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E Sackmann

Publications and source records attributed to E Sackmann.

At least 109 records · Page 6Linked to original sources

Local measurement of lateral motion in erythrocyte membranes by photobleaching technique.

The lateral diffusion coefficients (D) of the molecular fluorescence probe 3,3'-dioctadecylindocarbocyanine iodide (DII) in the membrane of discoiderythrocyte ghosts has been measured with the photobleaching technique between 7 degrees C and 40 degrees C. A fluorescence microscope which allows bleaching experiments within small local fields (approx. 1 micron m2) at high magnification (X1600) has been used for these measurements. The diffusion coefficient increases from D = 9 - 10-10 cm2/s to D = 7.5 - 10-9 cm2/s from 7 to 40 degrees C. An increase in membrane fluidity between 12 degrees C and 17 degrees C indicates a conformational change of the lipid bilayer moiety in this temperature region. The diffusion coefficient measured in the regions between the spicules of echinocytes is appreciably smaller than in the untransformed discoid ghosts. In the myelin tubes originating from cells, the lateral diffusion is somewhat larger (about a factor of 2) than in the non-transformed ghosts. With the fluorescence probe technique the rate of growth of myelin tubes of 0.3 micronm diameter has been estimated.

Carbocyanines↗

Detection of lymphocyte stimulation by flow cytometry: differences in cells from patients with and without neoplasia.

Fluorescence polarization measurements were performed to detect PHA-stimulation of peripheral lymphocytes in an early state. Single cell fluorescence was measured by flow cytometry using an epi-illumination design to avoid the influence of background fluorescence and multiscattering. By these arrangements the accuracy in the determination of P, the degree of polarization, could be improved over the usual cell suspension measurements. Fluorescence polarization measurements were performed on density specified human lymphocytes after incubation with fluorescein diacetate with and without preincubation with phytohemagglutinin (PHA). A group of healthy donors had an average polarization of P = 0.17 before and P = 0.12 after PHA-stimulation, whereas a group of patients with malignant disease showed an average polarization of P = 0.14 before and after PHA-stimulation.

Adult↗

On two-dimensional passive random walk in lipid bilayers and fluid pathways in biomembranes.

The lateral mobility of pyrene, pyrene decanoic acid, and 1-palmitoyl-2-pyrene decanoyl-phosphatidyl choline (pyrene lecithin) in lipid bilayers is determined by the excimer formation technique. This method is applied to vesicles of lecithins differing in chain length and in the degree of saturation of the hydrocarbon chains. These values are compared with results in cephalins of different chain length and in dipalmitoyl phosphatidic acid at variable pH. The influence of cholesterol is investigated. The results are analyzed in terms of the Montroll model of two-dimensional random walk. The jump frequency of the probe molecule within the lipid lattice is obtained. The advantage of this measure of transport in lipid layers is that it does not involve lipid lattice parameters. The main results of the present work are: (i) The lateral mobility of a given solute molecule in lamellae of saturated lecithins is independent of hydrocarbon chain length and rather a universal function of temperature. (ii) In unsaturated dioleyl lecithin the amphiphatic molecules have lateral mobilities of the same size as in saturated lipids. The jump frequency of pyrene, however, is by a factor of two larger in the unsaturated lecithin. (iii) The jump frequencies in phosphatidyl ethanolamines are about equal to those in lecithins. (iv) In phosphatidic acid layers the hopping frequencies depend on the charges of the head groups of both the lipids and the probes. (v) Cholesterol strongly reduces the jump frequency in fluid layers. (vi) The lateral mobility in biological membranes is comparable to that in artificial lipid bilayers. The experimental results are discussed in terms of the free volume model of diffusion in fluids. Good agreement with the predictions made from this model is found. A striking result is the observation of a tilt in dioleyl-lecithin bilayer membranes from the hopping frequencies of pyrene and pyrene lecithin. A tilt angle of phi = 17 degrees is estimated.

Cholesterol↗

Three dimensional microscopic surface profiles of membranes reconstructed from freeze etching electrol micrographs.

