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Cellular metabolism can be envisaged by fluorescence lifetime imaging of fluorophores sensitive to specific intracellular factors such as [H+], [Ca2+], [O2], membrane potential, temperature, polarity of the probe environment, and alterations in the conformation and interactions of macromolecules. Lifetime measurements of the probes allow the quantitative determination of the intracellular factors. Fluorescence microscopy taking advantage of time-correlated single photon counting is a novel method that outperforms all other techniques with its single photon sensitivity and picoseconds time resolution. In this work, a time- and space-correlated single photon counting system was established to investigate the behavior of 2-(4-(dimethylamino)styryl)-1-methylpyridinium iodide (DASPMI) in living cells. DASPMI is known to selectively stain mitochondria in living cells. The uptake and fluorescence intensity of DASPMI in mitochondria is a dynamic measure of membrane potential. Hence, an endeavour was made to elucidate the mechanism of DASPMI fluorescence by obtaining spectrally-resolved fluorescence decays in different solvents. A bi-exponential decay model was sufficient to globally describe the wavelength dependent fluorescence in ethanol and chloroform. While in glycerol, a three-exponential decay model was necessary for global analysis. In the polar low-viscous solvent water, a mono-exponential decay model fitted the decay data. The sensitivity of DASPMI fluorescence to solvent viscosity was analysed using various proportions of glycerol/ethanol mixtures. The lifetimes were found to increase with increasing solvent viscosity. The negative amplitudes of the short lifetime component found in chloroform and glycerol at the longer wavelengths validated the formation of new excited state species from the initially excited state. Time-resolved emission spectra in chloroform and glycerol showed a biphasic increase of spectral width and emission maxima. The spectral width had an initial fast increase within 150 ps and a near constant thereafter. A two-state model based on solvation of the initially excited state and further formation of TICT state has been proposed to explain the excited state kinetics and has been substantiated by the de-composition of time-resolved spectra. The knowledge of DASPMI photophysics in a variety of solvents now provides the means of deducing complex physiological parameters of mitochondria from its behavior in living cells. Spatially-resolved fluorescence decays from single mitochondria or only very few organelles of XTH2 cells signified distinctive three-exponential decay kinetics of viscous environment. Based on DASPMI photophysics in a variety of solvents, these lifetimes have been attributed to the fluorescence from locally excited state (LE), intramolecular charge transfer state (ICT) and twisted intramolecular charge transfer (TICT) state. A considerable variation in lifetime among mitochondria of different morphology and within single cell was evident corresponding to the high physiological variations within single cells. Considerable shortening of the short lifetime component (τ1) under high membrane potential condition, such as in the presence of ATP and/or substrate, was similar to quenching and dramatic decrease of lifetime in polar solvents. Under these conditions τ2 and τ3 increased with decreasing contribution. Upon treatment with ionophore nigericin, hyperpolarization of mitochondria resulted in remarkable shortening of τ1 from 159 ps to 38 ps. Inhibiting respiration by cyanide resulted in notable increase of mean lifetime and decrease of mitochondrial fluorescence. Increase of DASPMI fluorescence on conditions elevating mitochondrial membrane potential has been attributed to uptake according Nernst distributions, to de-localisation of π electrons, quenching processes of the methyl pyridinium moiety and restricted torsional dynamics at the mitochondrial inner membrane. Accordingly, determination of anisotropy in DASPMI stained mitochondria in living XTH2 cells, revealed dependence of anisotropy on membrane potential. Such changes in anisotropy attributed to restriction of the torsional dynamics about the flexible single bonds neighboring the olefinic double bond revealed the previously known sub-mitochondrial zones with higher membrane potential along its length. Membrane-potential-dependent changes in anisotropy have further been demonstrated in senescent chick embryo fibroblasts. In conclusion, spectroscopic observations of excited-state kinetics of DASPMI in solvents and its behavior in living cells had revealed for the first time its localisation, mechanism of voltage sensitive fluorescence and its membrane-potential-dependent anisotropy in living cells. The simultaneous dependence of DASPMI photophysics on mitochondrial inner membrane viscosity and transmembrane potential has been highlighted.
Für den mitochondrialen ABC-Transporter MDL1 (multidrug resistance like) aus Saccharomyces cerevisiae wurde eine Funktion als intrazellulärer Peptidexporter vorhergesagt. MDL1 ist wahrscheinlich am Export von Degradationsprodukten der m-AAA (matrixoriented ATPases associated with a variety of cellular activities) Protease in den Intermembranraum beteiligt (Young et al., 2001). Das MDL1-Homodimer besteht aus zwei Transmembrandomänen mit jeweils sechs potentiellen α-Helices und zwei Nukleotidbindedomänen. Eine Überexpression des ABC-Transporters in E. coli und L. lactis ist nicht möglich. Nur im homologen Expressionssystem kann eine bis zu 100-fach gesteigerte MDL1-Konzentration in Anwesenheit des induzierbaren GAL1-Promotors gegenüber dem endogenen Protein erreicht werden. Differentielle Zentrifugation, Immunogold-Markierungen und Proteasezugänglichkeitsexperimente zeigen, dass MDL1 ausschließlich in der mitochondrialen Innenmembran lokalisiert ist und die Nukleotidbindedomänen zur Matrix orientiert vorliegen. Mit Hilfe von Edman Sequenzierung des gereinigten His-getaggten MDL1 wurde eine 59 Aminosäuren lange mitochondriale Leitsequenz identifiziert. Die Deletionsvariante MDL1(60-695) wird ausschließlich in den Membranen des Endoplasmatischen Retikulums exprimiert. Ihre Motordomänen liegen zytosolisch orientiert vor. Beide MDL1-Varianten bilden homooligomere Komplexe vergleichbarer Größe und weisen ähnliche ATPase Aktivitäten auf. Die physiologischen Konsequenzen der Lokalisation in unterschiedlichen Membranen wurden in Zellen näher untersucht, deren mitochondrialer ABC-Transporter ATM1 (ABC transporter of mitochondria) deletiert ist. ATM1 ist von essentieller Bedeutung für die Biogenese zytosolischer Eisen/Schwefel-Proteine (Lill und Kispal, 2000). Der mitochondriale MDL1-Komplex kann zum Teil die ATM1-Funktion übernehmen, wohingegen ER-ständiges MDL1, als auch ATP Binde- und Hydrolyse inaktive Mutanten, den Δatm1 Wachstumsphänotyp nicht komplementieren können. Die physiologische Funktion von MDL1 ist somit eng mit der mitochondrialen Innenmembran und der Funktionalität des Proteins verbunden. Durch in vivo Komplementationsstudien wurden zwei mitochondriale ABC-Transporter ABCB10 und Pa_2_9660 aus H. sapiens bzw. P. anserina als funktionelle MDL1-Homologe identifiziert.