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Updated: Jun 12, 2026

Comparative Strategies for Ubiquitination Detection in Mammalian Cell Lysates Using SMAD2/SMURF2 as a Model
Published on: April 17, 2026
MYC-Mediated USP39 Upregulation Stabilizes SRSF1 in Pancreatic Cancer
Benteng Ma1, Xin Zhang1, Alexander J Kral2
1Stony Brook University Stony Brook, NY United States.
Abstract:
Pancreatic ductal adenocarcinoma (PDAC) is a highly lethal malignancy primarily driven by oncogenic KRAS signaling. The splicing factor SRSF1 plays a key oncogenic role in PDAC through reciprocal cross-interactions with KRAS signaling. However, the mechanisms regulating SRSF1 protein stability remain poorly understood. Here, we identify the deubiquitinase USP39 as a critical regulator of SRSF1 stability. It interacts with SRSF1 in an RNA-independent manner and suppresses its ubiquitination. USP39 is upregulated in PDAC and correlates with poor patient prognosis. Functional analyses demonstrate that USP39 promotes PDAC cell progression, in part through stabilization of SRSF1. Mechanistically, MYC activates USP39 transcription through direct promoter binding. These findings define a MYC-USP39-SRSF1 regulatory axis that integrates transcriptional and post-translational mechanisms in PDAC and suggest USP39 as a potential therapeutic target. Implications: USP39 functions as a central regulator that integrates transcriptional and post-translational regulation in pancreatic cancer through the MYC-USP39-SRSF1 axis and represents a potential therapeutic target.
Insights
Researchers found that USP39 stabilizes SRSF1 protein, promoting pancreatic cancer progression. This discovery highlights a new MYC-USP39-SRSF1 pathway and identifies USP39 as a potential therapeutic target for pancreatic ductal adenocarcinoma.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Pancreatic ductal adenocarcinoma (PDAC) is a lethal cancer driven by KRAS signaling.
- The splicing factor SRSF1 is oncogenic in PDAC, but its stability regulation is unclear.
Purpose of the Study:
- To identify regulators of SRSF1 protein stability in PDAC.
- To elucidate the functional role and regulatory mechanisms of USP39 in PDAC.
Main Methods:
- Protein interaction assays to study USP39 and SRSF1.
- Ubiquitination assays to assess SRSF1 stability.
- Analysis of USP39 expression in PDAC patient data.
- Investigating MYC's role in USP39 transcription.
Main Results:
- USP39 directly interacts with SRSF1, suppressing its ubiquitination and stabilizing its levels.
- USP39 is upregulated in PDAC and linked to poor prognosis.
- USP39 promotes PDAC cell progression by stabilizing SRSF1.
- MYC transcriptionally activates USP39 via promoter binding.
Conclusions:
- A MYC-USP39-SRSF1 regulatory axis integrates transcriptional and post-translational control in PDAC.
- USP39 is a key regulator of PDAC progression and a potential therapeutic target.
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