A high-precision contrast injector for small animal x-ray digital subtraction angiography

de Lin, M., Ning, L., Badea, C. T., Mistry, N. N., Qi, Y., & Johnson, G. A. (2008). A high-precision contrast injector for small animal x-ray digital subtraction angiography. Ieee Trans Biomed Eng, 55(3), 1082–1091. https://doi.org/10.1109/TBME.2007.909541

A micro-CT analysis of murine lung recruitment in bleomycin-induced lung injury

Shofer, S., Badea, C., Qi, Y., Potts, E., Foster, W. M., & Johnson, G. A. (2008). A micro-CT analysis of murine lung recruitment in bleomycin-induced lung injury. J Appl Physiol (1985), 105(2), 669–677. https://doi.org/10.1152/japplphysiol.00980.2007

Application of MOSFET detectors for dosimetry in small animal radiography using short exposure times

De Lin, M., Toncheva, G., Nguyen, G., Kim, S., Anderson-Evans, C., Johnson, G. A., & Yoshizumi, T. T. (2008). Application of MOSFET detectors for dosimetry in small animal radiography using short exposure times. Radiat Res, 170(2), 260–263. https://doi.org/10.1667/RR1328.1

Automated segmentation of the actively stained mouse brain using multi-spectral MR microscopy

Sharief, A. A., Badea, A., Dale, A. M., & Johnson, G. A. (2008). Automated segmentation of the actively stained mouse brain using multi-spectral MR microscopy. Neuroimage, 39(1), 136–145. https://doi.org/10.1016/j.neuroimage.2007.08.028

Design of a superconducting volume coil for magnetic resonance microscopy of the mouse brain

Nouls, J. C., Izenson, M. G., Greeley, H. P., & Johnson, G. A. (2008). Design of a superconducting volume coil for magnetic resonance microscopy of the mouse brain. J Magn Reson, 191(2), 231–238. https://doi.org/10.1016/j.jmr.2007.12.018

Four-dimensional MR microscopy of the mouse heart using radial acquisition and liposomal gadolinium contrast agent

Bucholz, E., Ghaghada, K., Qi, Y., Mukundan, S., & Johnson, G. A. (2008). Four-dimensional MR microscopy of the mouse heart using radial acquisition and liposomal gadolinium contrast agent. Magn Reson Med, 60(1), 111–118. https://doi.org/10.1002/mrm.21618

Geometric calibration for a dual tube/detector micro-CT system

Johnston, S. M., Johnson, G. A., & Badea, C. T. (2008). Geometric calibration for a dual tube/detector micro-CT system. Med Phys, 35(5), 1820–1829. https://doi.org/10.1118/1.2900000

High-resolution magnetic resonance histology of the embryonic and neonatal mouse: a 4D atlas and morphologic database

Petiet, A. E., Kaufman, M. H., Goddeeris, M. M., Brandenburg, J., Elmore, S. A., & Johnson, G. A. (2008). High-resolution magnetic resonance histology of the embryonic and neonatal mouse: a 4D atlas and morphologic database. Proc Natl Acad Sci U S A, 105(34), 12331–12336. https://doi.org/10.1073/pnas.0805747105

Imaging Techniques for Small Animal Imaging Models of Pulmonary Disease: Micro-CT

Johnson, K., Badea, C., Hedlund, L., & Johnson, G. A. (2008). Imaging techniques for small animal imaging models of pulmonary disease: Micro-CT (Toxicologic Pathology (2007) 35, 5 (9-64)). Toxicologic Pathology, 36(6). https://doi.org/10.1177/0192623308323921

In vivo small-animal imaging using micro-CT and digital subtraction angiography

Badea, C. T., Drangova, M., Holdsworth, D. W., & Johnson, G. A. (2008). In vivo small-animal imaging using micro-CT and digital subtraction angiography. Phys Med Biol, 53(19), R319–R350. https://doi.org/10.1088/0031-9155/53/19/R01

Intracardiac septation requires hedgehog-dependent cellular contributions from outside the heart

Goddeeris, M. M., Rho, S., Petiet, A., Davenport, C. L., Johnson, G. A., Meyers, E. N., & Klingensmith, J. (2008). Intracardiac septation requires hedgehog-dependent cellular contributions from outside the heart. Development, 135(10), 1887–1895. https://doi.org/10.1242/dev.016147

Left ventricle volume measurements in cardiac micro-CT: the impact of radiation dose and contrast agent

Badea, C. T., Wetzel, A. W., Mistry, N., Pomerantz, S., Nave, D., & Johnson, G. A. (2008). Left ventricle volume measurements in cardiac micro-CT: the impact of radiation dose and contrast agent. Comput Med Imaging Graph, 32(3), 239–250. https://doi.org/10.1016/j.compmedimag.2007.12.004

Multispectral imaging with three-dimensional rosette trajectories

Bucholz, E. K., Song, J., Johnson, G. A., & Hancu, I. (2008). Multispectral imaging with three-dimensional rosette trajectories. Magn Reson Med, 59(3), 581–589. https://doi.org/10.1002/mrm.21551

Optical clearing of unsectioned specimens for three-dimensional imaging via optical transmission and emission tomography

Oldham, M., Sakhalkar, H., Oliver, T., Allan Johnson, G., & Dewhirst, M. (2008). Optical clearing of unsectioned specimens for three-dimensional imaging via optical transmission and emission tomography. J Biomed Opt, 13(2), 021113. https://doi.org/10.1117/1.2907968

Pulmonary perfusion imaging in the rodent lung using dynamic contrast-enhanced MRI

Mistry, N. N., Pollaro, J., Song, J., De Lin, M., & Johnson, G. A. (2008). Pulmonary perfusion imaging in the rodent lung using dynamic contrast-enhanced MRI. Magn Reson Med, 59(2), 289–297. https://doi.org/10.1002/mrm.21353