Sequence‐Defined Short Peptide‐Derived Coacervate Vesicles for Targeted Therapeutics

S Sandip Sarkar (Department of Chemical Sciences and Center for Advanced Functional Materials) R Rajsekhar Roy (Department of Bioscience & Bioengineering) A Atin Chatterjee (Department of Chemical Sciences and Center for Advanced Functional Materials) N Nityananda Biswas (Department of Bioscience & Bioengineering Indian Institute of Technology Jodhpur Rajasthan India) R Raviranjan Pandey (Department of Biological Sciences Indian Institute of Science Education and Research (IISER) Kolkata Mohanpur West Bengal India) S Shubhajit Dey (Department of Chemical Sciences and Center for Advanced Functional Materials Indian Institute of Science Education and Research (IISER) Kolkata Mohanpur West Bengal India) B Batakrishna Jana (Department of Chemical Sciences and Center for Advanced Functional Materials) U Uttam Pal (Technical Research Centre, S. N. Bose National Centre for Basic Sciences, Salt Lake, Kolkata 700106, India) S Surajit Ghosh A Amitava Das (Department of Chemical Sciences and Center for Advanced Functional Materials)

Abstract

ABSTRACT Compartmentalization underpins biological organization and the design of programmable therapeutic carriers.  Here, we report a sequence‐defined short peptide, Biotin‐Ser(‐OPO 3 2 − )‐Phe‐Phe‐Arg ( Biotin‐SR ), that undergoes physiological liquid–liquid phase separation to form lipid‐free coacervate vesicles (CVs) with enhanced structural persistence.  The designer peptide integrates oppositely charged functionalities that drive pH‐responsive coacervation, incorporating an alkaline phosphatase (ALP)‐cleavable anionic phosphoester, a diphenylalanine motif that promotes hydrophobic packing, and a cationic guanidinium group that stabilizes the coacervate architecture while serving as a precursor for nitric oxide (NO) generation. These CVs selectively target cancer cells via biotin‐mediated recognition. CVs of  Biotin‐SR  with pronounced morphological persistence, as confirmed by restricted molecular exchange in FRAP analysis, and encapsulate glucose oxidase (GOx) within this stabilized vesicular architecture, undergo ALP‐induced enzymatic dephosphorylation in ALP‐rich tumor environments to trigger an irreversible loss of charge complementarity, GOx release and a synergistic therapeutic cascade integrating enzymatic starvation, oxidative stress amplification, and NO‐mediated mitochondrial dysfunction. The resulting glucose depletion couples with NO generation to elevate reactive oxygen species (ROS), inducing mitochondrial dysfunction and suppressing tumor growth in both spheroids and xenograft models. This work demonstrates how minimal peptide sequences can translate liquid‐liquid phase separation into stable coacervate vesicles with enzyme‐responsive supramolecular function for targeted therapeutics.

Article Details

Volume / Issue Vol. 38, Issue 44
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

S

Sandip Sarkar

Department of Chemical Sciences and Center for Advanced Functional Materials

R

Rajsekhar Roy

Department of Bioscience & Bioengineering

A

Atin Chatterjee

Department of Chemical Sciences and Center for Advanced Functional Materials

N

Nityananda Biswas

Department of Bioscience & Bioengineering Indian Institute of Technology Jodhpur Rajasthan India

R

Raviranjan Pandey

Department of Biological Sciences Indian Institute of Science Education and Research (IISER) Kolkata Mohanpur West Bengal India

S

Shubhajit Dey

Department of Chemical Sciences and Center for Advanced Functional Materials Indian Institute of Science Education and Research (IISER) Kolkata Mohanpur West Bengal India

B

Batakrishna Jana

Department of Chemical Sciences and Center for Advanced Functional Materials

U

Uttam Pal

Technical Research Centre, S. N. Bose National Centre for Basic Sciences, Salt Lake, Kolkata 700106, India

S

Surajit Ghosh

A

Amitava Das

Department of Chemical Sciences and Center for Advanced Functional Materials