• Journal of Innovative Optical Health Sciences
  • Vol. 14, Issue 1, 2140006 (2021)
Yao Yu1, Ziyue Meng1, Ang Li1, Yang Lin1, Jian Liu1, Yushu Ma2, Yi Wang1, and Zhenhe Ma1、*
Author Affiliations
  • 1School of Control Engineering Northeastern University at Qinhuangdao Qinhuangdao 066004, P. R. China
  • 2School of Computer Science and Engineering Northeastern University Shenyang 110169, P. R. China
  • show less
    DOI: 10.1142/s179354582140006x Cite this Article
    Yao Yu, Ziyue Meng, Ang Li, Yang Lin, Jian Liu, Yushu Ma, Yi Wang, Zhenhe Ma. Monitoring of edema progression in permanent and transient MCAO model using SS-OCT[J]. Journal of Innovative Optical Health Sciences, 2021, 14(1): 2140006 Copy Citation Text show less
    References

    [1] R. Dhar, "Automated quantitative assessment of cerebral edema after ischemic stroke using CSF volumetrics," Neurosci. Lett. 724, 134879 (2020).

    [2] J. Liu et al., "Cerebral edema detection in vivo after middle cerebral artery occlusion using swept-source optical coherence tomography," Neurophotonics 6(4), 045007 (2019).

    [3] M.-L. Ho, R. Rojas, R. L. Eisenberg, "Cerebral edema," Am. J. Roentgenol. 199(3), W258–W273 (2012).

    [4] J. H. Garcia, "Experimental ischemic stroke: A review," Stroke 15(1), 5–14 (1984).

    [5] E. Unger, J. Littlefield, M. Gado, "Water content and water structure in CT and MR signal changes: Possible influence in detection of early stroke," Am. J. Neuroradiol. 9(4), 687–691 (1988).

    [6] C. Truwit et al., "Loss of the insular ribbon: Another early CT sign of acute middle cerebral artery infarction," Radiol. 176(3), 801–806 (1990).

    [7] P. Barber et al., "Identification of major ischemic change: Diffusion-weighted imaging versus computed tomography," Stroke 30(10), 2059–2065 (1999).

    [8] D. Liang et al., "Cytotoxic edema: Mechanisms of pathological cell swelling," Neurosurgical Focus 22(5), 1–9 (2007).

    [9] J. Liu et al., "Simultaneous detection of cerebral blood perfusion and cerebral edema using sweptsource optical coherence tomography," J. Biophoton. 13(2), e201960087 (2019).

    [10] J. R. Thiagarajah, M. C. Papadopoulos, A. Verkman, "Noninvasive early detection of brain edema in mice by near-infrared light scattering," J. Neurosci. Res. 80(2), 293–299 (2005).

    [11] C. L. Rodriguez et al., "Decreased light attenuation in cerebral cortex during cerebral edema detected using optical coherence tomography," Neurophoton. 1(2), 025004 (2014).

    [12] O. Carrasco-Zevallos et al., "Live volumetric (4D) visualization and guidance of in vivo human ophthalmic surgery with intraoperative optical coherence tomography," Sci. Rep. 6, 31689 (2016).

    [13] M. Adhi et al., "Choroidal analysis in healthy eyes using swept-source optical coherence tomography compared to spectral domain optical coherence tomography," Am. J. Ophthalmol. 157(6), 1272– 1281. e1 (2014).

    [14] R. F. Spaide, H. Koizumi, M. C. Pozonni, "Enhanced depth imaging spectral-domain optical coherence tomography," Am. J. Ophthalmol. 146(4), 496–500 (2008).

    [15] I. Grulkowski et al., "High-precision, high-accuracy ultralong-range swept-source optical coherence tomography using vertical cavity surface emitting laser light source," Opt. Lett. 38(5), (2013) 673–675.

    [16] I. Grulkowski et al., "Retinal, anterior segment and full eye imaging using ultrahigh speed swept source OCT with vertical-cavity surface emitting lasers," Biomed. Opt. Exp. 3(11), 2733–2751 (2012).

    [17] A.-H. Dhalla et al., "Simultaneous swept source optical coherence tomography of the anterior segment and retina using coherence revival," Opt. Lett. 37(11), 1883–1885 (2012).

    [18] W. J. Choi, R. K. Wang, "Volumetric cutaneous microangiography of human skin in vivo by VCSEL swept-source optical coherence tomography," Quantum Electron. 44(8), 740 (2014).

    [19] J. Liu et al., "Whole-brain microcirculation detection after ischemic stroke based on swept-source optical coherence tomography," J. Biophoton. 12(10), e201900122 (2019).

    [20] J. Sharkey, "Perivascular microapplication of endothelin-1: A new model of focal cerebral ischaemia in the rat," J. Cerebral Blood Flow Metabolism 13(5), 865–871 (1993).

    [21] V.Windle et al., "An analysis of four different methods of producing focal cerebral ischemia with endothelin-1 in the rat," Exp. Neurol. 201(2), 324–334 (2006).

