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首页> 外文期刊>ACS nano >Chlorosome-Inspired Synthesis of Templated Metallochlorin-Lipid Nanoassemblies for Biomedical Applications
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Chlorosome-Inspired Synthesis of Templated Metallochlorin-Lipid Nanoassemblies for Biomedical Applications

机译:应用于生物医学应用的模板化金属氯代脂质纳米组件的染色体启发性合成

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Chlorosomes are vesicular light-harvesting organelles found in photosynthetic green sulfur bacteria. These organisms thrive in low photon flux environments due to the most efficient light-to-chemical energy conversion, promoted by a protein-less assembly of chlorin pigments. These assemblies possess collective absorption properties and can be adapted for contrast-enhanced bioimaging applications, where maximized light absorption in the near-infrared optical window is desired. Here, we report a strategy for tuning light absorption toward the near-infrared region by engineering a chlorosome-inspired assembly of synthetic metallochlorins in a biocompatible lipid scaffold. In a series of synthesized chlorin analogues, we discovered that lipid conjugation, central coordination of a zinc metal into the chlorin ring, and a 31-methoxy substitution were critical for the formation of dye assemblies in lipid nanovesicles. The substitutions result in a specific optical shift, characterized by a bathochromically shifted (72 nm) Q, absorption band, along with an increase in absorbance and circular dichroism as the ratio of dye-conjugated lipid was increased. These alterations in optical spectra are indicative of the formation of delocalized excitons states across each molecular assembly. This strategy of tuning absorption by mimicking the structures found in photosynthetic organisms may spur new opportunities in the development of biophotonic contrast agents for medical applications.
机译:染色体是在光合作用的绿色硫细菌中发现的水泡光收集细胞器。这些有机物由于最有效的光化学能转换而在低光子通量环境中蓬勃发展,而二氢卟酚颜料的无蛋白质组装促进了这种生物的转换。这些组件具有集体吸收特性,可适用于对比度增强的生物成像应用,在这些应用中,需要在近红外光学窗口中获得最大的光吸收。在这里,我们报告了一种通过在生物相容性脂质支架中工程化合成金属氯素的受氯仿启发的组装体来调节向近红外区域吸收光的策略。在一系列合成的二氢卟酚类似物中,我们发现脂质缀合,锌金属进入二氢卟酚环的中心配位以及31-甲氧基取代对于脂质纳米囊泡中染料组装的形成至关重要。取代导致特定的光学位移,其特征是红移(72 nm)Q吸收带,以及随着染料缀合脂质比例的增加,吸光度和圆二色性增加。光谱中的这些变化指示了跨每个分子组装体的离域激子状态的形成。通过模仿在光合生物中发现的结构来调节吸收的这种策略可能为开发用于医疗应用的生物光子造影剂带来新的机遇。

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