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Biology subjects

Leal, C.

Publications and source records attributed to Leal, C..

3 recordsLinked to original sources

Multiscale compression-induced restructuring of stacked lipid bilayers: from buckling delamination to molecular packing

Lipid membranes in nature adapt and reconfigure to changes in composition, temperature, humidity, and mechanics. For instance, the oscillating mechanical forces on lung cells and alveoli influence membrane synthesis and structure during breathing. However, despite advances in the understanding of lipid membrane phase behavior and mechanics of tissue, there is a critical knowledge gap regarding the response of lipid membranes to micromechanical forces. Most studies of lipid membrane mechanics use supported lipid bilayer systems missing the structural complexity of pulmonary lipids in alveolar membranes comprising multi-bilayer interconnected stacks. Here, we elucidate the collective response of the major component of pulmonary lipids to strain in the form of multi-bilayer stacks supported on flexible elastomer substrates. We utilize X-ray diffraction, scanning probe microscopy, confocal microscopy, and molecular dynamics simulation to show that lipid multilayered films both in gel and fluid states evolve structurally and mechanically in response to compression at multiple length scales. Specifically, compression leads to increased disorder of lipid alkyl chains comparable to the effect of cholesterol on gel phases as a direct result of the formation of nanoscale undulations in the lipid multilayers, also inducing buckling delamination and enhancing multi-bilayer alignment. We propose this cooperative short- and long-range reconfiguration of lipid multilayered films under compression constitutes a mechanism to accommodate stress and substrate topography. Our work raises fundamental insights regarding the adaptability of complex lipid membranes to mechanical stimuli. This is critical to several technologies requiring mechanically reconfigurable surfaces such as the development of electronic devices interfacing biological materials.

biophysics↗

Lipid nanoparticle topology regulates endosomal escape and delivery of RNA to the cytoplasm

RNA therapeutics have the potential to resolve a myriad of diseases caused by gene deficiency. Lipid nanoparticles (LNPs) are one of the most successful RNA delivery systems. However, expanding their application hinges on the discovery of next generation LNPs with high potency, cyto-specific targeting, and low side effects. Overcoming the difficulty of releasing cargo from endocytosed LNPs remains a significant hurdle. The endosomal escape of viral and non-viral nanoparticles relies on the topological transformation of membrane fusion pore formation followed by RNA translocation into the cytosol. In this study we show that LNP-RNA nanostructure modulates the energetic cost of LNP fusion with a target membrane. The inclusion of a new class of structurally-active lipids leads to superior LNP endosomal fusion, fast evasion of endosomal entrapment, and efficacious RNA delivery. Specifically, bicontinuous cubic RNA-LNPs, cuboplexes, have significantly higher endosomal escape rates and deliver more RNA compared to regular lamellar LNPs.

bioengineering↗

Lipid droplet structural remodeling in adipose tissue upon caloric excess

Excess calories are stored as triacylglycerols (TAG) and cholesteryl esters (CE) in lipid droplets (LD), and during obesity, LD expansion occurs. X-ray scattering of adipose tissue uncovered that LDs comprise two TAG packing domains: a disordered core and a multilamellar shell. The number of TAG layers increases upon diet-induced obesity and is adipose depot-specific. Further, collagen was highly oriented in brown but randomly dispersed in white fat. We discovered that the bodys surfactant, bile acids (BAs) stimulate remodeling of LD size. Deleting the BA receptor, Farnesoid X receptor (FXR) reduced a hydrophilic BA, {beta} muricholic acid ({beta}-MCA), and enlarged the adipocytes. BA composition is a critical determinant of overall hydrophobicity index and solubilization ability. Accordingly, we found that the obesogenic diet reduced a hydrophobic BA, chenodeoxycholic acid (CDCA). Taken together, these findings implicate that BAs, tissue niches, and diet influence LD structural remodeling. SummaryLipid droplets (LDs) pack triacylglycerols (TAGs) with altered dimensions and exhibit distinct collagen orientation between the white and brown fat depots and are remodeled by bile acids (BAs) such that deletion of BA-receptor, Farnesoid X receptor (FXR) results in adipocyte hypertrophy.

biophysics↗