Machine Learning‐Informed Nano Co‐Assembly Inhibits Fibroblast Activation Protein and Improves Drug Delivery in Fibrotic Tissue

Z Zehua Liu Q Qiang Long Y Yihao Liu X Xiuqiao Sun (Department of General Surgery Pancreatic Disease Center Research Institute of Pancreatic Diseases Ruijin Hospital Shanghai Jiao Tong University School of Medicine Shanghai China) B Baoding Zhang B Binxin Liao (School of Pharmaceutical Sciences Xiamen University Xiamen Fujian China) W Weibin Wu W Wangxi Hai (Department of Radiology Ruijin Hospital Shanghai Jiao Tong University School of Medicine Shanghai China) P Pei Zhang (Department of Neurobiology, School of Basic Medicine, Tongji Medical College, Huazhong University of Science and Technology) W Wenhua Lian (State Key Laboratory of Cellular Stress Biology Innovation Center for Cell Signaling Network School of Life Sciences Xiamen University Xiamen Fujian China) Y Yuewen Zhu (Department of Biomaterials and Biomedical Technology The Personalized Medicine Research Institute (PRECISION) University Medical Center Groningen (UMCG) University of Groningen Groningen The Netherlands) Z Zheng Wang C Caisheng Wu X Xianming Deng H Hélder A. Santos X Xiaofeng Ye

Abstract

ABSTRACT Nanoparticle‐based drug delivery faces persistent challenges, including complex fabrication processes and limited lesional accumulation. Here we introduce SP‐13786 (SP), a precise small‐molecule inhibitor of fibroblast activation protein (FAP), as a universal and effective excipient enabling facile co‐precipitation into stable nanoparticles (SCAN) with diverse hydrophobic drugs. Screening of 861 compounds revealed a broadly enhanced colloidal stability and drug loading by SP. Corresponding simulations and explainable machine learning (XML) showed SCAN assembly hinges on balanced aromaticity, rigidity, and nitrogen‐mediated interaction, offering interpretable framework for co‐assembly nanomedicine. Biological assessment demonstrate that SCAN enhances drug delivery and therapeutic efficacy in FAP‐positive cells, therefore attentuate the fibrosis‐induced drug penetration barriers, increasing drug accumulation within the fibrotic tissue. The improved bioavailability correlate with superior therapeutic outcomes in multiple disease models with progressive fibrosis. Overall, we establish SP as a versatile nanotherapeutic platform combining simplicity in preparation, mechanistic insights provided by XML, and broad applicability for diseases characterized by pathological fibrosis and impaired drug delivery.

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 (16)

Z

Zehua Liu

Q

Qiang Long

Y

Yihao Liu

X

Xiuqiao Sun

Department of General Surgery Pancreatic Disease Center Research Institute of Pancreatic Diseases Ruijin Hospital Shanghai Jiao Tong University School of Medicine Shanghai China

B

Baoding Zhang

B

Binxin Liao

School of Pharmaceutical Sciences Xiamen University Xiamen Fujian China

W

Weibin Wu

W

Wangxi Hai

Department of Radiology Ruijin Hospital Shanghai Jiao Tong University School of Medicine Shanghai China

P

Pei Zhang

Department of Neurobiology, School of Basic Medicine, Tongji Medical College, Huazhong University of Science and Technology

W

Wenhua Lian

State Key Laboratory of Cellular Stress Biology Innovation Center for Cell Signaling Network School of Life Sciences Xiamen University Xiamen Fujian China

Y

Yuewen Zhu

Department of Biomaterials and Biomedical Technology The Personalized Medicine Research Institute (PRECISION) University Medical Center Groningen (UMCG) University of Groningen Groningen The Netherlands

Z

Zheng Wang

C

Caisheng Wu

X

Xianming Deng

H

Hélder A. Santos

X

Xiaofeng Ye