Kinematic Cell Research Group, Institute for Cell Biology and Neurosciences, Goethe University Frankfurt, Max-von-Laue Strasse 13, 60438 Frankfurt am Main, Germany; Mitochondrial Biology Group, Buchmann Institute for Molecular Life Sciences, Goethe University Frankfurt, Max-von-Laue Strasse 15, 60438 Frankfurt am Main, Germany.
Kinematic Cell Research Group, Institute for Cell Biology and Neurosciences, Goethe University Frankfurt, Max-von-Laue Strasse 13, 60438 Frankfurt am Main, Germany.
J Struct Biol. 2013 Sep;183(3):455-466. doi: 10.1016/j.jsb.2013.06.003. Epub 2013 Jun 17.
Combining the use of cells with sparse cristae marked with IMP-EGFP and short pulsed sub-saturating fluorescence excitation (non-saturation fluorescence microscopy/NSFM) revealed inhomogeneous fluorescence distribution along mitochondria in living cells. Also the matrix located TMRE was distributed non-uniformly and at least in part filling the gaps between the IMP-EGFP fluorescence: fluorescence intensities are modulated in space and time in part in an antidromic manner. The spatial modulations can be interpreted to represent cristae/matrix distributions. The temporal fluctuations of fluorescence vary within 0.3-3s. Because most peak positions of IMP fluorescence remain stationary up to at least several minutes, temporal intensity modulations may result from varying emissions related to the degree of excitation and/or represent wobbling of cristae, i.e. lateral movements, bending or size changes. Modulations by noise and non-saturated excitation have been reduced by 3 steps of deconvolution followed by averaging 4 images. This allowed a final temporal resolution of 150ms. Disappearance of cristae or formation of new ones takes place within a few seconds, but these are rare events. Thus position of cristae seems to be rather stable, but they regularly disassemble close to fission sites. Treatment with oligomycin strongly reduces "wobbling" activity.
将具有稀疏嵴的细胞与 IMP-EGFP 标记和短脉冲亚饱和荧光激发(非饱和荧光显微镜/NSFM)结合使用,在活细胞中揭示了线粒体沿不均匀的荧光分布。此外,位于 TMRE 的基质也不均匀分布,至少部分填补了 IMP-EGFP 荧光之间的间隙:荧光强度在空间和时间上以部分逆行方式进行调制。空间调制可以解释为代表嵴/基质分布。荧光的时间波动在 0.3-3s 内变化。由于 IMP 荧光的大多数峰位置至少在几分钟内保持静止,因此时间强度调制可能来自与激发程度相关的变化发射,或者代表嵴的摆动,即侧向运动、弯曲或大小变化。通过三步反卷积和平均 4 个图像减少了噪声和非饱和激发的调制。这允许最终的时间分辨率为 150ms。嵴的消失或新嵴的形成发生在几秒钟内,但这些是罕见的事件。因此,嵴的位置似乎相对稳定,但它们经常在分裂部位附近解体。寡霉素处理强烈降低“摆动”活性。