Tyner Katherine M, Kopelman Raoul, Philbert Martin A
Toxicology Program and Chemistry Department, University of Michigan, Ann Arbor, Michigan 48105, USA.
Biophys J. 2007 Aug 15;93(4):1163-74. doi: 10.1529/biophysj.106.092452. Epub 2007 May 18.
Previously, all biological measurements of intracellular electric fields (E fields), using voltage dyes or patch/voltage clamps, were confined to cellular membranes, which account for <0.1% of the total cellular volume. These membrane-dependent techniques also frequently require lengthy calibration steps for each cell or cell type measured. A new 30-nm "photonic voltmeter", 1000-fold smaller than existing voltmeters, enables, to our knowledge, the first complete three-dimensional E field profiling throughout the entire volume of living cells. These nanodevices are calibrated externally and then applied for E field determinations inside any live cell or cellular compartment, with no further calibration steps. The results indicate that the E fields from the mitochondrial membranes penetrate much deeper into the cytosol than previously estimated, indicating that, electrically, the cytoplasm cannot be described as a simple homogeneous solution, as often approximated, but should rather be thought of as a complex, heterogeneous hydrogel, with distinct microdomains.
此前,所有使用电压染料或膜片钳/电压钳对细胞内电场(E场)进行的生物学测量都局限于细胞膜,而细胞膜仅占细胞总体积的不到0.1%。这些依赖于膜的技术还常常需要针对每个测量的细胞或细胞类型进行冗长的校准步骤。据我们所知,一种新型的30纳米“光子伏特计”,比现有伏特计小1000倍,能够在活细胞的整个体积内首次完成完整的三维E场分析。这些纳米器件在外部进行校准,然后应用于任何活细胞或细胞区室内的E场测定,无需进一步的校准步骤。结果表明,线粒体膜产生的E场比先前估计的更深地渗透到细胞质中,这表明,从电学角度来看,细胞质不能像通常所近似的那样被描述为一种简单的均匀溶液,而更应被视为一种复杂的、异质的水凝胶,具有不同的微区。