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Trax: A versatile signaling protein plays key roles in synaptic plasticity and DNA repair
Yijuang Chern1, Ting Chien1, Xiuping Fu2
1Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan.
Abstract:
Translin-associated protein X (TSNAX), also called trax, was first identified as a protein that interacts with translin. Subsequent studies demonstrated that these proteins form a heteromeric RNase complex that mediates degradation of microRNAs, a pivotal finding that has stimulated interest in understanding the role of translin and trax in cell signaling. Recent studies addressing this question have revealed that trax plays key roles in both synaptic plasticity and DNA repair signaling pathways. In the context of synaptic plasticity, trax works together with its partner protein, translin, to degrade a subset of microRNAs. Activation of the translin/trax RNase complex reverses microRNA-mediated translational silencing to trigger dendritic protein synthesis critical for synaptic plasticity. In the context of DNA repair, trax binds to and activates ATM, a central component of the double-stranded DNA repair process. Thus, these studies focus attention on trax as a critical signaling protein that interacts with multiple partners to impact diverse signaling pathways. To stimulate interest in deciphering the multifaceted role of trax in cell signaling, we summarize the current understanding of trax biology and highlight gaps in our knowledge about this protean protein.
Insights
Translin-associated protein X (trax) degrades microRNAs to regulate synaptic plasticity and activates ATM for DNA repair. This signaling protein impacts diverse cellular pathways, highlighting its multifaceted biological roles.
Area of Science:
- Molecular Biology
- Cell Signaling
- Neuroscience
Background:
- Translin-associated protein X (TSNAX), or trax, interacts with translin.
- They form a heteromeric RNase complex that degrades microRNAs.
- This complex is crucial for cell signaling pathways.
Purpose of the Study:
- To summarize current understanding of trax biology.
- To highlight knowledge gaps regarding trax's function.
- To stimulate interest in trax's multifaceted roles in cell signaling.
Main Methods:
- Literature review of studies on trax.
- Analysis of trax's role in synaptic plasticity.
- Investigation of trax's involvement in DNA repair signaling.
Main Results:
- Trax, with translin, degrades specific microRNAs, reversing translational silencing and promoting dendritic protein synthesis for synaptic plasticity.
- Trax binds and activates ATM, a key enzyme in DNA double-strand break repair.
- Trax acts as a critical signaling protein with diverse interaction partners.
Conclusions:
- Trax plays significant roles in both synaptic plasticity and DNA repair.
- Its ability to interact with multiple partners underscores its importance in cell signaling.
- Further research is needed to fully elucidate the protean functions of trax.
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