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M Bähler

Publications and source records attributed to M Bähler.

40 records · Page 3Linked to original sources

Heart C-protein is transiently expressed during skeletal muscle development in the embryo, but persists in cultured myogenic cells.

The expression of cardiac and white skeletal C-protein isoforms was analyzed in developing chicken embryos and in primary skeletal muscle cell cultures by immunoblot and immunofluorescence staining using polyclonal antibodies specific for both of the two different proteins. In the embryo, cardiac C-protein was detected in the developing heart from very early stages through adulthood. In skeletal muscle, cardiac C-protein is shown to be transiently expressed between Days 3 and 15 during development. In contrast, the expression of white skeletal C-protein is gradual and progressive starting approximately from Day 15 on in development. In primary cell cultures of skeletal muscle, however, cardiac C-protein remained expressed throughout prolonged culture time, this in conjunction with white skeletal C-protein. Thus the down regulation of cardiac C-protein and the transition from cardiac C-protein to adult skeletal (white) C-protein which was observed during skeletal muscle development in vivo, does not seem to go to completion in the in vitro system.

Animals↗

Unshadowed myosin molecules: STEM mass-maps of myosin heads.

Myosin molecules were directly visualized without heavy metal shadowing by scanning transmission electron microscopy (STEM) under low dose conditions. The general appearance and dimensions of heavy metal-free molecules were similar to those of shadowed myosin, either after freeze-drying without or air-drying with glycerol. Two characteristic configurations of myosin head regions were found, a first type showing two pear-shaped heads with narrow necks and a second type showing two heads connected by an extra mass in the central regulatory domain where the light chains are located. The mass of the latter type (mol. wt. = 265 +/- 39 kd) is in excellent accordance with biochemical data whereas the mass of the first type is somewhat lower (mol. wt. 219 +/- 44 kd).

Animals↗

Visualization of freeze-dried and shadowed myosin molecules immobilized on electron microscopic films.

The mica replication technique first described by Hall [5] has produced myosin molecules which were heterogeneous in appearance in terms of shadowing, decoration, contrast and background. Therefore, an alternative technique for the visualization of myosin molecules was developed: Myosin molecules are sprayed directly onto glow discharged or silicium-monoxide coated carbon filmed grids, omitting glycerol. After washing several times with distilled water, rapid freezing, and freeze-drying, the immobilized myosin molecules are visualized by shadow-casting at low temperature and at varying angles. After backing with carbon the "in situ" shadowed molecules are observed in the electron microscope. This technique has several advantages over the standard method in that it yields more reproducible results. It is potentially useful for investigating interactions of myosin binding proteins with myosin and for visualizing unshadowed myosin in the STEM.

Acetates↗

Synapsin I bundles F-actin in a phosphorylation-dependent manner.

Synapsin I is a neuron-specific phosphoprotein localized to the cytoplasmic surface of synaptic vesicles. This phosphoprotein is a major substrate for cyclic AMP-dependent and calcium/calmodulin-dependent protein kinases. Its state of phosphorylation can be altered both in vivo and in vitro by a variety of physiological and pharmacological manipulations known to affect synaptic function. Recent direct evidence suggests that it may be involved in the regulation of neurotransmitter release from the nerve terminal. In the nerve terminal, synaptic vesicles are embedded in a cytoskeletal network, consisting in part of actin. We report here the ability of the dephospho-form of synapsin I to bundle F-actin. This bundling activity is reduced when synapsin I is phosphorylated by cAMP-dependent protein kinase and virtually abolished when it is phosphorylated by calcium/calmodulin-dependent protein kinase II or by both kinases. These results, demonstrating an interaction of synapsin I with actin in vitro, support the possibility that synapsin I is involved in clustering of synaptic vesicles at the presynaptic terminal and that the phosphorylation of synapsin I may be involved in regulating the translocation of synaptic vesicles to their sites of release.

Actin Cytoskeleton↗