Thermally Drawn Multifunctional All‐Hydrogel Fibers for Anti‐Fibrotic and Multimodal Neural Interfaces

C Changhoon Sung (Medical Research Center Seoul National University Seoul 03080 Republic of Korea) K Kum Seok Nam Y Yeji Kim H Honey Kang (Department of Biomedical Sciences College of Medicine Seoul National University Seoul 03080 Republic of Korea) K Kanghyeon Kim (Department of Bio and Brain Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea) C Chanwoong Yoon (Program of Brain and Cognitive Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea) S Somin Lee (Department of Radiation Oncology, Edwin L. Steele Laboratories, Massachusetts General Hospital and Harvard Medical School) A Ain Chung (Department of Bio and Brain Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea) J Jiheong Kang Y Young‐Gyun Park (Department of Bio and Brain Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea) A Alan Jung Park (Department of Biomedical Sciences College of Medicine Seoul National University Seoul 03080 Republic of Korea) H Haider Butt H Hyunwoo Yuk S Seongjun Park

Abstract

Abstract Hydrogels have emerged as promising materials for anti‐fibrotic neural interfaces due to their mechanical and chemical similarity to biological tissue. However, their use in multimodal platforms remains limited, owing to fabrication challenges in microstructuring multiple functional hydrogels into compact architectures. Here, a hydrogel thermal drawing process (HG‐TDP) is presented that enables the co‐fabrication of multiple thermoplastically deformable hydrogels into a single, compact, and multifunctional fiber. By optimizing key process parameters, all‐hydrogel neural interfaces are developed that minimize gliosis through tissue‐like mechanical compliance and enable post‐implantation anti‐inflammatory drug delivery via the hydrogel‐based matrix. These fibers feature the compact integration of diverse hydrogel components, including a step‐index optical waveguide, an electrically conductive hydrogel electrode, and a hydrogel‐based microfluidic channel within a unified fiber structure. This integration enables multimodal neural interfacing, as demonstrated by high‐quality neural signal recording, optogenetic stimulation, and localized chemical modulation of neural circuits. This work offers a scalable route toward compact, fully hydrogel‐based neural interfaces that combine multimodal functionality with tissue‐friendly, anti‐fibrotic properties.

Article Details

Volume / Issue Vol. 38, Issue 9
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

C

Changhoon Sung

Medical Research Center Seoul National University Seoul 03080 Republic of Korea

K

Kum Seok Nam

Y

Yeji Kim

H

Honey Kang

Department of Biomedical Sciences College of Medicine Seoul National University Seoul 03080 Republic of Korea

K

Kanghyeon Kim

Department of Bio and Brain Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

C

Chanwoong Yoon

Program of Brain and Cognitive Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

S

Somin Lee

Department of Radiation Oncology, Edwin L. Steele Laboratories, Massachusetts General Hospital and Harvard Medical School

A

Ain Chung

Department of Bio and Brain Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

J

Jiheong Kang

Y

Young‐Gyun Park

Department of Bio and Brain Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

A

Alan Jung Park

Department of Biomedical Sciences College of Medicine Seoul National University Seoul 03080 Republic of Korea

H

Haider Butt

H

Hyunwoo Yuk

S

Seongjun Park