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Updated: Jun 2, 2026

In Vivo Inhibition of MicroRNA to Decrease Tumor Growth in Mice
Published on: August 23, 2019
Global expression profiling reveals gain-of-function oncogenic activity of a mutated thyroid hormone receptor in
Changxue Lu1, Alok Mishra, Yuelin J Zhu
1Laboratory of Molecular Biology, Center for Cancer Research, National Cancer Institute, Bethesda, MD 20892, USA.
Abstract:
Thyroid hormone receptors (TRs) are critical in regulating gene expression in normal physiological processes. Decreased expression and/or somatic mutations of TRs have been shown to be associated several types of human cancers including liver, breast, lung, and thyroid. To understand the molecular mechanisms by which mutated TRs promote carcinogenesis, an animal model of follicular thyroid carcinoma (FTC) (Thrb(PV/PV) mice) was used in the present study. The Thrb(PV/PV) mouse harbors a knockin dominant negative PV mutation, identified in a patient with resistance to thyroid hormone. To understand whether oncogenic actions of PV involve not only the loss of normal TR functions but also gain-of-function activities, we compared the gene expression profiles of thyroid lesions in Thrb(PV/PV) mice and Thra1(-/-)Thrb(-/-) mice that also spontaneously develop FTC, but with less severe malignancy. Analysis of the cDNA microarray data derived from microdissected thyroid tumor cells of these two mice showed contrasting global gene expression profiles. With stringent selection using 2.5-fold change (p<0.01) in cDNA microarray analysis, 241 genes with altered gene expression were identified. Nearly half of the genes (n=103: 42.7% of total) with altered gene expression in thyroid tumor cells of Thrb(PV/PV) mice were associated with tumorigenesis and metastasis; some of these genes function as oncogenes in human thyroid cancers. The remaining genes were found to function in transcriptional regulation, RNA processing, cell proliferation, apoptosis, angiogenesis, and cytoskeleton modification. These results indicate that the more aggressive thyroid tumor progression in Thrb(PV/PV) mice was not due simply to the loss of tumor suppressor functions of TR via mutation but also, importantly, to gain-of-function in the oncogenic activities of PV to drive thyroid carcinogenesis. Thus, the present study identifies a novel mechanism by which a mutated TRβ evolves with an oncogenic advantage to promote thyroid carcinogenesis.
Insights
Mutated thyroid hormone receptors (TRs) with a PV mutation drive aggressive thyroid cancer through gain-of-function oncogenic activity, not just loss of normal function. This reveals a novel mechanism in thyroid carcinogenesis.
Area of Science:
- Endocrinology
- Molecular Biology
- Oncology
Background:
- Thyroid hormone receptors (TRs) regulate gene expression and are implicated in various cancers.
- Mutations in TRs are linked to human cancers, including thyroid carcinoma.
- Understanding the oncogenic mechanisms of mutated TRs is crucial for cancer research.
Purpose of the Study:
- To investigate the molecular mechanisms by which mutated TRs promote follicular thyroid carcinoma (FTC).
- To determine if oncogenic actions of the PV mutation involve loss-of-function and/or gain-of-function activities.
- To compare gene expression profiles in distinct animal models of FTC.
Main Methods:
- Utilized a Thrb(PV/PV) mouse model with a dominant-negative PV mutation in TR.
- Compared gene expression profiles with Thra1(-/-)Thrb(-/-) mice that also develop FTC.
- Analyzed cDNA microarray data from microdissected thyroid tumor cells.
Main Results:
- Identified 241 genes with altered expression in Thrb(PV/PV) mice thyroid tumors.
- Nearly half of altered genes (42.7%) were associated with tumorigenesis and metastasis.
- Observed contrasting gene expression profiles between the two mouse models.
Conclusions:
- Aggressive thyroid tumor progression in Thrb(PV/PV) mice is driven by gain-of-function oncogenic activities of the PV mutation.
- Mutated TRs can evolve oncogenic advantage to promote thyroid carcinogenesis.
- Identified a novel mechanism involving mutated TRβ in thyroid cancer development.
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