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Adaptive synthetic-aperture focusing technique for microvasculature imaging using photoacoustic microscopy |
Optics Express, Vol. 20, Issue 7, pp. 7555-7563 (2012)
http://dx.doi.org/10.1364/OE.20.007555
Acrobat PDF (2674 KB)
Abstract
To improve the lateral resolution of the blood vessels along arbitrary direction out of focus in photoacoustic microscopy (PAM), we propose an adaptive synthetic-aperture focusing technique (ASAFT) for microvasculature imaging which can be automatically applied to each branch of blood vessels, based on our previous two-dimensional (2D) SAFT. The ASAFT is validated both in the phantom study and in vivo imaging. The results demonstrate that ASAFT can provide images of blood vessels with better lateral resolution both at different depths and along various directions compared with one-dimensional and 2D SAFT.
© 2012 OSA
1. Introduction
S. Hu and L. V. Wang, “Photoacoustic imaging and characterization of the microvasculature,” J. Biomed. Opt. 15(1), 011101 (2010). [CrossRef] [PubMed]
J. P. Culver, T. Durduran, D. Furuya, C. Cheung, J. H. Greenberg, and A. G. Yodh, “Diffuse optical tomography of cerebral blood flow, oxygenation, and metabolism in rat during focal ischemia,” J. Cereb. Blood Flow Metab. 23(8), 911–924 (2003). [CrossRef] [PubMed]
A. M. Mendonca and A. Campilho, ““Segmentation of retinal blood vessels by combining the detection of centerlines and morphological reconstruction,” IEEE,” IEEE Trans. Med. Imag. 25(9), 1200–1213 (2006). [CrossRef]
A. M. Mendonca and A. Campilho, ““Segmentation of retinal blood vessels by combining the detection of centerlines and morphological reconstruction,” IEEE,” IEEE Trans. Med. Imag. 25(9), 1200–1213 (2006). [CrossRef]
A. Livnat, M. Tolmasov, E. B. Michaely, and A. Mayevsky, “Real-time monitoring of mitochondrial function and cerebral blood flow following focal ischemia in rats,” J. Innovative Opt. Health Sci. 1(01), 63–69 (2008). [CrossRef]
A. Durukan and T. Tatlisumak, “Acute ischemic stroke: overview of major experimental rodent models, pathophysiology, and therapy of focal cerebral ischemia,” Pharmacol. Biochem. Behav. 87(1), 179–197 (2007). [CrossRef] [PubMed]
J. R. Less, T. C. Skalak, E. M. Sevick, and R. K. Jain, “Microvascular architecture in a mammary carcinoma: branching patterns and vessel dimensions,” Cancer Res. 51(1), 265–273 (1991). [PubMed]
Y. Q. Lao, D. Xing, S. H. Yang, and L. Z. Xiang, “Noninvasive photoacoustic imaging of the developing vasculature during early tumor growth,” Phys. Med. Biol. 53(15), 4203–4212 (2008). [CrossRef] [PubMed]
E. Zcharia, R. Zilka, A. Yaar, O. Yacoby-Zeevi, A. Zetser, S. Metzger, R. Sarid, A. Naggi, B. Casu, N. Ilan, I. Vlodavsky, and R. Abramovitch, “Heparanase accelerates wound angiogenesis and wound healing in mouse and rat models,” FASEB J. 19(2), 211–221 (2005). [CrossRef] [PubMed]
A. A. Tandara and T. A. Mustoe, “Oxygen in wound healing--more than a nutrient,” World J. Surg. 28(3), 294–300 (2004). [CrossRef] [PubMed]
S. Hu and L. V. Wang, “Photoacoustic imaging and characterization of the microvasculature,” J. Biomed. Opt. 15(1), 011101 (2010). [CrossRef] [PubMed]
