Metabolic Systems Research Team, RIKEN Center for Sustainable Resource Science, 1-7-22 Suehiro-cho, Tsurumi-ku, Yokohama, Kanagawa, 230-0045, Japan.
Plant Productivity Systems Research Group, RIKEN Center for Sustainable Resource Science, Tsurumi-ku, Yokohama, Japan.
Planta. 2018 Feb;247(2):405-412. doi: 10.1007/s00425-017-2794-5. Epub 2017 Oct 13.
The method introduced here to grow F. hygrometrica in high concentrations of D O is an excellent alternative to produce highly deuterated metabolites with broad applications in metabolic studies. Our mass spectrometry experiments strongly indicate the successful incorporation of deuterium into organic compounds. Deuterated metabolites are useful tracers for metabolic studies, yet their wide utilization in research is limited by the multi-step total synthesis required to produce them in the laboratory. Alternatively, deuterated metabolites can be obtained from organisms grown in DO or deuterated nutrients. This approach also has limitations as DO in high concentrations negatively affects the survival of most organisms. Here we report the moss Funaria hygrometrica as an unusual high tolerant to DO in liquid culture. We found that this moss is able to grow in up to 90% DO, a condition lethal for many eukaryotes. Mass spectrometric analyses of F. hygrometrica extracts showed a strong deuteration pattern. The ability to tolerate high concentrations of DO together with the development of a rich molecular toolbox makes F. hygrometrica an ideal system for the production of valuable deuterated metabolites.
这里介绍的在高浓度 D O 中培养 F. hygrometrica 的方法是生产具有广泛代谢研究应用的高度氘代代谢物的绝佳替代方法。我们的质谱实验强烈表明氘成功掺入有机化合物中。氘代代谢物是代谢研究的有用示踪剂,但由于在实验室中生产它们所需的多步全合成,它们的广泛应用受到限制。或者,可以从在 DO 或氘化营养物中生长的生物体中获得氘代代谢物。这种方法也有其局限性,因为高浓度的 DO 会对大多数生物体的存活产生负面影响。在这里,我们报告了藓类植物 F. hygrometrica 对液体培养中 DO 的异常高耐受性。我们发现,这种苔藓能够在高达 90%的 DO 中生长,而这对于许多真核生物来说是致命的。对 F. hygrometrica 提取物的质谱分析显示出强烈的氘化模式。耐受高浓度 DO 的能力以及丰富的分子工具包的开发使 F. hygrometrica 成为生产有价值的氘代代谢物的理想系统。