4.8 Article

Sorting sub-150-nm liposomes of distinct sizes by DNA-brick-assisted centrifugation

Journal

NATURE CHEMISTRY
Volume 13, Issue 4, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41557-021-00667-5

Keywords

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Funding

  1. National Institutes of Health (NIH) Director's New Innovator Award [GM114830]
  2. NIH [GM132114, MH061876, NS097362, GM100930, GM109466, NS113236]
  3. Yale University faculty startup fund
  4. National Key Research and Development Program of China [2020YFA0908901]
  5. National Natural Science Foundation of China [21673050, 91859104, 81861138004]
  6. Agency for Science, Technology and Research (Singapore)

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A new sorting technique using cholesterol-modified DNA is reported, which can separate liposomes into six to eight homogeneous populations. These uniform and leak-resistant liposomes are ideal for studying how membrane curvature affects membrane protein activities, benefiting research in membrane biology and the development of liposomal drug-delivery systems.
In cells, myriad membrane-interacting proteins generate and maintain curved membrane domains with radii of curvature around or below 50 nm. To understand how such highly curved membranes modulate specific protein functions, and vice versa, it is imperative to use small liposomes with precisely defined attributes as model membranes. Here, we report a versatile and scalable sorting technique that uses cholesterol-modified DNA 'nanobricks' to differentiate hetero-sized liposomes by their buoyant densities. This method separates milligrams of liposomes, regardless of their origins and chemical compositions, into six to eight homogeneous populations with mean diameters of 30-130 nm. We show that these uniform, leak-resistant liposomes serve as ideal substrates to study, with an unprecedented resolution, how membrane curvature influences peripheral (ATG3) and integral (SNARE) membrane protein activities. Compared with conventional methods, our sorting technique represents a streamlined process to achieve superior liposome size uniformity, which benefits research in membrane biology and the development of liposomal drug-delivery systems.

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