C. Aalkjaer and H. Nilsson, “Vasomotion: cellular background for the oscillator and for the synchronization of smooth muscle cells,” Br. J. Pharmacol. 144(5), 605–616 (2005). [CrossRef] [PubMed]
A. M. Mendonca and A. Campilho, ““Segmentation of retinal blood vessels by combining the detection of centerlines and morphological reconstruction,” IEEE,” IEEE Trans. Med. Imag. 25(9), 1200–1213 (2006). [CrossRef]
J. R. Less, T. C. Skalak, E. M. Sevick, and R. K. Jain, “Microvascular architecture in a mammary carcinoma: branching patterns and vessel dimensions,” Cancer Res. 51(1), 265–273 (1991). [PubMed]
R. Wild, S. Ramakrishnan, J. Sedgewick, and A. W. Griffioen, “Quantitative assessment of angiogenesis and tumor vessel architecture by computer-assisted digital image analysis: effects of VEGF-toxin conjugate on tumor microvessel density,” Microvasc. Res. 59(3), 368–376 (2000). [CrossRef] [PubMed]
S. Hu, K. Maslov, and L. V. Wang, “Noninvasive label-free imaging of microhemodynamics by optical-resolution photoacoustic microscopy,” Opt. Express 17(9), 7688–7693 (2009). [CrossRef] [PubMed]
U. Hoffmann, M. Ferencik, R. C. Cury, and A. J. Pena, “Coronary CT angiography,” J. Nucl. Med. 47(5), 797–806 (2006). [PubMed]
M. Neeman, “Functional and molecular MR imaging of angiogenesis: seeing the target, seeing it work,” J. Cell. Biochem. Suppl. 87(S39), 11–17 (2002). [CrossRef] [PubMed]
J. H. Rudd, K. S. Myers, S. Bansilal, J. Machac, C. A. Pinto, C. Tong, A. Rafique, R. Hargeaves, M. Farkouh, V. Fuster, and Z. A. Fayad, “Atherosclerosis inflammation imaging with 18F-FDG PET: carotid, iliac, and femoral uptake reproducibility, quantification methods, and recommendations,” J. Nucl. Med. 49(6), 871–878 (2008). [CrossRef] [PubMed]
U. Schminke, L. Motsch, B. Griewing, M. Gaull, and C. Kessler, “Three-dimensional power-mode ultrasound for quantification of the progression of carotid artery atherosclerosis,” J. Neurol. 247(2), 106–111 (2000). [CrossRef] [PubMed]
K. Maslov, H. F. Zhang, and L. V. Wang, “Photoacoustic generation of focused quasi-unipolar pressure pulses,” J Innov Opt Health Sci 3(4), 247–253 (2010). [CrossRef] [PubMed]
H. F. Zhang, K. Maslov, G. Stoica, and L. V. Wang, “Functional photoacoustic microscopy for high-resolution and noninvasive in vivo imaging,” Nat. Biotechnol. 24(7), 848–851 (2006). [CrossRef] [PubMed]
M. L. Li, J. C. Wang, J. A. Schwartz, K. L. Gill-Sharp, G. Stoica, and L. V. Wang, “In-vivo photoacoustic microscopy of nanoshell extravasation from solid tumor vasculature,” J. Biomed. Opt. 14(1), 010507 (2009). [CrossRef] [PubMed]
D. Pan, M. Pramanik, A. Senpan, J. S. Allen, H. Y. Zhang, S. A. Wickline, L. V. Wang, and G. M. Lanza, “Molecular photoacoustic imaging of angiogenesis with integrin-targeted gold nanobeacons,” FASEB J. 25(3), 875–882 (2011). [CrossRef] [PubMed]
H. F. Zhang, K. Maslov, M. L. Li, G. Stoica, and L. V. Wang, “In vivo volumetric imaging of subcutaneous microvasculature by photoacoustic microscopy,” Opt. Express 14(20), 9317–9323 (2006). [CrossRef] [PubMed]
H. F. Zhang, K. Maslov, M. Sivaramakrishnan, G. Stoica, and L. H. V. Wang, “Imaging of hemoglobin oxygen saturation variations in single vessels in vivo using photoacoustic microscopy,” Appl. Phys. Lett. 90(5), 053901 (2007). [CrossRef]
