Your browser doesn't support javascript.
loading
Transendothelial Electrical Resistance Measurement across the Blood-Brain Barrier: A Critical Review of Methods.
Vigh, Judit P; Kincses, András; Ozgür, Burak; Walter, Fruzsina R; Santa-Maria, Ana Raquel; Valkai, Sándor; Vastag, Mónika; Neuhaus, Winfried; Brodin, Birger; Dér, András; Deli, Mária A.
Affiliation
  • Vigh JP; Institute of Biophysics, Biological Research Centre, 6726 Szeged, Hungary.
  • Kincses A; Doctoral School of Biology, University of Szeged, 6720 Szeged, Hungary.
  • Ozgür B; Institute of Biophysics, Biological Research Centre, 6726 Szeged, Hungary.
  • Walter FR; Department of Pharmacy, University of Copenhagen, 2100 Copenhagen, Denmark.
  • Santa-Maria AR; Institute of Biophysics, Biological Research Centre, 6726 Szeged, Hungary.
  • Valkai S; Institute of Biophysics, Biological Research Centre, 6726 Szeged, Hungary.
  • Vastag M; Institute of Biophysics, Biological Research Centre, 6726 Szeged, Hungary.
  • Neuhaus W; In Vitro Metabolism Research, Division of Pharmacology and Drug Safety, Gedeon Richter Plc., 1103 Budapest, Hungary.
  • Brodin B; Center for Health and Bioresources, Competence Unit Molecular Diagnostics, AIT-Austrian Institute of Technology GmbH, 1210 Vienna, Austria.
  • Dér A; Department of Pharmacy, University of Copenhagen, 2100 Copenhagen, Denmark.
  • Deli MA; Institute of Biophysics, Biological Research Centre, 6726 Szeged, Hungary.
Micromachines (Basel) ; 12(6)2021 Jun 11.
Article in En | MEDLINE | ID: mdl-34208338
ABSTRACT
The blood-brain barrier (BBB) represents the tightest endothelial barrier within the cardiovascular system characterized by very low ionic permeability. Our aim was to describe the setups, electrodes, and instruments to measure electrical resistance across brain microvessels and culture models of the BBB, as well as critically assess the influence of often neglected physical and technical parameters such as temperature, viscosity, current density generated by different electrode types, surface size, circumference, and porosity of the culture insert membrane. We demonstrate that these physical and technical parameters greatly influence the measurement of transendothelial electrical resistance/resistivity (TEER) across BBB culture models resulting in severalfold differences in TEER values of the same biological model, especially in the low-TEER range. We show that elevated culture medium viscosity significantly increases, while higher membrane porosity decreases TEER values. TEER data measured by chopstick electrodes can be threefold higher than values measured by chamber electrodes due to different electrode size and geometry, resulting in current distribution inhomogeneity. An additional shunt resistance at the circumference of culture inserts results in lower TEER values. A detailed description of setups and technical parameters is crucial for the correct interpretation and comparison of TEER values of BBB models.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Micromachines (Basel) Year: 2021 Type: Article Affiliation country: Hungary

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Micromachines (Basel) Year: 2021 Type: Article Affiliation country: Hungary