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Comparative measurements of membrane potentials with microelectrodes and voltage-sensitive dyes.

The usefulness of a new voltage-sensitive fluorescent dye, the membrane permeant negatively charged oxonol dye diBA-C4-(3)-, was evaluated by measuring the membrane potentials of BICR/M1R-k and L cells with glass microelectrodes and simultaneously recording the fluorescence of the stained cells. The membrane potential of BICR/M1R-k cells was varied between -25 mV and -90 mV by changing the bicarbonate concentration in the medium or by voltage clamping. To avoid any interference by the inserted electrodes with the fluorescence measurement of the cytoplasm, the cells were fused by polyethyleneglycol to form giant cells (homokaryons). These homokaryons also allowed penetration by two glass microelectrodes without causing a serious leakage of the plasma membrane. The slow responding dye diBA-C4-(3)- had a fluorescence response of about 1% per mV. Mathematical analysis of the fluorescence changes after voltage clamping revealed a first-order reaction with a rate constant between 0.1 min-1 and 0.8 min-1, depending on the cell size which was determined by the number of nuclei per homokaryon. A model for the mechanism of the fluorescence changes is proposed.

Animals↗

Detection of extracellular action potentials in noise for the control of microelectrode advancement.

A digital computer was programmed to detect impulses in the presence of noise, rather than identify or classify impulse activity from microelectrodes. The analog signal was abstracted into a sequential series of voltage time vectors that measured peak-to-peak activity. The amplitude and time difference between a peak-positive potential and the next peak-negative potential defined one vector. The amplitude and time difference between that negative peak and the next positive peak defined the next vector, and so on. An algorithm determined if each successive vector was part of a signal pattern by comparing the properties of the vector to those in a stored list. The algorithm was designed for future application with minimum computer systems and multiple-tip microelectrodes.

Action Potentials↗

A dual marking technique for microelectrode tracks and localization recording sites.

This paper describes techniques for marking both microelectrode tracks and exact recording loci using a combination of fast green dye and horseradish peroxidase (HRP). The procedure involves coating the exterior of HRP filled microelectrodes with fast green dye in order to identify electrode tracks, and ejecting HRP from the electrode to mark recording loci. Rapid, multiple marks can be made with this technique without harming the recording capabilities of the micropipette.

Animals↗

Measurement of intracellular calcium ion activity with neutral exchanger ion sensitive microelectrodes.

Micropipettes filled with the neutral liquid ion exchanger ETH 1001 can be used to make microelectrodes that are sensitive to cytoplasmic levels of Ca2+. They are high resistance electrodes, so that care is required in order to record the low current signal. The electrodes often yield 10-15 mV change between intracellular Ca2+ activities of 10(-6) and 10(-7) M, according to a log relation. The microelectrodes are non-destructive, even in rather small cells, and can be used to monitor Ca2+ changes during experimental interventions.

Animals↗

Recording of intracellular Ca2+ from smooth muscle cells by sub-micron tip, double-barrelled CA2+-selective microelectrodes.

Novel, double-barrelled Ca2+-selective microelectrodes with tip diameters of approximately 0.1 micron were constructed by using Simon's neutral Ca2+ ligand (ETH 1001). Concentric micropipettes were utilized for the first time for Ca2+-selective microelectrodes in which the Ca2+ ligand was incorporated into a protruding inner pipette, surrounded by an outer reference electrode. In addition, they were made from high resistance aluminosilicate glass tubing (Corning Code 1724). These Ca2+-selective electrodes had linear responses from pCa 3 to pCa 7 in the presence of constant [K+]. They provided on-line observation of changes in intracellular [Ca2+] and in the resting membrane potential in single smooth muscle cells isolated from toad stomach. The mean concentration of intracellular Ca2+ in resting cells was 163.6 +/- 20 nM (+/- SEM, n = 16). Doubling the intracellular Ca2+ level by exposure of cells to elevated [K+] was sufficient to cause shortening.

Animals↗

An automatic voltage adjuster for a single microelectrode recording of the membrane potential and resistance.

