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Biofunctionalized Prussian Blue Nanoparticles for Multimodal Molecular Imaging Applications
Published on: April 28, 2015
Biocompatible NaLn(WO4)2 core-shell nanoplatelets for multimodal MRI contrast, NIR imaging, and high sensitivity
Carlos Alarcón-Fernández1, Carlos Zaldo1, Manuel Bañobre-López2
1Instituto de Ciencia de Materiales de Madrid, Consejo Superior de Investigaciones Científicas, c/Sor Juana Inés de la Cruz 3, 28049 Madrid, Spain. ccascales@icmm.csic.es.
Abstract:
Multifunctional nanoprobes combining magnetic resonance imaging (MRI) contrast as well as near infrared (NIR) imaging and thermometry are demonstrated by using quasi-bidimensional core-multishell nanostructures based on the scheelite-like NaLn(WO4)2 host (Ln = trivalent lanthanide). These nanostructures are composed of a NaHo(WO4)2 core, plus a first shell of Tm,Yb:NaGd(WO4)2, and a second shell of Nd,Yb:NaGd(WO4)2. Proton nuclear magnetic relaxation dispersion studies and MRI of water dispersions of nanoprobes, whose quasi-bidimensional geometries promote the interaction of Gd3+ with water protons, reveal behaviors evolving from a T1-weighted MR contrast agent (CA) at 1.5 T to a highly effective T2-weighted MR CA at ultrahigh magnetic fields of 7 T and above, and even a dual T1/T2-weighted CA at a clinical 3 T magnetic field. By NIR excitation (λEXC ∼ 803 nm) of Nd3+, luminescence-based thermometry was accomplished at wavelengths within the second biological transparency window (II-BW) through ratiometric analysis of 4F3/2 → 4I11/2 Nd3+ (λ = 1058 nm) and 2F5/2 → 2F7/2 Yb3+ (λ = 996 nm) emissions. Under a biologically safe excitation of 0.68 W cm-2, a chemically stable 2 mg mL-1 nanoprobe water dispersion presents absolute, SA, and relative, SR, thermal sensitivities as remarkable as SA = 480 × 10-4 K-1, and SR = 0.89% K-1 at 40 °C (313 K), and temperature resolution δ ≈ 0.1 K. Moreover, through efficient Nd3+ → Yb3+ → Tm3+ and Nd3+ → Yb3+ → Ho3+ energy transfers, NIR photoluminescence from Tm3+ at ∼1800 nm and Ho3+ at ∼2000 nm facilitates in depth imaging. The low nanoprobe cytotoxicity allows NIR biolabeling during cellular temperature measurement.
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