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Published on: July 22, 2013
Identification of Redox and Glucose-Dependent Txnip Protein Interactions
Benjamin J Forred1, Skyla Neuharth1, Dae In Kim1
1Children's Health Research Center, Sanford Research, Sioux Falls, SD 57104, USA.
Abstract:
Thioredoxin-interacting protein (Txnip) acts as a negative regulator of thioredoxin function and is a critical modulator of several diseases including, but not limited to, diabetes, ischemia-reperfusion cardiac injury, and carcinogenesis. Therefore, Txnip has become an attractive therapeutic target to alleviate disease pathologies. Although Txnip has been implicated with numerous cellular processes such as proliferation, fatty acid and glucose metabolism, inflammation, and apoptosis, the molecular mechanisms underlying these processes are largely unknown. The objective of these studies was to identify Txnip interacting proteins using the proximity-based labeling method, BioID, to understand differential regulation of pleiotropic Txnip cellular functions. The BioID transgene fused to Txnip expressed in HEK293 identified 31 interacting proteins. Many protein interactions were redox-dependent and were disrupted through mutation of a previously described reactive cysteine (C247S). Furthermore, we demonstrate that this model can be used to identify dynamic Txnip interactions due to known physiological regulators such as hyperglycemia. These data identify novel Txnip protein interactions and demonstrate dynamic interactions dependent on redox and glucose perturbations, providing clarification to the pleiotropic cellular functions of Txnip.
Insights
Thioredoxin-interacting protein (Txnip) regulates key cellular functions. New research used BioID to identify 31 interacting proteins, revealing redox-dependent interactions and dynamic changes in response to hyperglycemia, clarifying Txnip
Area of Science:
- Molecular Biology
- Biochemistry
- Cellular Biology
Background:
- Thioredoxin-interacting protein (Txnip) is a negative regulator of thioredoxin, impacting diseases like diabetes and cancer.
- Txnip's role in cellular processes like metabolism, inflammation, and apoptosis is significant, but its molecular mechanisms remain unclear.
Purpose of the Study:
- To identify Txnip interacting proteins using proximity-based labeling (BioID).
- To elucidate the molecular mechanisms underlying Txnip's pleiotropic cellular functions.
- To understand how redox and glucose levels affect Txnip interactions.
Main Methods:
- Utilized BioID proximity labeling with a Txnip-fused transgene in HEK293 cells.
- Analyzed identified protein interactions for redox-dependence.
- Investigated the impact of hyperglycemia on Txnip interactions.
Main Results:
- Identified 31 Txnip interacting proteins.
- Demonstrated that many interactions are redox-dependent and sensitive to mutations (C247S).
- Showed dynamic Txnip interactions influenced by physiological regulators like hyperglycemia.
Conclusions:
- Novel Txnip protein interactions were identified.
- Txnip interactions are dynamic and modulated by redox and glucose perturbations.
- These findings provide insights into the complex cellular functions of Txnip.
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