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Ravanfar, R.

Publications and source records attributed to Ravanfar, R..

3 recordsLinked to original sources

Engineering the Structural Organization of Tryptophan in Crystalline Materials for Tunable Functionality

Tryptophan is a biologically important redox-active amino acid whose functions in proteins, including long-range electron transfer, protection against oxidative damage, and environmental sensing, are governed not only by its chemical identity but also by its precise structural organization. Inspired by this biological principle, we investigated whether controlling the organization of tryptophan within crystalline materials could provide a strategy for modulating its physicochemical properties and molecular accessibility. Using identical molecular components but distinct assembly pathways, tryptophan was organized either as a confined guest within a preformed Zn-imidazolate framework, yielding a star-shaped crystalline architecture, or as an integral coordination component during framework growth, producing a distinct layered Zn- tryptophan crystalline framework. Although assembled from the same building blocks, these two organization modes generated fundamentally different crystal structures, morphologies, and mechanisms of biomolecule incorporation. In both architectures, incorporation of tryptophan into the crystalline environment preserved its intrinsic fluorescence while producing robust fluorescence under multiple excitation wavelengths, highlighting the strong influence of molecular organization on its optical response. The structural modes also exhibited distinct encapsulation efficiencies and pH-dependent molecular accessibility, while secondary calcium-alginate fixation provided an additional level of control over guest retention without disrupting the underlying crystalline architecture. These results demonstrate that engineering the structural organization of tryptophan provides a versatile strategy for tuning the optical behavior, molecular accessibility, and functional integration of a biologically important redox-active amino acid in crystalline materials, establishing a foundation for future biomimetic redox architectures, responsive sensing platforms, and controlled molecular delivery.

biochemistry↗

Lipid-MOF Colloidosomes for Multimodal Encapsulation and Environmental Remediation

The scalable fabrication of stable colloidosomes with controlled permeability and defined multicompartmental architecture remains a critical challenge, limiting their broader use in molecular delivery and environmental remediation. Here, we develop a hybrid lipid-metal-organic framework (lipid-MOF) colloidosome assembled through an interfacial emulsification strategy that integrates the structural rigidity of ZIF-8 particles with lipid-mediated membrane stabilization. During assembly, ZIF-8 particles accumulate at the oil-water interface to form a shell, producing hollow micron-sized spherical colloidosomes. The resulting colloidosomes exhibit excellent colloidal stability in aqueous media for over 30 days with a zeta potential of approximately -50 mV. Nitrogen adsorption measurements reveal a surface area of 45 m2g-1 and an average pore width of 4 nm. Fluorescence imaging shows that hydrophobic Nile red preferentially partitions into the colloidosomal membrane, whereas hydrophilic fluorescein isothiocyanate (FITC) localize predominantly within the aqueous interior, enabling simultaneous encapsulation of molecules with contrasting polarity with loading efficiencies approaching 90%. Furthermore, the colloidosomes demonstrate rapid removal of model pollutants from water, achieving >90% removal of methylene blue and metal ions without stirring. Together, these results introduce lipid-MOF colloidosomes as a new class of hybrid platforms that unify structural stability, multicompartmental encapsulation, and efficient adsorption behavior, opening pathways toward sustainable platforms for drug delivery and environmental bioremediation.

bioengineering↗

Mechanistic Understanding of Protein-MOF Integration through Surfactant-Driven Interfacial Design

Integration of proteins into metal-organic frameworks (Protein@MOF) represents an effective method for protein stabilization, with rising demand across material and biomedical sciences. However, the molecular mechanism of protein-MOF interactions remains unsettled due to challenges in developing a general platform to systematically investigate such interactions, hindering improvements in their chemical and physical properties. Here, we develop a surfactant-guided strategy to modulate the assembly of protein@MOF through interfacial design. We discovered that the interfacial environment between proteins and MOFs is the primary factor determining encapsulation efficiency, structural retention, and functional performance. Lipid-based non-ionic surfactants such as glycerol monooleate (GMO) increase the proteins solvent-accessible surface area (SASA), suggesting partial remodeling of the protein surface and hydration shell. GMO at the interface of protein@MOF results in a 20% improvement in protein encapsulation and a 30% increase in MOF growth rate. All-atom molecular dynamics simulations reveal domain-specific interactions between GMO and flexible surface residues on protein in a concentration-dependent manner, involving both electrostatic and hydrophobic contacts. This work offers new molecular insights into how surfactant-driven interfacial design fine-tunes the stability of protein@MOF, laying the foundation for robust alternatives to lipid nanodiscs for membrane protein stabilization, and protein-based platforms for drug-delivery, biocatalysis, and biosensing.

biophysics↗