Frontiers in Plant Science (Jun 2017)

Comparative Transcriptome Analysis Reveals Critical Function of Sucrose Metabolism Related-Enzymes in Starch Accumulation in the Storage Root of Sweet Potato

  • Kai Zhang,
  • Kai Zhang,
  • Kai Zhang,
  • Zhengdan Wu,
  • Zhengdan Wu,
  • Daobin Tang,
  • Daobin Tang,
  • Daobin Tang,
  • Kai Luo,
  • Kai Luo,
  • Huixiang Lu,
  • Huixiang Lu,
  • Yingying Liu,
  • Yingying Liu,
  • Jie Dong,
  • Jie Dong,
  • Xin Wang,
  • Xin Wang,
  • Changwen Lv,
  • Changwen Lv,
  • Changwen Lv,
  • Jichun Wang,
  • Jichun Wang,
  • Jichun Wang,
  • Kun Lu,
  • Kun Lu

DOI
https://doi.org/10.3389/fpls.2017.00914
Journal volume & issue
Vol. 8

Abstract

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The starch properties of the storage root (SR) affect the quality of sweet potato (Ipomoea batatas (L.) Lam.). Although numerous studies have analyzed the accumulation and properties of starch in sweet potato SRs, the transcriptomic variation associated with starch properties in SR has not been quantified. In this study, we measured the starch and sugar contents and analyzed the transcriptome profiles of SRs harvested from sweet potatoes with high, medium, and extremely low starch contents, at five developmental stages [65, 80, 95, 110, and 125 days after transplanting (DAP)]. We found that differences in both water content and starch accumulation in the dry matter affect the starch content of SRs in different sweet potato genotypes. Based on transcriptome sequencing data, we assembled 112336 unigenes, and identified several differentially expressed genes (DEGs) involved in starch and sucrose metabolism, and revealed the transcriptional regulatory network controlling starch and sucrose metabolism in sweet potato SRs. Correlation analysis between expression patterns and starch and sugar contents suggested that the sugar–starch conversion steps catalyzed by sucrose synthase (SuSy) and UDP-glucose pyrophosphorylase (UGPase) may be essential for starch accumulation in the dry matter of SRs, and IbβFRUCT2, a vacuolar acid invertase, might also be a key regulator of starch content in the SRs. Our results provide valuable resources for future investigations aimed at deciphering the molecular mechanisms determining the starch properties of sweet potato SRs.

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