He Yuehui, Zhang Peng, Huang Shi, Wang Tingting, Ji Yuetong, Xu Jian
Single-Cell Center, CAS Key Laboratory of Biofuels and Shandong Key Laboratory of Energy Genetics, Qingdao Institute of BioEnergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, Shandong China.
University of Chinese Academy of Sciences, Beijing, China.
Biotechnol Biofuels. 2017 Nov 17;10:275. doi: 10.1186/s13068-017-0967-x. eCollection 2017.
Current approaches for quantification of major energy-storage forms in microalgae, including starch, protein and lipids, generally require cell cultivation to collect biomass followed by tedious and time-consuming analytical procedures. Thus, label-free, non-destructive and simultaneous quantification of such macromolecules at single-cell resolution is highly desirable in microalgal feedstock development and bioprocess control.
Here, we established a method based on single-cell Raman spectra (SCRS) that simultaneously quantifies the contents of starch, protein, triacylglycerol (TAG) and lipid unsaturation degree in individual cells. Measurement accuracy for the contents based on full SCRS spectrum each reached 96.86-99.24%, all significantly higher than single peak-based models. However, accuracy and reliability of measurement are dependent on the number of cells sampled, thus a formal mathematical framework was proposed and validated to rationally define "minimal sampling depth" for a given state of cellular population. Furthermore, a barcode consisting of 13 marker Raman peaks was proposed to characterize the temporal dynamics of these energy-storage products, which revealed that the average contents of starch and TAG increased, while their heterogeneity indices decreased, with those of protein being exactly the opposite. Finally, our method is widely applicable, as measurements among cells from liquid suspension culture, wet paste and frozen dried powder all exhibited excellent consistency.
When sampled at proper depth, SCRS can serve as a quantitative and generally applicable tool for characterization and screening of strains and bioprocesses based on the profile of energy-storage macromolecules and their among-cell heterogeneity.
目前用于定量微藻中主要能量储存形式(包括淀粉、蛋白质和脂质)的方法,通常需要细胞培养以收集生物质,随后进行繁琐且耗时的分析程序。因此,在微藻原料开发和生物过程控制中,非常需要在单细胞分辨率下对这些大分子进行无标记、非破坏性且同时定量分析。
在此,我们建立了一种基于单细胞拉曼光谱(SCRS)的方法,可同时定量单个细胞中淀粉、蛋白质、三酰甘油(TAG)的含量以及脂质不饱和度。基于完整SCRS光谱对这些含量的测量准确度均达到96.86 - 99.24%,均显著高于基于单峰的模型。然而,测量的准确度和可靠性取决于采样的细胞数量,因此提出并验证了一个正式的数学框架,以合理定义给定细胞群体状态下的“最小采样深度”。此外,还提出了一个由13个拉曼标记峰组成的条形码,用于表征这些能量储存产物的时间动态变化,结果显示淀粉和TAG的平均含量增加,而异质性指数降低,蛋白质的情况则正好相反。最后,我们的方法具有广泛的适用性,因为对液体悬浮培养、湿糊状物和冷冻干燥粉末中的细胞进行测量时,结果均表现出极好的一致性。
在适当深度采样时,SCRS可作为一种定量且普遍适用的工具,用于基于能量储存大分子的特征及其细胞间异质性对菌株和生物过程进行表征和筛选。