4.7 Article

Characterization of Starch Degradation Related Genes in Postharvest Kiwifruit

Journal

Publisher

MDPI
DOI: 10.3390/ijms17122112

Keywords

kiwifruit; postharvest ripening; starch degradation; amylase

Funding

  1. National Key Research and Development Program [2016YFD0400100]
  2. National Basic Research Program of China [2013CB127104]
  3. Natural Science Foundation of Zhejiang Province, China [LR16C150001]
  4. International Science and Technology Cooperation Project of Ningbo Municipal Science and Technology Bureau [2014D10020]

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Starch is one of the most important storage carbohydrates in plants. Kiwifruit typically accumulate large amounts of starch during development. The fruit retain starch until commercial maturity, and its postharvest degradation is essential for consumer acceptance. The activity of genes related to starch degradation has, however, rarely been investigated. Based on the kiwifruit genome sequence and previously reported starch degradation-related genes, 17 novel genes were isolated and the relationship between their expression and starch degradation was examined using two sets of materials: ethylene-treated (100 mu L/L, 20 degrees C; ETH) vs. control (20 degrees C; CK) and controlled atmosphere stored (CA, 5% CO2 + 2% O-2, 0 degrees C) vs. normal atmosphere in cold storage (NA, 0 degrees C). Physiological analysis indicated that ETH accelerated starch degradation and increased soluble solids content (SSC) and soluble sugars (glucose, fructose and sucrose), while CA inhibited starch reduction compared with NA. Using these materials, expression patterns of 24 genes that may contribute to starch degradation (seven previously reported and 17 newly isolated) were analyzed. Among the 24 genes, AdAMY1, AdAGL3 and AdBAM3.1/3L/9 were significantly induced by ETH and positively correlated with starch degradation. Furthermore, these five genes were also inhibited by CA, conforming the likely involvement of these genes in starch degradation. Thus, the present study has identified the genes with potential for involvement in starch degradation in postharvest kiwifruit, which will be useful for understanding the regulation of kiwifruit starch content and metabolism.

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