As a leading cause of cancer deaths worldwide, lung cancer is a collection of diseases with diverse etiologies which can be broadly classified into small-cell lung cancer (SCLC) and non-small-cell lung cancer (NSCL...As a leading cause of cancer deaths worldwide, lung cancer is a collection of diseases with diverse etiologies which can be broadly classified into small-cell lung cancer (SCLC) and non-small-cell lung cancer (NSCLC). Lung cancer is characterized by genomic and epigenomic alterations; however, mechanisms underlying lung tumorigenesis remain to be elucidated. Long noncoding RNAs (lncRNAs) are a group of non-coding RNAs that consist of ≥ 200 nucleotides but possess low or no protein-coding potential. Accumulating evidence indicates that abnormal expression of lncRNAs is associated with tumorigenesis of various cancers, including lung cancer, through multiple biological mechanisms involving epigenetic, transcriptional, and post-transcriptional alterations. In this review, we highlight the expression and roles of lncRNAs in NSCLC and discuss their potential clinical applications as diagnostic or prognostic biomarkers, as well as therapeutic targets.展开更多
为了研究不同纳米添加物对聚酰亚胺(polyimide,PI)电气性能的影响,采用原位聚合法制备了纯PI薄膜、PI质量分数10%的PI/SiO_2和PI/Al_2O_3纳米复合薄膜,测试其电导率(表面、体积电导率)、介电频谱、方波脉冲下的局部放电以及耐电晕性能,...为了研究不同纳米添加物对聚酰亚胺(polyimide,PI)电气性能的影响,采用原位聚合法制备了纯PI薄膜、PI质量分数10%的PI/SiO_2和PI/Al_2O_3纳米复合薄膜,测试其电导率(表面、体积电导率)、介电频谱、方波脉冲下的局部放电以及耐电晕性能,并用SEM观察击穿点周围的表面形貌。结果表明:PI/SiO_2膜的电导率大于PI/Al_2O_3膜,其中表面电导率是PI/Al_2O_3膜的6倍;PI/Al_2O_3膜、PI/SiO_2膜、PI膜的介电常数依次降低;PI/SiO_2膜和纯PI膜的介电损耗角正切值(tanδ)随频率的增加先减小后增大,PI/Al_2O_3膜的tanδ值在6 k Hz后最大;由于空间电荷弛豫,PI/Al_2O_3膜的tanδ值在0.02Hz左右出现了一个峰值;另外,因为电荷扩散能力不同,PI/SiO_2膜、PI/Al_2O_3膜以及PI膜的局部放电起始电压和耐电晕时间依次减小,而局部放电的平均幅值则依次增大;电晕放电使得3种薄膜表面都形成了很多微孔、裂纹,纳米复合薄膜表面出现块状物。研究结果表明:复合薄膜中界面体积分数和纳米粒子极性,是造成PI/SiO_2薄膜和PI/Al_2O_3薄膜电气性能差异的主要原因。展开更多
基金supported by the National Natural Science Funds for Distinguished Young Scholar(Grant No.81425025)the National Basic Research Program of China(Grant No.2012CB910800)
文摘As a leading cause of cancer deaths worldwide, lung cancer is a collection of diseases with diverse etiologies which can be broadly classified into small-cell lung cancer (SCLC) and non-small-cell lung cancer (NSCLC). Lung cancer is characterized by genomic and epigenomic alterations; however, mechanisms underlying lung tumorigenesis remain to be elucidated. Long noncoding RNAs (lncRNAs) are a group of non-coding RNAs that consist of ≥ 200 nucleotides but possess low or no protein-coding potential. Accumulating evidence indicates that abnormal expression of lncRNAs is associated with tumorigenesis of various cancers, including lung cancer, through multiple biological mechanisms involving epigenetic, transcriptional, and post-transcriptional alterations. In this review, we highlight the expression and roles of lncRNAs in NSCLC and discuss their potential clinical applications as diagnostic or prognostic biomarkers, as well as therapeutic targets.
文摘为了研究不同纳米添加物对聚酰亚胺(polyimide,PI)电气性能的影响,采用原位聚合法制备了纯PI薄膜、PI质量分数10%的PI/SiO_2和PI/Al_2O_3纳米复合薄膜,测试其电导率(表面、体积电导率)、介电频谱、方波脉冲下的局部放电以及耐电晕性能,并用SEM观察击穿点周围的表面形貌。结果表明:PI/SiO_2膜的电导率大于PI/Al_2O_3膜,其中表面电导率是PI/Al_2O_3膜的6倍;PI/Al_2O_3膜、PI/SiO_2膜、PI膜的介电常数依次降低;PI/SiO_2膜和纯PI膜的介电损耗角正切值(tanδ)随频率的增加先减小后增大,PI/Al_2O_3膜的tanδ值在6 k Hz后最大;由于空间电荷弛豫,PI/Al_2O_3膜的tanδ值在0.02Hz左右出现了一个峰值;另外,因为电荷扩散能力不同,PI/SiO_2膜、PI/Al_2O_3膜以及PI膜的局部放电起始电压和耐电晕时间依次减小,而局部放电的平均幅值则依次增大;电晕放电使得3种薄膜表面都形成了很多微孔、裂纹,纳米复合薄膜表面出现块状物。研究结果表明:复合薄膜中界面体积分数和纳米粒子极性,是造成PI/SiO_2薄膜和PI/Al_2O_3薄膜电气性能差异的主要原因。