Elmasry Walaa, Kebukawa Yoko, Kobayashi Kensei
Department of Chemistry and Life Science, Graduate School of Engineering Science, Yokohama National University, 79-5 Tokiwadai, Hodogaya-ku, Yokohama 240-8501, Japan.
Life (Basel). 2021 Jan 6;11(1):32. doi: 10.3390/life11010032.
The extraterrestrial delivery of organics to primitive Earth has been supported by many laboratory and space experiments. Minerals played an important role in the evolution of meteoritic organic matter. In this study, we simulated aqueous alteration in small bodies by using a solution mixture of HCO and NH in the presence of water at 150 °C under different heating durations, which produced amino acids after acid hydrolysis. Moreover, minerals were added to the previous mixture to examine their catalyzing/inhibiting impact on amino acid formation. Without minerals, glycine was the dominant amino acid obtained at 1 d of the heating experiment, while alanine and β-alanine increased significantly and became dominant after 3 to 7 d. Minerals enhanced the yield of amino acids at short heating duration (1 d); however, they induced their decomposition at longer heating duration (7 d). Additionally, montmorillonite enhanced amino acid production at 1 d, while olivine and serpentine enhanced production at 3 d. Molecular weight distribution in the whole of the products obtained by gel chromatography showed that minerals enhanced both decomposition and combination of molecules. Our results indicate that minerals affected the formation of amino acids in aqueous environments in small Solar System bodies and that the amino acids could have different response behaviors according to different minerals.
许多实验室和太空实验都支持了有机物向原始地球的外星输送。矿物在陨石有机物质的演化过程中发挥了重要作用。在本研究中,我们在150°C的水环境中,使用HCO和NH的混合溶液,在不同加热时长的条件下模拟小天体中的水蚀作用,经酸水解后产生了氨基酸。此外,我们还在之前的混合物中添加了矿物,以研究它们对氨基酸形成的催化/抑制作用。在没有矿物的情况下,加热实验1天时获得的主要氨基酸是甘氨酸,而丙氨酸和β-丙氨酸在3至7天后显著增加并成为主要氨基酸。在短加热时长(1天)时,矿物提高了氨基酸的产量;然而,在较长加热时长(7天)时,它们会促使氨基酸分解。此外,蒙脱石在1天时提高了氨基酸产量,而橄榄石和蛇纹石在3天时提高了产量。凝胶色谱法分析所得全部产物的分子量分布表明,矿物既促进了分子的分解,也促进了分子的结合。我们的研究结果表明,矿物影响了太阳系小天体水环境中氨基酸的形成,并且不同矿物作用下氨基酸可能具有不同的反应行为。