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Predator - Prey molecular ecosystems

机译:捕食者-猎物分子生态系统

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摘要

Biological organisms use intricate networks of chemical reactions to control molecular processes and spatiotemporal organization. In turn, these living systems are embedded in self-organized structures of larger scales, for example, ecosystems. Synthetic in vitro efforts have reproduced the architectures and behaviors of simple cellular circuits. However, because all these systems share the same dynamic foundations, a generalized molecular programming strategy should also support complex collective behaviors, as seen, for example, in animal populations. We report here the bottom-up assembly of chemical systems that reproduce in vitro the specific dynamics of ecological communities. We experimentally observed unprecedented molecular behaviors, including predator-prey oscillations, competition-induced chaos, and symbiotic synchronization. These synthetic systems are tailored through a novel, compact, and versatile design strategy, leveraging the programmability of DNA interactions under the precise control of enzymatic catalysis. Such self-organizing assemblies will foster a better appreciation of the molecular origins of biological complexity and may also serve to orchestrate complex collective operations of molecular agents in technological applications.
机译:生物有机体使用复杂的化学反应网络来控制分子过程和时空组织。反过来,这些生物系统被嵌入到较大规模的自组织结构中,例如生态系统。合成的体外努力已经再现了简单细胞回路的结构和行为。但是,由于所有这些系统都具有相同的动态基础,因此广义的分子编程策略也应支持复杂的集体行为,例如在动物种群中所见。我们在这里报告了化学系统的自下而上的组装过程,该系统在体外重现了生态群落的特定动态。我们通过实验观察到了前所未有的分子行为,包括捕食者-猎物的振荡,竞争引起的混乱和共生同步。这些合成系统是通过新颖,紧凑和通用的设计策略量身定制的,可在酶催化的精确控制下利用DNA相互作用的可编程性。这样的自组织组装将促进对生物复杂性的分子起源的更好的理解,并且还可用于在技术应用中协调分子试剂的复杂的集体操作。

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