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Engineering of a calcium-ion binding site into the RC-LH1-PufX complex of Rhodobacter sphaeroides to enable ion-dependent spectral red-shifting

机译:钙离子结合位点的工程到乳杆菌的RC-LH1-PUFX复合物中,使离子依赖性光谱换热

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摘要

The reaction centre-light harvesting 1 (RC-LH1) complex of Thermochromatium (Tch.) tepidum has a unique calcium-ion binding site that enhances thermal stability and red-shifts the absorption of LH1 from 880 nm to 915 nm in the presence of calcium-ions. The LH1 antenna of mesophilic species of phototrophic bacteria such as Rhodobacter (Rba.) sphaeroides does not possess such properties. We have engineered calcium-ion binding into the LH1 antenna of Rba. sphaeroides by progressively modifying the native LH1 polypeptides with sequences from Tch. tepidum. We show that acquisition of the C-terminal domains from LH1 α and β of Tch. tepidum is sufficient to activate calcium-ion binding and the extent of red-shifting increases with the proportion of Tch. tepidum sequence incorporated. However, full exchange of the LH1 polypeptides with those of Tch. tepidum results in misassembled core complexes. Isolated α and β polypeptides from our most successful mutant were reconstituted in vitro with BChl a to form an LH1-type complex, which was stabilised 3-fold by calcium-ions. Additionally, carotenoid specificity was changed from spheroidene found in Rba. sphaeroides to spirilloxanthin found in Tch. tepidum, with the latter enhancing in vitro formation of LH1. These data show that the C-terminal LH1 α/β domains of Tch. tepidum behave autonomously, and are able to transmit calcium-ion induced conformational changes to BChls bound to the rest of a foreign antenna complex. Thus, elements of foreign antenna complexes, such as calcium-ion binding and blue/red switching of absorption, can be ported into Rhodobacter sphaeroides using careful design processes.
机译:嗜热铬(Tch。)的反应中心光收集1(RC-LH1)络合物具有独特的钙离子结合位点,可增强热稳定性并将LH1的吸收从880 nm红移至915 nm。钙离子。嗜光细菌(如球形红细菌(Rba。)的嗜温菌种的LH1天线)不具有这种特性。我们将钙离子结合工程化到Rba的LH1天线中。通过用来自Tch的序列逐渐修饰天然LH1多肽来形成红球菌。温热的。我们显示,从Tch的LH1α和β捕获C末端结构域。替比定足以激活钙离子结合,并且红移的程度随Tch的比例而增加。 tepidum序列并入。但是,LH1多肽与Tch多肽完全交换。温热导致核心复合物组装错误。从我们最成功的突变体中分离出的α和β多肽在体外用BChla重组,形成LH1型复合物,该复合物被钙离子稳定了3倍。此外,类胡萝卜素的特异性已从Rba中发现的椭球中改变。 sphaeroides到Tch中发现的螺黄嘌呤。 tepidum,后者增强了LH1的体外形成。这些数据表明Tch的C末端LH1α/β结构域。极温和的行为是自主的,并且能够将钙离子诱导的构象变化传递给与外来天线复合体其余部分结合的BChl。因此,外来天线复合物的元素,例如钙离子结合和吸收的蓝/红转换,可以使用精心设计的过程移植到球形红球菌中。

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