V. Tsytsarev, S. Hu, J. J. Yao, K. Maslov, D. L. Barbour, and L. V. Wang, “Photoacoustic microscopy of microvascular responses to cortical electrical stimulation,” J. Biomed. Opt. 16(7), 076002 (2011). [CrossRef] [PubMed]
X. Q. Yang, X. Cai, K. Maslov, L. H. Wang, and Q. M. Luo, “High-resolution photoacoustic microscope for rat brain imaging in vivo,” Chin. Opt. Lett. 8(6), 609–611 (2010). [CrossRef]
L. V. Wang, “Multiscale photoacoustic microscopy and computed tomography,” Nat. Photonics 3(9), 503–509 (2009). [CrossRef] [PubMed]
K. Maslov, H. F. Zhang, and L. V. Wang, “Photoacoustic generation of focused quasi-unipolar pressure pulses,” J Innov Opt Health Sci 3(4), 247–253 (2010). [CrossRef] [PubMed]
M. L. Li, H. F. Zhang, K. Maslov, G. Stoica, and L. V. Wang, “Improved in vivo photoacoustic microscopy based on a virtual-detector concept,” Opt. Lett. 31(4), 474–476 (2006). [CrossRef] [PubMed]
H. F. Zhang, K. Maslov, and L. V. Wang, “Automatic algorithm for skin profile detection in photoacoustic microscopy,” J. Biomed. Opt. 14(2), 024050 (2009). [CrossRef] [PubMed]
M. L. Li, H. F. Zhang, K. Maslov, G. Stoica, and L. V. Wang, “Improved in vivo photoacoustic microscopy based on a virtual-detector concept,” Opt. Lett. 31(4), 474–476 (2006). [CrossRef] [PubMed]
C. K. Liao, M. L. Li, and P. C. Li, “Optoacoustic imaging with synthetic aperture focusing and coherence weighting,” Opt. Lett. 29(21), 2506–2508 (2004). [CrossRef] [PubMed]
S. Park, A. B. Karpiouk, S. R. Aglyamov, and S. Y. Emelianov, “Adaptive beamforming for photoacoustic imaging,” Opt. Lett. 33(12), 1291–1293 (2008). [CrossRef] [PubMed]
Z. L. Deng, X. Q. Yang, H. Gong, and Q. M. Luo, “Two-dimensional synthetic-aperture focusing technique in photoacoustic microscopy,” J. Appl. Phys. 109(10), 104701 (2011). [CrossRef]
C. G. A. Hoelen and F. F. M. de Mul, “A new theoretical approach to photoacoustic signal generation,” J. Acoust. Soc. Am. 106(2), 695–706 (1999). [CrossRef]
2. The adaptive synthetic-aperture focusing technique
M. L. Li, H. F. Zhang, K. Maslov, G. Stoica, and L. V. Wang, “Improved in vivo photoacoustic microscopy based on a virtual-detector concept,” Opt. Lett. 31(4), 474–476 (2006). [CrossRef] [PubMed]
M. L. Li, H. F. Zhang, K. Maslov, G. Stoica, and L. V. Wang, “Improved in vivo photoacoustic microscopy based on a virtual-detector concept,” Opt. Lett. 31(4), 474–476 (2006). [CrossRef] [PubMed]
Z. L. Deng, X. Q. Yang, H. Gong, and Q. M. Luo, “Two-dimensional synthetic-aperture focusing technique in photoacoustic microscopy,” J. Appl. Phys. 109(10), 104701 (2011). [CrossRef]
C. K. Liao, M. L. Li, and P. C. Li, “Optoacoustic imaging with improved synthetic focusing,” Proc. SPIE 5967, 255–262 (2005). [CrossRef]
Z. L. Deng, X. Q. Yang, H. Gong, and Q. M. Luo, “Two-dimensional synthetic-aperture focusing technique in photoacoustic microscopy,” J. Appl. Phys. 109(10), 104701 (2011). [CrossRef]
A. F. Frangi, W. J. Niessen, K. L. Vincken, and M. A. Viergever, “Multiscale vessel enhancement filtering, ” in Proceedings of Medical Image Computing & Computer Assisted Intervention (MICCAI), W. Wells, A. Colchester, and S. Delp, eds., 1496 of Lecture Notes in Computer Science, (Springer- Verlag, Berlin, 1998), 130–137.
