Biomedical Engineering Reference
In-Depth Information
[72] Kruger rA, Lam rB, reinecke dr, del rio SP, doyle rP. Photoacoustic angiography
of the breast. Med Phys 2010; 37 :6096-6100.
[73] gamelin J, Maurudis A, Aguirre A, Huang F, guo PY, Wang LV, Zhu Q. A real-time
photoacoustic tomography system for small animals. opt Express 2009; 17 :10489-10498.
[74] Xia J, guo Z, Maslov K, Aguirre A, Zhu Q, Percival C, Wang LV. Three-dimensional
photoacoustic tomography based on the focal-line concept. J Biomed opt 2011; 16 :090505.
[75] Xie Z, Jiao S, Zhang HF, Puliafito CA. Laser-scanning optical-resolution photoacoustic
microscopy. opt Lett 2009; 34 :1771-1773.
[76] Kim C, Cho EC, Chen J, Song KH, Au L, Favazza C, Zhang Q, Cobley CM, gao F, Xia
Y, Wang LV. In vivo molecular photoacoustic tomography of melanomas targeted by
bioconjugated gold nanocages. ACS nano 2010; 4 :4559-4564.
[77] Hu S, Maslov K, Wang LV. Second-generation optical-resolution photoacoustic micros-
copy with improved sensitivity and speed. opt Lett 2011; 36 :1134-1136.
[78] nuster r, gruen H, reitinger B, Burgholzer P, gratt S, Passler K, Paltauf g. downstream
Fabry-Perot interferometer for acoustic wave monitoring in photoacoustic tomography.
opt Lett 2011; 36 :981-983.
[79] Zhang E, Laufer J, Beard P. Backward-mode multiwavelength photoacoustic scanner
using a planar Fabry-Perot polymer film ultrasound sensor for high-resolution
three-dimensional imaging of biological tissues. Appl opt 2008; 47 :561-577.
[80] oMLC. 2001. Available at http://omlc.ogi.edu/spectra/. Accessed June 3, 2014.
[81] Zhang C, Maslov K, Wang LV. Subwavelength-resolution label-free photoacoustic
microscopy of optical absorption in vivo . opt Lett 2010; 35 :3195-3197.
[82] Wikipedia.org. 2012. near-infrared window in biological tissue. Available at http://
en.wikipedia.org. Accessed June 3, 2014.
[83] Song KH, Stein EW, Margenthaler JA, Wang LV. noninvasive photoacoustic identification
of sentinel lymph nodes containing methylene blue in vivo in a rat model. J Biomed opt
2008; 13 :054033.
[84] Kim C, Jeon M, Wang LV. nonionizing photoacoustic cystography in vivo . opt Lett
2011; 36 :3599-3601.
[85] Kim C, Song KH, gao F, Wang LHV. Sentinel lymph nodes and lymphatic vessels: non-
invasive dual-modality in vivo mapping by using indocyanine green in rats-volumetric
spectroscopic photoacoustic imaging and planar fluorescence imaging. radiology
2010; 255 :442-450.
[86] Li W, Brown PK, Wang LV, Xia Y. gold nanocages as contrast agents for photoacoustic
imaging. Contrast Media Mol Imaging 2011; 6 :370-377.
[87] Yang X, Stein EW, Ashkenazi S, Wang LV. nanoparticles for photoacoustic imaging.
Wiley Interdiscip rev nanomed nanobiotechnol 2009; 1 :360-368.
[88] Yuan Z, Jiang H. Photoacoustic tomography for imaging nanoparticles. Methods Mol
Biol 2010; 624 :309-324.
[89] Zhang Q, Iwakuma n, Sharma P, Moudgil BM, Wu C, Mcneill J, Jiang H, grobmyer Sr.
gold nanoparticles as a contrast agent for in vivo tumor imaging with photoacoustic
tomography. nanotechnology 2009; 20 :395102.
[90] Koo YE, reddy gr, Bhojani M, Schneider r, Philbert MA, rehemtulla A, ross Bd,
Kopelman r. Brain cancer diagnosis and therapy with nanoplatforms. Adv drug deliv
rev 2006; 58 :1556-1577.
Search WWH ::




Custom Search