Systemic lupus erythematosus (SLE) and rheumatoid arthritis (RA) are autoimmune diseases driven by autoreactive B cells and plasma cells, leading to chronic inflammation and organ damage. Current therapies targeting B cells, such as anti-CD20 monoclonal antibodies, are ineffective in depleting long-lived plasma cells. This limitation highlights the need for novel therapeutic strategies to reset the immune system in these diseases.
We developed lipid nanoparticle-encapsulated mRNA (mRNab-LNPs) encoding anti-CD19 antibodies to deplete autoreactive B cells and plasma cells. mRNab-LNPs were administered intramuscularly to lupus and RA mouse models. We evaluated the therapeutic efficacy by assessing the depletion of CD19+ B cells and plasma cells, and the subsequent reduction in disease-related histopathological damage.
Intramuscular injection of mRNab-LNPs in both lupus and RA mice led to high and sustained production of anti-CD19 antibodies. This resulted in significant depletion of circulating CD19+ B cells and tissue-resident plasma cells. Histopathological analysis showed reduced damage in the skin, kidneys, and joints of treated mice. Additionally, mRNab-LNPs exhibited favorable pharmacokinetics with prolonged antibody production and minimal systemic inflammatory response.
mRNab-LNPs effectively target and deplete both B cells and plasma cells in lupus and RA mouse models. These findings suggest that mRNab-LNPs offer a promising alternative to current therapies, providing a safer, more efficient approach to treating autoimmune diseases by resetting the humoral immune system.
This work was supported by the following grants: National Natural Foundation of China Grant (Nos. 81970632 and 52473328), Guangdong Science and Technology Department Grant (Nos. 2020B1212060018 and 2020B1212030004), Sun Yat-sen Pilot Scientific Research F
Therapeutic Approaches to Autoimmunity (THER)
Metabolic-associated steatohepatitis (MASH) remains difficult to treat due to the lack of interventions capable of targeting upstream disease drivers and achieving durable disease modification. The epigenetic regulator Mrg15 has been implicated in mitochondrial dysfunction and metabolic stress in the liver, suggesting its potential relevance to MASH pathogenesis. Here, we develop a liver-targeted lipopolymer nanoparticle (LPNP)-mediated gene editing platform to enable in vivo disruption of Mrg15 by co-delivery of Cas9 mRNA and Mrg15 sgRNA. The screened P64H/Mrg15 system achieved efficient hepatic delivery and genome editing, resulting in reduced Mrg15 expression in hepatocytes. In the MASH mouse model, P64H/Mrg15 treatment was associated with decreased hepatic lipid accumulation, improved liver injury markers, and attenuation of inflammation and fibrosis. Sequence-level analyses confirmed on-target editing in liver tissue, and systemic histopathological evaluation revealed no overt toxicity in major organs under the tested dosing regimen. Transcriptomic profiling revealed coordinated pathway-level associations involving metabolic, inflammatory, and autophagy-related regulation, while protein-level analyses demonstrated alterations in selected autophagy- and mitophagy-related regulators, including TUFM and LC3B-II. Together, these findings identify Mrg15 as a disease-relevant epigenetic regulator in MASH and highlight liver-directed P64H LPNP/CRISPR delivery as a promising non-viral strategy for modulating upstream regulatory pathways in metabolic liver disease.