Pereira Nicole, Shilova Irina N, Zehr Jonathan P
Ocean Science Department, University of California, Santa Cruz, California, 95064, USA.
J Phycol. 2016 Apr;52(2):274-82. doi: 10.1111/jpy.12396. Epub 2016 Mar 8.
Crocosphaera watsonii is a marine cyanobacterium that frequently inhabits low phosphate environments in oligotrophic oceans. While C. watsonii has the ability to fix atmospheric nitrogen, its growth may be limited by availability of phosphorus. Biomarkers that indicate cellular phosphorus status give insight into how P-limitation can affect the distribution of nitrogen-fixing cyanobacterial populations. However, adaptation to phosphorus stress is complex and one marker may not be sufficient to determine when an organism is P-limited. In this study, we characterized the transcription of key genes, activated during phosphorus stress in C. watsonii WH8501, to determine how transcription changed during the phosphorus stress response. Transcription of pstS, which encodes a high-affinity phosphate binding protein, was discovered to be quickly up-regulated in phosphorus-depleted cells as an immediate stress response; however, its transcription declined after a period of phosphorus starvation. In addition, diel regulation of pstS in C. watsonii WH8501 complicates the interpretation of this marker in field applications. Transcription of the gene coding for the arsenite efflux protein, arsB, was upregulated after pstS in phosphorus limited cells, but it remained upregulated at later stages of phosphorus limitation. These results demonstrate that a single molecular marker does not adequately represent the entire phosphorus stress response in C. watsonii WH8501. Using both markers, the variations in transcriptional response over a range of degrees of phosphorus limitation may be a better approach for defining cellular phosphorus status.
沃森聚球蓝细菌是一种海洋蓝细菌,经常栖息在贫营养海洋的低磷环境中。虽然沃森聚球蓝细菌有固氮能力,但其生长可能受到磷可用性的限制。指示细胞磷状态的生物标志物有助于深入了解磷限制如何影响固氮蓝细菌种群的分布。然而,对磷胁迫的适应是复杂的,单一标志物可能不足以确定生物体何时处于磷限制状态。在本研究中,我们对沃森聚球蓝细菌WH8501在磷胁迫期间激活的关键基因转录进行了表征,以确定转录在磷胁迫反应过程中是如何变化的。发现编码高亲和力磷酸盐结合蛋白的pstS转录在缺磷细胞中作为即时应激反应迅速上调;然而,在一段时间的磷饥饿后其转录下降。此外,沃森聚球蓝细菌WH8501中pstS的昼夜调节使该标志物在现场应用中的解释变得复杂。在磷限制细胞中,编码亚砷酸盐外排蛋白arsB的基因转录在pstS之后上调,但在磷限制后期仍保持上调。这些结果表明,单一分子标志物不能充分代表沃森聚球蓝细菌WH8501中的整个磷胁迫反应。使用这两种标志物,在一系列磷限制程度上转录反应的变化可能是定义细胞磷状态的更好方法。