    [22] O. W. Witte, Photochemical and endothelin models of focal brain ischemia, Rodent Models of Stroke, pp. 71–83, Springer (2010).

    [23] D. J. Faber et al., "Quantitative measurement of attenuation coefficients of weakly scattering media using optical coherence tomography," Opt. Exp. 12(19), 4353–4365 (2004).

    [24] J. Liu et al., "Optimized depth-resolved estimation to measure optical attenuation coefficients from optical coherence tomography and its application in cerebral damage determination," J. Biomed. Opt. 24(3), 1–11 (2019).

    [25] P. Dai et al., "A pilot study on transient ischemic stroke induced with endothelin-1 in the rhesus monkeys," Sci. Rep. 7, 45097 (2017).

    [26] I. M. Macrae et al., "Endothelin-1-induced reductions in cerebral blood flow: Dose dependency, time course, and neuropathological consequences," J. Cerebral Blood Flow Metabolism. 13(2), 276–284 (1993).

    [27] B. D. Watson et al., "Induction of reproducible brain infarction by photochemically initiated thrombosis," Ann. Neurology: Official J. Am. Neurol. Association Child Neurol. Soc. 17(5), 497–504 (1985).

    [28] J. Biernaskie et al., "A serial MR study of cerebral blood flow changes and lesion development following endothelin-1-induced ischemia in rats," Magn. Reson. Med., An Official J. Int. Soc. Magnetic Resonance Med. 46(4), 827–830 (2001).

    [29] U. Baran, Y. Li, R. K. Wang, "OCT-based in vivo tissue injury mapping," in Optical Coherence Tomography and Coherence Domain Optical Methods in Biomedicine XX, 2016, San Francisco, California, International Society for Optics and Photonics, p. 969725.

    [30] U. Baran et al., "Automated segmentation and enhancement of optical coherence tomographyacquired images of rodent brain," J. Neurosci. Methods 270, 132–137 (2016).

    [31] S. Yang et al., "Correlation of optical attenuation coefficient estimated using optical coherence tomography with changes in astrocytes and neurons in a chronic photothrombosis stroke model," Biomed. Opt. Exp. 10(12), 6258–6271 (2019).

    [32] J. Xu et al., "Wide field and highly sensitive angiography based on optical coherence tomography with akinetic swept source," Biomed. opt. Exp. 8(1), 420–435 (2017).

    [33] V. Labat-gest, S. Tomasi, "Photothrombotic ischemia: A minimally invasive and reproducible photochemical cortical lesion model for mouse stroke studies," J. Vis. Exp. (76), e50370 (2013).

    [34] B. Piccardi et al., "Reperfusion Injury after ischemic Stroke Study (RISKS): Single-centre (Florence, Italy), prospective observational protocol study," BMJ Open 8(5), (2018).

    [35] W. T. Kimberly et al., "Association of reperfusion with brain edema in patients with acute ischemic stroke: A secondary analysis of the MR CLEAN Trial," JAMA Neurol. 75(4), 453–461 (2018).

    [36] G. Gartshore, J. Patterson, I. M. Macrae, "Influence of ischemia and reperfusion on the course of brain tissue swelling and blood–brain barrier permeability in a rodent model of transient focal cerebral ischemia," Exp. Neurol. 147(2), 353–360 (1997).

    [37] D. R. Pillai et al., "Cerebral ischemia–reperfusion injury in rats — A 3 T MRI study on biphasic blood–brain barrier opening and the dynamics of edema formation," J. Cerebral Blood Flow Metabolism 29, 111846–1855 (2009).

    [38] B. Bell, L. Symon, N. M. Branston, "CBF and time thresholds for the formation of ischemic cerebral edema, and effect of reperfusion in baboons," J. Neurosurgery 62(1), 31–41 (1985).

    [39] H. J. Irvine et al., "Reperfusion after ischemic stroke is associated with reduced brain edema," J. Cereb. Blood Flow Metab. 38(10), 1807–1817 (2018).

    [40] B. K. Cheripelli et al., "Interaction of recanalization, intracerebral hemorrhage, and cerebral edema after intravenous thrombolysis," Stroke 47(7), 1761–1767 (2016).

    [41] J. Aronowski, L. A. Labiche, "Perspectives on reperfusion- induced damage in rodent models of experimental focal ischemia and role of -protein kinase C," ILAR J. 44(2), 105–109 (2003).

    [42] F. J. van der Meer et al., "Apoptosis-and necrosisinduced changes in light attenuation measured by optical coherence tomography," Lasers Med. Sci. 25(2), 259–267 (2010).

    Yao Yu, Ziyue Meng, Ang Li, Yang Lin, Jian Liu, Yushu Ma, Yi Wang, Zhenhe Ma. Monitoring of edema progression in permanent and transient MCAO model using SS-OCT[J]. Journal of Innovative Optical Health Sciences, 2021, 14(1): 2140006
    Download Citation