Metabolomic and Transcriptomic Profiling Provide Novel Insights into Fruit Ripening and Ripening Disorder Caused by 1-MCP Treatments in Papaya

Int J Mol Sci. 2021 Jan 18;22(2):916. doi: 10.3390/ijms22020916.

Abstract

Treatment with 1-methylcyclopropylene (1-MCP) is an effective technique to preserve fruits, but inappropriate treatment with 1-MCP causes a ripening disorder (rubbery texture) in papaya fruit. In this study, a combined metabolomic and transcriptomic analysis was conducted to reveal the possible mechanism of the ripening disorder caused by unsuitable 1-MCP in papaya. A total of 203 differential accumulated metabolites (DAMs) were identified in the metabolome analysis. Only 24 DAMs were identified in the control (CK) vs. the 1-MCP 2 h group, and they were primarily flavonoids. Ninety and 89 DAMs were identified in the CK vs. 1-MCP 16 h and 1-MCP 2 h vs. 1-MCP 16 h groups, respectively, indicating that long-term 1-MCP treatment severely altered the metabolites during fruit ripening. 1-MCP 16 h treatment severely reduced the number of metabolites, which primarily consisted of flavonoids, lipids, phenolic acids, alkaloids, and organic acids. An integrated analysis of RNA-Seq and metabolomics showed that various energy metabolites for the tricarboxylic acid cycle were reduced by long-term treatment with 1-MCP, and the glycolic acid cycle was the most significantly affected, as well as the phenylpropane pathway. These results provide valuable information for fruit quality control and new insight into the ripening disorder caused by unsuitable treatment with 1-MCP in papaya.

Keywords: 1-methylcyclopropylene; fruit quality; metabolome; papaya; phenylpropane pathway; ripening disorder; transcriptome analysis.

MeSH terms

  • Carica / drug effects*
  • Carica / genetics
  • Carica / growth & development
  • Cyclopropanes / pharmacology*
  • Fruit / genetics
  • Fruit / growth & development
  • Gene Expression Profiling
  • Gene Expression Regulation, Plant / genetics
  • Humans
  • Metabolomics / trends
  • Plant Proteins / genetics
  • Transcriptome / drug effects
  • Transcriptome / genetics*

Substances

  • Cyclopropanes
  • Plant Proteins
  • 1-methylcyclopropene