Thioamides Adjacent to the Ionizable Amine Headgroup in Ionizable Lipids Reduce the p <i>K</i> <sub>a</sub> of Lipid Nanoparticles and Enhance mRNA Transfection Efficiency in Vitro and in Vivo

Y Yong Chen E Emily De Lombaerde (Department of Pharmaceutics Ghent University Ghent Belgium) A Aimée Bugler‐Lamb (Laboratory of Myeloid Cell Biology in Tissue Homeostasis and Regeneration VIB‐UGent Center for Inflammation Research Ghent University Ghent Belgium) Z Zifu Zhong (Department of Pharmaceutics) M Martijn J. Schuijs (Laboratory of Immunoregulation and Mucosal Immunology) C Claudia M. Brenis Gomez (Laboratory of Immunoregulation and Mucosal Immunology) J Jamie De Baere (Department of Pharmaceutics Ghent University Ghent Belgium) M Mark Gontsarik (Department of Pharmaceutics Ghent University Ghent Belgium) H Heleen Lauwers (Department of Pharmaceutics) K Kim Deswarte N Niek N. Sanders B Bart N. Lambrecht M Martin Guilliams B Bruno G. De Geest (Department of Pharmaceutics)

Abstract

Abstract Lipid nanoparticles (LNPs) are currently the most clinically advanced mRNA delivery vectors. However, optimizing LNPs for in vivo applications remains largely empirical. The apparent p K a of LNPs is a predictive factor for in vivo performance, with p K a values between 6 and 7 showing the highest efficacy. Despite this critical role of ionizable lipids in LNPs, the relationship between lipid structure and its influence on LNP p K a remains poorly studied. In this study, we report the design and the synthesis of a novel class of ionizable lipids featuring a thioamide moiety, enabling direct comparison between thioamide‐containing (SAM) LNPs and amide‐containing (OAM) LNPs. We find that substituting oxygen with sulfur in the amide group significantly decreases the apparent p K a of LNPs, increasing the likelihood of identifying lipids in combinatorial libraries that yield LNPs with a p K a in the desired 6–7 range. The reduction in p K a in LNPs containing SAM lipids, compared with OAM lipids, is attributed to the increased hydrophobicity of the thioamide group. Furthermore, by synthesizing multiple libraries of SAM lipids and varying the ionizable head group, alkyl chains, and linker length, we discovered thioamide lipids with distinct tissue tropism, including lipids that mediate splenic targeting by LNPs.

Article Details

Volume / Issue Vol. 64, Issue 28
Published July 07, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

Y

Yong Chen

E

Emily De Lombaerde

Department of Pharmaceutics Ghent University Ghent Belgium

A

Aimée Bugler‐Lamb

Laboratory of Myeloid Cell Biology in Tissue Homeostasis and Regeneration VIB‐UGent Center for Inflammation Research Ghent University Ghent Belgium

Z

Zifu Zhong

Department of Pharmaceutics

M

Martijn J. Schuijs

Laboratory of Immunoregulation and Mucosal Immunology

C

Claudia M. Brenis Gomez

Laboratory of Immunoregulation and Mucosal Immunology

J

Jamie De Baere

Department of Pharmaceutics Ghent University Ghent Belgium

M

Mark Gontsarik

Department of Pharmaceutics Ghent University Ghent Belgium

H

Heleen Lauwers

Department of Pharmaceutics

K

Kim Deswarte

N

Niek N. Sanders

B

Bart N. Lambrecht

M

Martin Guilliams

B

Bruno G. De Geest

Department of Pharmaceutics