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Rubio-Sanchez, R.

Publications and source records attributed to Rubio-Sanchez, R..

3 recordsLinked to original sources

Lipid acyl chain length and unsaturation modulate membrane surface charge and interactions with amphiphilic DNA nanoprobes

Biological membranes actively regulate their composition to fine-tune their packing, fluidity, phase and surface charge, key properties that influence biomolecular interactions driving essential cellular pathways. While membrane surface charge is often attributed to specific lipid headgroups, the role of acyl-chain chemistry in modulating the interplay between these biophysical membrane properties remains unexplored. Here, we systematically investigate how variations in acyl chain length and saturation modulate lipid packing, fluidity, and membrane surface charge in zwitterionic lipid membranes. Using amphiphilic DNA nanoprobes as model charged biomolecules, we describe the interplay between packing, fluidity, phase and charge, identifying a packing-dependent guiding principle for membrane interactions that persists in the presence of anionic lipids. We also demonstrate that the identity and hydrophobicity of membrane anchors in nanoprobes significantly influence their binding to membranes. By integrating acyl-chain chemistry with membrane biophysical properties into design criteria for biomolecular attachment, our findings provide a mechanistic framework to engineer membrane interactions with both DNA nanoprobes and DNA-based coacervates. Beyond direct application to biomimetic platforms and synthetic cell engineering, these insights are relevant to lipid-based vaccine nanotechnologies and fundamental understandings of membrane-biomolecule interactions in living cells.

biophysics↗

Cation-controlled assembly, activity, and organisation of biomimetic DNA receptors in synthetic cell membranes

Biological cells use cations as signalling messengers to regulate a variety of responses. Linking cations to the functionality of synthetic membranes is thus crucial to engineering advanced biomimetic agents, such as synthetic cells. Here, we introduce bio-inspired DNA-based receptors that exploit non-canonical G-quadruplexes for cation-actuated structural and functional responses in synthetic lipid membranes. Membrane confinement grants cationdependent control over receptor assembly and, when supplemented with hemin co-factors, their peroxidase DNAzyme activity. Cationmediated control extends to receptor lateral distribution to localise DNA-based catalysis within phase-separated membrane domains of model synthetic cells, imitating the localisation of multimeric membrane complexes to signalling hubs in living cells. Our modular strategy paves the way for engineering from the bottom-up cation-responsive pathways for sensing, signalling, and communication in synthetic cellular systems.

biophysics↗

DNA-origami line-actants control domain organisation and fission in synthetic membranes

Cells can precisely program the shape and lateral organisation of their membranes using protein machinery. Aiming to replicate a comparable degree of control, here we introduce DNA-Origami Line-Actants (DOLAs) as synthetic analogues of membrane-sculpting proteins. DOLAs are designed to selectively accumulate at the line-interface between co-existing domains in phase-separated lipid membranes, modulating the tendency of the domains to coalesce. With experiments and coarse-grained simulations, we demonstrate that DOLAs can reversibly stabilise two-dimensional analogues of Pickering emulsions on synthetic giant liposomes, enabling dynamic programming of membrane lateral organisation. The control afforded over membrane structure by DOLAs extends to three-dimensional morphology, as exemplified by a proof-of-concept synthetic pathway leading to vesicle fission. With DOLAs we lay the foundations for mimicking, in synthetic systems, some of the critical membrane-hosted functionalities of biological cells, including signalling, trafficking, sensing, and division.

biophysics↗