Discrete Actuation of Water‐Responsive Crystalline Metal–Peptide Frameworks

H Hui Yuan Y Yiming Tang E Elma Naranjo (Advanced Science Research Center (ASRC) The Graduate Center of the City University of New York New York USA) P Pierre‐Andre Cazade (Department of Physics Bernal Institute University of Limerick Limerick V94 T9PX Ireland) Y Yifei Yao V Vijayakanth Thangavel (The Shmunis School of Biomedicine and Cancer Research, George S. Wise Faculty of Life Sciences Tel Aviv University Tel Aviv 6997801 Israel) R Rusen Yang (School of Advanced Materials and Nanotechnology, Xidian University 2 , Xi’an 710126,) S Sigal Rencus‐Lazar (The Shmunis School of Biomedicine and Cancer Research, George S. Wise Faculty of Life Sciences Tel Aviv University Tel Aviv 6997801 Israel) D Damien Thompson L Linda J. W. Shimon (Department of Chemical Research Support, Weizmann Institute of Science, Herzl Street 234, Rehovot 7610001, Israel) G Guanghong Wei X Xi Chen E Ehud Gazit (The Shmunis School of Biomedicine and Cancer Research, George S. Wise Faculty of Life Sciences)

Abstract

AbstractEngineering guest‐responsive materials capable of controlled and precise sorption behavior and structural deformation in response to external stimuli is imperative for various applications. However, existing systems often exhibit complex, unpredictable dynamics, posing challenges for efficient control and utilization. Here, we design crystalline metal–peptide frameworks with tunable water‐responsive (WR) dynamics by assembling glycine‐threonine (Gly‐Thr, GT) or glycine‐serine (Gly‐Ser, GS) peptides with zinc (Zn) ions, achieving either continuous or discrete threshold water‐sorption‐dependent phase transitions. As ambient relative humidity (RH) changes, the Zn‐GT crystal continuously adsorbs or desorbs water, resulting in gradual structural adaptations, similar to those observed in other supramolecular systems. In contrast, the Zn‐GS crystal undergoes stepwise water sorption and structural transitions at specific RH thresholds. These contrasting WR modes arise from differences in water binding and structural dynamics; in Zn‐GT, each coordinating water molecule contributes varying degrees of framework integrity and evaporates sequentially, whereas in Zn‐GS, water molecules with comparable interactions within a flexible framework are released simultaneously during dehydration. Our study demonstrates the mechanism by which host–guest interactions can be harnessed to control dynamic sorption and actuation behavior of supramolecular materials at the molecular level, offering mechanistic insights that may guide the rational design of next‐generation programmable, stimulus‐responsive systems.

Article Details

Volume / Issue Vol. 64, Issue 43
Published October 20, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

H

Hui Yuan

Y

Yiming Tang

E

Elma Naranjo

Advanced Science Research Center (ASRC) The Graduate Center of the City University of New York New York USA

P

Pierre‐Andre Cazade

Department of Physics Bernal Institute University of Limerick Limerick V94 T9PX Ireland

Y

Yifei Yao

V

Vijayakanth Thangavel

The Shmunis School of Biomedicine and Cancer Research, George S. Wise Faculty of Life Sciences Tel Aviv University Tel Aviv 6997801 Israel

R

Rusen Yang

School of Advanced Materials and Nanotechnology, Xidian University 2 , Xi’an 710126,

S

Sigal Rencus‐Lazar

The Shmunis School of Biomedicine and Cancer Research, George S. Wise Faculty of Life Sciences Tel Aviv University Tel Aviv 6997801 Israel

D

Damien Thompson

L

Linda J. W. Shimon

Department of Chemical Research Support, Weizmann Institute of Science, Herzl Street 234, Rehovot 7610001, Israel

G

Guanghong Wei

X

Xi Chen

E

Ehud Gazit

The Shmunis School of Biomedicine and Cancer Research, George S. Wise Faculty of Life Sciences