P. F. Hemler, E. S. McCreedy, and M. J. McAuliffe, “Performance evaluation of multiscale vessel enhancement filtering,” Proc. SPIE 5370, 1785–1794 (2004). [CrossRef]
Z. L. Deng, X. Q. Yang, H. Gong, and Q. M. Luo, “Two-dimensional synthetic-aperture focusing technique in photoacoustic microscopy,” J. Appl. Phys. 109(10), 104701 (2011). [CrossRef]
Z. L. Deng, X. Q. Yang, H. Gong, and Q. M. Luo, “Two-dimensional synthetic-aperture focusing technique in photoacoustic microscopy,” J. Appl. Phys. 109(10), 104701 (2011). [CrossRef]
3. Results
X. Q. Yang, X. Cai, K. Maslov, L. H. Wang, and Q. M. Luo, “High-resolution photoacoustic microscope for rat brain imaging in vivo,” Chin. Opt. Lett. 8(6), 609–611 (2010). [CrossRef]
Z. L. Deng, X. Q. Yang, H. Gong, and Q. M. Luo, “Two-dimensional synthetic-aperture focusing technique in photoacoustic microscopy,” J. Appl. Phys. 109(10), 104701 (2011). [CrossRef]
3.1 Phantom study
3.2 In vivo imaging
4. Conclusion and discussion
Z. L. Deng, X. Q. Yang, H. Gong, and Q. M. Luo, “Two-dimensional synthetic-aperture focusing technique in photoacoustic microscopy,” J. Appl. Phys. 109(10), 104701 (2011). [CrossRef]
Acknowledgments
References and links
S. Hu and L. V. Wang, “Photoacoustic imaging and characterization of the microvasculature,” J. Biomed. Opt. 15(1), 011101 (2010). [CrossRef] [PubMed] | |
J.k.-J. Li, Dynamics of the Vascular System (World Scientific, Singapore, 2004). | |
J. P. Culver, T. Durduran, D. Furuya, C. Cheung, J. H. Greenberg, and A. G. Yodh, “Diffuse optical tomography of cerebral blood flow, oxygenation, and metabolism in rat during focal ischemia,” J. Cereb. Blood Flow Metab. 23(8), 911–924 (2003). [CrossRef] [PubMed] | |
A. M. Mendonca and A. Campilho, ““Segmentation of retinal blood vessels by combining the detection of centerlines and morphological reconstruction,” IEEE,” IEEE Trans. Med. Imag. 25(9), 1200–1213 (2006). [CrossRef] | |
A. Livnat, M. Tolmasov, E. B. Michaely, and A. Mayevsky, “Real-time monitoring of mitochondrial function and cerebral blood flow following focal ischemia in rats,” J. Innovative Opt. Health Sci. 1(01), 63–69 (2008). [CrossRef] | |
A. Durukan and T. Tatlisumak, “Acute ischemic stroke: overview of major experimental rodent models, pathophysiology, and therapy of focal cerebral ischemia,” Pharmacol. Biochem. Behav. 87(1), 179–197 (2007). [CrossRef] [PubMed] | |
J. R. Less, T. C. Skalak, E. M. Sevick, and R. K. Jain, “Microvascular architecture in a mammary carcinoma: branching patterns and vessel dimensions,” Cancer Res. 51(1), 265–273 (1991). [PubMed] | |
Y. Q. Lao, D. Xing, S. H. Yang, and L. Z. Xiang, “Noninvasive photoacoustic imaging of the developing vasculature during early tumor growth,” Phys. Med. Biol. 53(15), 4203–4212 (2008). [CrossRef] [PubMed] | |
E. Zcharia, R. Zilka, A. Yaar, O. Yacoby-Zeevi, A. Zetser, S. Metzger, R. Sarid, A. Naggi, B. Casu, N. Ilan, I. Vlodavsky, and R. Abramovitch, “Heparanase accelerates wound angiogenesis and wound healing in mouse and rat models,” FASEB J. 19(2), 211–221 (2005). [CrossRef] [PubMed] | |
A. A. Tandara and T. A. Mustoe, “Oxygen in wound healing--more than a nutrient,” World J. Surg. 28(3), 294–300 (2004). [CrossRef] [PubMed] | |
C. Aalkjaer and H. Nilsson, “Vasomotion: cellular background for the oscillator and for the synchronization of smooth muscle cells,” Br. J. Pharmacol. 144(5), 605–616 (2005). [CrossRef] [PubMed] | |
R. Wild, S. Ramakrishnan, J. Sedgewick, and A. W. Griffioen, “Quantitative assessment of angiogenesis and tumor vessel architecture by computer-assisted digital image analysis: effects of VEGF-toxin conjugate on tumor microvessel density,” Microvasc. Res. 59(3), 368–376 (2000). [CrossRef] [PubMed] | |
