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Microspectrofluorometry for metabolic control analysis and the study of organelle morphogenesis in cell differentiation and transformation

机译:显微荧光法用于代谢控制分析以及细胞分化和转化中细胞器形态发生的研究

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Abstract: Microspectrofluorometry has been used in conjunction with fluorescence micrography for metabolic control analysis in normal and genetically deficient human fibroblasts, as well as human melanoma cells. These studies point to the role of mitochondria as the `cell's policeman' with regard to metabolic control. Cytotoxic agents active on mitochondrial structure and function (i.e. anthralin, azelaic acid) produce an unleashing of extramitochondrial pathways characterized by large and out-of- control NAD(P)H transients elicited by microinjected substrates. An interesting aspect has been the demonstration of an active nuclear energy metabolism, by NAD(P)H fluorescence excited at 365 nm, which may help to link cell bioenergetics to gene expression in the eukaryotes by the use of DNA probes. The metabolic control analysis of cell bioenergetics has been extended to the pathways involved in the cell's handling of cytotoxic agents. Non invasive fluorescence equipment offers possibilities for diagnostics and therapeutics in dermatology. Structure and function studies can be carried out at considerably enhanced resolution and with on- line interpretation by introducing scanning nearfield optics microscopy (SNOM) and real-time interactive parameter experimentation control (RIPEC). !16
机译:摘要:荧光光谱法已与荧光显微术结合用于正常和遗传缺陷的人类成纤维细胞以及人类黑素瘤细胞的代谢控制分析。这些研究指出线粒体在代谢控制方面作为“细胞警察”的作用。对线粒体的结构和功能具有活性的细胞毒性剂(如蒽醌,壬二酸)释放线粒体途径,释放出的特征是微注射底物引起的大量失控的NAD(P)H瞬变。一个有趣的方面是通过在365 nm处激发的NAD(P)H荧光来证明活性核能代谢,这可能有助于通过使用DNA探针将细胞生物能学与真核生物中的基因表达联系起来。细胞生物能学的代谢控制分析已扩展到细胞处理细胞毒性剂所涉及的途径。无创荧光设备为皮肤病学的诊断和治疗提供了可能性。通过引入扫描近场光学显微镜(SNOM)和实时交互式参数实验控制(RIPEC),可以以显着提高的分辨率和在线解释来进行结构和功能研究。 !16

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