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Resin-Assisted Capture Coupled with Isobaric Tandem Mass Tag Labeling for Multiplexed Quantification of Protein Thiol Oxidation
Published on: June 21, 2021
Protein disulfide isomerase and Nox: new partners in redox signaling
Silvia Cellone Trevelin, Lucia Rossetti Lopes1
1Department of Pharmacology, Institute of Biomedical Sciences, Avenue Prof. Lineu Prestes, 1524, São Paulo-SP, 05508-900, Brazil. llopes@usp.br.
Abstract:
Reactive oxygen species (ROS) contribute to the pathogenesis of cardiovascular disease, including hypertension, atherosclerosis, cardiac hypertrophy, heart failure and restenosis. Thiol proteins and thiol oxidoreductases are key players in cell signaling, and their altered expression and/or activity has been associated with a disrupture in cardiac and vascular homeostasis. Protein disulfide isomerase (PDI) is a thiol oxidoreductase member of the thioredoxin family that has multiple roles in cellular function. Originally discovered in the endoplasmic reticulum (ER), PDI is essential for protein folding. However, it can also be found in the cytosol and closely associated with the surface of platelets, smooth muscle cells, neutrophils and endothelial cells. On the cell surface, PDI is imperative for platelet aggregation and transnitrosation, which are related to thrombosis and control of vascular tone by nitric oxide, respectively. Furthermore, PDI signaling contributes to redox-dependent events such as smooth muscle cell migration induced by PDGF and TNFα-dependent angiogenesis. Studies from our group have shown that intracellular PDI regulates the expression and activity of the NADPH oxidase family of proteins (Nox), which are enzymes dedicated to ROS generation. PDI acts as a new organizer of leukocyte Nox2 by redox dependently associating with p47phox and controlling its recruitment to the plasma membrane, an essential step for assembly of the active enzyme. Such multiple effects of PDI suggest that specific targeting of this oxidoreductase could represent a new approach in the treatment of vascular disease. In this review, we present a novel role for PDI as an adaptor protein involved in redox processes and Nox signaling and propose PDI as a potential therapeutic target in the treatment of atherosclerosis, thrombosis and hypertension.
Insights
Protein disulfide isomerase (PDI) is a key regulator of reactive oxygen species (ROS) production and vascular homeostasis. Targeting PDI offers a novel therapeutic strategy for cardiovascular diseases like atherosclerosis and hypertension.
Area of Science:
- Cardiovascular Biology
- Redox Signaling
- Molecular Medicine
Background:
- Reactive oxygen species (ROS) are implicated in cardiovascular diseases such as hypertension and atherosclerosis.
- Thiol proteins and oxidoreductases, including Protein Disulfide Isomerase (PDI), are crucial for cell signaling and maintaining vascular homeostasis.
- Altered PDI expression or activity disrupts cardiac and vascular function.
Purpose of the Study:
- To review the novel role of PDI as an adaptor protein in redox processes and NADPH oxidase (Nox) signaling.
- To propose PDI as a potential therapeutic target for vascular diseases.
Main Methods:
- Review of existing literature on PDI function in cellular signaling and cardiovascular disease.
- Analysis of PDI's role in regulating Nox enzyme activity and ROS generation.
- Examination of PDI's involvement in platelet aggregation, vascular tone, and cell migration.
Main Results:
- PDI, found in the endoplasmic reticulum and cell surface, is essential for protein folding and cellular signaling.
- PDI regulates Nox enzyme assembly and activity, thereby controlling ROS generation.
- PDI is involved in platelet aggregation, transnitrosation, smooth muscle cell migration, and angiogenesis.
Conclusions:
- PDI acts as a critical adaptor protein in redox-dependent signaling pathways.
- PDI's multifaceted roles in ROS production and vascular homeostasis suggest its potential as a therapeutic target.
- Targeting PDI may offer new treatment strategies for atherosclerosis, thrombosis, and hypertension.
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