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仿生 3D 打印珊瑚。

Bionic 3D printed corals.

机构信息

Bioinspired Photonics Group, Department of Chemistry, University of Cambridge, Cambridge, UK.

Scripps Institution of Oceanography, University of California San Diego, San Diego, USA.

出版信息

Nat Commun. 2020 Apr 9;11(1):1748. doi: 10.1038/s41467-020-15486-4.

Abstract

Corals have evolved as optimized photon augmentation systems, leading to space-efficient microalgal growth and outstanding photosynthetic quantum efficiencies. Light attenuation due to algal self-shading is a key limiting factor for the upscaling of microalgal cultivation. Coral-inspired light management systems could overcome this limitation and facilitate scalable bioenergy and bioproduct generation. Here, we develop 3D printed bionic corals capable of growing microalgae with high spatial cell densities of up to 10 cells mL. The hybrid photosynthetic biomaterials are produced with a 3D bioprinting platform which mimics morphological features of living coral tissue and the underlying skeleton with micron resolution, including their optical and mechanical properties. The programmable synthetic microenvironment thus allows for replicating both structural and functional traits of the coral-algal symbiosis. Our work defines a class of bionic materials that is capable of interacting with living organisms and can be exploited for applied coral reef research and photobioreactor design.

摘要

珊瑚已经进化为优化的光子增强系统,从而实现了空间高效的微藻生长和卓越的光合作用量子效率。藻类自遮蔽导致的光衰减是微藻培养规模化的关键限制因素。受珊瑚启发的光照管理系统可以克服这一限制,促进可扩展的生物能源和生物制品的生成。在这里,我们开发了 3D 打印仿生珊瑚,能够以高达 10 个细胞/mL 的高空间细胞密度培养微藻。这种混合光合生物材料是使用 3D 生物打印平台生产的,该平台以微米分辨率模拟了活体珊瑚组织及其下骨架的形态特征,包括其光学和机械特性。可编程的合成微环境因此可以复制珊瑚-藻类共生的结构和功能特征。我们的工作定义了一类仿生材料,这些材料能够与生物体相互作用,并可用于应用珊瑚礁研究和光生物反应器设计。

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