4.8 Article

Microfluidic production and characterization of biofunctionalized giant unilamellar vesicles for targeted intracellular cargo delivery

期刊

BIOMATERIALS
卷 264, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2020.120203

关键词

Giant unilamellar vesicles; Targeted delivery; GUV-cell interactions; Microfluidics

资金

  1. Federal Ministry of Education and Research of Germany [13XP5073A]
  2. MaxSynBio Consortium
  3. Federal Ministry of Education and Research of Germany
  4. Max Planck Society
  5. BBSRC/EPSRC Research Centre for synthetic biology at the University of Bristol BrisSynBio [BB/L01386X/1]
  6. Heidelberg Biosciences International Graduate School
  7. Max Planck School Matter to Life
  8. European Research Council [ERC-2018-ADG 834631 DNA-DOCK]
  9. Volkswagen Stiftung

向作者/读者索取更多资源

Researchers have developed a microfluidic-based mechanical droplet-splitting pipeline for the production of carrier-GUVs with diameters of around 2 μm, allowing for efficient cargo loading and precise control over the properties of GUV membranes. By investigating GUV-cell interactions, they achieved targeted cellular GUV delivery and explored strategies for intracellular GUV cargo release through lysosomal escape. This delivery technology could lead to more efficient drug administration and enable targeted delivery of advanced cargo like microparticles, viruses, or macromolecular DNA-robots.
Lipid-based vesicles have found widespread applications in the life sciences, allowing for fundamental insights into membrane-based processes in cell biology and as carrier systems for drug delivery purposes. So far, mostly small unilamellar vesicles (SUVs) with diameters of similar to 100 nm have been applied as carrier systems for biomedical applications. Despite this progress, several systematic limitations have arisen due to SUV dimensions, e.g., the size and total amount of applicable cargo is limited. Giant unilamellar vesicles (GUVs) might offer a pragmatic alternative for efficient cargo delivery. However, due to the lack of reliable high-throughput production technologies for GUV-carrier systems, only little is known about their interaction with cells. Here we present a microfluidic-based mechanical droplet-splitting pipeline for the production of carrier-GUVs with diameters of similar to 2 mu m. The technology developed allows for highly efficient cargo loading and unprecedented control over the biological and physicochemical properties of GUV membranes. By generating differently charged (between -31 and + 28 mV), bioligand-conjugated (e.g. with E-cadherin, NrCam and antibodies) and PEG-conjugated GUVs, we performed a detailed investigation of attractive and repulsive GUV-cell interactions. Fine-tuning of these interactions allowed for targeted cellular GUV delivery. Moreover, we evaluated strategies for intracellular GUV cargo release by lysosomal escape mediated by the pH sensitive lipid DOBAQ, enabling cytoplasmic transmission. The presented GUV delivery technology and the systematic characterization of associated GUV-cell interactions could provide a means for more efficient drug administration and will pave the way for hitherto impossible approaches towards a targeted delivery of advanced cargo such as microparticles, viruses or macromolecular DNA-robots.

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