3. Transcriptome analysis reveals the effects of strigolactone on shoot regeneration of apple;Asghar;Plant Cell Rep,2022

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