An automatic voltage adjuster was designed in order to apply an intracellular rectangular pulse of current and record the membrane potential simultaneously using a single intracellular microelectrode. The original voltage record consists of a rectangular signal signal (Va) due to the resistance of the microelectrode and a slowly rising signal (Vb) which is the proper value of the membrane potential shift produced by the application of the intracellular rectangular pulse of current. The instrument described in this paper samples the original signal (Va + Vb) at 0.5 approximately 1.0 ms after the application of the rectangular pulse of current, holds this voltage level (Va) and subtracts it from the original signal (Va + Vb) to obtain (Vb).

Animals↗

Compensation for cross-talk and high frequency attenuation of bipolar microelectrodes.

Bipolar glass microelectrodes have a capacitance between the two recording channels and each channel has a capacitance to ground. These capacitances cause respectively cross-talk and high frequency attenuation. A new and general method for compensation of both distortions is developed. In this "inverse filter' method, the compensation circuit is derived from the equivalent circuit of the electrode. The method is applicable to all kinds of bi-and multipolar electrodes. The performance of the new method is compared with the existing "feedback' method (Freygang and Frank, 1959; Tomita, 1962) for glass microelectrodes. Detailed analysis shows that methods perform well for frequencies below 500 Hz, but the inverse filter method has good characteristics to at least 5 kHz. The poor high frequency behaviour of the feedback method is caused by preamplifier phase lag.

Electrochemistry↗

Glass microelectrode tip capacitance: its measurement and a method for its reduction.

The frequency response of input amplifiers used for measurement of bioelectric signals from small cells is severely limited by the resistance and capacitance of the fine glass microelectrodes which are required for these measurements. A significant improvement in the frequency response can be realized by employing the technique of input capacitance neutralization. This capacitance neutralization, however, is incomplete since: (1) the bandwidth of the input amplifier is finite; and (2) a fraction of the electrode capacitance is isolated from the amplifier input by a part of the electrode resistance and cannot be compensated. It is therefore desirable to ensure that the electrode capacitance is as low as possible before neutralization. A method is discussed for measuring and predicting the distributed capacitance of the microelectrode and a technique is described for coating the outside of the electrode near the tip with a substance which can lower the electrode capacitance per unit length by as much as 7-fold. The significance of the improved frequency response of the input amplifier that this technique provides is discussed in light of recent advances in intracellular single electrode voltage clamp technique.

Animals↗

Silanization of glass in the making of ion-sensitive microelectrodes.

The silanization of glass, particularly Pyrex, was studied using reaction conditions that might be applied in the fabrication of ion-sensitive microelectrodes of the liquid-membrane type. The efficacy was tested by measuring the hydrophobicity (contact angle) or electrical resistivity of the treated surface. Aminosilanes, such as trimethyl-(dimethylamino)-silane are better than chlorosilanes, the optimum temperature is 250-330 degrees C, and the reaction comes near to completion in 5 min. Silanization of glass that is newly exposed (as in the pulling of a micropipette) is greatly improved if the surface is treated with acid. There is considerable variation from one kind of glass to another. A recipe for making double-barrelled ion-sensitive microelectrodes is given.

Animals↗

A comparison of the selectivities of microelectrodes incorporating the Orion and Corning liquid ion exchangers for potassium over sodium.

The K+:Na+ selectivities of double-barrelled microelectrodes employing either of two commercially available liquid ion exchangers for K+ (Corning 477317 and Orion) have been measured using several calibration methods. Microelectrodes employing the Orion exchanger were found to be much less selective than those based on Corning 477317.

Electrophysiology↗

The elgiloy microelectrode: fabrication techniques and characteristics.

A glass-insulated microelectrode made from elgiloy orthodontic wire, a stainless cobalt-chromium alloy containing 15% iron, was described by Suzuki and Azuma (1976). Here, we detail a set of modified electrode fabrication procedures, including techniques for hardening and etching the wire, specifying the size, geometry and exposure of the tip, and adjusting tip impedance over a wide range. Accurate insulation of the tip with molten solder glass produces microelectrodes suitable for extracellular recording from single or multiple units and simultaneous recording of evoked potentials. The finished electrode is tough enough to withstand multiple penetrations of the thickened, fibrous dura of the chronic monkey preparation. The iron content allows Prussian blue staining of marking lesions for histological verification of recording sites.

