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.
Background:
Epithin/PRSS14, a type II transmembrane serine protease, is an emerging target of cancer therapy because of its critical roles in tumor progression and metastasis. In many circumstances, the protease, through its ectodomain shedding, exists as a soluble form and performs its proteolytic functions in extracellular environments increasing cellular invasiveness. The seemingly functional integrity of the soluble form raises the question of why the protease is initially made as a membrane-associated protein.
Results:
In this report, we show that the epithin/PRSS14 intracellular domain (EICD) can be released from the membrane by the action of signal peptide peptidase-like 2b (SPPL2b) after ectodomain shedding. The EICD preferentially localizes in the nucleus and can enhance migration, invasion, and metastasis of epithelial cancer when heterologously expressed. Unbiased RNA-seq analysis and subsequent antibody arrays showed that EICD could control the gene expression of chemokines involved in cell motility, by increasing their promoter activities. Finally, bioinformatics analysis provided evidence for the clinical significance of the intramembrane proteolysis of epithin/PRSS14 by revealing that the poor survival of estrogen receptor (ER)-negative breast cancer patients with high epithin/PRSS14 expression is further worsened by high levels of SPPL2b.
Conclusions:
These results show that ectodomain shedding of epithin/PRSS14 can initiate a unique and synchronized bidirectional signal for cancer metastasis: extracellularly broadening proteolytic modification of the surrounding environment and intracellularly reprogramming the transcriptome for metastatic conversion. Clinically, this study also suggests that the intracellular function of epithin/PRSS14 should be considered for targeting this protease for anti-cancer treatment.
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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