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Reversable deformation of artificial cell colony for muscle behavior mimicry triggered by actin polymerization

Li, C.; Zhang, X.; Yang, B.; Wei, F.; Ren, Y.; Mu, W.; Han, X.

2021-12-21 bioengineering
10.1101/2021.12.18.473289 bioRxiv
Show abstract

The mimicry of living tissues from artificial cells is beneficial to understanding the interaction mechanism among cells, as well as holding great potentials in the tissue engineering field. Self-powered artificial cells capable of reversible deformation are developed by encapsulating living mitochondria, actin proteins, and methylcellulose. Upon the addition of pyruvate molecules, the mitochondria produce ATP molecules as energy sources to trigger the polymerization of actin. ATP molecules were produced by mitochondria (2.76x1010/ml) with the concentrations of 35.8{+/-}3.2 {micro}M, 158.2{+/-}19.3 {micro}M and 200.7{+/-}20.1 M by adding pyruvate molecules with the concentration of 3 M, 12 M and 21 M, respectively. The reversible deformation of artificial cells is experienced with spindle shape resulting from the polymerization of actins to form filaments adjacent to the lipid bilayer, subsequently back to spherical shape resulting from the depolymerization of actin filaments upon laser irradiations. The linear colonies composed of these artificial cells exhibit collective contraction and relaxation behavior to mimic muscle tissues. At the stage of maximum contraction, the long axis of each GUV is in parallel to each other. All colonies are synchronized in the contraction phase. The deformation of each GUV in the colonies is influenced by its adjacent GUVs. The muscle-like artificial cell colonies paved the path to develop sustainably self-powered artificial tissues in the field of tissue engineering.

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