Myers Jamie L, Richardson Laurie L
Department of Biological Sciences, Florida International University, Miami, FL 33177, USA.
FEMS Microbiol Ecol. 2009 Feb;67(2):242-51. doi: 10.1111/j.1574-6941.2008.00619.x. Epub 2008 Nov 15.
Black band disease (BBD) is a cyanobacteria-dominated microbial mat that migrates across living coral colonies lysing coral tissue and leaving behind exposed coral skeleton. The mat is sulfide-rich due to the presence of sulfate-reducing bacteria, integral members of the BBD microbial community, and the sulfide they produce is lethal to corals. The effect of sulfide, normally toxic to cyanobacteria, on the photosynthetic capabilities of five BBD cyanobacterial isolates of the genera Geitlerinema (3), Leptolyngbya (1), and Oscillatoria (1) and six non-BBD cyanobacteria of the genera Leptolyngbya (3), Pseudanabaena (2), and Phormidium (1) was examined. Photosynthetic experiments were performed by measuring the photoincorporation of [(14)C] NaHCO(3) under the following conditions: (1) aerobic (no sulfide), (2) anaerobic with 0.5 mM sulfide, and (3) anaerobic with 0.5 mM sulfide and 10 microM 3-(3',4'-dichlorophenyl)-1,1-dimethylurea (DCMU). All five BBD cyanobacterial isolates tolerated sulfide by conducting sulfide-resistant oxygenic photosynthesis. Five of the non-BBD cyanobacterial isolates did not tolerate sulfide, although one Pseudanabaena isolate continued to photosynthesize in the presence of sulfide at a considerably reduced rate. None of the isolates conducted anoxygenic photosynthesis with sulfide as an electron donor. This is the first report on the physiology of a culture of Oscillatoria sp. found globally in BBD.
黑带病(BBD)是一种以蓝细菌为主的微生物垫,它会在活珊瑚群体上移动,溶解珊瑚组织,只留下暴露的珊瑚骨骼。由于存在硫酸盐还原菌(BBD微生物群落的重要组成部分),这种垫子富含硫化物,它们产生的硫化物对珊瑚具有致命性。研究了通常对蓝细菌有毒的硫化物对5种来自鞘丝藻属(3种)、细鞘丝藻属(1种)和颤藻属(1种)的BBD蓝细菌分离株以及6种来自细鞘丝藻属(3种)、假鱼腥藻属(2种)和席藻属(1种)的非BBD蓝细菌光合能力的影响。光合实验通过在以下条件下测量[(14)C]NaHCO(3)的光掺入来进行:(1)需氧(无硫化物),(2)含0.5 mM硫化物的厌氧条件,以及(3)含0.5 mM硫化物和10 μM 3-(3',4'-二氯苯基)-1,1-二甲基脲(DCMU)的厌氧条件。所有5种BBD蓝细菌分离株通过进行抗硫化物的产氧光合作用来耐受硫化物。5种非BBD蓝细菌分离株不耐受硫化物,尽管一种假鱼腥藻分离株在有硫化物存在时仍以显著降低的速率继续进行光合作用。没有分离株以硫化物作为电子供体进行无氧光合作用。这是关于在全球BBD中发现的颤藻属培养物生理学的首次报道。