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Lewallen, C. F.

Publications and source records attributed to Lewallen, C. F..

2 recordsLinked to original sources

Method for Extracellular Electrochemical Impedance Spectroscopy on Epithelia

Epithelial tissues form barriers to the flow of ions, nutrients, waste products, bacteria, and viruses. The conventional electrophysiology measurement of transepithelial resistance (TER) can quantify epithelial barrier integrity, but does not capture all the electrical behavior of the tissue or provide insight into membrane specific properties. Electrochemical impedance spectroscopy, in addition to measurement of TER, enables measurement of transepithelial capacitance (TEC) and a ratio of electrical time constants for the tissue, which we term membrane ratio. This protocol describes how to perform galvanostatic electrochemical impedance spectroscopy on epithelia using commercially available cell culture inserts and chambers, detailing the apparatus, electrical signal, fitting techniques, and error quantification. The measurement can be performed in approximately one minute using instrumentation capable of galvanostatic sinusoidal signal processing (4 A amplitude, 2 Hz-50 kHz). All fits to the model have less than 10 {Omega} mean absolute error, revealing repeatable values distinct for each cell type. On representative retinal pigment (n=3) and bronchiolar epithelial samples (n=4), we measured TER 500-667 {Omega}.cm2 and 955-1034 {Omega}.cm2, within the expected range, TEC 3.65-4.10 F/cm2 and 1.07-1.10 F/cm2, and membrane ratios 18-22 and 1.9-2.2, respectively.

bioengineering↗

Patch-walking: Coordinated multi-pipette patch clamp for efficiently finding synaptic connections

Significant technical challenges exist when measuring synaptic connections between neurons in living brain tissue. The patch clamping technique, when used to probe for synaptic connections, is manually laborious and time-consuming. To improve its efficiency, we pursued another approach: instead of retracting all patch clamping electrodes after each recording attempt, we cleaned just one of them and reused it to obtain another recording while maintaining the others. With one new patch clamp recording attempt, many new connections can be probed. By placing one pipette in front of the others in this way, one can "walk" across the tissue, termed "patch-walking." We performed 136 patch clamp attempts for two pipettes, achieving 71 successful whole cell recordings (52.2%). Of these, we probed 29 pairs (i.e., 58 bidirectional probed connections) averaging 91 {micro}m intersomatic distance, finding 3 connections. Patch-walking yields 80-92% more probed connections, for experiments with 10-100 cells than the traditional synaptic connection searching method. MotivationRecognizing the manual labor and time-intensive nature of patch clamping when trying to find synaptic connections, we aim to improve its efficiency. We introduce a novel approach, termed "patch-walking," where one patch clamping electrode is cleaned and reused, enabling the exploration of numerous connections with a single recording attempt and improving the efficiency of identifying synaptic connections.

bioengineering↗