目的:通过对神经侧支发芽过程中外源性神经生长因子对生长相关蛋白-43(gr owt h associ at ed pr ot ei n-43,GAP-43)的调控,探讨神经侧支发芽再生的机制。方法:SD大鼠共40只,建立胫腓神经端侧吻合模型,随机分为神经生长因子(nervegr ow...目的:通过对神经侧支发芽过程中外源性神经生长因子对生长相关蛋白-43(gr owt h associ at ed pr ot ei n-43,GAP-43)的调控,探讨神经侧支发芽再生的机制。方法:SD大鼠共40只,建立胫腓神经端侧吻合模型,随机分为神经生长因子(nervegr owt h f act or,NGF)组和生理盐水(SAL)组,各组又分为1周、2周、4周和8周组。切取吻合近端和远端神经纵切片标本,进行GAP-43的免疫组织化学反应,并结合计算机图像分析进行反应强度的半定量分析。结果:NGF组GAP-43表达显著增高。结论:应用NGF可以促进端侧吻合后神经侧支发芽。展开更多
A three-dimensional time-domain potential flow model is developed and applied to simulate the wave resonance in a gap between two side-by-side rectangular barges. A fourth-order predict-correct method is implemented t...A three-dimensional time-domain potential flow model is developed and applied to simulate the wave resonance in a gap between two side-by-side rectangular barges. A fourth-order predict-correct method is implemented to update free surface boundary conditions. The response of an up-wave barge is predicted by solving the motion equation with the Newmark-β method. Following the validation of the developed numerical model for wave radiation and diffraction around two side-by-side barges, the influence of up-wave barge motion on the gap surfaceresonance is investigated in two different locations of the up-wave barge relative to the back-wave barge at various frequencies. The results reveal that the freely floating up-wave barge significantly influences the resonance frequency and the resonance wave amplitude. Simultaneously, the up-wave barge located in the middle of the back-wave barge leads to a reduction in the resonance wave amplitude and motion response when compared with other configurations.展开更多
文摘目的:通过对神经侧支发芽过程中外源性神经生长因子对生长相关蛋白-43(gr owt h associ at ed pr ot ei n-43,GAP-43)的调控,探讨神经侧支发芽再生的机制。方法:SD大鼠共40只,建立胫腓神经端侧吻合模型,随机分为神经生长因子(nervegr owt h f act or,NGF)组和生理盐水(SAL)组,各组又分为1周、2周、4周和8周组。切取吻合近端和远端神经纵切片标本,进行GAP-43的免疫组织化学反应,并结合计算机图像分析进行反应强度的半定量分析。结果:NGF组GAP-43表达显著增高。结论:应用NGF可以促进端侧吻合后神经侧支发芽。
基金The Research Innovation Foundation of Tianjin Research Institute for Water Transportation Engineering of China under contract No.TKS 170215the Research Foundation of State Key Laboratory of Coastal and Offshore Engineering of Dalian University of Technology of China under contract No.TKS 170215
文摘A three-dimensional time-domain potential flow model is developed and applied to simulate the wave resonance in a gap between two side-by-side rectangular barges. A fourth-order predict-correct method is implemented to update free surface boundary conditions. The response of an up-wave barge is predicted by solving the motion equation with the Newmark-β method. Following the validation of the developed numerical model for wave radiation and diffraction around two side-by-side barges, the influence of up-wave barge motion on the gap surfaceresonance is investigated in two different locations of the up-wave barge relative to the back-wave barge at various frequencies. The results reveal that the freely floating up-wave barge significantly influences the resonance frequency and the resonance wave amplitude. Simultaneously, the up-wave barge located in the middle of the back-wave barge leads to a reduction in the resonance wave amplitude and motion response when compared with other configurations.