S. Hu, K. Maslov, and L. V. Wang, “Noninvasive label-free imaging of microhemodynamics by optical-resolution photoacoustic microscopy,” Opt. Express 17(9), 7688–7693 (2009). [CrossRef] [PubMed] | |
U. Hoffmann, M. Ferencik, R. C. Cury, and A. J. Pena, “Coronary CT angiography,” J. Nucl. Med. 47(5), 797–806 (2006). [PubMed] | |
M. Neeman, “Functional and molecular MR imaging of angiogenesis: seeing the target, seeing it work,” J. Cell. Biochem. Suppl. 87(S39), 11–17 (2002). [CrossRef] [PubMed] | |
J. H. Rudd, K. S. Myers, S. Bansilal, J. Machac, C. A. Pinto, C. Tong, A. Rafique, R. Hargeaves, M. Farkouh, V. Fuster, and Z. A. Fayad, “Atherosclerosis inflammation imaging with 18F-FDG PET: carotid, iliac, and femoral uptake reproducibility, quantification methods, and recommendations,” J. Nucl. Med. 49(6), 871–878 (2008). [CrossRef] [PubMed] | |
U. Schminke, L. Motsch, B. Griewing, M. Gaull, and C. Kessler, “Three-dimensional power-mode ultrasound for quantification of the progression of carotid artery atherosclerosis,” J. Neurol. 247(2), 106–111 (2000). [CrossRef] [PubMed] | |
K. Maslov, H. F. Zhang, and L. V. Wang, “Photoacoustic generation of focused quasi-unipolar pressure pulses,” J Innov Opt Health Sci 3(4), 247–253 (2010). [CrossRef] [PubMed] | |
H. F. Zhang, K. Maslov, G. Stoica, and L. V. Wang, “Functional photoacoustic microscopy for high-resolution and noninvasive in vivo imaging,” Nat. Biotechnol. 24(7), 848–851 (2006). [CrossRef] [PubMed] | |
M. L. Li, J. C. Wang, J. A. Schwartz, K. L. Gill-Sharp, G. Stoica, and L. V. Wang, “In-vivo photoacoustic microscopy of nanoshell extravasation from solid tumor vasculature,” J. Biomed. Opt. 14(1), 010507 (2009). [CrossRef] [PubMed] | |
D. Pan, M. Pramanik, A. Senpan, J. S. Allen, H. Y. Zhang, S. A. Wickline, L. V. Wang, and G. M. Lanza, “Molecular photoacoustic imaging of angiogenesis with integrin-targeted gold nanobeacons,” FASEB J. 25(3), 875–882 (2011). [CrossRef] [PubMed] | |
H. F. Zhang, K. Maslov, M. L. Li, G. Stoica, and L. V. Wang, “In vivo volumetric imaging of subcutaneous microvasculature by photoacoustic microscopy,” Opt. Express 14(20), 9317–9323 (2006). [CrossRef] [PubMed] | |
H. F. Zhang, K. Maslov, M. Sivaramakrishnan, G. Stoica, and L. H. V. Wang, “Imaging of hemoglobin oxygen saturation variations in single vessels in vivo using photoacoustic microscopy,” Appl. Phys. Lett. 90(5), 053901 (2007). [CrossRef] | |
V. Tsytsarev, S. Hu, J. J. Yao, K. Maslov, D. L. Barbour, and L. V. Wang, “Photoacoustic microscopy of microvascular responses to cortical electrical stimulation,” J. Biomed. Opt. 16(7), 076002 (2011). [CrossRef] [PubMed] | |
X. Q. Yang, X. Cai, K. Maslov, L. H. Wang, and Q. M. Luo, “High-resolution photoacoustic microscope for rat brain imaging in vivo,” Chin. Opt. Lett. 8(6), 609–611 (2010). [CrossRef] | |
L. V. Wang, “Multiscale photoacoustic microscopy and computed tomography,” Nat. Photonics 3(9), 503–509 (2009). [CrossRef] [PubMed] | |
M. L. Li, H. F. Zhang, K. Maslov, G. Stoica, and L. V. Wang, “Improved in vivo photoacoustic microscopy based on a virtual-detector concept,” Opt. Lett. 31(4), 474–476 (2006). [CrossRef] [PubMed] | |
H. F. Zhang, K. Maslov, and L. V. Wang, “Automatic algorithm for skin profile detection in photoacoustic microscopy,” J. Biomed. Opt. 14(2), 024050 (2009). [CrossRef] [PubMed] | |
