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Published on: September 17, 2021
Role of the NADPH Oxidases DUOX and NOX4 in Thyroid Oxidative Stress
Denise P Carvalho1, Corinne Dupuy2
1Laboratório de Fisiologia Endócrina Doris Rosenthal, Instituto de Biofísica Carlos Chagas Filho, Universidade Federal do Rio de Janeiro, Rio de Janeiro, Brazil.
Abstract:
Somatic mutations are present at high levels in the rat thyroid gland, indicating that the thyrocyte is under oxidative stress, a state in which cellular oxidant levels are high. The most important class of free radicals, or reactive metabolites, is reactive oxygen species (ROS), such as superoxide anion (O2 (-)), hydroxyl radical (OH) and hydrogen peroxide (H2O2). The main source of ROS in every cell type seems to be mitochondrial respiration; however, recent data support the idea that NADPH:O(2) oxidoreductase flavoproteins or simply NADPH oxidases (NOX) are enzymes specialized in controlled ROS generation at the subcellular level. Several decades ago, high concentrations of H2O2 were detected at the apical surface of thyrocytes, where thyroid hormone biosynthesis takes place. Only in the last decade has the enzymatic source of H2O2 involved in thyroid hormone biosynthesis been well characterized. The cloning of two thyroid genes encoding NADPH oxidases dual oxidases 1 and 2 (DUOX1 and DUOX2) revealed that DUOX2 mutations lead to hereditary hypothyroidism in humans. Recent reports have also described the presence of NOX4 in the thyroid gland and have suggested a pathophysiological role of this member of the NOX family. In the present review, we describe the participation of NADPH oxidases not only in thyroid physiology but also in gland pathophysiology, particularly the involvement of these enzymes in the regulation of thyroid oxidative stress.
Insights
Thyroid cells experience oxidative stress due to reactive oxygen species (ROS). NADPH oxidases (NOX) are key enzymes in ROS generation, crucial for thyroid hormone synthesis and regulation.
Area of Science:
- Endocrinology
- Molecular Biology
- Cellular Physiology
Background:
- Thyroid gland exhibits high somatic mutation levels, indicative of oxidative stress.
- Reactive oxygen species (ROS), including hydrogen peroxide (H2O2), are implicated in cellular damage.
- Mitochondrial respiration is a primary ROS source, but NADPH oxidases (NOX) are specialized for controlled ROS generation.
Purpose of the Study:
- To review the role of NADPH oxidases (NOX) in thyroid gland physiology and pathophysiology.
- To elucidate the contribution of NOX enzymes to thyroid oxidative stress regulation.
- To highlight the significance of DUOX and NOX4 in thyroid hormone biosynthesis.
Main Methods:
- Literature review of studies on NADPH oxidases in the thyroid.
- Analysis of research on ROS generation and thyroid hormone synthesis.
- Examination of genetic studies linking DUOX mutations to hypothyroidism.
Main Results:
- NADPH oxidases (DUOX1, DUOX2, NOX4) are present in the thyroid gland.
- DUOX2 is essential for thyroid hormone biosynthesis; its mutations cause hereditary hypothyroidism.
- NOX enzymes play a role in regulating thyroid oxidative stress and hormone production.
Conclusions:
- NADPH oxidases are critical regulators of thyroid function and oxidative stress.
- Understanding NOX enzymes offers insights into thyroid pathophysiology and potential therapeutic targets.
- DUOX and NOX4 are key players in maintaining thyroid homeostasis and hormone synthesis.
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