4.8 Article

Increasing the Efficacy of Stem Cell Therapy via Triple-Function Inorganic Nanoparticles

期刊

ACS NANO
卷 13, 期 6, 页码 6605-6617

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.9b00653

关键词

mesoporous silica-iron oxide nanoparticles; contrast agents; theranostic nanoparticles; cell manipulation; stem cell therapy

资金

  1. NIH [R00 HL117048, DP2 HL137187]
  2. Chancellor's Research Excellence Scholarships [4-G6]
  3. CSU [502041001]
  4. American Cancer Society Institutional Research through the Moores Cancer Center, University of California, San Diego [14-250-42]
  5. NIH equipment Grant [1S10OD023527-01]
  6. CIRM Major Facilities grant [FA1-00607]
  7. National Cancer Institute Cancer Center Support Grant (CCSG Grant) [P30CA23100]
  8. NIH/NIGM [1 R01 GM078005-01]
  9. [S10 OD021821]
  10. [S10 OD18225]

向作者/读者索取更多资源

Stem cell therapy in heart disease is challenged by mis-injection, poor survival, and low cell retention. Here, we describe a biocompatible multifunctional silica-iron oxide nanoparticle to help solve these issues. The nanoparticles were made via an in situ growth of Fe3O4 nanoparticles on both the external surfaces and pore walls of mesocellular foam silica nanoparticles. In contrast to previous work, this approach builds a magnetic moiety inside the pores of a porous silica structure. These materials serve three roles: drug delivery, magnetic manipulation, and imaging. The addition of Fe3O4 to the silica nanoparticles increased their colloidal stability, T-2-based magnetic resonance imaging contrast, and super paramagnetism. We then used the hybrid materials as a sustained release vehicle of insulin-like growth factor a-pro survival agent that can increase cell viability. In vivo rodent studies show that labeling stem cells with this nanoparticle increased the efficacy of stem cell therapy in a ligation/reperfusion model. The nanoparticle-labeled cells increase the mean left ventricular ejection fraction by 11 and 21% and the global longitudinal strain by 24 and 34% on days 30 and 60, respectively. In summary, this multifunctional nanomedicine improves stem cell survival via the sustained release of pro survival agents.

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