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Dual Affinity to RBCs and Target Cells (DART) Enhances Both Organ- and Cell Type-Targeting of Intravascular Nanocarriers

  • Laura T. Ferguson
  • , Elizabeth D. Hood
  • , Tea Shuvaeva
  • , Vladimir V. Shuvaev
  • , Maria C. Basil
  • , Zhicheng Wang
  • , Jia Nong
  • , Xiaonan Ma
  • , Jichuan Wu
  • , Jacob W. Myerson
  • , Oscar A. Marcos-Contreras
  • , Jeremy Katzen
  • , Justine M. Carl
  • , Edward E. Morrisey
  • , Edward Cantu
  • , Carlos H. Villa
  • , Samir Mitragotri
  • , Vladimir R. Muzykantov
  • , Jacob S. Brenner

Producción científica: Articlerevisión exhaustiva

52 Citas (SciVal)

Resumen

A long-standing goal of nanomedicine is to improve a drug's benefit by loading it into a nanocarrier that homes solely to a specific target cell and organ. Unfortunately, nanocarriers usually end up with only a small percentage of the injected dose (% ID) in the target organ, due largely to clearance by the liver and spleen. Further, cell-type-specific targeting is rarely achieved without reducing target organ accumulation. To solve these problems, we introduce DART (dual affinity to RBCs and target cells), in which nanocarriers are conjugated to two affinity ligands, one binding red blood cells and one binding a target cell (here, pulmonary endothelial cells). DART nanocarriers first bind red blood cells and then transfer to the target organ's endothelial cells as the bound red blood cells squeeze through capillaries. We show that within minutes after intravascular injection in mice nearly 70% ID of DART nanocarriers accumulate in the target organ (lungs), more than doubling the % ID ceiling achieved by a multitude of prior technologies, finally achieving a majority % ID in a target organ. Humanized DART nanocarriers in ex vivo perfused human lungs recapitulate this phenomenon. Furthermore, DART enhances the selectivity of delivery to target endothelial cells over local phagocytes within the target organ by 6-fold. DART's marked improvement in both organ- and cell-type targeting may thus be helpful in localizing drugs for a multitude of medical applications.

Idioma originalEnglish
Páginas (desde-hasta)4666-4683
Número de páginas18
PublicaciónACS Nano
Volumen16
N.º3
DOI
EstadoPublished - mar 22 2022

Nota bibliográfica

Publisher Copyright:
© 2022 American Chemical Society.

Financiación

This study was supported by the NIH via grants to V.R.M. (HL157189 and HL143806) and J.S.B. (H138269, HL153510) for E.D.H., T.S., V.V.S., J.W.M., O.M.C., Z.W., J.N., X.M., and J.W. E.C. was supported by HL13522. LF was supported by the National Center for Advancing Translational Sciences of the National Institutes of Health under award number TL1TR001880 and NIH 5T32HL007586-34. The content is solely the responsibility of the authors and does not necessarily represent the official views of the National Institutes of Health.

FinanciadoresNúmero del financiador
National Institutes of Health (NIH)H138269, 5T32HL007586-34, HL143806, HL157189, HL13522, HL153510
National Heart, Lung, and Blood Institute (NHLBI)K08HL150226
National Center for Advancing Translational Sciences (NCATS)TL1TR001880

    ASJC Scopus subject areas

    • General Materials Science
    • General Engineering
    • General Physics and Astronomy

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