Accessing nuclear structure for field emission, in lens, scanning electron microscopy (FEISEM).

Scanning microscopy. Supplement Pub Date : 1996-01-01
T D Allen, G R Bennion, S A Rutherford, S Reipert, A Ramalho, E Kiseleva, M W Goldberg
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Abstract

Scanning electron microscopy (SEM) has had a shorter time course in biology than conventional transmission electron microscopy (TEM) but has nevertheless produced a wealth of images that have significantly complemented our perception of biological structure and function from TEM information. By its nature, SEM is a surface imaging technology, and its impact at the subcellular level has been restricted by the considerably reduced resolution in conventional SEM in comparison to TEM. This restriction has been removed by the recent advent of high-brightness sources used in lensfield emission instruments (FEISEM) which have produced resolution of around 1 nanometre, which is not usually a limiting figure for biological material. This communication reviews our findings in the use of FEISEM in the imaging of nuclear surfaces, then associated structures, such as nuclear pore complexes, and the relationships of these structures with cytoplasmic and nucleoplasmic elements. High resolution SEM allows the structurally orientated cell biologist to visualise, directly and in three dimensions, subcellular structure and its modulation with a view to understanding, its functional significance. Clearly, intracellular surfaces require separation from surrounding structural elements in vivo to allow surface imaging, and we review a combination of biochemical and mechanical isolation methods for nuclear surfaces.

在透镜中扫描电子显微镜(FEISEM)中获取场发射核结构。
扫描电子显微镜(SEM)在生物学上的应用时间比传统的透射电子显微镜(TEM)要短,但它仍然产生了丰富的图像,这些图像极大地补充了我们对TEM信息中生物结构和功能的认识。就其本质而言,扫描电镜是一种表面成像技术,与TEM相比,传统扫描电镜的分辨率大大降低,限制了其在亚细胞水平上的影响。由于透镜场发射仪器(FEISEM)中使用的高亮度光源的出现,这一限制已被消除,该光源产生的分辨率约为1纳米,这通常不是生物材料的限制数字。本文回顾了我们在核表面成像中使用FEISEM的发现,然后是相关结构,如核孔复合物,以及这些结构与细胞质和核质元素的关系。高分辨率扫描电镜使结构定向的细胞生物学家能够直观地、三维地观察亚细胞结构及其调节,从而理解其功能意义。显然,细胞内表面需要与体内周围的结构元件分离才能进行表面成像,我们回顾了核表面的生化和机械分离方法的结合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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