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Recent research news on Artificial Biology


Distinct Network Morphologies from In Situ Polymerization of Microtubules in Giant Polymer-Lipid Hybrid Vesicles

Creating artificial cells with a dynamic cytoskeleton, akin to those in living cells, is a major goal in bottom-up synthetic biology. In this study, we demonstrate the in situ polymerization of microtubules encapsulated in giant polymer-lipid hybrid vesicles (GHVs) composed of 1,2-dioleoyl-sn-glycero-3-phosphocholine and an amphiphilic block copolymer. The block copolymer is comprised of poly(cholesteryl methacrylate-co-butyl methacrylate) as the hydrophobic block and either poly(6-O-methacryloyl-D-galactopyranose) or poly(carboxyethyl acrylate) as the hydrophilic extension. Depending on the concentrations of guanosine triphosphate (GTP) or its slowly hydrolyzable analog, guanosine-5′-[(α,β)-methyleno]triphosphate (GMPCPP), different microtubule morphologies are observed, including encapsulated microtubule networks, spike protrusions, as well as membrane-associated or aggregated microtubules. Overall, this work represents a step forward in mimicking the cellular cytoskeletons and uncovering the influence of membrane composition on microtubule morphologies.

Recent publications by network


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Neuhäuser, D., Hirsch, C., Gloaguen, C. & Schmidt, V. (2016). A stochastic model for multi-hierarchical networks. Methodology and Computing in Applied Probability, 18(4), 1129-1151.
Nielsen, K. H. (2016). Bevidsthed. Weekendavisen, Ideer, 10.
Liang, C., Hu, Y., Wang, H., Xia, D., Li, Q., Zhang, J., Yang, J., Li, B., Li, H., Han, D. & Dong, M. (2016). Biomimetic cardiovascular stents for in vivo re-endothelialization. Biomaterials, 103, 170-182. https://doi.org/10.1016/j.biomaterials.2016.06.042
Nielsen, K. H. (2016). Bit. Weekendavisen, Ideer, 10.
Nielsen, K. H. (2016). Bitcoin. Weekendavisen, Ideer, 10.
Hirsch, C. (2016). Bounded-hop percolation and wireless communication. Journal of Applied Probability, 53(3), 833-845.