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PMID: 19608968 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Hybrid in vivo FMT-CT imaging of protease activity in atherosclerosis with customized nanosensors.

Arteriosclerosis, thrombosis, and vascular biology ·Vol. 29 ·No. 10 ·2009-10-00 ·Pages 1444-51

Nahrendorf M, Waterman P, Thurber G, Groves K, Rajopadhye M, Panizzi P, Marinelli B, Aikawa E, Pittet MJ, Swirski FK, Weissleder R

Abstract

Proteases are emerging biomarkers of inflammatory diseases. In atherosclerosis, these enzymes are often secreted by inflammatory macrophages, digest the extracellular matrix of the fibrous cap, and destabilize atheromata. Protease function can be monitored with protease activatable imaging probes and quantitated in vivo by fluorescence molecular tomography (FMT). To address 2 major constraints currently associated with imaging of murine atherosclerosis (lack of highly sensitive probes and absence of anatomic information), we compared protease sensors (PS) of variable size and pharmacokinetics and coregistered FMT datasets with computed tomography (FMT-CT). Coregistration of FMT and CT was achieved with a multimodal imaging cartridge containing fiducial markers detectable by both modalities. A high-resolution CT angiography protocol accurately localized fluorescence to the aortic root of atherosclerotic apoE(-/-) mice. To identify suitable sensors, we first modeled signal kinetics in-silico and then compared 3 probes with oligo-L-lysine cleavage sequences: PS-5, 5 nm in diameter containing 2 fluorochromes, PS-25, a 25-nm version with an elongated lysine chain and PS-40, a polymeric nanoparticle. Serial FMT-CT showed fastest kinetics for PS-5 but, surprisingly, highest fluorescence in lesions of the aortic root for PS-40. PS-40 robustly reported therapeutic effects of atorvastatin, corroborated by ex vivo imaging and qPCR for the model protease cathepsin B. FMT-CT is a robust and observer-independent tool for noninvasive assessment of inflammatory murine atherosclerosis. Reporter-containing nanomaterials may have unique advantages over small molecule agents for in vivo imaging.

