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Kambekar, A.

Publications and source records attributed to Kambekar, A..

2 recordsLinked to original sources

Thermal-Acoustic Activation of Hydrophobic Polystyrene Supports for High-Efficiency Aqueous Solid-Phase Peptide Synthesis

Solid-phase peptide synthesis (SPPS) remains the dominant technique for peptide production. However, its reliance on hazardous organic solvents such as N, N-dimethylformamide (DMF) and dichloromethane (DCM) results in an adverse environmental burden. One potential approach is replacing these organic solvents with water to reduce the hazardous solvent consumption and improve the environmental footprint of peptide production. This has led to the emergence of aqueous solid-phase peptide synthesis (ASPPS) approaches. Although successful, these approaches require specialized hydrophilic resins or modified building blocks, limiting their industrial applicability and scalability. Moreover, conventional hydrophobic polystyrene supports, remain the most widely used solid supports in industrial SPPS due to their high loading capacity, mechanical robustness, and low cost. These resins are generally considered incompatible with aqueous conditions. Here, we demonstrate that industrially relevant 2-chlorotrityl chloride (CTC) polystyrene resin can support efficient peptide coupling under fully aqueous conditions by integrating a precipitate-free 1-Ethyl-3-(3-dimethylaminopropyl) carbodiimide hydrochloride (EDC{middle dot}HCl) and Oxyma activation system with a synergistic thermal-acoustic strategy. We posit that heating combined with ultrasonic irradiation likely promotes transient relaxation of the polystyrene matrix and enhances water penetration. This facilitates the diffusion of activated amino acid esters onto the hydrophobic resin required for coupling. The robustness of this aqueous methodology was validated through the synthesis of nine structurally diverse peptide sequences, including aromatic hydrogel-forming peptides, opioid peptides derived from enkephalins, toxin-inspired sequences, and a lipid-interacting fragment of -synuclein. Analytical characterization by HPLC and MALDI-TOF mass spectrometry confirmed successful peptide assembly with high crude purity. We anticipate that this thermal-acoustic aqueous SPPS strategy provides a scalable and accessible pathway toward sustainable peptide manufacturing on classical hydrophobic supports with aqueous chemistry.

biochemistry↗

Spontaneous Phase Separation Enables Rapid, Polymerization-Free Fabrication of Dissolvable Hydrogels

Hydrogels are cross-linked polymeric networks with wide applications in drug delivery, tissue engineering, biosensing, and environmental remediation. These hydrogels additionally host living cells, small molecules and biological propagules, which further expand the applications of these materials. However, most if not all fabrication methods require covalent modifications. In this work, for the first time, we demonstrate that polymer mixtures can access an additional material state beyond the conventionally described homogeneous and two-phase regimes. By deliberately selecting polymers with a known propensity to phase separate and formulating compositions far from the binodal boundary, the system transitions directly into a mechanically stable hydrogel. We demonstrate this technique using a model system of poly (ethylene glycol) (PEG) and dextran (DEX). We have systematically characterized the hydrogels through FTIR, MALDI-TOF to discern the molecular compositions of the hydrogels. We also modulate the optical transparency of these hydrogels by varying the molecular weight of the polymers. These experimental findings are supplemented with coarse grained (CG) simulation insights to investigate the mechanistic origins of phase separation propensity with varying molecular weights of dextran. We utilized coexisting densities in the two phases using CG simulations to predict the role of dextran molecular weight on the partitioning of PEG and DEX in the two phases. Finally, we exploit the fabricated hydrogels ability to encapsulate live cells, antibiotics and plant seeds. We anticipate that this ATPS-based fabrication technique will provides a scalable, crosslinker-free route to multifunctional hydrogels enabling advanced applications in drug delivery and responsive materials.

bioengineering↗