Chi Wendan, Zheng Li, He Changfei, Han Bin, Zheng Minggang, Gao Wei, Sun Chengjun, Zhou Gefei, Gao Xiangxing
Key Laboratory for Marine Bioactive Substances and Modern Analytical Technology of the First Institute of Oceanography, State Oceanic Administration, No. 6 Xianxialing Road, Qingdao, 266061, Shandong, People's Republic of China.
Laboratory for Marine Ecology and Environmental Science, Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266071, People's Republic of China.
AMB Express. 2017 Dec;7(1):59. doi: 10.1186/s13568-017-0357-6. Epub 2017 Mar 9.
Quorum sensing (QS) systems play important roles in regulating many physiological functions of microorganisms, such as biofilm formation, bioluminescence, and antibiotic production. One marine algicidal bacterium, Ponticoccus sp. PD-2, was isolated from the microalga Prorocentrum donghaiense, and its N-acyl-homoserine lactone (AHL)-mediated QS system was verified. In this study, we analyzed the AHLs profile of strain PD-2. Two AHLs, 3-oxo-C8-HSL and 3-oxo-C10-HSL, were detected using a biosensor overlay assay and GC-MS methods. Two complete AHL-QS systems (designated zlaI/R and zlbI/R) were identified in the genome of strain PD-2. When expressed in Escherichia coli, both zlaI and zlbI genes could each produce 3-oxo-C8-HSL and 3-oxo-C10-HSL. Algicidal activity was investigated by evaluating the inhibitory rate (IR) of microalgae growth by measuring the fluorescence of viable cells. We found that the metabolites of strain PD-2 had algicidal activity against its host P. donghaiense (IR 84.81%) and two other red tide microalgae, Phaeocystis globosa (IR 78.91%) and Alexandrium tamarense (IR 67.14%). β-cyclodextrin which binds to AHLs and inhibits the QS system reduced the algicidal activity more than 50%. This indicates that inhibiting the QS system may affect the algicidal metabolites production of strain PD-2. Our study indicated that a QS-regulated algicidal system may play a potential role in the process of red tides disintegration. QS might be a potential way to control red tides.
群体感应(QS)系统在调节微生物的许多生理功能中发挥着重要作用,如生物膜形成、生物发光和抗生素产生。从东海原甲藻中分离出一种海洋杀藻细菌——Ponticoccus sp. PD-2,并验证了其N-酰基高丝氨酸内酯(AHL)介导的QS系统。在本研究中,我们分析了菌株PD-2的AHLs图谱。使用生物传感器覆盖分析和气相色谱-质谱联用方法检测到两种AHLs,即3-氧代-C8-HSL和3-氧代-C10-HSL。在菌株PD-2的基因组中鉴定出两个完整的AHL-QS系统(命名为zlaI/R和zlbI/R)。当在大肠杆菌中表达时,zlaI和zlbI基因各自都能产生3-氧代-C8-HSL和3-氧代-C10-HSL。通过测量活细胞的荧光来评估微藻生长的抑制率(IR),从而研究杀藻活性。我们发现菌株PD-2的代谢产物对其宿主东海原甲藻(IR 84.81%)以及另外两种赤潮微藻——球形棕囊藻(IR 78.91%)和塔玛亚历山大藻(IR 67.14%)具有杀藻活性。与AHLs结合并抑制QS系统的β-环糊精使杀藻活性降低了50%以上。这表明抑制QS系统可能会影响菌株PD-2杀藻代谢产物的产生。我们的研究表明,一个受QS调节的杀藻系统可能在赤潮解体过程中发挥潜在作用。群体感应可能是控制赤潮的一种潜在方法。