MeSH Terms
Animals Apolipoproteins E/physiology Atherosclerosis/diagnosis,enzymology Biosensing Techniques/methods Flow Cytometry Half-Life Mice Mice, Inbred C57BL Microscopy, Fluorescence/methods Models, Biological Nanoparticles Peptide Hydrolases/metabolism Tomography, X-Ray Computed/methods
Chemicals
Apolipoproteins E Peptide Hydrolases
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
Nahrendorf Matthias
Center for Systems Biology, Massachusetts General Hospital and Harvard Medical School, Boston, MA, USA.
Waterman Peter
Thurber Greg
Groves Kevin
Rajopadhye Milind
Panizzi Peter
Marinelli Brett
Aikawa Elena
Pittet Mikael J
Swirski Filip K
Weissleder Ralph
References (25)
25 references, click to expand
  1. Coronary plaque disruption.
    Circulation. 1995 Aug 1;92(3):657-71 PMID: 7634481
  2. Nanoparticle PET-CT imaging of macrophages in inflammatory atherosclerosis.
    Circulation. 2008 Jan 22;117(3):379-87 PMID: 18158358
  3. The healing myocardium sequentially mobilizes two monocyte subsets with divergent and complementary functions.
    J Exp Med. 2007 Nov 26;204(12):3037-47 PMID: 18025128
  4. Cell-specific targeting of nanoparticles by multivalent attachment of small molecules.
    Nat Biotechnol. 2005 Nov;23(11):1418-23 PMID: 16244656
  5. Effect of low dose atorvastatin versus diet-induced cholesterol lowering on atherosclerotic lesion progression and inflammation in apolipoprotein E*3-Leiden transgenic mice.
    Arterioscler Thromb Vasc Biol. 2005 Jan;25(1):161-7 PMID: 15514207
  6. Real-time catheter molecular sensing of inflammation in proteolytically active atherosclerosis.
    Circulation. 2008 Oct 28;118(18):1802-9 PMID: 18852366
  7. Atherosclerosis in the apolipoprotein-E-deficient mouse: a decade of progress.
    Arterioscler Thromb Vasc Biol. 2004 Jun;24(6):1006-14 PMID: 15087308
  8. Interspecies scaling of clearance and volume of distribution for horse antivenom F(ab')2.
    Toxicol Appl Pharmacol. 1998 Jun;150(2):295-300 PMID: 9653060
  9. Multimodality cardiovascular molecular imaging, Part II.
    Circ Cardiovasc Imaging. 2009 Jan;2(1):56-70 PMID: 19808565
  10. Lysosomal cysteine proteases in atherosclerosis.
    Arterioscler Thromb Vasc Biol. 2004 Aug;24(8):1359-66 PMID: 15178558
  11. Atherosclerosis inflammation imaging with 18F-FDG PET: carotid, iliac, and femoral uptake reproducibility, quantification methods, and recommendations.
    J Nucl Med. 2008 Jun;49(6):871-8 PMID: 18483100
  12. Molecular imaging of activated matrix metalloproteinases in vascular remodeling.
    Circulation. 2008 Nov 4;118(19):1953-60 PMID: 18936327
  13. Fluorescence molecular tomography resolves protease activity in vivo.
    Nat Med. 2002 Jul;8(7):757-60 PMID: 12091907
  14. Noninvasive vascular cell adhesion molecule-1 imaging identifies inflammatory activation of cells in atherosclerosis.
    Circulation. 2006 Oct 3;114(14):1504-11 PMID: 17000904
  15. Dual channel optical tomographic imaging of leukocyte recruitment and protease activity in the healing myocardial infarct.
    Circ Res. 2007 Apr 27;100(8):1218-25 PMID: 17379832
  16. Scintigraphic imaging of matrix metalloproteinase activity in the arterial wall in vivo.
    Circulation. 2004 Jun 1;109(21):2554-9 PMID: 15123523
  17. Imaging in the era of molecular oncology.
    Nature. 2008 Apr 3;452(7187):580-9 PMID: 18385732
  18. Imaging of atherosclerotic cardiovascular disease.
    Nature. 2008 Feb 21;451(7181):953-7 PMID: 18288186
  19. Multimodality cardiovascular molecular imaging, part I.
    Circ Cardiovasc Imaging. 2008 Nov;1(3):244-56 PMID: 19808549
  20. Inflammation in atherosclerosis.
    Nature. 2002 Dec 19-26;420(6917):868-74 PMID: 12490960
  21. Imaging atherosclerotic plaque inflammation with [18F]-fluorodeoxyglucose positron emission tomography.
    Circulation. 2002 Jun 11;105(23):2708-11 PMID: 12057982
  22. Characterization of aortic root atherosclerosis in ApoE knockout mice: high-resolution in vivo and ex vivo MRM with histological correlation.
    Magn Reson Med. 2003 Feb;49(2):381-5 PMID: 12541260
  23. Atherosclerosis and matrix metalloproteinases: experimental molecular MR imaging in vivo.
    Radiology. 2009 May;251(2):429-38 PMID: 19224894
  24. Shedding light onto live molecular targets.
    Nat Med. 2003 Jan;9(1):123-8 PMID: 12514725
  25. In vivo imaging of proteolytic activity in atherosclerosis.
    Circulation. 2002 Jun 11;105(23):2766-71 PMID: 12057992
Article Info
Journal
Arteriosclerosis, thrombosis, and vascular biology
Abbr.
Arterioscler Thromb Vasc Biol
ISSN
1524-4636
Published
2009-10-00
Epub
2009-00-16
Pages
1444-51
Language
English
Region
United States
NLM ID
9505803
PMCID
PMC2746251
Subset
IM
Grants
NHLBI NIH HHS · UO1-HL08073 · United States
NHLBI NIH HHS · U01 HL080731 · United States
NHLBI NIH HHS · R00 HL094533 · United States
NIBIB NIH HHS · R01 EB006432 · United States
NCI NIH HHS · R24-CA92782 · United States
NHLBI NIH HHS · U01 HL080731-04 · United States
NCI NIH HHS · R24 CA092782 · United States
NCI NIH HHS · R24 CA092782-04 · United States
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