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T Doerr

Publications and source records attributed to T Doerr.

9 recordsLinked to original sources

Structure and functional connections of presynaptic terminals in the vertebrate retina revealed by activity-dependent dyes and confocal microscopy.

The fluorescent dyes sulforhodamine 101 (SR 101) and FM1-43 were used as activity-dependent dyes (ADDs) to label presynaptic terminals in the retinas of a broad range of animals, including amphibians, mammals, fish, and turtles. The pattern of dye uptake was studied in live retinal preparations by using brightfield, fluorescence, and confocal microscopy. When bath-applied to the retina-eyecup, these dyes were avidly sequestered by the presynaptic terminals of virtually all rods, cones, and bipolar and amacrine cells; ganglion cell dendrites and horizontal cells lacked significant dye accumulation. Other structures stained with these dyes included pigment epithelial cells, cone outer segments, and Müller cell end-feet. Studies of dye uptake in dark- and light-adapted preparations showed significant differences in the dye accumulation pattern in the inner plexiform layer (IPL), suggesting a dynamic, light-modulated control of endocytotic activity. Presynaptic terminals in the IPL could be segregated on the basis of volume: bipolar varicosities in the IPL were typically larger than those of amacrine cells. The combination of retrograde labeling of ganglion cells and presynaptic terminal labeling with ADDs served as the experimental preparation for three-dimensional reconstruction of both structures, based on dual detector, confocal microscopy. Our results demonstrate a new approach for studying synaptic interactions in retinal function. These findings provide new insights into the likely number and position of functional connections from amacrine and bipolar cell terminals onto ganglion cell dendrites.

Adaptation, Ocular↗

Localization of neurotransmitters and calcium binding proteins to neurons of salamander and mudpuppy retinas.

We wished to identify the different types of retinal neurons on the basis of their content of neuroactive substances in both larval tiger salamander and mudpuppy retinas, favored species for electrophysiological investigation. Sections and wholemounts of retinas were labeled by immunocytochemical methods to demonstrate three calcium binding protein species and the common neurotransmitters, glycine, GABA and acetylcholine. Double immunostained sections and single labeled wholemount retinas were examined by confocal microscopy. Immunostaining patterns appeared to be the same in salamander and mudpuppy. Double and single cones, horizontal cells, some amacrine cells and ganglion cells were strongly calbindin-immunoreactive (IR). Calbindin-IR horizontal cells colocalized GABA. Many bipolar cells, horizontal cells, some amacrine cells and ganglion cells were strongly calretinin-IR. One type of horizontal cell and an infrequently occurring amacrine cell were parvalbumin-IR. Acetylcholine as visualized by ChAT-immunoreactivity was seen in a mirror-symmetric pair of amacrine cells that colocalized GABA and glycine. Glycine and GABA colocalized with calretinin, calbindin and occasionally with parvalbumin in amacrine cells.

Acetylcholine↗

[Myocardial pump failure in dilated cardiomyopathy and pheochromocytoma].

Progressive dyspnoea developed in a 37-year-old woman over a period of 2 months. A chest x-ray and echocardiography revealed a massive dilatation of the heart with thrombi in both ventricles. The endomyocardial biopsy was classified as myocarditis in two different departments of pathology. The patient developed thromboembolic events and an untreatable heart failure which led to the patient's death. The necropsy revealed a dilated 600-gram-heart and thrombi in both ventricles. On histological and immunohistological examination of the heart, the original diagnosis was corrected to catecholamine-induced dilated cardiomyopathy.

Adrenal Gland Neoplasms↗

Optimizing the AV delay in DDD pacemaker patients with high degree AV block: mitral valve Doppler versus impedance cardiography.

