Related Experiment Video
Updated: Feb 5, 2026

Analysis of Oxidative Stress in Zebrafish Embryos
Published on: July 7, 2014
Alterations in Sod2-Induced Oxidative Stress Affect Endocrine Cancer Progression
Amruta Ashtekar1, Danielle Huk1, Alexa Magner1
1Department of Cancer Biology and Genetics, The Ohio State University, Columbus, Ohio.
Context:
Although important advances have been made in understanding the genetics of endocrine tumors, cellular physiology is relatively understudied as a determinant of tumor behavior. Oxidative stress and reactive oxygen species are metabolic factors that may affect tumor behavior, and these are, in part, controlled by manganese-dependent superoxide dismutase (MnSod), the mitochondrial superoxide dismutase (encoded by SOD2).
Objective:
We sought to understand the role of MnSod in the prognosis of aggressive human endocrine cancers and directly assessed the effect of MnSod under- or overexpression on tumor behavior, using established mouse thyroid cancer models.
Methods:
We performed transcriptome analysis of human and mouse models of endocrine cancer. To address the role of Sod2 in endocrine tumors, we introduced a Sod2 null allele or a transgenic Sod2 overexpression allele into mouse models of benign thyroid follicular neoplasia or aggressive, metastatic follicular thyroid cancer (FTC) and monitored phenotypic changes in tumor initiation and progression.
Results:
In the thyroid, SOD2/Sod2 was downregulated in FTC but not papillary thyroid cancer. Reduced expression of SOD2 was correlated with poorer survival of patients with aggressive thyroid or adrenal cancers. In mice with benign thyroid tumors, Sod2 overexpression increased tumor burden. In contrast, in mice with aggressive FTC, overexpression of Sod2 reduced tumor proliferation and improved mortality rates, whereas its deficiency enhanced tumor growth.
Conclusion:
Overall, our results indicate that SOD2 has dichotomous roles in cancer progression and acts in a context-specific manner.
Insights
Manganese-dependent superoxide dismutase (MnSod) plays a dual role in endocrine cancer progression. Its function depends on the specific cancer type and stage, impacting tumor behavior and patient survival.
Area of Science:
- Endocrinology
- Oncology
- Molecular Biology
- Cancer Metabolism
Background:
- While endocrine tumor genetics are well-studied, cellular physiology, particularly oxidative stress regulated by manganese-dependent superoxide dismutase (MnSod, encoded by SOD2), is less understood.
- Oxidative stress and reactive oxygen species are critical metabolic factors influencing tumor behavior.
Purpose of the Study:
- To investigate the prognostic significance of MnSod in aggressive human endocrine cancers.
- To directly evaluate the impact of MnSod under- or overexpression on tumor behavior using mouse thyroid cancer models.
Main Methods:
- Transcriptome analysis was performed on human and mouse endocrine cancer models.
- Mouse models of benign thyroid neoplasia and aggressive follicular thyroid cancer (FTC) were utilized.
- A Sod2 null allele or a Sod2 overexpression allele was introduced to assess phenotypic changes in tumor initiation and progression.
Main Results:
- Thyroid follicular thyroid cancer (FTC) exhibited downregulation of SOD2/Sod2, unlike papillary thyroid cancer.
- Reduced SOD2 expression correlated with poorer survival in patients with aggressive thyroid or adrenal cancers.
- In benign thyroid tumors, Sod2 overexpression increased tumor burden; however, in aggressive FTC, it reduced proliferation and improved survival, while Sod2 deficiency worsened tumor growth.
Conclusions:
- SOD2 exhibits context-specific, dichotomous roles in cancer progression.
- The findings highlight the complex involvement of MnSod in endocrine tumor behavior and patient prognosis.
Related Concept Videos
Endocrine Signaling
mTOR Signaling and Cancer Progression
The mTOR pathway or the...
What is the Endocrine System?
The Endocrine System
An Overview of the Endocrine System
The endocrine system collaborates...
Structures of the Endocrine System

