Conductive Hydrogels for Exogenous Sensing and Cell Fate Control

T Teuku Fawzul Akbar (Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany) C Carlos Alejandro Jimenez‐Rodriguez (Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany) R Railia Biktimirova (Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany) I Ilka Hermes (Leibniz Institute of Polymer Research Dresden Dresden Germany) T Thomas Kurth (Core Facility Electron Microscopy and Histology Center for Molecular and Cellular Bioengineering TUD Dresden University of Technology Dresden Germany) M My Duyen Pham (Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany) M Mikhail Tsurkan (Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany) J Jens Friedrichs (Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany) F Francis L. C. Morgan (Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany) H Hans Kleemann O Olga Guskova (Leibniz Institute of Polymer Research Dresden Dresden Germany) U Uwe Freudenberg (Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany) P Peter Fratzl C Carsten Werner C Christoph Tondera I Ivan R. Minev

Abstract

ABSTRACT Next generation technologies linking living systems to computers will require materials built on biology, an approach that may address persistent challenges in stable and multimodal information exchange. Here, we present a semi‐synthetic hydrogel, designed to emulate key features of native extracellular matrix (ECM) while offering electrically tunable functionality. We engineer interactions between sulfated glycosaminoglycans (sGAGs) and a semiconducting organic polymer (poly(3,4‐ethylenedioxythiophene), PEDOT) within a soft hydrogel network (PEDOT:sGAGh). We demonstrate control over the material's nanoarchitecture, electrochemical behavior, and biomolecular interactions. In particular, PEDOT:sGAGh exhibits affinity for bioactive proteins, including growth factors, and allows their release or retention to be modulated by low‐voltage stimulation. This enables electrical control over macromolecular cues for cell differentiation, a capability not found in natural ECM or conventional conductive hydrogels. These functions are achieved with ultra‐low PEDOT content (≈1 wt.%), preserving the hydrogel's tissue‐like softness and high water content. The PEDOT:sGAGh material can be integrated as a bioactive coating on electrodes, or into 3D organic electrochemical transistors (OECTs). Our results position PEDOT:sGAGh as a versatile platform for realizing biohybrid circuits that bridge molecular signaling and solid‐state electronics, thus paving the way for brain‐machine interfaces that operate beyond purely electrical modes of interaction.

Article Details

Volume / Issue Vol. 38, Issue 40
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (16)

T

Teuku Fawzul Akbar

Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany

C

Carlos Alejandro Jimenez‐Rodriguez

Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany

R

Railia Biktimirova

Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany

I

Ilka Hermes

Leibniz Institute of Polymer Research Dresden Dresden Germany

T

Thomas Kurth

Core Facility Electron Microscopy and Histology Center for Molecular and Cellular Bioengineering TUD Dresden University of Technology Dresden Germany

M

My Duyen Pham

Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany

M

Mikhail Tsurkan

Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany

J

Jens Friedrichs

Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany

F

Francis L. C. Morgan

Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany

H

Hans Kleemann

O

Olga Guskova

Leibniz Institute of Polymer Research Dresden Dresden Germany

U

Uwe Freudenberg

Division Polymer Biomaterials Science Leibniz Institute of Polymer Research Dresden Dresden Germany

P

Peter Fratzl

C

Carsten Werner

C

Christoph Tondera

I

Ivan R. Minev