Differential proteomic analysis of grapevine leaves by iTRAQ reveals responses to heat stress and subsequent recovery
Дифференциальный протеомный анализ листьев винограда методом iTRAQ выявляет реакции на тепловой стресс и последующее восстановление
2014-04-28
SCID: 54.1/7q5bk8h6
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differentially expressed proteinsgrapevine heat stressiTRAQ-based proteomicsphotosynthetic electron transportthermotolerance
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Abstract (AI)
BACKGROUND: High temperature is a major environmental factor limiting grape yield and affecting berry quality. Thermotolerance includes the direct response to heat stress and the ability to recover from heat stress. To better understand the mechanism of the thermotolerance of Vitis, we combined a physiological analysis with iTRAQ-based proteomics of Vitis vinifera cv Cabernet Sauvignon, subjected to 43°C for 6 h, and then followed by recovery at 25/18°C. RESULTS: High temperature increased the concentrations of TBARS and inhibited electronic transport in photosynthesis apparatus, indicating that grape leaves were damaged by heat stress. However, these physiological changes rapidly returned to control levels during the subsequent recovery phase from heat stress. One hundred and seventy-four proteins were differentially expressed under heat stress and/or during the recovery phase, in comparison to unstressed controls, respectively. Stress and recovery conditions shared 42 proteins, while 113 and 103 proteins were respectively identified under heat stress and recovery conditions alone. Based on MapMan ontology, functional categories for these dysregulated proteins included mainly photosynthesis (about 20%), proteins (13%), and stress (8%). The subcellular localization using TargetP showed most proteins were located in the chloroplasts (34%), secretory pathways (8%) and mitochondrion (3%). CONCLUSION: On the basis of these findings, we proposed that some proteins related to electron transport chain of photosynthesis, antioxidant enzymes, HSPs and other stress response proteins, and glycolysis may play key roles in enhancing grapevine adaptation to and recovery capacity from heat stress. These results provide a better understanding of the proteins involved in, and mechanisms of thermotolerance in grapevines.
Key Findings
1
Dysregulated proteins were mainly associated with photosynthesis, protein metabolism, and stress responses, with approximately 20%, 13%, and 8% representation, respectively.
2
Heat stress at 43°C for 6 hours increased TBARS and inhibited photosynthetic electron transport in Cabernet Sauvignon grape leaves.
3
Most identified proteins localized to chloroplasts (34%), and proteins involved in photosynthetic electron transport, antioxidant defense, heat-shock responses, and glycolysis may support thermotolerance and recovery.
4
Physiological damage markers rapidly returned to control levels during recovery at 25/18°C, indicating substantial recovery capacity.
5
iTRAQ proteomics identified 174 differentially expressed proteins under heat stress and/or recovery; 42 were shared, while 113 and 103 were condition-specific.
Research Object
Grapevine leaves of Vitis vinifera cv. Cabernet Sauvignon subjected to heat stress and subsequent recovery
Research Subject
Proteomic and physiological responses underlying grapevine thermotolerance, including heat-stress damage, recovery, and the roles of photosynthetic electron transport, antioxidant enzymes, heat-shock proteins, stress-response proteins, and glycolysis
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2014-04-28
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