Organization of an Artificial Multicellular System with a Tunable DNA Patch on a Membrane Surface

Nano Lett. 2024 Jan 10;24(1):433-440. doi: 10.1021/acs.nanolett.3c04249. Epub 2023 Dec 19.

Abstract

Coordinating multiple artificial cellular compartments into a well-organized artificial multicellular system (AMS) is of great interest in bottom-up synthetic biology. However, developing a facile strategy for fabricating an AMS with a controlled arrangement remains a challenge. Herein, utilizing in situ DNA hybridization chain reaction on the membrane surface, we developed a DNA patch-based strategy to direct the interconnection of vesicles. By tuning the DNA patch that generates heterotrophic adhesion for the attachment of vesicles, we could produce an AMS with higher-order structures straightforwardly and effectively. Furthermore, a hybrid AMS comprising live cells and vesicles was fabricated, and we found the hybrid AMS with higher-order structures arouses efficient molecular transportation from vesicles to living cells. In brief, our work provides a versatile strategy for modulating the self-assembly of AMSs, which could expand our capability to engineer synthetic biological systems and benefit synthetic cell research in programmable manipulation of intercellular communications.

Keywords: DNA assembly; DNA nanotechnology; artificial multicellular system; cell communication; vesicle.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Artificial Cells* / chemistry
  • Biological Phenomena*
  • DNA / chemistry
  • Membranes / chemistry
  • Synthetic Biology

Substances

  • DNA