Ionizable Coenzyme‐Engineered Lipid/Fiber Microplexes Boost Ribosomal Translation to Improve mRNA Therapy for Degenerative Diseases

S Shifeng Ling (Department of Orthopaedics Shanghai Key Laboratory For Prevention and Treatment of Bone and Joint Diseases Shanghai Institute of Traumatology and Orthopaedics Ruijin Hospital Shanghai Jiao Tong University School of Medicine Shanghai P. R. China) Y Yixiang Zhang Y Yanyang Chen (Department of Orthopaedics Shanghai Key Laboratory for Prevention and Treatment of Bone and Joint Diseases Shanghai Institute of Traumatology and Orthopaedics Ruijin Hospital Shanghai Jiao Tong University School of Medicine 197 Ruijin 2nd Road Shanghai 200025 P. R. China) W Wei He T Tianqi Wu J Juan Wang (Department of Chemical and Biomolecular Engineering) Y Yingying Wei M Min Lu (College of Chemistry and Chemical Engineering, Frontiers Science Center for Rare Isotopes) W Wei‐Li Zhao (Shanghai Institute of Hematology State Key Laboratory of Medical Genomics National Research Center for Translational Medicine at Shanghai Ruijin Hospital Shanghai Jiao Tong University School of Medicine 197 Ruijin 2nd Road Shanghai 200025 P. R. China) Q Qingfeng Li Y Yawei Du (School of Chemical Engineering and Technology Engineering Research Center of Seawater Utilization of Ministry of Education Hebei University of Technology Tianjin P. R. China) W Wenguo Cui

Abstract

Abstract Mitochondrial dysfunction‐mediated ribosomal translation suppression is a hallmark of aging and a major driver of degenerative diseases, limiting mRNA therapy efficacy. Here, ionizable coenzyme Q10 (iCoQ10)‐engineered lipid/fiber microplexes (iCLNP@SF) are developed that restore the mitochondrial‐ribosomal axis to enhance mRNA translation. iCoQ10 replaces conventional ionizable lipids to form prodrugged lipid nanoparticles (iCLNP), stabilized by injectable polydopamine‑modified short fibers for in situ administration. In vitro efficacy assessments showed that iCLNP@SF synergistically enhanced mitochondrial metabolism and mRNA translation in senescent cells. Further mechanistic studies revealed that iCLNP stabilized mitochondrial membrane potential, suppressed cGAS‐STING activation, and reduced eIF2α phosphorylation, thereby enhancing translation. In vivo, iCLNP@SF delivery of Gas6 mRNA increased hair follicle density by ≈50% in an androgenetic alopecia mouse model, while Runx2 mRNA delivery raised new bone formation (BV/TV) to ≈40% in defect models, both markedly outperforming conventional LNPs. Together, these findings highlight a strategy that improves mRNA therapy for degenerative diseases.

Article Details

Volume / Issue Vol. 38, Issue 4
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

S

Shifeng Ling

Department of Orthopaedics Shanghai Key Laboratory For Prevention and Treatment of Bone and Joint Diseases Shanghai Institute of Traumatology and Orthopaedics Ruijin Hospital Shanghai Jiao Tong University School of Medicine Shanghai P. R. China

Y

Yixiang Zhang

Y

Yanyang Chen

Department of Orthopaedics Shanghai Key Laboratory for Prevention and Treatment of Bone and Joint Diseases Shanghai Institute of Traumatology and Orthopaedics Ruijin Hospital Shanghai Jiao Tong University School of Medicine 197 Ruijin 2nd Road Shanghai 200025 P. R. China

W

Wei He

T

Tianqi Wu

J

Juan Wang

Department of Chemical and Biomolecular Engineering

Y

Yingying Wei

M

Min Lu

College of Chemistry and Chemical Engineering, Frontiers Science Center for Rare Isotopes

W

Wei‐Li Zhao

Shanghai Institute of Hematology State Key Laboratory of Medical Genomics National Research Center for Translational Medicine at Shanghai Ruijin Hospital Shanghai Jiao Tong University School of Medicine 197 Ruijin 2nd Road Shanghai 200025 P. R. China

Q

Qingfeng Li

Y

Yawei Du

School of Chemical Engineering and Technology Engineering Research Center of Seawater Utilization of Ministry of Education Hebei University of Technology Tianjin P. R. China

W

Wenguo Cui