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Lipid Nanoparticles Elicit Reactogenicity and Sickness Behavior in Mice Via Toll-Like Receptor 4 and Myeloid
Tetiana Korzun1,2,3, Abraham S Moses1, Antony Jozic1
1Department of Pharmaceutical Sciences, College of Pharmacy, Oregon State University, 2730 S Moody Avenue, Portland, Oregon 97201, United States.
Abstract:
mRNA therapeutics encapsulated in lipid nanoparticles (LNPs) offer promising avenues for treating various diseases. While mRNA vaccines anticipate immunogenicity, the associated reactogenicity of mRNA-loaded LNPs poses significant challenges, especially in protein replacement therapies requiring multiple administrations, leading to adverse effects and suboptimal therapeutic outcomes. Historically, research has primarily focused on the reactogenicity of mRNA cargo, leaving the role of LNPs understudied in this context. Adjuvanticity and pro-inflammatory characteristics of LNPs, originating at least in part from ionizable lipids, may induce inflammation, activate toll-like receptors (TLRs), and impact mRNA translation. Knowledge gaps remain in understanding LNP-induced TLR activation and its impact on induction of animal sickness behavior. We hypothesized that ionizable lipids in LNPs, structurally resembling lipid A from lipopolysaccharide, could activate TLR4 signaling via MyD88 and TRIF adaptors, thereby propagating LNP-associated reactogenicity. Our comprehensive investigation utilizing gene ablation studies and pharmacological receptor manipulation proves that TLR4 activation by LNPs triggers distinct physiologically meaningful responses in mice. We show that TLR4 and MyD88 are essential for reactogenic signal initiation, pro-inflammatory gene expression, and physiological outcomes like food intake and body weight─robust metrics of sickness behavior in mice. The application of the TLR4 inhibitor TAK-242 effectively reduces the reactogenicity associated with LNPs by mitigating TLR4-driven inflammatory responses. Our findings elucidate the critical role of the TLR4-MyD88 axis in LNP-induced reactogenicity, providing a mechanistic framework for developing safer mRNA therapeutics and offering a strategy to mitigate adverse effects through targeted inhibition of this pathway.
Insights
Lipid nanoparticles (LNPs) in mRNA therapeutics can cause inflammation via Toll-like receptor 4 (TLR4) activation. Inhibiting TLR4 reduces these adverse effects, paving the way for safer mRNA treatments.
Area of Science:
- Biotechnology
- Immunology
- Pharmacology
Background:
- mRNA therapeutics delivered via lipid nanoparticles (LNPs) show great promise for treating diseases.
- However, LNP-associated reactogenicity, or adverse inflammatory responses, hinders their therapeutic application, particularly in protein replacement therapies.
- The inflammatory potential of LNPs, especially their ionizable lipids, and their role in activating Toll-like receptors (TLRs) remain understudied.
Purpose of the Study:
- To investigate the role of ionizable lipids in LNPs in activating Toll-like receptor 4 (TLR4) signaling.
- To determine the contribution of the TLR4-MyD88 axis to LNP-induced reactogenicity and sickness behavior.
- To evaluate the efficacy of TLR4 inhibition in mitigating LNP-associated adverse effects.
Main Methods:
- Utilized gene ablation studies in mice to assess the necessity of TLR4 and MyD88.
- Employed pharmacological receptor manipulation with the TLR4 inhibitor TAK-242.
- Measured pro-inflammatory gene expression and physiological indicators of sickness behavior (food intake, body weight).
Main Results:
- TLR4 activation by LNPs is essential for initiating reactogenic signals and pro-inflammatory gene expression in mice.
- The TLR4-MyD88 pathway is critical for mediating sickness behaviors, including reduced food intake and body weight loss.
- Inhibition of TLR4 using TAK-242 significantly reduced LNP-associated reactogenicity by mitigating inflammatory responses.
Conclusions:
- The TLR4-MyD88 signaling axis plays a pivotal role in the reactogenicity of lipid nanoparticles used in mRNA therapeutics.
- Targeted inhibition of TLR4 presents a viable strategy to mitigate adverse effects associated with LNP-based therapies.
- These findings provide a mechanistic understanding to guide the development of safer and more effective mRNA therapeutics.
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