Abstract

Combining two or more imaging modalities to provide complementary information has become commonplace in clinical practice and in preclinical and basic biomedical research. By incorporating the structural information provided by computed tomography (CT) or magnetic resonance imaging (MRI), the ill poseness nature of bioluminescence tomography (BLT) can be reduced significantly, thus improve the accuracies of reconstruction and in vivo quantification. In this paper, we present a small animal imaging system combining multi-view and multi-spectral BLT with MRI. The independent MRI-compatible optical device is placed at the end of the clinical MRI scanner. The small animal is transferred between the light tight chamber of the optical device and the animal coil of MRI via a guide rail during the experiment. After the optical imaging and MRI scanning procedures are finished, the optical images are mapped onto the MRI surface by interactive registration between boundary of optical images and silhouette of MRI. Then, incorporating the MRI structural information, a heterogeneous reconstruction algorithm based on finite element method (FEM) with L 1 normalization is used to reconstruct the position, power and region of the light source. In order to validate the feasibility of the system, we conducted experiments of nude mice model implanted with artificial light source and quantitative analysis of tumor inoculation model with MDA-231-GFP-luc. Preliminary results suggest the feasibility and effectiveness of the prototype system.

Highlights

  • No single modality has the lock on being the best molecular strategy for whole animal imaging under all circumstances [1]

  • The optical tomography techniques incorporating with a prior structural information provided by computed tomography (CT) have been developed, such as fluorescence molecular tomography (FMT) [14], bioluminescence tomography (BLT) [15] and Cerenkov luminescence tomography (CLT) [16]

  • We present a small animal imaging system combing multi-view multi-spectral BLT with magnetic resonance imaging (MRI).The optical device is placed at the end of the clinical MRI scanner to shorten the scanning interval with the maximum possible

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Summary

Introduction

No single modality has the lock on being the best molecular strategy for whole animal imaging under all circumstances [1]. In order to acquire the synchronous optical signal, fiber array and photo-multiplier tube (PMT) [2, 27,28,29,30,31,32] are often used to get deep into the magnetic field They can not offer the high space resolution compared with CCD camera. We present a small animal imaging system combing multi-view multi-spectral BLT with MRI.The optical device is placed at the end of the clinical MRI scanner to shorten the scanning interval with the maximum possible. After mapping the bioluminescent images onto the structural surface of MRI, the BLT reconstruction and quantitative analysis are performed using our previously developed heterogeneous reconstruction algorithm.

System design
BLT reconstruction
Benchmarks
Numerical simulation
In vivo experiment
Experiment on implanted mouse model
In vivo experiment on tumor inoculation model
Linear relation between reconstructed power and number of cells
In vivo experiment on tumor of MDA-231-GFP-luc cell
Conclusion
Full Text
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