4.7 Article

Comparative Physiological and Proteomic Analysis of Two Sugar Beet Genotypes with Contrasting Salt Tolerance

期刊

JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY
卷 67, 期 21, 页码 6056-6073

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jafc.9b00244

关键词

sugar beet; salt stress; iTRAQ; proteomics; mass spectrometry

资金

  1. National Natural Science Foundation of China [31701487]
  2. National Sugar Industry Technology System of China [CARS 170209]
  3. Basic Research Work Program of Heilongjiang Provincial Higher Education Institutions [KJCXYB201706]
  4. Youth Innovative Talents Training Program of Heilongjiang Regular Universities [KJCXYB2017031]

向作者/读者索取更多资源

Soil salinity is one of the major constraints affecting agricultural production and crop yield. A detailed understanding of the underlying physiological and molecular mechanisms of the different genotypic salt tolerance response in crops under salinity is therefore a prerequisite for enhancing this tolerance. In this study, we explored the changes in physiological and proteome profiles of salt-sensitive (S210) and salt-tolerant (T510) sugar beet cultivars in response to salt stress. T510 showed better growth status, higher antioxidant enzymes activities and proline level, less Na accumulation, and lower P levels after salt-stress treatments. With iTRAQ : based comparative proteomics method, 47 and 56 differentially expressed proteins were identified in the roots and leaves of S210, respectively. In T510, 56 and 50 proteins changed significantly in the roots and leaves of T510, respectively. These proteins were found to be involved in multiple aspects of functions such as photosynthesis, metabolism, stress and defense, protein synthesis, and signal transduction. Our proteome results indicated that sensitive and tolerant sugar beet cultivars respond differently to salt stress. The proteins that were mapped to the protein modification, amino acid metabolism, tricarboxylic acid cycle, cell wall synthesis, and reactive oxygen species scavenging changed differently between the sensitive and tolerant cultivars, suggesting that these pathways may promote salt tolerance in the latter. This work leads to a better understanding of the salinity mechanism in sugar beet and provides a list of potential markers for the further engineering of salt tolerance in crops.

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