C. K. Liao, M. L. Li, and P. C. Li, “Optoacoustic imaging with synthetic aperture focusing and coherence weighting,” Opt. Lett. 29(21), 2506–2508 (2004). [CrossRef] [PubMed] | |
S. Park, A. B. Karpiouk, S. R. Aglyamov, and S. Y. Emelianov, “Adaptive beamforming for photoacoustic imaging,” Opt. Lett. 33(12), 1291–1293 (2008). [CrossRef] [PubMed] | |
Z. L. Deng, X. Q. Yang, H. Gong, and Q. M. Luo, “Two-dimensional synthetic-aperture focusing technique in photoacoustic microscopy,” J. Appl. Phys. 109(10), 104701 (2011). [CrossRef] | |
C. G. A. Hoelen and F. F. M. de Mul, “A new theoretical approach to photoacoustic signal generation,” J. Acoust. Soc. Am. 106(2), 695–706 (1999). [CrossRef] | |
C. K. Liao, M. L. Li, and P. C. Li, “Optoacoustic imaging with improved synthetic focusing,” Proc. SPIE 5967, 255–262 (2005). [CrossRef] | |
A. F. Frangi, W. J. Niessen, K. L. Vincken, and M. A. Viergever, “Multiscale vessel enhancement filtering, ” in Proceedings of Medical Image Computing & Computer Assisted Intervention (MICCAI), W. Wells, A. Colchester, and S. Delp, eds., 1496 of Lecture Notes in Computer Science, (Springer- Verlag, Berlin, 1998), 130–137. | |
P. F. Hemler, E. S. McCreedy, and M. J. McAuliffe, “Performance evaluation of multiscale vessel enhancement filtering,” Proc. SPIE 5370, 1785–1794 (2004). [CrossRef] |
OCIS Codes
(170.3880) Medical optics and biotechnology : Medical and biological imaging
(170.5120) Medical optics and biotechnology : Photoacoustic imaging
ToC Category:
Medical Optics and Biotechnology
History
Original Manuscript: January 23, 2012
Revised Manuscript: March 15, 2012
Manuscript Accepted: March 15, 2012
Published: March 19, 2012
Virtual Issues
Vol. 7, Iss. 5 Virtual Journal for Biomedical Optics
Citation
Zilin Deng, Xiaoquan Yang, Hui Gong, and Qingming Luo, "Adaptive synthetic-aperture focusing technique for microvasculature imaging using photoacoustic microscopy," Opt. Express 20, 7555-7563 (2012)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-20-7-7555
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References
- S. Hu and L. V. Wang, “Photoacoustic imaging and characterization of the microvasculature,” J. Biomed. Opt.15(1), 011101 (2010). [CrossRef] [PubMed]
- J.k.-J. Li, Dynamics of the Vascular System (World Scientific, Singapore, 2004).
- J. P. Culver, T. Durduran, D. Furuya, C. Cheung, J. H. Greenberg, and A. G. Yodh, “Diffuse optical tomography of cerebral blood flow, oxygenation, and metabolism in rat during focal ischemia,” J. Cereb. Blood Flow Metab.23(8), 911–924 (2003). [CrossRef] [PubMed]
- A. M. Mendonca and A. Campilho, ““Segmentation of retinal blood vessels by combining the detection of centerlines and morphological reconstruction,” IEEE,” IEEE Trans. Med. Imag.25(9), 1200–1213 (2006). [CrossRef]
- A. Livnat, M. Tolmasov, E. B. Michaely, and A. Mayevsky, “Real-time monitoring of mitochondrial function and cerebral blood flow following focal ischemia in rats,” J. Innovative Opt. Health Sci.1(01), 63–69 (2008). [CrossRef]
- A. Durukan and T. Tatlisumak, “Acute ischemic stroke: overview of major experimental rodent models, pathophysiology, and therapy of focal cerebral ischemia,” Pharmacol. Biochem. Behav.87(1), 179–197 (2007). [CrossRef] [PubMed]
- J. R. Less, T. C. Skalak, E. M. Sevick, and R. K. Jain, “Microvascular architecture in a mammary carcinoma: branching patterns and vessel dimensions,” Cancer Res.51(1), 265–273 (1991). [PubMed]
- Y. Q. Lao, D. Xing, S. H. Yang, and L. Z. Xiang, “Noninvasive photoacoustic imaging of the developing vasculature during early tumor growth,” Phys. Med. Biol.53(15), 4203–4212 (2008). [CrossRef] [PubMed]