A method of three-dimensional reconstruction of the surface profile of artificial and natural membranes from freeze quenched electron micrographs is presented. The method is based on the analysis of the variation in thickness of platinum layers, deposited under an oblique angle. In essence, it is reminiscent of the method of Eratosthenes to measure the earth's radius. The thickness of etch-like protrusions of membranes could be determined to an accuracy of about 3 A. True distances on curved surfaces rather than projections of distances are obtained. The method has been applied to both model membranes and biological membranes. The essential results are: 1. Detailed information on the symmetry and the molecular structure of the crystalline phases of dimyristoyl phosphatidylcholine was obtained. The microscopic surface profile of the ripple structure observed between the pretransition and the main transition was analysed. In accordance with a previous model we found that the ripple structure is caused by the spontaneous curvature of the monolayers. The surface profiles of the ripple structure and of the low temperature biaxial phase could be clearly distinguished. 2. The sizes and shapes of lipid domains formed by both thermically and charge-induced lateral phase separation were determined. This showed that the visual inspection of electron micrographs may lead to a considerable underestimation of the domain size. Conclusions may be drawn concerning the different phases formed upon lateral phase separation. 3. As a biological example, yeast cell membranes were studied. The method allows one to distinguish between different membrane-bound proteins by measuring the width-to-height ratio of the particles. The deformation of the lipid layer in the environment of the proteins may be determined. This deformation contains information about lipid-mediated long-range interactions between membrane proteins.

Freeze Etching↗

Polymyxin binding to charged lipid membranes. An example of cooperative lipid-protein interaction.

The binding of polymyxin-B to lipid bilayer vesicles of synthetic phosphatidic acid was studied using fluorescence, ESR spectroscopy and electron microscopy. 1,6-Diphenylhexatriene (which exhibits polarized fluorescence) and pyrene decanoic acid (which forms excimers) were used as fluorescence probes to study the lipid phase transition. The polymyxin binds strongly to negatively charged lipid layers. As a result of lipid/polymyxin chain-chain interactions, the transition temperature of the lipid. This can be explained in terms of a slight expansion of the crystalline lipid lattice (Lindeman's rule). Upon addition of polymyxin to phosphatidic acid vesicles two rather sharp phase transitions (width deltaT = 5 degrees C) are observed. The upper transition (at Tu) is that of the pure lipid and the lower transition (at T1) concerns the lipid bound to the peptide. The sharpness of these transitions strongly indicates that the bilayer is characterized by a heterogeneous lateral distribution of free and bound lipid regions, one in the crystalline and the other in the fluid state. Such a domain structure was directly observed by electron microscopy (freeze etching technique). In (1 : 1) mixtures of dipalmitoyl phosphatidic acid and egg lecithin, polymyxin induces the formation of domains of charged lipid within the fluid regions of egg lecithin. With both fluorescence methods the fraction of lipid bound to polymyxin-B as a function of the peptide concentration was determined. S-shaped binding curves were obtained. The same type of binding curve is obtained for the interaction of Ca2+ with phosphatidic acid lamellae, while the binding of polylysine to such membranes is characterized by a linear or Langmuir type binding curve. The S-shaped binding curve can be explained in terms of a cooperative lipid-ligand (Ca2+, polymyxin) interaction. A model is proposed which explains the association of polymyxin within the membrane plane in terms of elastic forces caused by the elastic distortion of the (liquid crystalline) lipid layer by this highly asymmetric peptide.

Calcium↗

Fluorescence-polarization changes in mononuclear blood leucocytes after PHA incubation: differences in cells from patients with and without neoplasia.

In 32 healthy blood donors, 20 patients with histologically verified cancer and 18 patients with non-neoplastic diseases, the fluorescence polarization changes of fluorescein samples incorporated in mononuclear leucotyes were measured after incubation with PHA. The leucocytes of healthy persons, and 16/18 persons with non-neoplastic diseases, responded with a decrease in the degree of fluorescence polarization by about 20% from that in non-PHA-stimulated cells. In 19/20 patients with a variety of malignant tumours, the leucotyes did not respond to PHA stimulation with such a decrease. The exceptions among the patients with neoplastic and non-neoplastic diseases are considered, and may not be "false-negative" or "false-positive" respectively, but indicative of a particular situation in that disease. The biophysical mechanisms underlying the observed changes remain to be investigated.

