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Targeted nanoparticles for the non-invasive detection of traumatic brain injury by optical imaging and fluorine magnetic resonance imaging 被引量:3

Targeted nanoparticles for the non-invasive detection of traumatic brain injury by optical imaging and fluorine magnetic resonance imaging
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摘要 Necrosis is a form of cell death that occurs only under pathological conditions such as ischemic diseases and traumatic brain injury (TBI). Non-invasive imaging of the affected tissue is a key component of novel therapeutic interventions and measurement of treatment responses in patients. Here, we report a bimodal approach for the detection and monitoring of TBI. PEGylated poly(lactic-coglycolic acid) (PLGA) nanoparticles (NPs), encapsulating both near infrared (NIR) fluorophores and perfluorocarbons (PFCs), were targeted to necrotic ceils. We used cyanine dyes such as IRDye 800CW, for which we have previously demonstrated specific targeting to intracellular proteins of cells that have lost membrane integrity. Here, we show specific in vivo detection of necrosis by optical imaging and fluorine magnetic resonance imaging (^19F MRI) using newly designed PLGA NP(NIR700 + PFC)-PEG-800CW. Quantitative ex vivo optical imaging and ^19F MR spectroscopy of NIR-PFC content in injured brain regions and in major organs were well correlated. Both modalities allowed the in vivo identification of necrotic brain lesions in a mouse model of TBI, with optical imaging being more sensitive than ^19F MRI. Our results confirm increased blood pool residence time of PLGA NPs coated with a PEG layer and the successful targeting of TBI-damaged tissue. A single PLGA NP containing NIR-PFC enables both rapid qualitative optical monitoring of the TBI state and quantitative 3D information from deeper tissues on the extent of the lesion by MRI. These necrosis-targeting PLGA NPs can potentially be used for clinical diagnosis of brain injuries. Necrosis is a form of cell death that occurs only under pathological conditions such as ischemic diseases and traumatic brain injury (TBI). Non-invasive imaging of the affected tissue is a key component of novel therapeutic interventions and measurement of treatment responses in patients. Here, we report a bimodal approach for the detection and monitoring of TBI. PEGylated poly(lactic-coglycolic acid) (PLGA) nanoparticles (NPs), encapsulating both near infrared (NIR) fluorophores and perfluorocarbons (PFCs), were targeted to necrotic ceils. We used cyanine dyes such as IRDye 800CW, for which we have previously demonstrated specific targeting to intracellular proteins of cells that have lost membrane integrity. Here, we show specific in vivo detection of necrosis by optical imaging and fluorine magnetic resonance imaging (^19F MRI) using newly designed PLGA NP(NIR700 + PFC)-PEG-800CW. Quantitative ex vivo optical imaging and ^19F MR spectroscopy of NIR-PFC content in injured brain regions and in major organs were well correlated. Both modalities allowed the in vivo identification of necrotic brain lesions in a mouse model of TBI, with optical imaging being more sensitive than ^19F MRI. Our results confirm increased blood pool residence time of PLGA NPs coated with a PEG layer and the successful targeting of TBI-damaged tissue. A single PLGA NP containing NIR-PFC enables both rapid qualitative optical monitoring of the TBI state and quantitative 3D information from deeper tissues on the extent of the lesion by MRI. These necrosis-targeting PLGA NPs can potentially be used for clinical diagnosis of brain injuries.
出处 《Nano Research》 SCIE EI CAS CSCD 2016年第5期1276-1289,共14页 纳米研究(英文版)
关键词 imaging NANOPARTICLES contrast agents magnetic resonance imaging brain injury STROKE imaging,nanoparticles,contrast agents,magnetic resonance imaging,brain injury,stroke
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  • 1Blankenberg, F. G. Monitoring of treatment-induced apoptosis in oncology with PET and SPECT. Curr. Pharm. Des. 2008, 14, 2974-2982.
  • 2Wolters, S. L.; Corsten, M. F.; Reutelingsperger, C. P.; Narula, J.; Hofstra, L. Cardiovascular molecular imaging of apoptosis. Eur. J. Nucl. Med. Mol. Imaging 2007, 34, $86-$98.
  • 3Laufer, E. M.; Winkens, H. M.; Corsten, M. F.; Reute- lingsperger, C. P.; Narula, J.; Hofstra, L. PET and SPECT imaging of apoptosis in vulnerable atherosclerotic plaques with radiolabeled Annexin A5. Q. J. Nucl. Med. Mol. Imaging 2009, 53, 26-34.
  • 4Medarova, Z.; Bonner-Weir, S.; Lipes, M.; Moore, A. Imaging β-cell death with a near-infrared probe. Diabetes 2005, 54, 1780-1788.
  • 5Smith, B. A.; Smith, B. D. Biomarkers and molecular probes for cell death imaging and targeted therapeutics. Bioconjugate Chem. 2012, 23, 1989-2006.
  • 6James, M. L.; Gambhir, S. S. A molecular imaging primer: Modalities, imaging agents, and applications. Physiol. Rev. 2012, 92, 897-965.
  • 7Leblond, F.; Davis, S. C.; Vald6s, P. A.; Pogue, B. W. Pre-clinical whole-body fluorescence imaging: Review of instruments, methods and applications. J. Photochem. Photobiol. B 2010, 98, 77-94.
  • 8Willmann, J. K.; van Bruggen, N.; Dinkelborg, L. M.; Gambhir, S. S. Molecular imaging in drug development. Nat. Rev. Drug Discov. 2008, 7, 591~507.
  • 9Shaffer, T. H.; Wolfson, M. R. Liquid ventilation: An alternative ventilation strategy for management of neonatal respiratory distress. Eur. J. Pediatr. 1996, 155, $30-$34.
  • 10Castro, C. I.; Briceno, J. C. Perfluorocarbon-based oxygen carriers: Review of products and trials. Artif. Organs 2010, 34, 622-634.

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