- E. Zcharia, R. Zilka, A. Yaar, O. Yacoby-Zeevi, A. Zetser, S. Metzger, R. Sarid, A. Naggi, B. Casu, N. Ilan, I. Vlodavsky, and R. Abramovitch, “Heparanase accelerates wound angiogenesis and wound healing in mouse and rat models,” FASEB J.19(2), 211–221 (2005). [CrossRef] [PubMed]
- A. A. Tandara and T. A. Mustoe, “Oxygen in wound healing--more than a nutrient,” World J. Surg.28(3), 294–300 (2004). [CrossRef] [PubMed]
- C. Aalkjaer and H. Nilsson, “Vasomotion: cellular background for the oscillator and for the synchronization of smooth muscle cells,” Br. J. Pharmacol.144(5), 605–616 (2005). [CrossRef] [PubMed]
- R. Wild, S. Ramakrishnan, J. Sedgewick, and A. W. Griffioen, “Quantitative assessment of angiogenesis and tumor vessel architecture by computer-assisted digital image analysis: effects of VEGF-toxin conjugate on tumor microvessel density,” Microvasc. Res.59(3), 368–376 (2000). [CrossRef] [PubMed]
- S. Hu, K. Maslov, and L. V. Wang, “Noninvasive label-free imaging of microhemodynamics by optical-resolution photoacoustic microscopy,” Opt. Express17(9), 7688–7693 (2009). [CrossRef] [PubMed]
- U. Hoffmann, M. Ferencik, R. C. Cury, and A. J. Pena, “Coronary CT angiography,” J. Nucl. Med.47(5), 797–806 (2006). [PubMed]
- M. Neeman, “Functional and molecular MR imaging of angiogenesis: seeing the target, seeing it work,” J. Cell. Biochem. Suppl.87(S39), 11–17 (2002). [CrossRef] [PubMed]
- J. H. Rudd, K. S. Myers, S. Bansilal, J. Machac, C. A. Pinto, C. Tong, A. Rafique, R. Hargeaves, M. Farkouh, V. Fuster, and Z. A. Fayad, “Atherosclerosis inflammation imaging with 18F-FDG PET: carotid, iliac, and femoral uptake reproducibility, quantification methods, and recommendations,” J. Nucl. Med.49(6), 871–878 (2008). [CrossRef] [PubMed]
- U. Schminke, L. Motsch, B. Griewing, M. Gaull, and C. Kessler, “Three-dimensional power-mode ultrasound for quantification of the progression of carotid artery atherosclerosis,” J. Neurol.247(2), 106–111 (2000). [CrossRef] [PubMed]
- K. Maslov, H. F. Zhang, and L. V. Wang, “Photoacoustic generation of focused quasi-unipolar pressure pulses,” J Innov Opt Health Sci3(4), 247–253 (2010). [CrossRef] [PubMed]
- H. F. Zhang, K. Maslov, G. Stoica, and L. V. Wang, “Functional photoacoustic microscopy for high-resolution and noninvasive in vivo imaging,” Nat. Biotechnol.24(7), 848–851 (2006). [CrossRef] [PubMed]
- M. L. Li, J. C. Wang, J. A. Schwartz, K. L. Gill-Sharp, G. Stoica, and L. V. Wang, “In-vivo photoacoustic microscopy of nanoshell extravasation from solid tumor vasculature,” J. Biomed. Opt.14(1), 010507 (2009). [CrossRef] [PubMed]
- D. Pan, M. Pramanik, A. Senpan, J. S. Allen, H. Y. Zhang, S. A. Wickline, L. V. Wang, and G. M. Lanza, “Molecular photoacoustic imaging of angiogenesis with integrin-targeted gold nanobeacons,” FASEB J.25(3), 875–882 (2011). [CrossRef] [PubMed]
- H. F. Zhang, K. Maslov, M. L. Li, G. Stoica, and L. V. Wang, “In vivo volumetric imaging of subcutaneous microvasculature by photoacoustic microscopy,” Opt. Express14(20), 9317–9323 (2006). [CrossRef] [PubMed]
- H. F. Zhang, K. Maslov, M. Sivaramakrishnan, G. Stoica, and L. H. V. Wang, “Imaging of hemoglobin oxygen saturation variations in single vessels in vivo using photoacoustic microscopy,” Appl. Phys. Lett.90(5), 053901 (2007). [CrossRef]
- V. Tsytsarev, S. Hu, J. J. Yao, K. Maslov, D. L. Barbour, and L. V. Wang, “Photoacoustic microscopy of microvascular responses to cortical electrical stimulation,” J. Biomed. Opt.16(7), 076002 (2011). [CrossRef] [PubMed]
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