首页> 外文学位 >The light harvesting complex of the red alga Porphyridium cruentum: Pigment binding, energy transfer, and functional relatedness to LHCs of other algae and higher plants.
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The light harvesting complex of the red alga Porphyridium cruentum: Pigment binding, energy transfer, and functional relatedness to LHCs of other algae and higher plants.

机译:赤藻卟啉单胞菌的光收集复合物:色素结合,能量转移以及与其他藻类和高等植物的LHC的功能相关性。

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摘要

Previous discovery of a light harvesting complex (LHC) in the red alga Porphyridium cruentum established a link between cyanobacteria, the proposed progenitors of chloroplasts, and photosynthetic eukaryotes such as higher plants where the Chl a/b-binding (CAB) LHCs are nuclear-encoded. In vitro reconstitution of a recombinant red algal LHC polypeptide (LHCaR1) with pigments was chosen as a means of examining the pigment-binding characteristics of this presumably primitive LHC and possible functional relationships with the LHCs of other photosynthetic eukaryotes. LHCaR1, reconstituted with its own pigments, bound about 8.0 Chl a, 4.0 zeaxanthin, and 0.3 β-carotene. Pigments were functionally integrated, as indicated by fluorescence excitation and emission spectra. The reconstituted LHC was spectrally similar to the native red algal LHCI. The pigments were found attached to protein upon separation on sucrose gradients and on non-denaturing gels. LHCaR1 was also reconstituted with pigments from the diatom Thallasiosira fluviatilis (Chls a and c, fucoxanthin, xanthin and β-carotene) and separately with those of the dinoflagellate Prorocenimm micans (Chls a and c, peridinin, diadinoxanthin, and β-carotene). 7 Chl a, 1 Chl c, 8 fucoxanthin, and 1.9 diadinoxanthin were bound in the complex reconstituted with diatom pigments. Reconstitution with diatom and dinoflagellate pigments resulted in absorption and fluorescence excitation spectra with maxima characteristic of Chl a, Chl c, fucoxanthin and peridinin. Fluorescence emission and CD spectra showed functional binding and orientation for energy transfer to Chl a from Chl c and carotenoids. When LHCaR1 was reconstituted with spinach pigments, 6.2 Chl a, 1.8 Chl b, and 2.4 lutein were bound per polypeptide. Pigments were functionaIly integrated as indicated by fluorescence excitation and emission spectra where Chl a, b, and lutein participated in light absorption and energy transfer. Eight Chl per polypeptide were bound in all reconstitutions, even when two different ChIs (a/c and a/ b) were present, consistent with eight conserved Chl-binding sites. Eight Chl binding sites and the ability to bind different pigments appear to be ancestral characteristics of LHCs. The ancestral ability to bind different pigments could have facilitated the adaptive radiation of photosynthetic eukaryotes into different aquatic light environments and eventually into terrestrial habitats.
机译:先前在红藻 Cruphyridium cruentum 中发现的光收集复合物(LHC)在蓝细菌,拟建的叶绿体祖细胞和光合真核生物(例如与Chl a / b结合的高等植物)之间建立了联系。 (CAB)LHC是经过核编码的。 体外用色素重建重组红色藻类LHC多肽(LHCaR1)作为检查这种大概原始LHC的色素结合特性以及与其他光合真核生物LHC可能功能关系的一种手段。用其自身的色素重构的LHCaR1结合了约8.0 Chla,4.0玉米黄质和0.3β-胡萝卜素。如荧光激发和发射光谱所示,颜料在功能上是整合的。重构的LHC在光谱上与天然红藻LHCI相似。当在蔗糖梯度和非变性凝胶上分离时,发现颜料附着在蛋白质上。 LHCaR1也用硅藻 Thallasiosira fluviatilis (Chls a c ,岩藻黄质,黄嘌呤和β-胡萝卜素)的色素进行了重构。鞭毛 Prorocenimm micans (Chls a c ,peridinin,diadinoxanthin和β-胡萝卜素)。将7 Chl a ,1 Chl c ,8岩藻黄质和1.9二恶黄质结合在用硅藻色素重构的复合物中。用硅藻和鞭毛藻色素重建可产生吸收和荧光激发光谱,具有最大的Chl a ,Chl c ,岩藻黄质和peridinin。荧光发射和CD光谱显示出功能结合和定向,以将能量从Chl c 和类胡萝卜素转移至Chl a 。当LHCaR1用菠菜色素重构时,每个多肽结合6.2 Chla,1.8 Chb和2.4叶黄素。如荧光激发和发射光谱所示,色素被功能性整合,其中Chl a,b 和叶黄素参与光吸收和能量转移。即使在两个不同的ChI( a / c a / b )存在,与八个保守的Chl结合位点一致。八个Chl结合位点和结合不同色素的能力似乎是LHC的祖先特征。祖先结合不同色素的能力本来可以促进光合真核生物适应辐射到不同的水生光环境中,最终进入陆地生境。

著录项

  • 作者

    Grabowski, Beatrice A.;

  • 作者单位

    University of Maryland College Park.;

  • 授予单位 University of Maryland College Park.;
  • 学科 Biology Plant Physiology.; Biology Molecular.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 183 p.
  • 总页数 183
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物学;分子遗传学;
  • 关键词

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