Wichard Thomas, Beemelmanns Christine
Institute for Inorganic and Analytical Chemistry, Jena School for Microbial Communication, Friedrich Schiller University Jena, Lessingstr. 8, 07743, Jena, Germany.
Leibniz Institute for Natural Product Research and Infection Biology, Hans-Knöll Institute, Beutenbergstraße 11a, 07745, Jena, Germany.
J Chem Ecol. 2018 Nov;44(11):1008-1021. doi: 10.1007/s10886-018-1004-7. Epub 2018 Aug 14.
There is worldwide growing interest in the occurrence and diversity of metabolites used as chemical mediators in cross-kingdom interactions within aquatic systems. Bacteria produce metabolites to protect and influence the growth and life cycle of their eukaryotic hosts. In turn, the host provides a nutrient-enriched environment for the bacteria. Here, we discuss the role of waterborne chemical mediators that are responsible for such interactions in aquatic multi-partner systems, including algae or invertebrates and their associated bacteria. In particular, this review highlights recent advances in the chemical ecology of aquatic systems that support the overall ecological significance of signaling molecules across the prokaryote-eukaryote boundary (cross-kingdom interactions) for growth, development and morphogenesis of the host. We emphasize the value of establishing well-characterized model systems that provide the basis for the development of ecological principles that represent the natural lifestyle and dynamics of aquatic microbial communities and enable a better understanding of the consequences of environmental change and the most effective means of managing community interactions.
全球对水生系统中跨界相互作用中用作化学介质的代谢物的出现和多样性的兴趣日益浓厚。细菌产生代谢物以保护并影响其真核宿主的生长和生命周期。反过来,宿主为细菌提供了营养丰富的环境。在此,我们讨论了水生多伙伴系统中负责此类相互作用的水溶性化学介质的作用,包括藻类或无脊椎动物及其相关细菌。特别是,本综述强调了水生系统化学生态学的最新进展,这些进展支持了信号分子跨越原核生物 - 真核生物边界(跨界相互作用)对宿主生长、发育和形态发生的整体生态意义。我们强调建立特征明确的模型系统的价值,这些系统为制定生态原则提供基础,这些原则代表了水生微生物群落的自然生活方式和动态,并有助于更好地理解环境变化的后果以及管理群落相互作用的最有效手段。