Adult↗

An optical study of the exchange kinetics of membrane bound molecules.

The kinetics of molecular exchange between lipid bilayers are studied using a special fluorescence technique. Pyrene and pyrene decanoic acid are chosen as typical examples of an apolar and amphiphilic molecule. Their property of forming dimers in the excited state (excimer) is exploited. The time dependencies of monomer and excimer intensities after rapid mixing of vesicles doped with fluorescent probe with undoped ones are studied by stopped-flow technique. The transient curves reveal the information on the exchange kinetics. A theoretical analysis shows that the molecular exchange follows a first order kinetics. Surprisingly short half life-times tex for this exchange process are obtained (for dipalmitoyl phosphatidylcholine tex=3.3 s for T=23 degrees C, tex=0.5 s for T=68 degrees C). Multilamellar systems (onion like structure) show much slower exchange rates. The exchange rates are nearly equal for polar and unpolar molecules. Addition of cholesterol has a strong reducing effect on this rate. Charging of dipalmitoyl phosphatidylcholine vesicle surfaces by the addition of (a) EuCl3 to the aqueous phase and (b) dipalmitoyl phosphatidic acid to the lipid phase reduces the exchange rate by about an order of magnitude above the phase transition. In a separate experiment it is shown that the lipid exchange or fusion for two different lipids is a much slower process compared to the label exchange. In fact vesicles kept below the phase transition temperature Ttr for both lipids, do not fuse even after 70 h. Noticeable fusion occurs after 10 h when the mixture stays above Ttr. Experiment shows that the fusion of pure lipid vesicles is not very much affected by the presence of a charged lipid. Change in concentration of the monovalent ions in the aqueous solution by two orders of magnitude does not have an appreciable effect on the exchange rate of phospholipids.

Kinetics↗

Chemically induced lipid phase separation in model membranes containing charged lipids: a spin label study.

The lipid distribution in binary mixed membranes containing charged and uncharged lipids and the effect of Ca2+ and polylysine on the lipid organization was studied by the spin label technique. Dipalmitoyl phosphatidic acid was the charged, and spin labelled dipalmitoyl lecithin was the uncharged (zwitterionic) component. The ESR spectra were analyzed in terms of the spin exchange frequency, Wex. By measuring Wex as a function of the molar percentage of labelled lecithin a distinction between a random and a heterogeneous lipid distribution could be made. It is established that mixed lecithin-phosphatidic acid membranes exhibit lipid segregation (or a miscibility gap) in the fluid state. Comparative experiments with bilayer and monolayer membranes strongly suggest a lateral lipid segregation. At low lecithin concentration, aggregates containing between 25% and 40% lecithin are formed in the fluid phosphatidic acid membrane. This phase separation in membranes containing charged lipids is understandable on the basis of the Gouy-Chapman theory of electric double layers. In dipalmitoyl lecithin and in dimyristoyl phosphatidylethanolamine membranes the labelled lecithin is randomly distributed above the phase transition and has a coefficient of lateral diffusion of D = 2.8-10(-8) cm2/s at 59 degrees C. Addition of Ca2+ dramatically increases the extent of phase separation in lecithin-phosphatidic acid membranes. This chemically (and isothermally) induced phase separation is caused by the formation of crystalline patches of the Ca2+-bound phosphatidic acid. Lecithin is squeezed out from these patches of rigid lipid. The observed dependence of Wex on the Ca2+ concentration could be interpreted quantitatively on the basis of a two-cluster model. At low lecithin and Ca2+ concentration clusters containing about 30 mol % lecithin are formed. At high lecithin or Ca2+ concentrations a second type of precipitation containing 100% lecithin starts to form in addition. A one-to-one binding of divalent ions and phosphatidic acid at pH 9 was assumed. Such a one-to-one binding at pH 9 was established for the case of Mn2+ using ESR spectroscopy. Polylysine leads to the same strong increase in the lecithin segregation as Ca2+. The transition of the phosphatidic acid bound by the polypeptide is shifted from Tt = 47.5 degrees to Tt = 62 degrees C. This finding suggests the possibility of cooperative conformational changes in the lipid matrix and in the surface proteins in biological membranes.

Calcium↗