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利用CRISPR/Cas9敲除人源细胞系中LMNA基因的研究 被引量:2
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作者 刘恒 李东明 +9 位作者 朱兰玉 赖乐锦 闫婉云 陆玉双 韦伊 黄月琪 方媚 苏元港 杨芳 舒伟 《遗传》 CAS CSCD 北大核心 2019年第1期66-75,共10页
LMNA基因编码A型和C型核纤层蛋白,参与细胞核核膜的组织,影响基因组稳定性并对细胞分化产生影响。人类肿瘤中LMNA表达异常普遍存在,其突变造成多种核纤层蛋白病,如Emery-Dreifuss肌营养不良症(Emery-Dreifussmusculardystrophy,EDMD)、... LMNA基因编码A型和C型核纤层蛋白,参与细胞核核膜的组织,影响基因组稳定性并对细胞分化产生影响。人类肿瘤中LMNA表达异常普遍存在,其突变造成多种核纤层蛋白病,如Emery-Dreifuss肌营养不良症(Emery-Dreifussmusculardystrophy,EDMD)、扩张型心肌病(dilatedcardiomyopathy,DCM)和儿童早老症(Hutchinson-Glifordprogeriasyndrome,HGPS)等。为进一步研究LMNA在细胞内的功能,本研究利用CRISPR/Cas9技术对体外培养的293T与HepG2细胞株的LMNA基因进行编辑,获得两株LMNA基因敲除(LMNA KO)的稳定细胞系。与野生型相比,LMNAKO细胞系增殖能力相对减弱,凋亡增加。同时,细胞形态上也发生显著改变,核膜凹凸不平。本研究首次报道了LMNA KO永生细胞系构建和形态研究结果,为后续LMNA基因功能研究和致病突变体研究奠定基础。 展开更多
关键词 LMNA基因 CRISPR/Cas9 293T HEPG2 细胞形态
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A small-spot deformation camouflage design algorithm based on background texture matching
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作者 Xin Yang Wei-dong Xu +7 位作者 Jun liu Qi Jia heng liu Jian-guo Ran Liang Zhou Yue Zhang You-bin Hao Chao-chang liu 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2023年第1期153-162,共10页
In order to solve the problem of poor fusion between the spots of deformation camouflage and the background,a small-spot deformation camouflage design algorithm based on background texture matching is proposed in this... In order to solve the problem of poor fusion between the spots of deformation camouflage and the background,a small-spot deformation camouflage design algorithm based on background texture matching is proposed in this research.The combination of spots and textures improved the fusion of the spot pattern and the background.An adversarial autoencoder convolutional network was designed to extract background texture features.The image adversarial loss was added and the reconstruction loss was improved to improve the clarity of the generated texture pattern and the generalization ability of the model.The digital camouflage was formed by obtaining the mean value of the square area and replacing the main color.At the same time,the spots in the square area with a side length of 2 s were subjected to simple linear iterative clustering to form irregular small-spot camouflage.A dataset with a scale of 1050 was established in the experiment.The training results of three different loss functions were investigated.The results showed that the proposed loss function could enhance the generalization of the model and improve the quality of the generated texture image.A variety of digital camouflages with main colors and irregular small-spot camouflage were generated,and their efficiency was tested.On the one hand,intuitive evaluation was given by personnel observing the camouflage pattern embedded in the background and its contour map calculated by the canny operator.On the other hand,objective comparison result was formed by calculating the 4 evaluation indexes between the camouflage pattern and the background.Both results showed that the generated pattern had a high degree of fusion with the background.This model could balance the relationship between the spot size,the number of main colors and the actual effect according to actual needs. 展开更多
关键词 Camouflage design Small-spot camouflage Adversarial network Texture feature
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