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Phosphorylation of human TRM9L integrates multiple stress-signaling pathways for tumor growth suppression
Chen Gu1, Jillian Ramos2, Ulrike Begley3
1Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Abstract:
The human transfer RNA methyltransferase 9-like gene (TRM9L, also known as KIAA1456) encodes a negative regulator of tumor growth that is frequently silenced in many forms of cancer. While TRM9L can inhibit tumor cell growth in vivo, the molecular mechanisms underlying the tumor inhibition activity of TRM9L are unknown. We show that oxidative stress induces the rapid and dose-dependent phosphorylation of TRM9L within an intrinsically disordered domain that is necessary for tumor growth suppression. Multiple serine residues are hyperphosphorylated in response to oxidative stress. Using a chemical genetic approach, we identified a key serine residue in TRM9L that undergoes hyperphosphorylation downstream of the oxidative stress-activated MEK (mitogen-activated protein kinase kinase)-ERK (extracellular signal-regulated kinase)-RSK (ribosomal protein S6 kinase) signaling cascade. Moreover, we found that phosphorylated TRM9L interacts with the 14-3-3 family of proteins, providing a link between oxidative stress and downstream cellular events involved in cell cycle control and proliferation. Mutation of the serine residues required for TRM9L hyperphosphorylation and 14-3-3 binding abolished the tumor inhibition activity of TRM9L. Our results uncover TRM9L as a key downstream effector of the ERK signaling pathway and elucidate a phospho-signaling regulatory mechanism underlying the tumor inhibition activity of TRM9L.
Insights
Transfer RNA methyltransferase 9-like (TRM9L) is a tumor suppressor. Oxidative stress triggers TRM9L phosphorylation via the MEK-ERK pathway, enabling its interaction with 14-3-3 proteins to inhibit tumor growth.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Signaling
Background:
- The TRM9L gene (KIAA1456) encodes a protein that inhibits tumor growth but is often silenced in cancers.
- The precise molecular mechanisms by which TRM9L suppresses tumor growth remain largely unelucidated.
Purpose of the Study:
- To investigate the molecular mechanisms underlying TRM9L's tumor suppressor activity.
- To identify how oxidative stress influences TRM9L function and regulation.
Main Methods:
- Utilized a chemical genetic approach to study TRM9L phosphorylation.
- Investigated protein-protein interactions using TRM9L phosphorylation mutants.
- Analyzed the role of the MEK-ERK-RSK signaling cascade in TRM9L regulation.
Main Results:
- Oxidative stress induces rapid, dose-dependent phosphorylation of TRM9L in an intrinsically disordered domain essential for tumor suppression.
- Identified a key serine residue in TRM9L hyperphosphorylated downstream of the MEK-ERK-RSK pathway.
- Phosphorylated TRM9L binds to 14-3-3 proteins, linking oxidative stress to cell cycle control and proliferation.
- Mutations preventing TRM9L phosphorylation and 14-3-3 binding abolish its tumor inhibitory activity.
Conclusions:
- TRM9L is a critical downstream target of the ERK signaling pathway.
- Phosphorylation-dependent regulation of TRM9L by oxidative stress is a key mechanism for its tumor suppressor function.
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