Functional inactivation of the transcription factor Pax8 through oligomerization chain reaction
Barbara D'Andrea1, Roberto Iacone, Tina Di Palma
1Istituto di Endocrinologia ed Oncologia Sperimentale-Consiglio Nazionale delie Ricerche and Dipartimento di Biologia e Patologia Cellulare e Molecolare, Italy.
Abstract:
Among the approaches used to provide a functional inactivation of a target protein, we have chosen the recently described oligomerization chain reaction (OCR) strategy to functionally inactivate the transcription factor Pax8, a member of the Pax gene family expressed in thyroid cells. The OCR strategy is based on the fusion of the self-associating coiled-coil (CC) domain of the nuclear factor promyelocytic leukemia (PML) to target proteins that are able to self-associate naturally or that form heterocomplexes. In the thyroid tissue, the transcription factor Pax8 is involved in the morphogenesis of the gland and in the transcriptional regulation of thyroid-expressed genes. We have recently demonstrated that in thyroid cells Pax8 interacts biochemically and functionally with the transcription factor TTF-1 (thyroid transcription factor 1), and that such interaction leads to the synergistic activation of thyroglobulin (Tg) gene expression. Fusion of the CC domain to Pax8 leads to the formation of aberrant, nonfunctional high-molecular mass complexes to which TTF-1 is also recruited. The CC-Pax8 chimera inhibits the transcriptional activity of Pax8 and of TTF-1 on both synthetic and physiological promoters and prevents the synergistic activation of the Tg promoter mediated by these two transcription factors. Furthermore, the expression of the CC-Pax8 chimera in differentiated thyroid cells leads to the down-regulation of the endogenous expression of several differentiation markers such as Tg, sodium/iodide symporter, Foxe1, TTF-1, and thyroid oxidase 2. These results demonstrate that the OCR is a useful tool to functionally inactivate a transcription factor. Moreover, by this approach, we identified Foxe1, TTF-1, and thyroid oxidase 2 as new direct targets of Pax8 or TTF-1.
Insights
The oligomerization chain reaction (OCR) strategy effectively inactivates the thyroid transcription factor Pax8 by forming nonfunctional complexes. This method also identified new Pax8 and TTF-1 targets, advancing thyroid gene regulation research.
Area of Science:
- Molecular Biology
- Genetics
- Endocrinology
Background:
- Transcription factor Pax8 is crucial for thyroid development and gene regulation.
- Pax8 interacts with thyroid transcription factor 1 (TTF-1) to synergistically activate thyroglobulin (Tg) gene expression.
Purpose of the Study:
- To functionally inactivate the transcription factor Pax8 using the oligomerization chain reaction (OCR) strategy.
- To investigate the role of Pax8 and its interaction with TTF-1 in thyroid gene regulation.
Main Methods:
- Fusion of the coiled-coil (CC) domain of PML to Pax8 to create a CC-Pax8 chimera.
- Analysis of the effect of CC-Pax8 on Pax8/TTF-1 interactions and transcriptional activity.
- Assessment of the impact of CC-Pax8 expression on endogenous thyroid differentiation markers.
Main Results:
- The CC-Pax8 chimera formed aberrant, high-molecular mass complexes, sequestering TTF-1.
- CC-Pax8 inhibited the transcriptional activity of both Pax8 and TTF-1, blocking synergistic Tg promoter activation.
- Expression of CC-Pax8 downregulated endogenous thyroid differentiation markers, including Tg, sodium/iodide symporter, Foxe1, TTF-1, and thyroid oxidase 2.
Conclusions:
- The OCR strategy is a validated tool for functional inactivation of transcription factors.
- Foxe1, TTF-1, and thyroid oxidase 2 were identified as novel direct targets of Pax8 or TTF-1.
- This study provides new insights into thyroid-specific gene regulation and transcription factor function.
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