Coates Colin G, Denvir Donal J, McHale Noel G, Thornbury Keith D, Hollywood Mark A
Andor Technology Limited, 9 Millennium Way, Springvale Business Park, Belfast, BT12 7AL, Northern Ireland.
J Biomed Opt. 2004 Nov-Dec;9(6):1244-52. doi: 10.1117/1.1805559.
The back-illuminated electron multiplying charge-coupled device (EMCCD) camera is having a profound influence on the field of low-light dynamic cellular microscopy, combining highest possible photon collection efficiency with the ability to virtually eliminate the readout noise detection limit. We report here the use of this camera, in 512 x 512 frame-transfer chip format at 10-MHz pixel readout speed, in optimizing a demanding ultra-low-light intracellular calcium flux microscopy setup. The arrangement employed includes a spinning confocal Nipkow disk, which, while facilitating the need to both generate images at very rapid frame rates and minimize background photons, yields very weak signals. The challenge for the camera lies not just in detecting as many of these scarce photons as possible, but also in operating at a frame rate that meets the temporal resolution requirements of many low-light microscopy approaches, a particular demand of smooth muscle calcium flux microscopy. Results presented illustrate both the significant sensitivity improvement offered by this technology over the previous standard in ultra-low-light CCD detection, the GenIII+intensified charge-coupled device (ICCD), and also portray the advanced temporal and spatial resolution capabilities of the EMCCD.
背照式电子倍增电荷耦合器件(EMCCD)相机对低光动态细胞显微镜领域产生了深远影响,它将尽可能高的光子收集效率与几乎消除读出噪声检测极限的能力结合在一起。我们在此报告了这款相机的使用情况,它采用512×512帧转移芯片格式,像素读出速度为10MHz,用于优化要求苛刻的超低光细胞内钙通量显微镜设置。所采用的配置包括一个旋转共焦尼普科夫盘,该盘在满足以非常快的帧率生成图像和最小化背景光子这两个需求的同时,会产生非常微弱的信号。相机面临的挑战不仅在于尽可能多地检测到这些稀少的光子,还在于以满足许多低光显微镜方法的时间分辨率要求的帧率运行,这是平滑肌钙通量显微镜的一项特殊要求。所展示的结果既说明了该技术相对于超低光CCD检测的先前标准——GenIII +增强型电荷耦合器件(ICCD)而言显著提高的灵敏度,也描绘了EMCCD先进的时间和空间分辨率能力。