Energetics of ligand-receptor binding affinity on endothelial cells: An in vitro model.

Colloids Surf B Biointerfaces

Istituto Italiano di Tecnologia (IIT)@CRIB, Largo Barsanti e Matteucci 53, 80125 Naples, Italy; Centro di Ricerca Interdipartimentale sui Biomateriali (CRIB), Università di Napoli Federico II, Piazzale Tecchio 80, 80125 Naples, Italy.

Published: August 2016

AI Article Synopsis

  • Targeted therapies face challenges in medicine, and a new methodology using Isothermal Titration Calorimetry (ITC) with biocompatible microparticles aims to quantify receptor numbers on cell membranes and analyze receptor-ligand binding energetics.
  • The study used bEnd3 cells as a model for brain endothelial cells to represent the blood-brain barrier, comparing them to human umbilical vein cells (HUVEC).
  • The findings show a significantly higher number of transferrin receptors on bEnd3 cells, indicating potential for identifying drug targets and improving therapeutic delivery across biological barriers like the blood-brain barrier.

Article Abstract

Targeted therapies represent a challenge in modern medicine. In this contest, we propose a rapid and reliable methodology based on Isothermal Titration Calorimetry (ITC) coupled with confluent cell layers cultured around biocompatible templating microparticles to quantify the number of overexpressing receptors on cell membrane and study the energetics of receptor-ligand binding in near-physiological conditions. In the in vitro model here proposed we used the bEnd3 cell line as brain endothelial cells to mimic the blood brain barrier (BBB) cultured on dextran microbeads ranging from 67μm to 80μm in size (Cytodex) and the primary human umbilical vein cells (HUVEC) for comparison. The revealed affinity between transferrin (Tf) and transferrin receptor (TfR) in both systems is very high, Kd values are in the order of nM. Conversely, the value of TfRs/cell reveals a 100-fold increase in the number of TfRs per bEnd3 cells compared to HUVEC cells. The presented methodology can represent a novel and helpful strategy to identify targets, to address drug design and selectively deliver therapeutics that can cross biological barriers such as the blood brain barrier.

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Source
http://dx.doi.org/10.1016/j.colsurfb.2016.04.018DOI Listing

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