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MRI Contrast Agents : From Molecules to Particles / by Sophie Laurent, Céline Henoumont, Dimitri Stanicki, Sébastien Boutry, Estelle Lipani, Sarah Belaid, Robert N. Muller, Luce Vander Elst.

By: Laurent, Sophie,, autor
Contributor(s): Belaid, Sarah,, autor | Boutry, Sébastien,, autor | Henoumont, Céline,, autor | Lipani, Estelle,, autor | Muller, Robert N.,, autor | Stanicki, Dimitri,, autor | Vander Elst, Luce,, autor
Material type: materialTypeLabelE-bookSeries: (SpringerBriefs in Applied Sciences and Technology, 2191-530X).Publisher: Singapore : Springer, 2017Description: 1 recurso en línea (VII, 125 páginas) : ilustraciones (algunas a color).ISBN: 9789811025273; 9789811025297; 9811025274; 9811025290.Subject: Ingeniería biomédicaOnline resources: Acceso a este recurso digital (usuarios Universidad Europea de Madrid)Digital Resources
Contents:
Nanomaterials in medicine -- Magnetic properties (diamagnetism, paramagnetism, ferromagnetism, ferrimagnetism, antiferromagnetism, superparamagnetism) -- Imaging probes -- Magnetic resonance imaging (MRI) -- Bases of MRI -- MRI contrast agents -- Paramagnetic gadolinium complexes -- Superparamagnetic iron oxide nanoparticles -- Synthesis of magnetic nanoparticles -- Stabilization of magnetic nanoparticles -- Physico-chemical characterization of nanoparticles -- MRI applications -- Conclusions.
Abstract: This book describes the multiple aspects of (i) preparation of the magnetic core, (ii) the stabilization with different coatings, (iii) the physico-chemical characterization and (iv) the vectorization to obtain specific nanosystems. Several bio-applications are also presented in this book. In the early days of Magnetic Resonance Imaging (MRI), paramagnetic ions were proposed as contrast agents to enhance the diagnostic quality of MR images. Since then, academic and industrial efforts have been devoted to the development of new and more efficient molecular, supramolecular and nanoparticular systems. Old concepts and theories, like paramagnetic relaxation, were revisited and exploited, leading to new scientific tracks. With their high relaxivity payload, the superparamagnetic nanoparticles are very appealing in the context of molecular imaging but challenges are still numerous: absence of toxicity, specificity, ability to cross the biological barriers, etc.
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Holdings
Item type Current library Collection Call number Status Date due Barcode Item holds
LIBRO-E NO PRÉSTAMO LIBRO-E NO PRÉSTAMO Madrid Digital Acceso Electrónico (UEM) Ciencias de la Salud RC78.7.C65 L387 2017 EB (Browse shelf(Opens below)) Acceso electrónico eBook.20023118
Total holds: 0

SpringerLink Springer Engineering eBooks 2017 English+International

Incluye referencias bibliográficas

Nanomaterials in medicine -- Magnetic properties (diamagnetism, paramagnetism, ferromagnetism, ferrimagnetism, antiferromagnetism, superparamagnetism) -- Imaging probes -- Magnetic resonance imaging (MRI) -- Bases of MRI -- MRI contrast agents -- Paramagnetic gadolinium complexes -- Superparamagnetic iron oxide nanoparticles -- Synthesis of magnetic nanoparticles -- Stabilization of magnetic nanoparticles -- Physico-chemical characterization of nanoparticles -- MRI applications -- Conclusions.

This book describes the multiple aspects of (i) preparation of the magnetic core, (ii) the stabilization with different coatings, (iii) the physico-chemical characterization and (iv) the vectorization to obtain specific nanosystems. Several bio-applications are also presented in this book. In the early days of Magnetic Resonance Imaging (MRI), paramagnetic ions were proposed as contrast agents to enhance the diagnostic quality of MR images. Since then, academic and industrial efforts have been devoted to the development of new and more efficient molecular, supramolecular and nanoparticular systems. Old concepts and theories, like paramagnetic relaxation, were revisited and exploited, leading to new scientific tracks. With their high relaxivity payload, the superparamagnetic nanoparticles are very appealing in the context of molecular imaging but challenges are still numerous: absence of toxicity, specificity, ability to cross the biological barriers, etc.

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