Resolving the mRNA Encapsulation‐Release Trade‐off via Compensatory Forces in Engineered Ionizable Lipids

W Weixiang Gao (State Key Laboratory of Biopharmaceutical Preparation and Delivery Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 P. R. China) K Kang An Y Yishan Ma (State Key Laboratory of Biopharmaceutical Preparation and Delivery Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 P. R. China) X Xiao Xu Z Ziyue Wang J Junjian Liu X Xiangfei Shan (State Key Laboratory of Biopharmaceutical Preparation and Delivery Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 P. R. China) Y Yuqi Liu W Wei Chen P Peicheng Wang C Changyang Zhou (Epigenic Therapeutics, Inc Shanghai 200135 P. R. China) Y Ying Ren X Xiaonan Huang (State Key Laboratory of Biopharmaceutical Preparation and Delivery Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 P. R. China) Y Yufei Xia

Abstract

Abstract A critical challenge in lipid nanoparticle (LNP) delivery of messenger RNA (mRNA) is the inherent trade‐off between stable encapsulation and efficient intracellular release. Here, this challenge is addressed through rationally engineering compensatory forces between mRNA and LNP, leveraging short‐range intermolecular interactions (van der Waals, hydrogen bonding) to dynamically balance long‐range Coulombic binding. Guided by a computational‐experimental framework, a “contact number” metric is developed to decipher mRNA and LNP binding hierarchies, enabling the strategic incorporation of short‐range‐interaction motifs (e.g., urea, carbamate) into ionizable lipid (IL) structures. These designs achieve optimal mRNA encapsulation while promoting endosomal escape and cytosolic release, resulting in enhanced mRNA translation. Compared to commercial mRNA vaccine counterparts, the engineered LNP (OT13‐LNP) induces a 1.7‐fold increase in antigen‐specific T cell responses and 77.9% tumor inhibition in melanoma. In hepatic gene editing, OT13‐LNPs achieve comparable transthyretin (TTR) on‐target editing efficiency to ALC0315‐LNPs (0.5 mg kg −1 ), but elicit a markedly stronger silencing effect, reducing serum TTR levels by over 90% compared with ≈58% for ALC0315‐LNPs. This study may highlights the potential of compensatory‐force engineering for next‐generation mRNA therapeutics in oncology, gene editing, and infectious diseases.

Article Details

Volume / Issue Vol. 38, Issue 14
Published March 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

W

Weixiang Gao

State Key Laboratory of Biopharmaceutical Preparation and Delivery Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 P. R. China

K

Kang An

Y

Yishan Ma

State Key Laboratory of Biopharmaceutical Preparation and Delivery Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 P. R. China

X

Xiao Xu

Z

Ziyue Wang

J

Junjian Liu

X

Xiangfei Shan

State Key Laboratory of Biopharmaceutical Preparation and Delivery Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 P. R. China

Y

Yuqi Liu

W

Wei Chen

P

Peicheng Wang

C

Changyang Zhou

Epigenic Therapeutics, Inc Shanghai 200135 P. R. China

Y

Ying Ren

X

Xiaonan Huang

State Key Laboratory of Biopharmaceutical Preparation and Delivery Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 P. R. China

Y

Yufei Xia