Varkey Deepa, Mazard Sophie, Ostrowski Martin, Tetu Sasha G, Haynes Paul, Paulsen Ian T
Department of Chemistry and Biomolecular Sciences, Macquarie University, Sydney, NSW, Australia.
ISME J. 2016 May;10(5):1252-63. doi: 10.1038/ismej.2015.179. Epub 2015 Oct 23.
Temperature is an important factor influencing the distribution of marine picocyanobacteria. However, molecular responses contributing to temperature preferences are poorly understood in these important primary producers. We compared the temperature acclimation of a tropical Synechococcus strain WH8102 with temperate strain BL107 at 18 °C relative to 22 °C and examined their global protein expression, growth patterns, photosynthetic efficiency and lipid composition. Global protein expression profiles demonstrate the partitioning of the proteome into major categories: photosynthesis (>40%), translation (10-15%) and membrane transport (2-8%) with distinct differences between and within strains grown at different temperatures. At low temperature, growth and photosynthesis of strain WH8102 was significantly decreased, while BL107 was largely unaffected. There was an increased abundance of proteins involved in protein biosynthesis at 18 °C for BL107. Each strain showed distinct differences in lipid composition with higher unsaturation in strain BL107. We hypothesize that differences in membrane fluidity, abundance of protein biosynthesis machinery and the maintenance of photosynthesis efficiency contribute to the acclimation of strain BL107 to low temperature. Additional proteins unique to BL107 may also contribute to this strain's improved fitness at low temperature. Such adaptive capacities are likely important factors favoring growth of temperate strains over tropical strains in high latitude niches.
温度是影响海洋微微型蓝细菌分布的一个重要因素。然而,对于这些重要的初级生产者中导致温度偏好的分子反应,我们却知之甚少。我们将热带聚球藻菌株WH8102与温带菌株BL107在18°C相对于22°C条件下的温度驯化情况进行了比较,并检测了它们的整体蛋白质表达、生长模式、光合效率和脂质组成。整体蛋白质表达谱表明,蛋白质组可分为主要类别:光合作用(>40%)、翻译(10 - 15%)和膜转运(2 - 8%),在不同温度下生长的菌株之间以及菌株内部存在明显差异。在低温下,菌株WH8102的生长和光合作用显著下降,而BL107基本不受影响。对于BL107,在18°C时参与蛋白质生物合成的蛋白质丰度增加。每个菌株在脂质组成上表现出明显差异,BL107菌株的不饱和程度更高。我们推测,膜流动性的差异、蛋白质生物合成机制的丰度以及光合效率的维持有助于BL107菌株适应低温。BL107特有的其他蛋白质也可能有助于该菌株在低温下提高适应性。这种适应能力可能是在高纬度生态位中温带菌株比热带菌株生长更具优势的重要因素。