In DDD-pacemaker patients with high degree AV block, Doppler echocardiography of transmitral blood flow can be used to find the individually optimal AV delay (AVO) for left heart AV synchronization. This study tried to validate a Doppler method (ECHO) recently proposed to optimize left ventricular filling by comparing it to stroke volume data derived from impedance cardiography (ICG). It should be further elucidated if optimizing the AV delay (AVD) by means of this method is superior to fixed AVD settings and which differential AVD (pace-sense-offset) should be programmed for atrially triggered (ATP) and AV sequential (AVP) pacing, respectively. AVO as measured in 53 patients showed a linear correlation between ECHO and ICG for both ATP (r = 0.66, P < 0.00001) and AVP (r = 0.53; P < 0.005). The mean deviation in AVO between ECHO and ICG was +/- 26 ms (ATP) and +/- 30 ms (AVP), respectively, with a tendency to longer AVDs with the Doppler method. ECHO limitations could mainly be attributed to: (1) restrictions of AVD programming options (which may be compensated for by slight modification of the proposal); and (2) to pathophysiological mechanisms that alter mitral valve dynamics. Optimization of the AVD by Doppler produced a stroke volume that was significantly higher (19%) than with a fixed AVD (150 ms in ATP; 200 ms in AVP). There was a wide scatter in pace-sense-offsets between-7 and 134 ms, which was reflected by both methods. It is concluded that AVO determinations by ECHO are valid provided that methodological pitfalls and limitations caused by the disease are recognized. Tailoring AVD with respect to diastolic filling improves systolic function and is superior to nominal AVD settings. Fixed differential AVDs as offered by some manufacturers are far from being physiological. Thus modern pulse generators should offer free programmability over a wide range of AV delays.

Atrioventricular Node↗

On the mechanism of the "specific bradycardic action" of the verapamil derivative UL-FS 49.

Membrane currents were measured in single sino-atrial node cells of guinea pig and rabbit hearts as well as in guinea pig ventricular myocytes using the patch-clamp technique. UL-FS 49 blocked the L-type calcium current (ICa) in sino-atrial node cells at drug concentrations which had little or no effect on the amplitude of the hyperpolarization-activated current ih(f). In guinea pig ventricular myocytes UL-FS 49 also blocked ICa but not as strongly as in sino-atrial node cells. In a computer simulation of the sino-atrial node action potential the extent of rate reduction by block of either ih(f) or ICa was estimated. From the data obtained by single cell measurements and the computations we concluded that rate reduction in primary pacemaker cells by application of UL-FS 49 is mainly due to a use dependent block of the L-type calcium current. Voltage dependent unblock of iCa at potentials more negative than -50 mV together with the lower drug sensitivity of ventricular cells can explain the "specific bradycardic action" of UL-FS 49.

Action Potentials↗

Ionic currents contributing to the action potential in single ventricular myocytes of the guinea pig studied with action potential clamp.

With the action potential clamp procedure we studied the contribution of various ionic currents to the action potential in single ventricular myocytes. Action potentials were elicited by a current pulse through the suction pipette and recorded by a computer. A representative action potential was then repetitively replayed to the same cell under voltage-clamp conditions. Successive pharmacological blocks of ionic currents allowed for the first time the measurement of the contribution of the L-type calcium current (ICa) and the [Ca2+]i-activated currents as well as the potassium current to the action potential. Experiments using caffeine as a tool to increase calcium release from the sarcoplasmic reticulum supported the idea that INaCa contributes to the plateau during the second half of the action potential and even lasts into diastole, whereas strong elevation of the intracellular [Ca]i during the action potential additionally activated the non-specific cation channel.

Action Potentials↗

Calcium currents in single SA nodal cells of the rabbit heart studied with action potential clamp.

With a new method called "Action Potential-Clamp" (APC) we studied in single SA nodal cells the contribution of both transient and long lasting calcium currents (L-type and T-type) to the action potential. Action potentials were recorded by a computer and a representative cycle was subsequently repetitively replayed to the same cell under voltage clamp. Blockade of the L-type calcium current (D600) or T-type calcium current (nickel) revealed the quantitative and time related contributions of these currents to the action potential, since the blocked current is compensated by the clamp amplifier.

Action Potentials↗