Yuan, Yz., Yuan, F., Xu, Qy. et al. Effect of Fufang Xueshuantong Capsule (复方血栓通胶囊) on a rat model of retinal vein occlusion., Chin. J. Integr. Med. 17, 296–301 (2011). https://doi.org/10.1007/s11655-011-0690-6
Yuan-zhi Yuan, Fei Yuan, Qin-yue Xu, et al. Effect of Fufang Xueshuantong Capsule (复方血栓通胶囊) on a rat model of retinal vein occlusion[J]. Chinese Journal of Integrative Medicine, 2011,17(4):296-301.
Yuan, Yz., Yuan, F., Xu, Qy. et al. Effect of Fufang Xueshuantong Capsule (复方血栓通胶囊) on a rat model of retinal vein occlusion., Chin. J. Integr. Med. 17, 296–301 (2011). https://doi.org/10.1007/s11655-011-0690-6DOI:
Yuan-zhi Yuan, Fei Yuan, Qin-yue Xu, et al. Effect of Fufang Xueshuantong Capsule (复方血栓通胶囊) on a rat model of retinal vein occlusion[J]. Chinese Journal of Integrative Medicine, 2011,17(4):296-301. DOI: 10.1007/s11655-011-0690-6.
Effect of Fufang Xueshuantong Capsule (复方血栓通胶囊) on a rat model of retinal vein occlusion
摘要
To establish a retinal vein occlusion (RVO) animal model and observe the therapeutic effect of a Chinese herbal composition (Fufang Xueshuantong Capsule
复方血栓通胶囊
FXC)inischemicinischemic) in ischemic retinal disease. Methods: Fifteen adult male Sprague-Dawley rats underwent laser photothrombosis to induce RVO on their right eyes and were subsequently randomized to receive FXC (the intervention group
n=7) or placebo treatment (the control group
n=8). Fundus fluorescein angiography was performed after 2
4 and 8 weeks of treatment. Real-time reverse transcription-PCR was used to quantify the mRNA expression of vascular endothelial growth factor (VEGF) and stromal cell-derived factor-1 (SDF-1). The main outcomes were the mRNA copies of VEGF and SDF-1 and the counts of RVO signs. Laser photothrombosis procedure induced typical lesions of RVO
including hemorrhage
leakage
retinal detachment
capillary non-perfusion
filling defect of retinal vessels
and lateral circulation/dilation of small vessels. The retinal lesions were associated with an increased expression of VEGF (P<0.05). No significant change of SDF-1 expression was noticed. Compared with the control group
the intervention group had numerically fewer RVO lesions at week 2 (1.71±0.76 vs. 3.50±1.51
t=−2.82
P<0.05). The benefit of intervention remained at weeks 4 and 8. A rat model of laser photothrombosis-induced RVO was established and an increase in the VEGF expression was observed in the retinal lesion. The FXC had therapeutic benefit in improving retinal lesions in the rat model of RVO.
Abstract
To establish a retinal vein occlusion (RVO) animal model and observe the therapeutic effect of a Chinese herbal composition (Fufang Xueshuantong Capsule
复方血栓通胶囊
FXC)inischemicinischemic) in ischemic retinal disease. Methods: Fifteen adult male Sprague-Dawley rats underwent laser photothrombosis to induce RVO on their right eyes and were subsequently randomized to receive FXC (the intervention group
n=7) or placebo treatment (the control group
n=8). Fundus fluorescein angiography was performed after 2
4 and 8 weeks of treatment. Real-time reverse transcription-PCR was used to quantify the mRNA expression of vascular endothelial growth factor (VEGF) and stromal cell-derived factor-1 (SDF-1). The main outcomes were the mRNA copies of VEGF and SDF-1 and the counts of RVO signs. Laser photothrombosis procedure induced typical lesions of RVO
including hemorrhage
leakage
retinal detachment
capillary non-perfusion
filling defect of retinal vessels
and lateral circulation/dilation of small vessels. The retinal lesions were associated with an increased expression of VEGF (P<0.05). No significant change of SDF-1 expression was noticed. Compared with the control group
the intervention group had numerically fewer RVO lesions at week 2 (1.71±0.76 vs. 3.50±1.51
t=−2.82
P<0.05). The benefit of intervention remained at weeks 4 and 8. A rat model of laser photothrombosis-induced RVO was established and an increase in the VEGF expression was observed in the retinal lesion. The FXC had therapeutic benefit in improving retinal lesions in the rat model of RVO.
Lim LL, Cheung N, Wang JJ, Islam FM, Mitchell P, Saw SM, et al. Prevalence and risk factors of retinal vein occlusion in an Asian population. Br J Ophthalmol 2008;92:1316–1319.
Mitchell P, Smith W, Chang A. Prevalence and associations of retinal vein occlusion in Australia: The Blue Mountains Eye Study. Arch Ophthalmol 1996;114:1243–1247.
