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1.
ILAR J ; 57(2): 212-220, 2016 12.
Article in English | MEDLINE | ID: mdl-28053073

ABSTRACT

It is well understood that the biopharmaceutical industry must improve efficiency along the path from laboratory concept to commercial product. In vivo imaging is recognized as a useful method to provide biomarkers for target engagement, treatment response, safety, and mechanism of action. Imaging biomarkers have the potential to inform the selection of drugs that are more likely to be safe and effective. Most of the imaging modalities for biopharmaceutical research are translatable to the clinic. In vivo imaging does not require removal of tissue to provide biomarkers, thus reducing the number of valuable preclinical subjects required for a study. Longitudinal imaging allows for quantitative intra-subject comparisons, enhancing statistical power, and further reducing the number of subjects needed for the evaluation of treatment effects in animal models. The noninvasive nature of in vivo imaging also provides a valuable approach to alleviate or minimize potential pain, suffering or distress.


Subject(s)
Animal Use Alternatives , Diagnostic Imaging/methods , Animals , Biomarkers , Humans , Models, Animal , Research
2.
Atherosclerosis ; 204(1): 55-65, 2009 May.
Article in English | MEDLINE | ID: mdl-19135672

ABSTRACT

Improved methods for non-invasive in vivo assessment are needed to guide development of animal models of atherosclerosis and to evaluate target engagement and in vivo efficacy of new drugs. Using novel 3D-micro-ultrasound technology, we developed and validated a novel protocol for 3D acquisition and analysis of imaging to follow lesion progression in atherosclerotic mice. The carotid arteries of ApoE receptor knockout mice and normal control mice were imaged within the proximal 2mm from the aortic branch point. Plaque volume along that length was quantified using a semi-automated 3D segmentation algorithm. Volumes derived by this method were compared to those calculated using 3-D histology post-mortem. Bland-Altman comparison revealed close correlation between these two measures of plaque volume. Furthermore, using a segmentation technique that captures early positive and 33 week negative remodeling, we found evidence that plaque volume increases linearly over time. Each animal and each plaque served as its own control, allowing accurate comparison. The high fidelity anatomical registration of this protocol provides increased spatial resolution and therefore greater sensitivity for measurement of plaque wall size, an advance over 2-dimensional measures of intimal-medial-thickening. Further, 3-dimensional analysis ensures a point of registration that captures functional markers in addition to the standard structural markers that characterize experimental atherosclerosis. In conclusion, this novel imaging protocol provides a non-invasive, accurate surrogate marker for experimental atherosclerosis over the life of the entire lesion.


Subject(s)
Carotid Artery Diseases/diagnostic imaging , Carotid Artery, Common/diagnostic imaging , Image Interpretation, Computer-Assisted , Imaging, Three-Dimensional , Microscopy, Acoustic , Algorithms , Animals , Apolipoproteins E/deficiency , Apolipoproteins E/genetics , Automation , Disease Models, Animal , Disease Progression , Mice , Mice, Inbred C57BL , Mice, Knockout , Predictive Value of Tests , Reproducibility of Results , Sensitivity and Specificity , Time Factors
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