IP Library Granted Patent US 8,617,522
Granted Patent B2
US 8,617,522 · App. 13/729,815 · Granted Dec 31, 2013

Multimodal nanoparticles for non-invasive bio-imaging

Inventors: Parvesh Sharma (Gainesville, FL); Brij M. Moudgil (Gainesville, FL); Glenn A. Walter (Newberry, FL); Stephen R. Grobmyer (Shaker Heights, OH); Swadeshmukul Santra (Orlando, FL); Huabei Jiang (Gainesville, FL); Scott Chang Brown (Hockessin, DE); Edward W. Scott (Gainesville, FL); Qizhi Zhang (Gainesville, FL); Niclas Bengtsson (Lake Forest Park, WA)
Assignee: University of Florida Research Foundation, Inc.
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Quick Facts
Patent No.
US 8,617,522
App. No.
13/729,815
Granted
Dec 31, 2013
Kind
B2
Abstract

Multimodal nanoparticles are nanoparticles containing contrast agents for PAT and one or more of luminescence imaging, x-ray imaging, and/or MRI. The multimodal nanoparticles can have a dielectric core comprising an oxide with a metal coating on the core. The particles can be metal speckled. The multimodal nanoparticles can be used for therapeutic purposes such as ablation of tumors or by neutron capture in addition to use as contrast agents for imaging.

Claims (14)

1. A method for multimodal bio-imaging comprising:

providing a multimodal nanoparticle comprising a dielectric core comprising at least one oxide, a speckled metal deposition on said core where said metal deposition and said dielectric core have an interface with interpenetrated gradient, and a plurality of at least one moiety that exhibits luminescence, magnetic or paramagnetic properties, or any combination thereof, wherein said multimodal nanoparticle is a contrast agent for photo acoustic tomography (PAT) imaging and x-ray imaging, and at least one of luminescence imaging and/or magnetic resonance (MR) imaging;

introducing said multimodal nanoparticle to a desired location; and

imaging the desired location by photo acoustic tomography (PAT) imaging and at least one of magnetic resonance (MR) imaging, luminescence imaging, or x-ray imaging, wherein said multimodal nanoparticle enhances the contrast observed in said imaging, and wherein said imaging is performed simultaneously or sequentially.

2. A method of therapy comprising:

providing a multimodal nanoparticle comprising a dielectric core comprising at least one oxide, a speckled metal deposition on said core where said metal deposition and said dielectric core have an interface with interpenetrated gradient, and a plurality of at least one moiety that exhibits luminescence, magnetic or paramagnetic properties, or any combination thereof, wherein said multimodal nanoparticle is a contrast agent for photo acoustic tomography (PAT) imaging and x-ray imaging, and at least one of luminescence imaging and/or magnetic resonance (MR) imaging;

delivering said multimodal nanoparticle to a target region; and

irradiating said target region with electromagnetic radiation, wherein said multimodal nanoparticle generates heat upon absorption of said radiation, and wherein said heat is of sufficient intensity to destroy said target region.

3. The method of claim 2 , wherein at least one of said at least one moiety comprises a moiety that exhibits luminescence.

4. A method of therapy comprising:

providing a multimodal nanoparticle comprising a dielectric core comprising at least one oxide, a speckled metal deposition on said core where said metal deposition and said dielectric core have an interface with interpenetrated gradient, and a plurality of at least one moiety that exhibits luminescence, magnetic or paramagnetic properties, or any combination thereof, wherein said multimodal nanoparticle is a contrast agent for photo acoustic tomography (PAT) imaging and x-ray imaging, and at least one of luminescence imaging and/or magnetic resonance (MR) imaging;

delivering said multimodal nanoparticle to a desired target region; and

irradiating said target region with neutrons, wherein said multimodal nanoparticle generates gamma-rays, X-rays and Auger electrons upon absorption of said neutrons, and wherein said emitted gamma rays, X-rays and Auger electrons are of sufficient intensity to destroy said target region.

5. The method of claim 4 , wherein said multimodal particle has a moiety that exhibits luminescence.

Assignments (1)
CONFIRMATORY LICENSE Recorded Nov 28, 2016
From: UNIVERSITY OF FLORIDA
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 040694/0807 →
Continuity (3)
Division 12675633
Provisional Application 60968476 · Aug 28, 2007
Related Publication 20130129633A1 · May 23, 2013