Synchrotron radiation X-ray phase micro-computed tomography as a new method to detect iron oxide nanoparticles in the brain.

Purpose: The purpose of this study was to introduce synchrotron radiation X-ray phase computed tomography (SR-PCT) as a new method of visualizing ultrasmall superparamagnetic particles of iron oxide (USPIO) distribution into the brains of mice with neuroinflammation.Procedures: The sensitivity of th...

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Detalles Bibliográficos
Publicado en:Molecular Imaging & Biology Vol. 15; no. 5; pp. 552 - 560
Autores principales: Marinescu, M, Langer, M, Durand, A, Olivier, C, Chabrol, A, Rositi, H, Chauveau, F, Cho, T H, Nighoghossian, N, Berthezène, Y, Peyrin, F, Wiart, M
Formato: research Journal Article
Publicado: Springer Nature Oct2013
Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:Purpose: The purpose of this study was to introduce synchrotron radiation X-ray phase computed tomography (SR-PCT) as a new method of visualizing ultrasmall superparamagnetic particles of iron oxide (USPIO) distribution into the brains of mice with neuroinflammation.Procedures: The sensitivity of the technique was assessed by performing back-to-back SR-PCT and magnetic resonance imaging (MRI) in mice stereotaxically injected with a range of USPIO concentrations. Eight mice with cerebral ischemia were then intravenously injected with USPIOs and imaged back-to-back with MRI and SR-PCT.Results: SR-PCT proved sensitive enough to detect iron in nanomolar quantities. In stroke-induced animals, SR-PCT showed hyperintense areas in the regions of MR signal loss and immunostaining for macrophages. SR-PCT, moreover, identified brain anatomy as clearly as histology, without the need for sectioning or staining, with an examination time of 44 min per brain at an isotropic spatial resolution of 8 μm.Conclusion: SR-PCT has potential for cellular imaging in intact brain, with unequaled neuroanatomy.