Centre Algatech, Laboratory of Algal Biotechnology, Institute of Microbiology of the CAS, Třeboň, Czech Republic.
Faculty of Agriculture, University of South Bohemia, České Budějovice, Czech Republic.
Folia Microbiol (Praha). 2019 Sep;64(5):615-625. doi: 10.1007/s12223-019-00738-8. Epub 2019 Jul 30.
We have worked out a rapid 1-day test based on photosynthesis measurements to estimate suitable growth temperature of microalgae cultures. To verify the proposed procedure, several microalgae-Chlorella, Nostoc, Synechocystis, Scenedesmus, and Cylindrospermum-were cultured under controlled laboratory conditions (irradiance, temperature, mixing, CO, and nutrient supply) to find the optima of photosynthetic activity using the range between 15 and 35 °C. These activities were recorded at each temperature step after 2 h of acclimation which should be sufficient as oxygen production and the PQ cycle are regulated by fast processes. Photosynthetic activity was measured using three techniques-oxygen production/respiration, saturating pulse analysis of fluorescence quenching, and fast fluorescence induction kinetics-to estimate the temperature optima which should correspond to high growth rate. We measured all variables that might have been directly related to growth-photosynthetic oxygen evolution, maximum photochemical yield of PSII, F/F, relative electron transport rate rETR, and the transients V and V determined by fast fluorescence induction curves. When the temperature optima for photosynthetic activity were verified in growth tests, we found good correlation. For most of tested microalgae strains, temperature around 30 °C was found to be the most suitable at this setting. We concluded that the developed test can be used as a rapid 1-day pre-screening to estimate a suitable growth temperature of microalgae strains before they are cultured in a pilot scale.
我们已经制定了一种基于光合作用测量的快速 1 天测试,以估计微藻培养物的适宜生长温度。为了验证所提出的程序,我们在受控的实验室条件下(辐照度、温度、混合、CO2 和养分供应)培养了几种微藻 - 小球藻、念珠藻、集胞藻、栅藻和螺旋藻 - 以使用 15 至 35°C 的范围找到光合作用活性的最佳值。在适应 2 小时后,在每个温度步骤记录这些活性,这应该足够了,因为氧气产生和 PQ 循环由快速过程调节。使用三种技术 - 氧气产生/呼吸、荧光猝灭的饱和脉冲分析和快速荧光诱导动力学 - 测量光合作用活性,以估计应对应高生长速率的温度最佳值。我们测量了可能与生长直接相关的所有变量 - 光合作用氧气产生、PSII 的最大光化学产量、F/F、相对电子传递率 rETR 以及由快速荧光诱导曲线确定的瞬变 V 和 V。当在生长测试中验证光合作用活性的最佳温度时,我们发现了很好的相关性。对于大多数测试的微藻菌株,在这种设置下,30°C 左右的温度被发现是最适合的。我们得出结论,开发的测试可以用作快速 1 天的预筛选,以在微藻菌株在中试规模培养之前估计其适宜的生长温度。