Dynamic dual-tracer MRI-guided fluorescence tomography to quantify receptor density in vivo

Scott C. Davis(Dartmouth College), Kimberley S. Samkoe, Kenneth M. Tichauer(Dartmouth College), Kristian J. Sexton(Dartmouth College), Jason R. Gunn(Dartmouth College), Sophie J. Deharvengt(Dartmouth College), Tayyaba Hasan(Harvard University), Brian W. Pogue(Dartmouth College)
Proceedings of the National Academy of Sciences
May 13, 2013
Cited by 86Open Access
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Abstract

The up-regulation of cell surface receptors has become a central focus in personalized cancer treatment; however, because of the complex nature of contrast agent pharmacokinetics in tumor tissue, methods to quantify receptor binding in vivo remain elusive. Here, we present a dual-tracer optical technique for noninvasive estimation of specific receptor binding in cancer. A multispectral MRI-coupled fluorescence molecular tomography system was used to image the uptake kinetics of two fluorescent tracers injected simultaneously, one tracer targeted to the receptor of interest and the other tracer a nontargeted reference. These dynamic tracer data were then fit to a dual-tracer compartmental model to estimate the density of receptors available for binding in the tissue. Applying this approach to mice with deep-seated gliomas that overexpress the EGF receptor produced an estimate of available receptor density of 2.3 ± 0.5 nM (n = 5), consistent with values estimated in comparative invasive imaging and ex vivo studies.


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