Department of Physiology and Cell Biology, Leibniz Institute for Plant Genetics and Crop Plant Research, Corrensstraße 3, D-06466 Gatersleben, Germany.
Biology Department, College of Science, United Arab Emirates University, Al Ain, United Arab Emirates.
Food Chem. 2019 Aug 15;289:500-511. doi: 10.1016/j.foodchem.2019.03.029. Epub 2019 Mar 13.
The aim of current investigation was to perform proteomics and physio-chemical studies to dissect the changes in contrasting varieties (S-22 and PKM-1) of Lycopersicon esculentum under low-temperature stress. Plant grown under variable low-temperature stress were analysed for their growth biomarkers, antioxidant enzyme activities, and other physiological parameters, which headed toward the determination of protein species responding to low-temperature and 24-epibrassinolide (EBL) concentrations. The plants grown under temperatures, 20/14, 12/7, and 10/3 °C recorded significantly lower growth biomarkers, SPAD chlorophyll, net photosynthetic rate and carbonic anhydrase activity in S-22 and PKM-1. Moreover, the combined effect of EBL and hydrogen peroxide (HO) significantly improved the parameters mentioned above and consecutively upgraded the different antioxidant enzymes (CAT and SOD) with higher accumulation of proline under stress and stress-free environments. Furthermore, proteomics study revealed that the maximum number of differentially expressed proteins were detected in S-22 (EBL + HO); while treatment with EBL + HO + low temperature lost expression of 20 proteins. Overall, three proteins (O80577, Q9FJQ8, and Q9SKL2) took a substantial part in the biosynthesis of citrate cycle pathway and enhanced the growth and photosynthetic efficiency of tomato plants under low-temperature stress.
本研究旨在通过蛋白质组学和生理化学研究,剖析不同低温耐性品种(S-22 和 PKM-1)番茄在低温胁迫下的变化。对不同低温胁迫下生长的植株进行生长生物标志物、抗氧化酶活性和其他生理参数分析,以确定对低温和 24-表油菜素内酯(EBL)浓度有响应的蛋白质种类。在 20/14、12/7 和 10/3°C 温度下生长的植株,S-22 和 PKM-1 的生长生物标志物、SPAD 叶绿素、净光合速率和碳酸酐酶活性明显降低。此外,EBL 和过氧化氢(HO)的联合作用显著改善了上述参数,并在胁迫和无胁迫环境下连续提高了不同的抗氧化酶(CAT 和 SOD),同时脯氨酸积累增加。此外,蛋白质组学研究表明,在 S-22(EBL+HO)中检测到最多数量的差异表达蛋白;而 EBL+HO+低温处理导致 20 种蛋白表达缺失。总的来说,三种蛋白(O80577、Q9FJQ8 和 Q9SKL2)在柠檬酸循环途径的生物合成中发挥了重要作用,增强了番茄植株在低温胁迫下的生长和光合效率。