A screen for disruptors of the retinol (vitamin A) signaling pathway

Yanling Chen1, David H Reese

  • 1Division of Molecular Biology, Office of Applied Research and Safety Assessment, Center for Food Safety and Applied Nutrition, U.S. FDA, Laurel, Maryland 20878, USA.

Insights

A new in vitro screen using mouse stem cells detects chemicals disrupting the essential retinol (vitamin A) signaling pathway. This method identified known and novel disruptors, aiding in the assessment of developmental and adult toxicants.

Area of Science:

  • Toxicology
  • Developmental Biology
  • Molecular Biology

Background:

  • Retinol (vitamin A) metabolism to all-trans-retinoic acid (atRA) is vital for mammalian development and adult cell function.
  • Disruptors of this pathway can act as developmental and adult toxicants.
  • A rapid in vitro screening method is needed to identify such chemicals.

Purpose of the Study:

  • To describe and validate a short-term in vitro screening assay for detecting chemicals that interfere with the retinol signaling pathway.
  • To identify novel disruptors of the retinol pathway among various chemical classes.

Main Methods:

  • Utilized mouse pluripotent P19 stem cells in a 96-well format.
  • Employed an RT-qPCR gene-expression assay to measure retinol-induced Hoxa1 gene expression without RNA purification.
  • Screened 21 chemicals at a single 45 μM concentration, including known disruptors, structurally similar compounds, xenoestrogens, and phthalates.

Main Results:

  • Four known pathway disruptors (citral, disulfiram, nitrofen, bisdiamine) significantly inhibited Hoxa1 upregulation.
  • Four of seven novel compounds, including xenoestrogens (diethylstilbestrol, bisphenol A, 4-n-nonylphenol, genistein) and phthalates (dibutyl phthalate, dipentyl phthalate), also disrupted the pathway.
  • Cytotoxicity was a potential factor only for diethylstilbestrol.

Conclusions:

  • The described P19 stem cell-based assay is effective for identifying chemicals that disrupt the essential retinol signaling pathway.
  • The screen successfully identified known and novel disruptors, including several xenoestrogens and phthalates.
  • This assay provides a valuable tool for early detection of potential developmental and adult toxicants.