Author: Greg Madejski
Greg is a McGrath Lab alumnus (2010-2020) who incorporates nanomembranes into a variety of devices. Currently, he works on detecting microplastics as the CEO of Parverio inc.

Electrode Embedding Part 2

Because of the failure of bonding the electrode to the top gasket in my last design, I have been trying to make improvements to my fabrication to make the electrode/gasket surface more planar. Things I have tried: 1. Pressure during

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TEER Measurements First Attempt

After integrating my thin film electrodes into the layer stack of the BBB device, I want to make some TEER measurements.       I stripped off the well-plate attachment off of the TEER tool, exposing the individual leads. To

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Thin Film Electrode Creation

I have been trying to fabricate my own Indium Tin Oxide (ITO) electrodes on coverslips for the BBB device in order to minimize the working distance for any microscopy. Currently, I am using microscope slides that are way too thick

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BBB Device V2.4

I have created a successfully sealed flow chamber with this current device (V2.4), with the caveat that I sealed off the top chamber and was unable to test leaking from the top to the bottom. Again, the dialysis chips from

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BBB Device V2.3

I’ve made some modifications to my V2 design such that it allows total vertical access, among other things:   This design utilizes embedded electrodes and filter within gasket layers to create a tight fluidic seal for each channel. Here, the

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ITO Etching

Found a Master’s thesis from RIT that details etch rates for ITO films in Hydrochloric Acid.   I originally attempted to do an etch using 1M HCl, but as the graph shows, this is not enough to produce an etch

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ITO Embedding

I recently bought some slides of ITO from Sigma-Aldrich, and have been working to integrate them into PDMS by using the same process as I did for the glass coverslips (seen here) The main differences between the glass coverslips and

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BBB Device V2 Design

The goal of the design is to design a system that can co-culture cells under varying flow conditions, measure TEER, and perform dynamic microscopy. Specifically, the endothelial tight junctions are the primary mechanism by which the BBB is regulated. It

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Shear Stress in a Rectangular Channel

As I am hoping to promote tighter junctions between endothelial cells in my device, I am trying to create an environment that produces shear stress on the endothelial cells. Shear stress up-regulates the pathways that promote tight junctions (Tzima et

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BBB Device Update

BBB Device Update We’ve identified a few areas in which we can improve upon the initial device seen in Booth et al (2012). Mainly: Endothelial TEER increases to an in vivo value, hopefully from increased astrocytic (pericytic?) support from the

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