Amyloid‐Like Nanocoatings for Enhanced Hemoperfusion Materials

X Xingyu Zhou C Chunzhao Yang (Department of General Surgery Southern Medical University Hospital of Integrated Traditional Chinese and Western Medicine Southern Medical University Guangzhou China) J Jian Zhao Y YuLian Xia (Department of Nephrology The General Hospital of Western Theater Command Chengdu Sichuan China) C Chengyu Fu (Key Laboratory of Applied Surface and Colloid Chemistry School of Chemistry and Chemical Engineering Ministry of Education Shaanxi Normal University Xi'an China) B Bowen Hu (State Key Laboratory of Cognitive Neuroscience and Learning, Beijing Normal University) S Shuo Wei W Wandi Cui (Key Laboratory of Applied Surface and Colloid Chemistry School of Chemistry and Chemical Engineering Ministry of Education Shaanxi Normal University Xi'an China) Y Yinlan Luo (Key Laboratory of Applied Surface and Colloid Chemistry School of Chemistry and Chemical Engineering Ministry of Education Shaanxi Normal University Xi'an China) K Ke Li P Peng Yang

Abstract

ABSTRACT Hemoperfusion, a therapeutic technique in which blood is circulated through extracorporeal adsorbents to remove toxins, faces the challenge of simultaneously enhancing the adsorption performance and hemocompatibility of hemoperfusion materials (HPMs) through a facile and eco‐friendly surface engineering strategy. Herein, a one‐step amyloid‐mediated surface modification method is proposed to encapsulate HPMs by immersing them in a phase‐transitioned bovine serum albumin (PTB) aqueous solution. The resultant amyloid‐like PTB nanocoating modified activated carbon exhibited a nearly four‐fold increase in the adsorption capacity for urea and creatinine, as well as significantly enhanced adsorption toward other harmful substances, including heavy metal chromium ion, drug norfloxacin, medium‐molecule toxin bilirubin, and large‐molecule toxin interleukin‐6. Additionally, the hemocompatibility of activated carbon is substantially improved by reducing carbon debris formation, minimizing damage to blood cells, and effectively alleviating non‐specific adsorption of plasma proteins while resisting platelet adhesion. The superior blood purification performance was validated in vivo using multiple animal models of chronic kidney disease. Notably, this strategy is broadly applicable to various HPMs, such as polymeric resins and emerging materials such as carbon nanotubes and metal‐organic frameworks, offering an effective and highly general surface engineering approach to enhance the performance of various blood purification materials with significant clinical implications.

Article Details

Volume / Issue Vol. 38, Issue 36
Published June 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

X

Xingyu Zhou

C

Chunzhao Yang

Department of General Surgery Southern Medical University Hospital of Integrated Traditional Chinese and Western Medicine Southern Medical University Guangzhou China

J

Jian Zhao

Y

YuLian Xia

Department of Nephrology The General Hospital of Western Theater Command Chengdu Sichuan China

C

Chengyu Fu

Key Laboratory of Applied Surface and Colloid Chemistry School of Chemistry and Chemical Engineering Ministry of Education Shaanxi Normal University Xi'an China

B

Bowen Hu

State Key Laboratory of Cognitive Neuroscience and Learning, Beijing Normal University

S

Shuo Wei

W

Wandi Cui

Key Laboratory of Applied Surface and Colloid Chemistry School of Chemistry and Chemical Engineering Ministry of Education Shaanxi Normal University Xi'an China

Y

Yinlan Luo

Key Laboratory of Applied Surface and Colloid Chemistry School of Chemistry and Chemical Engineering Ministry of Education Shaanxi Normal University Xi'an China

K

Ke Li

P

Peng Yang