University of Nice-Sophia Antipolis, LCMBA UMR 6001 CNRS, avenue Valrose, F-06108 Nice, France.
Chem Biodivers. 2010 Jun;7(6):1651-9. doi: 10.1002/cbdv.200900311.
Amino acids that pass the RNA machinery in living organisms occur in L-configuration. The question on the evolutionary origin of this biomolecular asymmetry remains unanswered to this day. Amino acids were detected in artificially produced interstellar ices, and L-enantiomer-enriched amino acids were identified in CM-type meteorites. This hints at a possible interstellar/circumstellar origin of the amino acids themselves as well as their stereochemical asymmetry. Based upon the current knowledge about the occurrence of circularly-polarized electromagnetic radiation in interstellar environments, we subjected rac-leucine to far-UV circularly-polarized synchrotron radiation. Asymmetric photolysis was followed by an analysis in an enantioselective GC/MS system. Here, we report on an advanced photolysis rate of more than 99% for leucine. The results indicate that high photolysis rates can occur under the chosen conditions, favoring enantioselective photolysis. In 2014, the obtained results will be reexamined by cometary mission Rosetta.
在活生物体中,通过 RNA 机制的氨基酸都呈 L-构型。到目前为止,关于这种生物分子不对称性的进化起源问题仍未得到解答。在人工产生的星际冰中检测到了氨基酸,并且在 CM 型陨石中鉴定出了 L-对映体富集的氨基酸。这暗示了氨基酸本身及其立体化学不对称性可能具有星际/星周起源。基于目前关于星际环境中圆偏振电磁辐射的发生的知识,我们将 rac-亮氨酸暴露于远紫外圆偏振同步加速器辐射下。通过对非对映选择性 GC/MS 系统的分析,跟踪不对称光解。在这里,我们报告了亮氨酸的超过 99%的先进光解率。结果表明,在所选条件下可以发生高光解率,有利于对映选择性光解。2014 年,罗塞塔彗星任务将重新检查所获得的结果。