| Literature DB >> 30306755 |
Omprakash Gottam1, Naren Naik1,2, Sanjay Gambhir3.
Abstract
Pharmacokinetic tomography is emerging as an important methodology for detecting abnormalities in tissue based upon spatially varying estimation of the pharmacokinetic rates governing the leakage of an injected fluorophore between blood plasma and tissue. We present a shape-based reconstruction framework of a compartment-model based formulation of this dynamic fluorescent optical tomography problem to solve for the pharmacokinetic rates and concentrations of the fluorophore from time-varying log intensity measurements of the optical signal. The compartment-model based state variable model is set up in a radial basis function parameterized level set setting. The state (concentrations) and (pharmacokinetic) parameter estimation problem is solved with an iteratively regularized Gauss-Newton filter in a trust-region framework. Reconstructions obtained using this scheme for noisy data obtained from cancer mimicking numerical phantoms of near/sub-cm sizes show a good localization of the affected regions and reasonable estimates of the pharmacokinetic rates and concentration curves.Entities:
Keywords: early cancer detection; fluorescence optical tomography; functional imaging; level-set based reconstructions; parameterized level sets; pharmacokinetic tomography; regularized Gauss–Newton filter
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Year: 2018 PMID: 30306755 PMCID: PMC6975229 DOI: 10.1117/1.JBO.24.3.031010
Source DB: PubMed Journal: J Biomed Opt ISSN: 1083-3668 Impact factor: 3.170