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Parshuram Kambale

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Aug 2026

In situ ROPISA synthetic strategy for a β-sheet polypeptide nanoformulation and in vivo biodistribution studies.

Polypeptides are protein-like synthetic macromolecules that often require tedious post-polymerization self-assembly to encapsulate drugs or genes. Developing nanotechnology platforms for the on-demand loading of cargoes during synthesis in water would yield directly injectable nanoformulations for immediate healthcare applications. Here, we report one of the first attempts to construct an aqueous-medium-stabilized β-sheet poly(L-tyrosine) block copolymer polypeptide nanoparticle formulation via a ring-opening polymerization-induced self-assembly (ROPISA) process. The synthetic scope of the methodology is further expanded to include the in situ encapsulation of biologically relevant fluorophore molecules, which are purified by a simple dialysis process and directly injected for in vitro and in vivo studies in biological systems. The β-sheet polypeptide nanoformulation is non-toxic to cells at up to 100 μg mL-1, non-hemolytic to red blood cells, and readily endocytosed across the cell membranes, as substantiated by confocal microscopy imaging. A deep-tissue penetrable near-infrared IR-780 biomarker-loaded nanoformulation is employed for biodistribution studies in live animals (mice). The β-sheet polypeptide formulation is stable under blood circulation, and ex vivo tissue imaging established their accumulation largely in the digestive organs. This approach paves the way for the direct injectable polypeptide nanoformulations in drug delivery.

Parshuram Kambale, Sayali H Jadhav, R. Nisal et al. · 0 citations
Open access Aug 2026

ROPISA Synthetic Strategy for Photo-Crosslinked Aqueous Polypeptide Nano-Assemblies.

Polypeptides are emerging as an integral part of biomaterial research because of their unique ability to mimic natural protein-like secondary structures in water; however, they require a multistep self-assembly process to yield desired nano-sized objects for intended biomedical applications. In this study, we report a one-pot photo-crosslink strategy for stable polypeptide nanoparticle self-assembly by ring-opening polymerization-induced self-assembly (ROPISA) route. For this purpose, a cinnamoyl functionalized l-serine based N-carboxyanhydride (NCA) monomer is designed and subjected to ROPISA using PEG-amine as a hydrophilic macroinitiator in water which produced stable opalescent dispersions of amphiphilic PEG-polypeptide di-block copolymers having narrow molecular weights. Dynamic light scattering and HR-TEM analysis revealed the formation of spherical nanoparticles of 25-30 nm in size. The cinnamoyl anchored polypeptides underwent [2+2] cycloaddition under UV irradiation (265 nm) and the occurrence of the photo-crosslinking and its kinetics is studied by UV-visible spectroscopy. Notably, the nanoparticle size and structural integrity is remained unchanged and the particle morphology is found to be very stable. The core-cross-linked nanoparticles is found to be stable and behave as efficient scaffold for loading both water soluble and insoluble cargoes. This report opens an avenue to access photo-crosslinkable polypeptide nano-assemblies in the literature.

A. Prasad, Parshuram Kambale, R. Nisal et al. · 0 citations

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