J Integr Plant Biol. ›› 2022, Vol. 64 ›› Issue (3): 671-687.DOI: 10.1111/jipb.13211

• Functional Omics and Systems Biology • Previous Articles     Next Articles

The multi-omics basis of potato heterosis

Dawei Li1, Xiaoyue Lu2, Yanhui Zhu1, Jun Pan1, Shaoqun Zhou1, Xinyan Zhang1, Guangtao Zhu2, Yi Shang2, Sanwen Huang1 and Chunzhi Zhang1*   

  1. 1 Guangdong Laboratory of Lingnan Modern Agriculture, Genome Analysis Laboratory of the Ministry of Agriculture and Rural Affairs, Agricultural Synthetic Biology Center, Agricultural Genomics Institute at Shenzhen, Chinese Academy of Agricultural Sciences, Shenzhen 518172, China
    2 Yunnan Key Laboratory of Potato Biology, The AGISCAAS‐YNNU Joint Academy of Potato Sciences, Yunnan Normal University, Kunming 650500, China

    *Correspondences: Sanwen Huang (huangsanwen@caas.cn); Chunzhi Zhang (zhangchunzhi01@caas.cn, Dr. Zhang is responsible for the distribution of the materials associated with this article)
  • Received:2021-11-11 Accepted:2021-12-27 Online:2021-12-28 Published:2022-03-01

Abstract:

Heterosis is a fundamental biological phenomenon characterized by the superior performance of hybrids over their parents. Although tremendous progress has been reported in seed crops, the molecular mechanisms underlying heterosis in clonally propagated crops are largely unknown. Potato (Solanum tuberosum L.) is the most important tuber crop and an ongoing revolution is transforming potato from a clonally propagated tetraploid crop into a seed-propagated diploid hybrid potato. In our previous study, we developed the first generation of highly homozygous inbred lines of potato and hybrids with strong heterosis. Here, we integrated transcriptome, metabolome, and DNA methylation data to explore the genetic and molecular basis of potato heterosis at three developmental stages. We found that the initial establishment of heterosis in diploid potato was mainly due to dominant complementation. Flower color, male fertility, and starch and sucrose metabolism showed obvious gene dominant complementation in hybrids, and hybrids devoted more energy to primary metabolism for rapid growth. In addition, we identified ~2 700 allele-specific expression genes at each stage, which likely function in potato heterosis and might be regulated by CHH allele-specific methylation level. Our multi-omics analysis provides insight into heterosis in potato and facilitates the exploitation of heterosis in potato breeding.

Editorial Office, Journal of Integrative Plant Biology, Institute of Botany, CAS
No. 20 Nanxincun, Xiangshan, Beijing 100093, China
Tel: +86 10 6283 6133 Fax: +86 10 8259 2636 E-mail: jipb@ibcas.ac.cn
Copyright © 2022 by the Institute of Botany, the Chinese Academy of Sciences
Online ISSN: 1744-7909 Print ISSN: 1672-9072 CN: 11-5067/Q
备案号:京ICP备16067583号-22