Multistage Phase Programming in Fibrillated Peptide Coacervates

X Xiuli Xu (State Key Laboratory of Metal Matrix Composites School of Material Science & Engineering Shanghai Jiao Tong University Shanghai P. R. China) S Shi Yang (State Key Laboratory of Metal Matrix Composites School of Material Science & Engineering Shanghai Jiao Tong University Shanghai P. R. China) Y Yage Zhang Q Qingming Ma (School of Pharmacy Qingdao University Shandong P. R. China) X Xiaonong Zhang (State Key Laboratory of Metal Matrix Composites School of Material Science & Engineering Shanghai Jiao Tong University Shanghai P. R. China) H Ho Cheung Shum (Advanced Biomedical Instrumentation Centre) C Chuanliang Feng (State Key Lab of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Key Laboratory for Molecular Engineering of Chiral Drugs, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China) Y Yang Song (Sorbonne Université, CNRS, Laboratoire de Chimie de la Matière Condensée de Paris (CMCP), 4 place Jussieu, F-75005 Paris, France)

Abstract

ABSTRACT Natural protein condensates respond to external stresses through stimuli‐triggered multistage phase transitions. Reprogramming such transitions in synthetic systems is critical for rational design of self‐adaptive materials with precisely regulated stimuli‐responsiveness. Nevertheless, the sequence complexity of intrinsically disordered proteins (IDPs) and their competing assembly pathways often impede effective programing of multistage transitions in physiological conditions. Here, a class of short peptide synthons (Mw≈1500 Dalton) is synthesized by integrating intrinsically disordered and transiently ordered motifs derived from the low‐complexity domain of IDPs. Remarkably, these peptide synthons exhibit thermoreversible quadruple phase transitions among monomers, self‐coacervates, liquid crystals, and semi‐crystallized solid gels. Mechanistic study reveals that the phase transitions are governed by two distinct assembly pathways, namely coacervation and fibrillization, which interact in both collaborative and competitive manners. Modifying the peptide sequence or molecular decorations allows for precise control over the phase transition temperatures, enabling sequential, multi‐stage transitions to be activated by dose‐dependent pathological cues (e.g., lactic acid) at the body temperature (37°C). These findings establish a highly versatile and programmable material platform to sequentially encode multistage phase behaviors into synthetic peptide assemblies, inspiring the development of next‐generation disease biosensors, drug‐delivery vehicles, and self‐adaptive microrobots.

Article Details

Volume / Issue Vol. 38, Issue 17
Published March 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

X

Xiuli Xu

State Key Laboratory of Metal Matrix Composites School of Material Science & Engineering Shanghai Jiao Tong University Shanghai P. R. China

S

Shi Yang

State Key Laboratory of Metal Matrix Composites School of Material Science & Engineering Shanghai Jiao Tong University Shanghai P. R. China

Y

Yage Zhang

Q

Qingming Ma

School of Pharmacy Qingdao University Shandong P. R. China

X

Xiaonong Zhang

State Key Laboratory of Metal Matrix Composites School of Material Science & Engineering Shanghai Jiao Tong University Shanghai P. R. China

H

Ho Cheung Shum

Advanced Biomedical Instrumentation Centre

C

Chuanliang Feng

State Key Lab of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Key Laboratory for Molecular Engineering of Chiral Drugs, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China

Y

Yang Song

Sorbonne Université, CNRS, Laboratoire de Chimie de la Matière Condensée de Paris (CMCP), 4 place Jussieu, F-75005 Paris, France