中华物理医学与康复杂志
中華物理醫學與康複雜誌
중화물리의학여강복잡지
CHINESE JOURNAL OF PHYSICAL MEDICINE AND REHABILITATION
2010年
2期
89-93
,共5页
郭影%李飞%郭文怡%孙冬冬%路晓艳%张荣庆
郭影%李飛%郭文怡%孫鼕鼕%路曉豔%張榮慶
곽영%리비%곽문이%손동동%로효염%장영경
低频脉冲磁场%心肌微血管内皮细胞%增殖%超微结构%迁移%管样结构形成
低頻脈遲磁場%心肌微血管內皮細胞%增殖%超微結構%遷移%管樣結構形成
저빈맥충자장%심기미혈관내피세포%증식%초미결구%천이%관양결구형성
Low frequency pulsed magnetic fields%Cardiac microvascular endothelial cells%Proliferation%Ultrastructures%Migration%Tube formation
目的 观察低频脉冲磁场(LF-PMF)对体外培养大鼠心肌微血管内皮细胞(CMECs)增殖、迁移和成血管能力的影响.方法 用频率为15 Hz,强度为1.0 mT、1.4 mT、1.8 mT的方波脉冲磁场干预CMECs,每日作用2 h,共5 d.通过绘制细胞生长曲线观察细胞生长情况,流式细胞仪检测细胞周期,透射电镜观察细胞超微结构,划痕试验检测细胞迁移能力,管状结构形成试验检测细胞成血管能力.结果 CMECs经1.4 mT磁场干预后增殖加速,DNA合成活跃,超微结构观察示线粒体数量增多、内质网发达等细胞活性增强表现,细胞迁移和管样结构形成能力增强,细胞迁移面积百分比达86.10%.结论 磁场作用与磁场强度相关,1.4 mT低频脉冲磁场可促进CMECs增殖、迁移,提高其细胞活性和成血管能力.
目的 觀察低頻脈遲磁場(LF-PMF)對體外培養大鼠心肌微血管內皮細胞(CMECs)增殖、遷移和成血管能力的影響.方法 用頻率為15 Hz,彊度為1.0 mT、1.4 mT、1.8 mT的方波脈遲磁場榦預CMECs,每日作用2 h,共5 d.通過繪製細胞生長麯線觀察細胞生長情況,流式細胞儀檢測細胞週期,透射電鏡觀察細胞超微結構,劃痕試驗檢測細胞遷移能力,管狀結構形成試驗檢測細胞成血管能力.結果 CMECs經1.4 mT磁場榦預後增殖加速,DNA閤成活躍,超微結構觀察示線粒體數量增多、內質網髮達等細胞活性增彊錶現,細胞遷移和管樣結構形成能力增彊,細胞遷移麵積百分比達86.10%.結論 磁場作用與磁場彊度相關,1.4 mT低頻脈遲磁場可促進CMECs增殖、遷移,提高其細胞活性和成血管能力.
목적 관찰저빈맥충자장(LF-PMF)대체외배양대서심기미혈관내피세포(CMECs)증식、천이화성혈관능력적영향.방법 용빈솔위15 Hz,강도위1.0 mT、1.4 mT、1.8 mT적방파맥충자장간예CMECs,매일작용2 h,공5 d.통과회제세포생장곡선관찰세포생장정황,류식세포의검측세포주기,투사전경관찰세포초미결구,화흔시험검측세포천이능력,관상결구형성시험검측세포성혈관능력.결과 CMECs경1.4 mT자장간예후증식가속,DNA합성활약,초미결구관찰시선립체수량증다、내질망발체등세포활성증강표현,세포천이화관양결구형성능력증강,세포천이면적백분비체86.10%.결론 자장작용여자장강도상관,1.4 mT저빈맥충자장가촉진CMECs증식、천이,제고기세포활성화성혈관능력.
Objective To investigate the effects of low frequency pulsed magnetic fields (LF-PMFs) on the proliferation of cardiac microvascular endothelial cells (CMECs) and their ultrastructure,migration and angiogenic potential. Methods CMECs from rats were exposed in vitro to low frequency square wave pulsed magnetic fields (15 Hz) 2 h/d for 5 d.The cells were randomly divided into 4 groups (control,1.0 mT,1.4 mT and 1.8 mT).After 5 days of exposure,proliferation was detected in terms of the cells' growth curves,their cycle was detected with flow cytometry,and their ultrastructure was observed using transmission electric microscopy. A scratch assay was used to evaluate the CMECs migration,and their angiogenic potential was measured using a tube formation assay.Results There was no significant effect of a 1.0 mT magnetic field on the ceils' growth curve,cell cycle or ultrastructure.The 1.4 mT magnetic field did,however,accelerate the CMECs' proliferation.The peak of the cells'growth curve was higher and moved forward,and the percentage of cells in the S phase increased significantly compared with the control group.The effects of a 1.8 mT magnetic field on S phase development were similar to those of the 1.4 mT field,but the peak of the cells' growth curve was not moved forward.After exposure to a 1.4 mT or 1.8 mT magnetic field,the CMECs' ultrastructure changed and they appeared more viable and powerful.Their nucleoil became bigger and clearer than those of the control group.There were cavernous nucleoli or two nucleoli.The number of mitochondria increased.The endoplasmic reticulum was richer and full of protein secretions inside with many microvilli on the surface.The magnetic fields facilitated migration and tube formation in the CMECs significantly,and these effects were correlated with the magnetic field intensity (1.4 mT> 1.8 mT > 1.0 mT).The cell migratory percentage in the 1.4 mT group was 86.1% ,while in the control group it was only 45.3%.When the CMECs were cultured on a collagen mixture,they were able to spontaneously reorganize into tube-like structures.After 5 d in culture,they grew to cord-like structures which were similar to the vascular trees seen in vivo.Tube-like and cordlike structures were much more numerous among the CMECs exposed to magnetic fields compared with the control group. Conclusions Magnetic fields of 1.4 mT can accelerate proliferation and migration,and elevate the activity and angiogenic potential of CMECs significantly.