Boccazzi Paolo, Zhang Zhiyu, Kurosawa Kazuhiko, Szita Nicolas, Bhattacharya Sanchita, Jensen Klavs F, Sinskey Anthony J
Department of Biology and Health Sciences and Technology, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Biotechnol Prog. 2006 May-Jun;22(3):710-7. doi: 10.1021/bp0504288.
Combining real-time growth kinetics measurements with global gene expression analysis of microbial cultures is of significant value for high-throughput biological research. We have performed differential gene expression analysis in the eukaryotic model Saccharomyces cerevisiae grown in galactose and glucose media in 150 muL bioreactors equipped with sensors for in situ and real-time measurements of optical density (OD), pH, and dissolved oxygen (DO). The microbioreactors were fabricated from poly(dimethylsiloxane) (PDMS) and poly(methyl methacrylate) (PMMA) and equipped with internal magnetic ministirrers and evaporation compensation by water replacement. In galactose-grown cells, the core genes of the GAL operon GAL2, GAL1, GAL7, and GAL10 were upregulated at least 100-fold relative to glucose-grown cells. These differential gene expression levels were similar to those observed in large-scale culture vessels. The increasing rate at which complete genomic sequences of microorganisms are becoming available offers an unprecedented opportunity for comparative investigations of these organisms. Our results from S. cerevisiae cultures grown in instrumented microbioreactors show that it is possible to integrate high-throughput studies of growth physiology with global gene expression analysis of microorganisms.
将实时生长动力学测量与微生物培养物的全基因组表达分析相结合,对高通量生物学研究具有重要价值。我们在配备有用于原位和实时测量光密度(OD)、pH值和溶解氧(DO)的传感器的150微升生物反应器中,对在半乳糖和葡萄糖培养基中生长的真核模式生物酿酒酵母进行了差异基因表达分析。微生物反应器由聚二甲基硅氧烷(PDMS)和聚甲基丙烯酸甲酯(PMMA)制成,并配备有内部磁性微型搅拌器和通过补水进行蒸发补偿的装置。在以半乳糖为碳源生长的细胞中,半乳糖操纵子的核心基因GAL2、GAL1、GAL7和GAL10相对于以葡萄糖为碳源生长的细胞上调了至少100倍。这些差异基因表达水平与在大规模培养容器中观察到的相似。微生物完整基因组序列的可得速度不断加快,为这些生物的比较研究提供了前所未有的机会。我们在装有仪器的微生物反应器中培养酿酒酵母的结果表明,将生长生理学的高通量研究与微生物的全基因组表达分析相结合是可行的。