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Epithelial Cells in 2D and 3D Cultures Exhibit Large Differences in Higher-order Genomic Interactions
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作者 Xin Liu Qiu Sun +5 位作者 Qi Wang Chuansheng Hu Xuecheng Chen Hua Li daniel m.czajkowsky Zhifeng Shao 《Genomics, Proteomics & Bioinformatics》 SCIE CAS CSCD 2022年第1期101-109,共9页
Recent studies have characterized the genomic structures of many eukaryotic cells,often focusing on their relation to gene expression.However,these studies have largely investigated cells grown in 2D cultures,although... Recent studies have characterized the genomic structures of many eukaryotic cells,often focusing on their relation to gene expression.However,these studies have largely investigated cells grown in 2D cultures,although the transcriptomes of 3D-cultured cells are generally closer to their in vivo phenotypes.To examine the effects of spatial constraints on chromosome conformation,we investigated the genomic architecture of mouse hepatocytes grown in 2D and 3D cultures using in situ Hi-C.Our results reveal significant differences in higher-order genomic interactions,notably in compartment identity and strength as well as in topologically associating domain(TAD)-TAD interactions,but only minor differences are found at the TAD level.Our RNA-seq analysis reveals up-regulated expression of genes involved in physiological hepatocyte functions in the 3D-cultured cells.These genes are associated with a subset of structural changes,suggesting that differences in genomic structure are critically important for transcriptional regulation.However,there are also many structural differences that are not directly associated with changes in gene expression,whose cause remains to be determined.Overall,our results indicate that growth in 3D significantly alters higher-order genomic interactions,which may be consequential for a subset of genes that are important for the physiological functioning of the cell. 展开更多
关键词 3D culture In situ Hi-C Chromosome conformation COMPARTMENT TAD
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一种用于抗原-抗体相互作用研究的实验方法
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作者 罗婷 刘美君 daniel m.czajkowsky 《基因组学与应用生物学》 CAS CSCD 北大核心 2021年第2期849-854,共6页
蛋白抗原-抗体相互作用是生物技术领域的重要研究之一。蛋白抗原难以合成、纯化且易于降解,低质量的蛋白抗原可能会导致该研究复杂、耗时、昂贵,甚至不可靠;抗原-抗体相互作用可能涉及易接触的抗原结合位点也可能给其带来挑战。故本研... 蛋白抗原-抗体相互作用是生物技术领域的重要研究之一。蛋白抗原难以合成、纯化且易于降解,低质量的蛋白抗原可能会导致该研究复杂、耗时、昂贵,甚至不可靠;抗原-抗体相互作用可能涉及易接触的抗原结合位点也可能给其带来挑战。故本研究开发出高效的实验体系,仅使用相应肽段作为抗原,来研究蛋白抗原与抗体的相互作用。以抗A型肉毒杆菌抗体及其对应的抗原肽段为模型,采用原子力显微镜和凝胶电泳确定研究的最佳条件。但抗原多肽在一些常规的缓冲液中会自发聚集。在确定了阻止其聚集的条件后,通过磁性微球分选洗脱实验模拟细胞表面的抗原-抗体结合过程,验证了该研究体系的有效性。故本研究所建立的实验体系高效、简单又经济,有望为免疫学基础研究、疫苗研发和免疫治疗等医学临床与工业应用发展提供技术补充。 展开更多
关键词 抗原-抗体反应 抗原多肽 聚集 原子力显微镜
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