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Biomedical subjects

J Gödde

Publications and source records attributed to J Gödde.

4 recordsLinked to original sources

Vibrating glass stylets: tools for precise microsurgery on cuticular structures.

Precisely localized lesions in cuticular structures of insects can be produced by fine glass rods, vibrating transversally at frequencies above 100 kHz. The oscillating edge of the glass rod scrapes off the chitinous material at minimal elastic deformation during treatment. The achieved roughness height is in the 0.1 micron range. The method is most fruitfully applied to insect sensilla. Studies of central projections of sensory nerves (degeneration; cobalt staining) profit from the new chance of eliminating selected single sensilla in close vicinity to others which are to remain intact. This can barely be achieved with conventional fine scissors.

Animals↗

A fast voltage-controlled continuous-flow miniature chemostat.

A continuous-flow mixing device was developed for fast concentration changes in a 0.25 microliter volume. The mixing chamber is designed to study the effects of fast concentration changes in the bathing solution on small probes (e.g. chemoreceptive hairs or membrane patches). It consists of a freely accessible hanging droplet which is viewed with a microscope. Mixtures are generated by injecting variable amounts of a fluid into another fluid under photometric control. Time courses for the concentration steps are (computer-)generated as voltage-time courses which serve as set point of the injection-control servo circuit. Positive steps of the concentration of the injected fluid can be reached within less than 30 ms; falling concentrations are determined by wash-out time constants around 100 ms.

Animals↗

Low cost storing of two electrical biosignals from DC to 20 kHz at more than 80 dB dynamic range.

An instrumentation for storing electrical analog signals (DC to 20 kHz) was composed from a video recorder and a slightly modified pulse code modulation processor. As these components are mass products of the consumer electronics industry, the system price could be kept below 5000 DM. The setup allows one to register simultaneously two signals at DC to 20 kHz at a dynamic amplitude resolution of 16 bit [corresponding to a signal to noise ratio (S/N-ratio) of 96 dB] and AC-signals on the audiochannels of the stereo-video recorder. This is exemplified by recordings of insect chemoreceptors.

Bioelectric Energy Sources↗

Ultrasound elicits tonic responses and diminishes the phasic responses to adequate stimuli in thread-hair mechanoreceptors of Acheta domesticus.

Single mechanoreceptor cells in filiform hair sensilla on the cercus of Acheta domesticus were stimulated adequately by steplike deflections in their plane of least restraint and inadequately by ultrasound. Ultrasound was fed either into the cercus or into the thread-hair as substrate-borne sound of 110-120 kHz. The receptor responds to deflections of the thread-hair (adequate stimuli) with phasic receptor potentials which can be picked up transepithelially . These responses can be either depolarizing (excitatory responses) or hyperpolarizing (inhibitory responses). Ultrasound applied simultaneously or shortly preceding the adequate stimulus reduces both kinds of responses in a graded way. The receptor can respond to ultrasound alone. At small intensities the responses are predominantly inhibitory; with increasing intensity they may become excitatory. In both cases the responses to ultrasound are tonic and do not reach the peak responses to saturating adequate stimuli. The "off-effect", which follows adequate stimuli and leads to inhibitory responses after excitatory stimuli and vice versa, typically does not occur or is excitatory at the end of sonication. The observed effects of sonication are totally reversible. The correlation between transepithelial voltage, spike frequencies and spike amplitudes in the unsonicated and sonicated sensilla allows the responses to be attributed to sonication to the same conductance, which is also modulated by adequate stimuli. A model is discussed, according to which ultrasound exerts its effects by facilitating dissipative relaxation in the dendritic membrane, which is assumed to be involved in stimulus-energy transfer.

Animals↗