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从北大西洋和地中海分离出的原绿球藻属(原绿藻门)菌株的光适应

Photoacclimation of Prochlorococcus sp. (Prochlorophyta) Strains Isolated from the North Atlantic and the Mediterranean Sea.

作者信息

Partensky F., Hoepffner N., Li WKW., Ulloa O., Vaulot D.

机构信息

Biological Oceanography Division, Bedford Institute of Oceanography, Dartmouth, Nova Scotia, B2Y 4A2, Canada (F.P., N.H., W.K.W.L., O.U.).

出版信息

Plant Physiol. 1993 Jan;101(1):285-296. doi: 10.1104/pp.101.1.285.

Abstract

Two Atlantic (SARG and NATL1) strains and one Mediterranean (MED) strain of Prochlorococcus sp., a recently discovered marine, free-living prochlorophyte, were grown over a range of "white" irradiances (lg) and under low blue light to examine their photoacclimation capacity. All three strains contained divinyl (DV) chlorophylls (Chl) a and b, both distinguishable from "normal" Chls by their red-shifted blue absorption maximum, a Chl c-like pigment at low concentration, zeaxanthin, and [alpha]-carotene. The presence of two phaeophytin b peaks in acidified extracts from both Atlantic strains grown at high lg suggests that these strains also had a normal Chl b-like pigment. In these strains, the total Chl b to DV-Chl a molar ratio decreased from about 1 at 7.5 [mu]mol quanta m-2 s-1 to 0.4 to 0.5 at 133 [mu]mol quanta m-2 s-1. In contrast, the MED strain always had a low DV-Chl b to DV-Chl a molar ratio, ranging between 0.13 at low lg and 0.08 at high lg. The discrepancies between the Atlantic and MED strains could result from differences either in the number of light-harvesting complexes (LHC) II per photosystem II or in the Chl b-binding capacity of the apoproteins constituting LHC II. Photosynthesis was saturated at approximately 5 fg C(fg Chl)-1 h-1 or 6 fg C cell-1 h-1, and growth was saturated at approximately 0.45 d-1 for both MED and SARG strains at 18[deg]C, but saturating irradiances differed between strains. Atlantic strains exhibited increased light-saturated rates and quantum yield for carbon fixation under blue light.

摘要

对新近发现的海洋自由生活原绿球藻属的两个大西洋菌株(SARG和NATL1)以及一个地中海菌株(MED),在一系列“白色”辐照度(lg)下并在低蓝光条件下进行培养,以检测它们的光适应能力。所有这三个菌株均含有二乙烯基(DV)叶绿素(Chl)a和b,二者均因其蓝吸收峰红移而与“正常”叶绿素不同,还含有低浓度的类叶绿素c样色素、玉米黄质和α-胡萝卜素。在高lg条件下生长的两个大西洋菌株的酸化提取物中存在两个脱镁叶绿素b峰,这表明这些菌株也含有一种正常的类叶绿素b样色素。在这些菌株中,总的叶绿素b与DV-叶绿素a的摩尔比从7.5 μmol光量子·m-2·s-1时约为1降至133 μmol光量子·m-2·s-1时的0.4至0.5。相比之下,MED菌株的DV-叶绿素b与DV-叶绿素a的摩尔比始终较低,在低lg时为0.13,在高lg时为0.08。大西洋菌株和MED菌株之间的差异可能是由于每个光系统II中捕光复合体(LHC)II数量的不同,或者是构成LHC II的脱辅基蛋白的叶绿素b结合能力的差异所致。光合作用在约5 fg C(fg Chl)-1·h-1或6 fg C细胞-1·h-1时达到饱和,在18℃时,MED和SARG菌株的生长在约0.45 d-1时达到饱和,但饱和辐照度在不同菌株之间有所不同。大西洋菌株在蓝光下表现出更高的光饱和速率和碳固定量子产率。

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