University of Chicago Develops Targeted mRNA Nanoparticle System to Prevent Type 1 Diabetes Progression
核心洞察
Researchers at the University of Chicago developed lipid nanoparticles that deliver mRNA (搜索) to insulin-producing beta cells, enabling them to express PD-L1 (搜索) protein for immune protection.
The nanoparticle system successfully delayed type 1 diabetes (搜索) progression in mouse models and demonstrated effectiveness in both mouse and human beta cells.
Two versions were created, including one tagged with a peptide targeting GLP-1 receptors (搜索), with both showing ability to selectively target beta cells without affecting other cell types.
Scientists at the University of Chicago have developed a novel nanoparticle-based approach to prevent type 1 diabetes (搜索) by delivering mRNA (搜索) directly to insulin-producing beta cells, enabling them to protect themselves from autoimmune destruction. The research, published in Cell Reports Medicine, demonstrates a fundamentally different strategy from conventional approaches that focus on suppressing the immune system.
The lipid nanoparticle system carries mRNA (搜索) instructions for PD-L1 (搜索), a cell surface protein that helps cells evade immune system attacks. In experiments with both mouse and human beta cells, the nanoparticles successfully reached their targets and triggered PD-L1 expression. The technology also proved effective in a transplant model where human beta cells were implanted into mice.
"In this initial therapeutic proof of concept, we showed that we were able to deliver PD-L1 (搜索) mRNA (搜索) with our nanoparticle system, enable a delay in type 1 diabetes (搜索) progression in mice, and also show potential translational relevance within human cells," said Jacob Enriquez, PhD, a postdoctoral scholar at UChicago who led the study.
Novel Targeting Strategy
The research team, led by Enriquez in the laboratory of Raghu Mirmira, MD, PhD, Professor of Medicine, collaborated with Yun Fang, PhD, Professor of Medicine, and Zhengjie Zhou, PhD, formerly at UChicago and now at Temple University. Zhou created the nanoparticle using four lipids that can encapsulate mRNA (搜索) molecules, employing the same technology used in COVID-19 vaccines.
The team developed two versions of the nanoparticles: one tagged with a peptide to target GLP-1 receptors (搜索) on beta cell surfaces—the same receptor targeted by weight loss drugs like Ozempic and Wegovy—and one without the peptide. During in vitro testing, both versions successfully enriched PD-L1 (搜索) expression in mouse and human cells, with the GLP-1 tagged version showing slightly better performance in mice.
Selective Cell Targeting
A key advantage of this approach is its specificity. Both nanoparticle versions can target beta cells without affecting other cell types, thereby avoiding unintended consequences. This precision targeting is crucial for therapeutic applications, as PD-L1 (搜索) is often exploited by cancers to evade immune detection, making system-wide PD-L1 enhancement potentially problematic.
"Nanomedicine approaches were central to the clinical success of RNA vaccines," Fang said. "Our conceptual and technological advances establish a strong foundation for extending this paradigm to metabolic diseases through selective targeting of insulin-producing cells and, ultimately, other key cell types involved in type 1 diabetes (搜索)."
Clinical Implications
The treatment would ideally be administered before full disease onset, while beta cells remain functional, to preserve insulin production capacity. The researchers envision using this platform to deliver other therapeutic molecules and potentially incorporating additional surface peptides to target human beta cell receptors more effectively.
"This is generating a new level of excitement, because now we're thinking about engineering beta cells with the knowledge we've accumulated over the years," said Mirmira, who also serves as Director of the UChicago Diabetes Research and Training Center. "Going forward, it's a promising tool because we can target a specific cell type without harming other cells."
The research represents a significant departure from traditional type 1 diabetes (搜索) prevention strategies, which typically focus on suppressing autoimmune responses. Instead, this approach empowers beta cells to defend themselves while maintaining their insulin-producing function.
