4.7 Article

Mannose-Functionalized Pathogen-like Polyanhydride Nanoparticles Target C-Type Lectin Receptors on Dendritic Cells

期刊

MOLECULAR PHARMACEUTICS
卷 8, 期 5, 页码 1877-1886

出版社

AMER CHEMICAL SOC
DOI: 10.1021/mp200213r

关键词

polyanhydrides; nanoparticles; carbohydrates; dendritic cells; targeting

资金

  1. ONR-MURI [NN00014-06-1-1176]
  2. National Science Foundation [EEC 0851519]
  3. Directorate For Engineering
  4. Div Of Engineering Education and Centers [0851519] Funding Source: National Science Foundation

向作者/读者索取更多资源

Targeting pathogen recognition receptors on dendritic cells (DCs) offers the advantage of triggering specific signaling pathways to induce a tailored and robust immune response. In this work, we describe a novel approach to targeted antigen delivery by decorating the surface of polyanhydride nanoparticles with specific carbohydrates to provide pathogen-like properties that ensure nanoparticles engage C-type lectin receptors on DCs. The surface of polyanhydride nanoparticles was functionalized by covalent linkage of dimannose and lactose residues using an amine-carboxylic acid coupling reaction. Coculture of functionalized nanoparticles with bone marrow-derived DCs significantly increased cell surface expression of MHC II, the T cell costimulatory molecules CD86 and CD40, the C-type lectin receptor CIRE and the mannose receptor CD206 over the nonfunctionalized nanoparticles. Both nonfunctionalized and functionalized nanoparticles were efficiently internalized by DCs, indicating that internalization of functionalized nanoparticles was necessary but not sufficient to activate DCs. Blocking the mannose and CIRE receptors prior to the addition of functionalized nanoparticles to the culture inhibited the increased surface expression of MHC II, CD40 and CD86. Together, these data indicate that engagement of CIRE and the mannose receptor is a key mechanism by which functionalized nanoparticles activate DCs. These studies provide valuable insights into the rational design of targeted nanovaccine platforms to induce robust immune responses and improve vaccine efficacy.

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