Intramembrane proteolysis of an extracellular serine protease, epithin/PRSS14, enables its intracellular nuclear

Youngkyung Cho1,2, Sang Bum Kim2,3, Jiyoon Kim1

  • 1Department of Life Sciences, Korea University, Seoul, 02841, Republic of Korea.

BMC Biology
|June 5, 2020
PubMed
Abstract

Insights

Epithin/PRSS14 shedding releases an intracellular domain that promotes cancer metastasis by altering gene expression. Targeting this protease

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Protease Function

Background:

  • Epithin/PRSS14 is a transmembrane protease crucial for cancer progression and metastasis.
  • Its soluble form, released by ectodomain shedding, enhances cellular invasiveness.
  • The necessity of its membrane-associated form remained unclear.

Purpose of the Study:

  • To investigate the fate and function of the epithin/PRSS14 intracellular domain (EICD) after ectodomain shedding.
  • To explore the role of signal peptide peptidase-like 2b (SPPL2b) in EICD release.
  • To determine the clinical significance of epithin/PRSS14 intramembrane proteolysis in cancer.

Main Methods:

  • Investigated EICD release mediated by SPPL2b.
  • Analyzed EICD localization and function in epithelial cancer cells.
  • Utilized RNA-sequencing and antibody arrays to identify EICD-regulated genes.
  • Conducted bioinformatics analysis for clinical correlation.

Main Results:

  • SPPL2b mediates the release of EICD after epithin/PRSS14 ectodomain shedding.
  • EICD localizes to the nucleus and promotes cancer cell migration, invasion, and metastasis.
  • EICD upregulates chemokine gene expression, enhancing cell motility.
  • High epithin/PRSS14 and SPPL2b levels correlate with poor survival in ER-negative breast cancer.

Conclusions:

  • Epithin/PRSS14 shedding triggers a dual signaling pathway for metastasis.
  • Extracellularly, it modifies the tumor microenvironment; intracellularly, it reprograms gene expression.
  • The intracellular function of epithin/PRSS14 warrants consideration for anti-cancer therapeutic strategies.

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