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Cancer Cell Gene Expression Modulated from Plasma Membrane Integrin αvβ3 by Thyroid Hormone and Nanoparticulate
Paul J Davis1, Gennadi V Glinsky2, Hung-Yun Lin3
1Department of Medicine, Albany Medical College , Albany, NY , USA ; Pharmaceutical Research Institute, Albany College of Pharmacy and Health Sciences , Rensselaer, NY , USA.
Abstract:
Integrin αvβ3 is generously expressed by cancer cells and rapidly dividing endothelial cells. The principal ligands of the integrin are extracellular matrix proteins, but we have described a cell surface small molecule receptor on αvβ3 that specifically binds thyroid hormone and thyroid hormone analogs. From this receptor, thyroid hormone (l-thyroxine, T4; 3,5,3'-triiodo-l-thyronine, T3) and tetraiodothyroacetic acid (tetrac) regulate expression of specific genes by a mechanism that is initiated non-genomically. At the integrin, T4 and T3 at physiological concentrations are pro-angiogenic by multiple mechanisms that include gene expression, and T4 supports tumor cell proliferation. Tetrac blocks the transcriptional activities directed by T4 and T3 at αvβ3, but, independently of T4 and T3, tetrac modulates transcription of cancer cell genes that are important to cell survival pathways, control of the cell cycle, angiogenesis, apoptosis, cell export of chemotherapeutic agents, and repair of double-strand DNA breaks. We have covalently bound tetrac to a 200 nm biodegradable nanoparticle that prohibits cell entry of tetrac and limits its action to the hormone receptor on the extracellular domain of plasma membrane αvβ3. This reformulation has greater potency than unmodified tetrac at the integrin and affects a broader range of cancer-relevant genes. In addition to these actions on intra-cellular kinase-mediated regulation of gene expression, hormone analogs at αvβ3 have additional effects on intra-cellular protein-trafficking (cytosol compartment to nucleus), nucleoprotein phosphorylation, and generation of nuclear coactivator complexes that are relevant to traditional genomic actions of T3. Thus, previously unrecognized cell surface-initiated actions of thyroid hormone and tetrac formulations at αvβ3 offer opportunities to regulate angiogenesis and multiple aspects of cancer cell behavior.
Insights
Thyroid hormone and analogs bind to integrin αvβ3, regulating cancer cell genes and angiogenesis. Tetrac nanoparticles offer targeted cancer therapy by modulating survival and DNA repair pathways.
Area of Science:
- Molecular Biology
- Cancer Research
- Endocrinology
Background:
- Integrin αvβ3 is highly expressed on cancer cells and endothelial cells, mediating cell adhesion and signaling.
- Thyroid hormones (T4, T3) and analogs like tetrac interact with a cell surface receptor on αvβ3.
- This interaction initiates non-genomic signaling pathways regulating gene expression.
Purpose of the Study:
- To investigate the role of thyroid hormone and tetrac at the αvβ3 integrin in regulating cancer cell behavior.
- To evaluate the therapeutic potential of tetrac-conjugated nanoparticles targeting αvβ3.
Main Methods:
- Utilized cell surface binding assays to characterize hormone-integrin interactions.
- Employed gene expression analysis to identify regulated cancer-relevant genes.
- Developed and tested tetrac-conjugated biodegradable nanoparticles for targeted delivery.
Main Results:
- T4 and T3 promote angiogenesis and tumor cell proliferation via αvβ3.
- Tetrac blocks T4/T3 transcriptional activity and independently modulates cancer cell survival, cell cycle, and DNA repair.
- Tetrac nanoparticles show enhanced potency and broader gene modulation compared to unmodified tetrac.
- Hormone analogs influence intracellular protein trafficking and nuclear complex formation.
Conclusions:
- Cell surface actions of thyroid hormone and tetrac at αvβ3 represent novel targets for cancer therapy.
- Tetrac nanoparticles offer a promising strategy for regulating angiogenesis and multiple cancer cell functions.
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