Yuan YZ, Yuan F. Clinical and fundus fluorescein angiography characteristics of 116 patients with retinal vein occlusion. Chin J Clin Med (Chin) 2004;11:626–627.
Wong TY, Scott IU. Clinical practice. Retinal-vein occlusion. N Engl J Med 2010;363:2135–2144.
Zhang Y, Fortune B, Atchaneeyasakul LO, McFarland T, Mose K, Wallace P, et al. Natural history and histology in a rat model of laser-induced photothrombotic retinal vein occlusion. Curr Eye Res 2008;33:365–376.
Shahid H, Hossain P, Amoaku WM. The management of retinal vein occlusion: is interventional ophthalmology the way forward? Br J Ophthalmol 2006;90:627–639.
Gao D, Song J, Hu J, Lin J, Zheng L, Cai J, et al. Angiogenesis promoting effects of Chinese herbal medicine for activating blood circulation to remove stasis on chick embryo chorio-allantoic membrane. Chin J Integr Tradit West Med (Chin) 2005;25:912–915.
Ham DI, Chang K, Chung H. Preretinal neovascularization induced by experimental retinal vein occlusion in albino rats. Korean J Ophthalmol 1997;11:60–64.
Saito Y, Park L, Skolik SA, Alfaro DV, Chaudhry NA, Barnstable CJ, et al. Experimental preretinal neovascularization by laser-induced venous thrombosis in rats. Curr Eye Res 1997;16:26–33.
Kang SG, Chung H, Hyon JY. Experimental preretinal neovascularization by laser-induced thrombosis in albino rats. Korean J Ophthalmol 1999;13:65–70.
Lai CC, Wu WC, Chuang LH, Yeung L, Wei W, Yang KJ. Quantitative grading of preretinal neovascularization in adult rats. Acta Ophthalmol Scand 2005;83:590–594.
Yuan YZ, Yuan F, Li L, Wang Y, Tong BY. Expression of stromal cell-derived factor 1 is increased in the retina of experimental diabetic rats. Chin J Ophthalmol (Chin) 2007;43:912–916.
Butler JM, Guthrie SM, Koc M, Afzal A, Caballero S, Brooks HL, et al. SDF-1 is both necessary and sufficient to promote proliferative retinopathy. J Clin Invest 2005;115:86–93.
Vinores SA, Derevjanik NL, Vinores MA, Okamoto N, Campochiaro PA. Sensitivity of different vascular beds in the eye to neovascularization and blood-retinal barrier breakdown in VEGF transgenic mice. Adv Exp Med Biol 2000;476:129–138.
Simó R, Hernández C. Intravitreous anti-VEGF for diabetic retinopathy: hopes and fears for a new therapeutic strategy. Diabetologia 2008;51:1574–1580.
Neuhaus T, Stier S, Totzke G, Gruenewald E, Fronhoffs S, Sachinidis A, et al. Stromal cell-derived factor 1alpha (SDF-1alpha) induces gene-expression of early growth response-1 (Egr-1) and VEGF in human arterial endothelial cells and enhances VEGF induced cell proliferation. Cell Prolif 2003;36:75–86.
Berker N, Batman C. Surgical treatment of central retinal vein occlusion. Acta Ophthalmol 2008;86:245–252.
Mohamed Q, McIntosh RL, Saw SM, Wong TY. Interventions for central retinal vein occlusion: an evidence-based systematic review. Ophthalmology 2007;114:507–519, 524.
McIntosh RL, Mohamed Q, Saw SM, Wong TY. Interventions for branch retinal vein occlusion: an evidence-based systematic review. Ophthalmology 2007;114:835–854.
Rehak J, Rehak M. Branch retinal vein occlusion: pathogenesis, visual prognosis, and treatment modalities. Curr Eye Res 2008;33:111–131.
Margolis R, Singh RP, Kaiser PK. Branch retinal vein occlusion: clinical findings, natural history, and management. Compr Ophthalmol Update 2006;7:265–276.
White CM, Fan C, Song J, Tsikouris JP, Chow M. An evaluation of the hemostatic effects of hydrophilic, alcohol, and lipophilic extracts of notoginseng. Pharmacotherapy 2001;21:773–777.
Cheng TO. Cardiovascular effects of Danshen. Int J Cardiol 2007;121:9–22.
Cho WC, Leung KN. In vitro and in vivo immunomodulating and immunorestorative effects of Astragalus membranaceus. J Ethnopharmacol 2007;113:132–141.
Wang S, Zheng Z, Weng Y, Yu Y, Zhang D, Fan W, et al. Angiogenesis and anti-angiogenesis activity of Chinese medicinal herbal extracts. Life Sci 2004;74:2467–2478.
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Department of Physiology, School of Medicine, Showa University
Department of Image, 97th Hospital of People’s Liberation Army
Institute of Traditional Chinese Medicine and Western Medicine, School of Medicine, Yangzhou University
Nanjing University of Traditional Chinese Medicine