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Research Article

Super-swelled lyotropic single crystals

View ORCID ProfileHojun Kim, Ziyuan Song, and Cecilia Leal
  1. aMaterials Science and Engineering Department, University of Illinois at Urbana–Champaign, Urbana, IL 61801;
  2. bFrederick Seitz Materials Research Laboratory, University of Illinois at Urbana–Champaign, Urbana, IL 61801

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PNAS first published September 25, 2017; https://doi.org/10.1073/pnas.1710774114
Hojun Kim
aMaterials Science and Engineering Department, University of Illinois at Urbana–Champaign, Urbana, IL 61801;
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  • ORCID record for Hojun Kim
Ziyuan Song
aMaterials Science and Engineering Department, University of Illinois at Urbana–Champaign, Urbana, IL 61801;
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Cecilia Leal
aMaterials Science and Engineering Department, University of Illinois at Urbana–Champaign, Urbana, IL 61801;
bFrederick Seitz Materials Research Laboratory, University of Illinois at Urbana–Champaign, Urbana, IL 61801
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  • For correspondence: cecilial@illinois.edu
  1. Edited by Frank S. Bates, University of Minnesota, Minneapolis, MN, and approved September 5, 2017 (received for review June 14, 2017)

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Significance

Lipids self-assemble in water into diverse polycrystalline mesophases. The swelling capacity of these superstructures is finite, specific, and traditionally dictated by lipid composition. Bicontinuous cubic phases have tremendous potential in drug delivery and protein crystallization. However, limited swelling caps unit cells at dimensions too small to encapsulate many drugs and most proteins. In this work, we discovered that bicontinuous cubic phase swelling is not solely determined by lipid composition. Self-assembly conditions yield stable unit cell sizes fourfold larger than usual. Unexpectedly, these conditions also dictate mesophase ordering resulting in X-ray and electron microscopy diffraction patterns that do not conform to polycrystallinity. Instead, macroscale super-swelled single crystals are encountered. This discovery highlights insights in understanding swelling and ordering of self-assembled materials.

Abstract

Lipids self-assemble into diverse supramolecular structures that exhibit thermotropic and/or lyotropic behavior. Lyotropic mesophases, where membranes conform to periodic minimal surfaces dividing two nonpenetrating aqueous subspaces, are arguably one of the most intriguing phases of lipid materials. Traditional 3D bicontinuous cubic lipid materials appear as a polycrystal of varying degrees of order. When exposed to water, the properties of the molecular building blocks of the membrane determine specific swelling limits setting the lattice dimensions at about 15 nm. This limited swelling severely impairs their application as delivery vehicles of large drugs or as matrices for guiding protein crystallization. We report the discovery of self-assembly strategies leading to the emergence of lipid bicontinuous single crystals with unprecedented swelling capacity. The conventional strategy to increase unit cell size is tweaking membrane composition to include charged building blocks, a process to achieve electrostatic-driven swelling. In this paper, we demonstrate that controlling self-assembly external conditions when coupled to membrane composition yields 3D bicontinuous cubic phases that swell up to lattice dimensions of 68 nm. Importantly, and contrary to what is perceived for soft lyotropic materials in general, the self-assembly methodology enables the development of large super-swelled monocrystals. Utilizing small-angle X-ray scattering and cryoelectron microscopy, we underpin three crucial factors dictating the stabilization of super-swelled lipid bicontinuous cubic single crystals: (i) organic solvent drying speed, (ii) membrane charge density, and (iii) polyethylene glycol-conjugated lipids amount.

  • molecular single crystals
  • soft materials self-assembly
  • lipid membranes
  • bicontinuous cubic
  • lyotropic liquid crystals

Footnotes

  • ↵1To whom correspondence should be addressed. Email: cecilial{at}illinois.edu.
  • Author contributions: H.K. and C.L. designed research; H.K. and Z.S. performed research; H.K. and Z.S. contributed new reagents/analytic tools; H.K. and C.L. analyzed data; and H.K. and C.L. wrote the paper.

  • The authors declare no conflict of interest.

  • This article is a PNAS Direct Submission.

  • This article contains supporting information online at www.pnas.org/lookup/suppl/doi:10.1073/pnas.1710774114/-/DCSupplemental.

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Super-swelled lyotropic single crystals
Hojun Kim, Ziyuan Song, Cecilia Leal
Proceedings of the National Academy of Sciences Sep 2017, 201710774; DOI: 10.1073/pnas.1710774114

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Super-swelled lyotropic single crystals
Hojun Kim, Ziyuan Song, Cecilia Leal
Proceedings of the National Academy of Sciences Sep 2017, 201710774; DOI: 10.1073/pnas.1710774114
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