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目的:通过对海藻酸钠链段羟基位点改性制备甲氧基聚乙二醇(MPEG)原位共价修饰的海藻酸钠/壳聚糖(AC)微胶囊,在保证MPEG修饰微胶囊机械强度不受影响的基础上,有效提高表面MPEG修饰密度,实现兼具良好机械稳定性及抗蛋白性能的微胶囊制备方法。方法:利用溴化氰对海藻酸钠羟基进行活化并将末端氨基的点击化学linker(BAT)接枝在主链上进而制备MPEG原位共价修饰微囊A_(B(OH))CP_N,用球磨法表征微囊机械强度,用Ig G和Fgn为模型考察微囊表面抗蛋白吸附性能,以L929细胞在其二维模拟平板膜上的黏附情况作为衡量指标,考察MPEG修饰微胶囊表面细胞粘附情况,并最终通过体内移植考察MPEG修饰微囊的生物相容性。结果:基于海藻酸钠羟基位点的MPEG原位共价修饰微胶囊能够实现与常规条件制备的微胶囊接近的机械强度;同时与对照组相比Ig G吸附量降低87.4%,Fgn吸附量降低75.5%,实现了良好的抗蛋白吸附性能;二维模拟平板膜表面L929细胞粘附情况显著改善,细胞粘附数与对照组相比降低了76.9%;体内移植结果证明MPEG修饰微囊细胞粘附极少,微囊与纤维层分离明显。结论:基于海藻酸钠羟基位点的MPEG原位修饰能够实现兼具良好机械稳定性及抗蛋白吸附性能的微胶囊。  相似文献   
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In this paper, we seek to provide an introduction to the fast-moving field of digital video on the Internet, from the viewpoint of the biological microscopist who might wish to store or access videos, for instance in image databases such as the BioImage Database (http://www.bioimage.org). We describe and evaluate the principal methods used for encoding and compressing moving image data for digital storage and transmission over the Internet, which involve compromises between compression efficiency and retention of image fidelity, and describe the existing alternate software technologies for downloading or streaming compressed digitized videos using a Web browser. We report the results of experiments on video microscopy recordings and three-dimensional confocal animations of biological specimens to evaluate the compression efficiencies of the principal video compression-decompression algorithms (codecs) and to document the artefacts associated with each of them. Because MPEG-1 gives very high compression while yet retaining reasonable image quality, these studies lead us to recommend that video databases should store both a high-resolution original version of each video, ideally either uncompressed or losslessly compressed, and a separate edited and highly compressed MPEG-1 preview version that can be rapidly downloaded for interactive viewing by the database user.  相似文献   
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