A Short Isoform of Coagulation Factor XII mRNA Is Expressed by Neurons in the Human Brain

Daria Zamolodchikov1, Yu Bai1, Yajun Tang1

  • 1Regeneron Pharmaceuticals, Inc., 777 Old Saw Mill River Road, Tarrytown, NY, 10591, USA.

Neuroscience
|June 11, 2019
PubMed

Insights

A novel, shorter form of coagulation factor XII (FXII) mRNA is expressed by brain neurons. This brain-derived FXII may influence neuronal development and survival through HGF-Met signaling.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Biochemistry

Background:

  • Coagulation factor XII (FXII) is primarily known for its role in blood coagulation.
  • FXII protein and contact system activation have been observed in the brain, but its source and function remain unclear.
  • Dysregulation of HGF-Met signaling is linked to neurodevelopmental disorders and neurodegeneration.

Purpose of the Study:

  • To investigate the source and potential function of FXII in the brain.
  • To determine if a specific FXII mRNA isoform is expressed in neurons.
  • To explore the enzymatic activity and potential signaling role of brain-derived FXII.

Main Methods:

  • In situ hybridization to detect FXII mRNA expression in human and mouse brains.
  • Expression of a recombinant shorter FXII protein isoform.
  • Biochemical assays to assess the enzymatic activity of the recombinant FXII protein, including activation of prekallikrein and conversion of pro-HGF.

Main Results:

  • A shorter FXII mRNA isoform is expressed by human brain neurons, particularly pyramidal neurons.
  • This shorter FXII transcript encodes a protein fragment containing proline-rich and catalytic domains.
  • Recombinant shorter FXII protein is activated by plasma kallikrein and activates prekallikrein, and converts pro-HGF to active HGF in vitro.

Conclusions:

  • Neurons express a distinct, shorter FXII mRNA isoform in the brain.
  • Brain-derived FXII has enzymatic activity relevant to HGF-Met signaling.
  • This suggests a potential role for FXII in neuronal development, survival, and/or neurodegenerative processes.

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