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In vivo labeling of brain capillary endothelial cells after intravenous injection of monoclonal antibodies targeting the transferrin receptor. | LitMetric

AI Article Synopsis

  • Researchers examined two monoclonal antibodies (MAbs) targeting the mouse transferrin receptor (TfR) to improve drug delivery to the brain.
  • Both MAbs showed higher fluorescence in mouse brain tissue compared to control antibodies, indicating better retention in the brain.
  • The study revealed that one of the MAbs (Ri7) effectively entered brain endothelial cells but did not colocalize with neurons or astrocytes, suggesting that these antibodies could be promising vectors for targeted drug delivery to the central nervous system.

Article Abstract

The development of vectors for drug delivery to the central nervous system remains a major pharmaceutical challenge. Here, we have characterized the brain distribution of two monoclonal antibodies (MAbs) targeting the mouse transferrin receptor (TfR) (clones Ri7 and 8D3) compared with control IgGs after intravenous injection into mice. MAbs were fluorolabeled with either Alexa Fluor (AF) dyes 647 or 750. Intravenous injection of Ri7 or 8D3 MAb coupled with AF750 led to higher fluorescence emission in brain homogenates compared with control IgGs, indicating retention in the brain. Fluorescence microscopy analysis revealed that AF647-Ri7 signal was confined to brain cerebrovasculature, colocalizing with an antibody against collagen IV, a marker of basal lamina. Confocal microscopy analysis confirmed the delivery of injected Ri7 MAb into brain endothelial cells using the pericyte marker anti-α-smooth muscle actin, the endothelial marker CD31, and the collagen IV antibody. No evidence of colocalization was detected with neurons or astrocytes identified using antibodies specific for neuronal nuclei or glial fibrillary acidic protein, respectively. Our data show that anti-TfR vectors injected intravenously readily accumulate into brain capillary endothelial cells, thus displaying strong drug-targeting potential.

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Source
http://dx.doi.org/10.1124/mol.111.071027DOI Listing

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