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Updated: Apr 29, 2026

Comparative Strategies for Ubiquitination Detection in Mammalian Cell Lysates Using SMAD2/SMURF2 as a Model
Published on: April 17, 2026
SMYD3 links lysine methylation of MAP3K2 to Ras-driven cancer
Pawel K Mazur1, Nicolas Reynoird2, Purvesh Khatri3
11] Department of Pediatrics, Stanford University School of Medicine, California 94305, USA [2] Department of Genetics, Stanford University School of Medicine, California 94305, USA [3].
Abstract:
Deregulation of lysine methylation signalling has emerged as a common aetiological factor in cancer pathogenesis, with inhibitors of several histone lysine methyltransferases (KMTs) being developed as chemotherapeutics. The largely cytoplasmic KMT SMYD3 (SET and MYND domain containing protein 3) is overexpressed in numerous human tumours. However, the molecular mechanism by which SMYD3 regulates cancer pathways and its relationship to tumorigenesis in vivo are largely unknown. Here we show that methylation of MAP3K2 by SMYD3 increases MAP kinase signalling and promotes the formation of Ras-driven carcinomas. Using mouse models for pancreatic ductal adenocarcinoma and lung adenocarcinoma, we found that abrogating SMYD3 catalytic activity inhibits tumour development in response to oncogenic Ras. We used protein array technology to identify the MAP3K2 kinase as a target of SMYD3. In cancer cell lines, SMYD3-mediated methylation of MAP3K2 at lysine 260 potentiates activation of the Ras/Raf/MEK/ERK signalling module and SMYD3 depletion synergizes with a MEK inhibitor to block Ras-driven tumorigenesis. Finally, the PP2A phosphatase complex, a key negative regulator of the MAP kinase pathway, binds to MAP3K2 and this interaction is blocked by methylation. Together, our results elucidate a new role for lysine methylation in integrating cytoplasmic kinase-signalling cascades and establish a pivotal role for SMYD3 in the regulation of oncogenic Ras signalling.
Insights
Lysine methylation by SMYD3 (SET and MYND domain containing protein 3) promotes Ras-driven cancers by activating MAP kinase signalling. Inhibiting SMYD3 catalytic activity halts tumour development, offering a potential therapeutic strategy.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Deregulation of lysine methylation is a key factor in cancer.
- Histone lysine methyltransferase (KMT) inhibitors are developed as chemotherapeutics.
- The cytoplasmic KMT SMYD3 is overexpressed in many human tumors, but its role in cancer is unclear.
Purpose of the Study:
- To elucidate the molecular mechanism of SMYD3 in cancer pathways.
- To investigate the role of SMYD3 in tumorigenesis in vivo.
- To identify SMYD3 targets and understand its regulation of cancer signalling.
Main Methods:
- Utilized mouse models for pancreatic and lung adenocarcinoma.
- Employed protein array technology to identify SMYD3 targets.
- Investigated SMYD3-mediated methylation of MAP3K2 and its effect on signalling pathways.
Main Results:
- SMYD3 methylates MAP3K2, enhancing MAP kinase signalling and promoting Ras-driven carcinomas.
- Abrogating SMYD3 catalytic activity inhibited tumour development in mouse models.
- SMYD3 depletion synergized with a MEK inhibitor to block Ras-driven tumorigenesis.
- Methylation of MAP3K2 by SMYD3 blocks its interaction with the PP2A phosphatase complex.
Conclusions:
- SMYD3 plays a pivotal role in regulating oncogenic Ras signalling through lysine methylation.
- This study reveals a new role for lysine methylation in integrating cytoplasmic kinase signalling cascades.
- SMYD3 is a potential therapeutic target for Ras-driven cancers.
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