Role of laser fluence in protein synthesis of cultured DRG neurons following low-level laser irradiation

Photonics Asia Pub Date : 2014-11-18 DOI:10.1117/12.2071447
Liqin Zheng, Caimin Qiu, Yu-hua Wang, Yixiu Zeng, Hongqin Yang, Yanding Zhang, S. Xie
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Abstract

Low-level lasers have been used to relieve pain in clinical for many years. But the mechanism is not fully clear. In animal models, nitric oxide (NO) has been reported involving in the transmission and modulation of nociceptive signals. So the objective of this study was to establish whether low-level laser with different fluence could stimulate the production of nitric oxide synthese (NOS), which produces NO in cultured primary dorsal root ganglion neurons (DRG neurons). The primary DRG neurons were isolated from healthy Sprague Dawley rats (8-12 weeks of age) and spread on 35 mm culture dishes specially used for confocal microscopy. 24 hours after spreading, cells were irradiated with 658 nm laser for two consecutive days at the energy density of 20, 40, 60 and 80 mJ·cm-2 respectively. Control groups were not exposed to the laser, but were kept under the same conditions as the irradiated ones. The synthesis of NOS after laser irradiation was detected by immunofluorescence assay, and the changes of NOS were evaluated using confocal microscopy and Image J software. The results showed that all the laser fluence could promote the production of NOS in DRG neurons, especially the 60 mJ·cm-2 . These results demonstrated that low-level laser irradiation could modify protein synthesis in a dose- or fluence- dependent manner, and indicated that low-level laser irradiation might achieve the analgesic effect through modulation of NO production.
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激光辐照对培养DRG神经元蛋白合成的影响
低强度激光在临床上用于缓解疼痛已有多年的历史。但其机制尚不完全清楚。在动物模型中,一氧化氮(NO)参与了伤害性信号的传递和调节。因此,本研究的目的是研究不同强度的低强度激光是否能刺激培养的初级背根神经节神经元(DRG神经元)产生一氧化氮合成(NOS)。从健康大鼠(8-12周龄)中分离原代DRG神经元,置于共聚焦显微镜专用培养皿中35 mm。铺布24 h后,用能量密度分别为20、40、60、80 mJ·cm-2的658 nm激光连续照射2天。对照组没有暴露在激光下,但与被照射组保持在相同的条件下。采用免疫荧光法检测激光照射后NOS的合成,用共聚焦显微镜和Image J软件评价NOS的变化。结果表明,所有的激光能量均能促进DRG神经元NOS的产生,尤其是60 mJ·cm-2的激光能量。这些结果表明,低水平激光照射可以以剂量依赖性或影响依赖性的方式改变蛋白质合成,并提示低水平激光照射可能通过调节NO的产生来达到镇痛作用。
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