Generation of Slco1a4-CreERT2-tdTomato Knock-in Mice for Specific Cerebrovascular Endothelial Cell Targeting

Int J Mol Sci. 2024 Apr 25;25(9):4666. doi: 10.3390/ijms25094666.

Abstract

The cerebrovascular endothelial cells with distinct characteristics line cerebrovascular blood vessels and are the fundamental structure of the blood-brain barrier, which is important for the development and homeostatic maintenance of the central nervous system. Cre-LoxP system-based spatial gene manipulation in mice is critical for investigating the physiological functions of key factors or signaling pathways in cerebrovascular endothelial cells. However, there is a lack of Cre recombinase mouse lines that specifically target cerebrovascular endothelial cells. Here, using a publicly available single-cell RNAseq database, we screened the solute carrier organic anion transporter family member 1a4 (Slco1a4) as a candidate marker of cerebrovascular endothelial cells. Then, we generated an inducible Cre mouse line in which a CreERT2-T2A-tdTomato cassette was placed after the initiation codon ATG of the Slco1a4 locus. We found that tdTomato, which can indicate the endogenous Slco1a4 expression, was expressed in almost all cerebrovascular endothelial cells but not in any other non-endothelial cell types in the brain, including neurons, astrocytes, oligodendrocytes, pericytes, smooth muscle cells, and microglial cells, as well as in other organs. Consistently, when crossing the ROSA26LSL-EYFP Cre reporter mouse, EYFP also specifically labeled almost all cerebrovascular endothelial cells upon tamoxifen induction. Overall, we generated a new inducible Cre line that specifically targets cerebrovascular endothelial cells.

Keywords: Cre; Slco1a4; blood–brain barrier; endothelial cells; lineage tracing.

MeSH terms

  • Animals
  • Blood-Brain Barrier / metabolism
  • Brain* / metabolism
  • Endothelial Cells* / metabolism
  • Gene Knock-In Techniques
  • Integrases* / genetics
  • Integrases* / metabolism
  • Mice
  • Mice, Transgenic
  • Organic Anion Transporters / genetics
  • Organic Anion Transporters / metabolism
  • Red Fluorescent Protein
  • Tamoxifen / pharmacology

Substances

  • Integrases
  • Cre recombinase
  • Organic Anion Transporters
  • Tamoxifen
  • tdTomato
  • Red Fluorescent Protein

Grants and funding

This research was funded by the National Science and Technology Major Projects (2021YFA1101801 to J.W.) and the National Natural Science Foundation of China (82030011 and 31630093 to X.Y.).