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Identification of novel nuclear targets of human thioredoxin 1
Changgong Wu1, Mohit Raja Jain1, Qing Li1
1From the ‡Center for Advanced Proteomics Research and Department of Microbiology, Biochemistry & Molecular Genetics, Rutgers University-New Jersey Medical School Cancer Center, 205 S. Orange Ave., Newark, New Jersey 07103;
Abstract:
The dysregulation of protein oxidative post-translational modifications has been implicated in stress-related diseases. Trx1 is a key reductase that reduces specific disulfide bonds and other cysteine post-translational modifications. Although commonly in the cytoplasm, Trx1 can also modulate transcription in the nucleus. However, few Trx1 nuclear targets have been identified because of the low Trx1 abundance in the nucleus. Here, we report the large-scale proteomics identification of nuclear Trx1 targets in human neuroblastoma cells using an affinity capture strategy wherein a Trx1C35S mutant is expressed. The wild-type Trx1 contains a conserved C32XXC35 motif, and the C32 thiol initiates the reduction of a target disulfide bond by forming an intermolecular disulfide with one of the oxidized target cysteines, resulting in a transient Trx1-target protein complex. The reduction is rapidly consummated by the donation of a C35 proton to the target molecule, forming a Trx1 C32-C35 disulfide, and results in the concurrent release of the target protein containing reduced thiols. By introducing a point mutation (C35 to S35) in Trx1, we ablated the rapid dissociation of Trx1 from its reduction targets, thereby allowing the identification of 45 putative nuclear Trx1 targets. Unexpectedly, we found that PSIP1, also known as LEDGF, was sensitive to both oxidation and Trx1 reduction at Cys 204. LEDGF is a transcription activator that is vital for regulating cell survival during HIV-1 infection. Overall, this study suggests that Trx1 may play a broader role than previously believed that might include regulating transcription, RNA processing, and nuclear pore function in human cells.
Insights
Thioredoxin 1 (Trx1) is crucial for reducing oxidative stress. A new method identified 45 nuclear Trx1 targets, revealing its broader role in regulating transcription and RNA processing.
Area of Science:
- Cell Biology
- Biochemistry
- Proteomics
Background:
- Oxidative post-translational modifications are linked to stress-related diseases.
- Thioredoxin 1 (Trx1) is a key reductase involved in redox homeostasis.
- Trx1's nuclear functions are understudied due to low nuclear abundance.
Purpose of the Study:
- To identify nuclear targets of Trx1 using a novel affinity capture method.
- To investigate the role of Trx1 in nuclear processes beyond its known cytoplasmic functions.
Main Methods:
- Large-scale proteomics using an affinity capture strategy.
- Expression of a Trx1C35S mutant to stabilize Trx1-target complexes.
- Analysis of nuclear Trx1 targets in human neuroblastoma cells.
Main Results:
- Identified 45 putative nuclear Trx1 targets.
- Discovered that PSIP1 (LEDGF) is a Trx1 target sensitive to redox regulation.
- Trx1 may regulate transcription, RNA processing, and nuclear pore function.
Conclusions:
- Trx1 plays a more extensive role in nuclear functions than previously understood.
- The Trx1C35S mutant strategy is effective for identifying nuclear Trx1 targets.
- Trx1's redox activity impacts critical cellular processes including transcription and RNA metabolism.
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