Alloys↗

Ion selective microelectrodes: computer-controlled calibration, plotting, and data analysis.

Calibration of ion-selective microelectrodes involves delivering and measuring the potential of several different solutions both before and after intracellular measurement. A microprocessor-controlled system is described which completely automates that tedious process. The microcomputer controls the delivery of the calibration solutions and prints out the calibration value along with the solution number. A second program plots the calibration curve using a modified Nicholsky equation and a third program converts intracellular ion signals into ion concentration. Specific examples based on Ca-selective microelectrodes are shown.

Autoanalysis↗

Electrocoating carbon fiber microelectrodes with Nafion improves selectivity for electroactive neurotransmitters.

A method which improves carbon fiber microelectrode selectivity for cationic amines by electrocoating the fiber with a thin film of the ionic polymer, Nafion, is described. The selectivity and response speed of these electrodes for the detection of electroactive cationic and anionic species found in brain extracellular fluid was evaluated using differential pulse voltammetry and chronoamperometry and compared to uncoated fibers. Carbon fiber microelectrodes electrocoated with Nafion are highly sensitive to cationic amines such as dopamine and serotonin and have minimal sensitivity to anions such as ascorbic acid and uric acid at physiological concentrations.

Carbon↗

The influence of the convulsant pentylenetetrazol on Ca2+-selective microelectrodes (neutral carrier ETH 1001).

Interference of the epileptogenic drug pentylenetetrazol (PTZ) on the Ca2+-selective microelectrode based on the neutral carrier ETH 1001 is described. It is suggested that tetraphenylborate, a component of the Ca2+-selective membrane, is responsible for this interference. Though the sensitivity of the Ca2+-selective microelectrode to PTZ is low, the error in measurements of the free Ca2+ concentration in biological preparations treated with PTZ has to be considered, since pathological changes in the extracellular Ca2+ concentration also produce relatively small changes in the relative electrode potential.

Animals↗

Serial determinations of regional cerebral blood flow in the rat using simple chronically implanted platinum wire microelectrodes.

The ability to reliably obtain serial determinations of regional cerebral blood flow (rCBF) over time in small animals using simple and inexpensively constructed platinum-wire microelectrodes has been investigated. Repeated measurements of local cortical flow were obtained on a daily basis using the hydrogen clearance technique in a group of 18 animals, in each of which, 6 electrodes were chronically implanted. Our studies have shown the simple microelectrodes utilised to give a low variability of results, as well as being well tolerated and provoking minimal tissue reaction even over prolonged periods of time. Under identical steady-state conditions, serial determinations of rCBF were obtained for up to one week, with a maximum variation in mean values of only 12%, a result that compares favourably with the known serial determination error for the technique in the shorter term.

Animals↗

An immunocytochemical method for marking microelectrode tracks following single-unit recordings in long surviving, awake monkeys.

We describe an immunocytochemical method for marking microelectrode tracks made during single-unit recordings in long surviving, awake monkeys. This procedure detects the increase in glial fibrillary acidic protein in the glial cells along a microelectrode track using commercially available antibodies. We have successfully marked electrode tracks in tissue from preparations having postrecording survival times ranging into months even though the gliosis can no longer be detected with conventional stains for cell bodies. When this method is combined with data from electrophysiological recordings in chronic preparations it will be possible to reconstruct functional architecture using chronic preparations, as has been done previously with acute preparations.

Animals↗

Ion-sensitive microelectrode system with short response time.

The measurement of changes in ion activity (e.g., pH) in neurons requires fine tip-sized double-barreled microelectrodes: one channel being equipped with an ion-selective liquid membrane, the other used for measurement of the membrane potential. The limited bandwidth and the differing transfer functions for electrical and ionic signals necessitate frequency response linearization networks to ensure that the output signal of the electrode is a faithful image of the input signal. We have developed a linearization network to ensure a rapid response time for ion-sensitive microelectrodes. To test the response characteristic we have developed a test system that allows the pH at the electrode tip to be changed within 1 ms. Application of these techniques to electrodes of 1 micron tip diameter results in a 90% response time to a pH step of approximately 60 ms and of approximately 2 ms with electrodes with 20 micron tip.

Electrophysiology↗