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Wu, Jun

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Wu

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Wu, Jun

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Now showing 1 - 2 of 2
  • Publication

    A Solvent-Free Thermosponge Nanoparticle Platform for Efficient Delivery of Labile Proteins

    (American Chemical Society, 2014) Choi, Won Il; Kamaly, Nazila; Riol-Blanco, Lorena; Lee, In-Hyun; Wu, Jun; Swami, Archana; Vilos, Cristian; Yameen, Basit; Yu, Mikyung; Shi, Jinjun; Tabas, Ira; von Andrian-Werburg, Ulrich; Jon, Sangyong; Farokhzad, Omid

    Protein therapeutics have gained attention recently for treatment of a myriad of human diseases due to their high potency and unique mechanisms of action. We present the development of a novel polymeric thermosponge nanoparticle for efficient delivery of labile proteins using a solvent-free polymer thermo-expansion mechanism with clinical potential, capable of effectively delivering a range of therapeutic proteins in a sustained manner with no loss of bioactivity, with improved biological half-lives and efficacy in vivo.

  • Publication

    Ultra-High Throughput Synthesis of Nanoparticles with Homogeneous Size Distribution Using a Coaxial Turbulent Jet Mixer

    (American Chemical Society, 2014) Lim, Jong-Min; Swami, Archana; Gilson, Laura M.; Chopra, Sunandini; Choi, Sungyoung; Wu, Jun; Langer, Robert; Karnik, Rohit; Farokhzad, Omid

    High-throughput production of nanoparticles (NPs) with controlled quality is critical for their clinical translation into effective nanomedicines for diagnostics and therapeutics. Here we report a simple and versatile coaxial turbulent jet mixer that can synthesize a variety of NPs at high throughput up to 3 kg/d, while maintaining the advantages of homogeneity, reproducibility, and tunability that are normally accessible only in specialized microscale mixing devices. The device fabrication does not require specialized machining and is easy to operate. As one example, we show reproducible, high-throughput formulation of siRNA-polyelectrolyte polyplex NPs that exhibit effective gene knockdown but exhibit significant dependence on batch size when formulated using conventional methods. The coaxial turbulent jet mixer can accelerate the development of nanomedicines by providing a robust and versatile platform for preparation of NPs at throughputs suitable for in vivo studies, clinical trials, and industrial-scale production.