Bionic 3D printed corals

被引:0
作者
Daniel Wangpraseurt
Shangting You
Farooq Azam
Gianni Jacucci
Olga Gaidarenko
Mark Hildebrand
Michael Kühl
Alison G. Smith
Matthew P. Davey
Alyssa Smith
Dimitri D. Deheyn
Shaochen Chen
Silvia Vignolini
机构
[1] University of Cambridge,Bioinspired Photonics Group, Department of Chemistry
[2] University of California San Diego,Scripps Institution of Oceanography
[3] University of Copenhagen,Marine Biological Section, Department of Biology
[4] University of California San Diego,Department of Nanoengineering
[5] University of Technology Sydney,Climate Change Cluster
[6] University of Cambridge,Department of Plant Sciences
来源
Nature Communications | / 11卷
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摘要
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 109 cells mL−1. 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.
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  • [1] Hatcher BG(1988)Coral reef primary productivity: a beggar’s banquet Trends Ecol. Evol. 3 106-111
  • [2] Roth MS(2014)The engine of the reef: photobiology of the coral–algal symbiosis Front. Microb. 5 422-799
  • [3] Brodersen KE(2014)Radiative energy budget reveals high photosynthetic efficiency in symbiont-bearing corals J. R. Soc. Interface 11 20130997-183
  • [4] Lichtenberg M(2016)Monte Carlo modeling of photon propagation reveals highly scattering coral tissue Front. Plant Sci. 7 1404-172
  • [5] Ralph PJ(2017)Key functional role of the optical properties of coral skeletons in coral ecology and evolution Proc. R. Soc. B. 284 20161667-8449
  • [6] Kühl M(2010)An outlook on microalgal biofuels Science 329 796-115
  • [7] Wangpraseurt D(2016)Photon management for augmented photosynthesis Nat. Commun. 7 277-38
  • [8] Wangpraseurt D(2005)Biomimetism and bioinspiration as tools for the design of innovative materials and systems Nat. Mater. 4 177-24
  • [9] Jacques SL(2015)Green bioprinting: Fabrication of photosynthetic algae‐laden hydrogel scaffolds for biotechnological and medical applications Eng. Life Sci. 15 e61492-1055
  • [10] Petrie T(2013)Modulation of light-enhancement to symbiotic algae by light scattering in corals and evolutionary trends in bleaching PLoS ONE 8 159-1804