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Biology subjects

Zeiger, M. A.

Publications and source records attributed to Zeiger, M. A..

3 recordsLinked to original sources

miR-210 expression is strongly hypoxia-induced in anaplastic thyroid cancer cell lines and is associated with extracellular vesicles & Argonaute-2

Hypoxia, or low oxygen tension, is frequently found in highly proliferative solid tumors such as anaplastic thyroid carcinoma (ATC) and is believed to promote resistance to chemotherapy and radiation. Identifying hypoxic cells for targeted therapy may thus be an effective approach to treating aggressive cancers. Here, we explore the potential of the well-known hypoxia-responsive microRNA (miRNA) miR-210-3p as a cellular and extracellular biological marker of hypoxia. We compare miRNA expression across several ATC and papillary thyroid cancer (PTC) cell lines. In the ATC cell line SW1736, miR-210-3p expression levels indicate hypoxia during exposure to low oxygen conditions (2% O2). Furthermore, when released by SW1736 cells into the extracellular space, miR-210-3p is associated with RNA carriers such as extracellular vesicles (EVs) and Argonaute-2 (AGO2), making it a potential extracellular marker for hypoxia.

cancer biology↗

Upregulation of Somatostatin Receptor Type 2 in a Receptor-Deficient In Vivo Pancreatic Neuroendocrine Tumor Model Improves Tumor Response to Targeted 177Lu-DOTATATE

PurposeThe goal of this study was to test whether histone deacetylase inhibitors (HDACis) restore somatostatin receptor type 2 (SSTR2) expression in models of high-grade pancreatic neuroendocrine tumors (PNETs), thereby facilitating effective treatment with 177Lu-DOTATATE therapy. MethodsTo assess tumor grade correlation with SSTR2 expression, we assessed human SSTR2 promoter methylation and expression levels in 96 NIH patient samples and merged the GSE149395 and GSE117852 datasets. We used three NET cell lines (QGP-1, BON-1, GOT-1) characterized by variable SSTR2 expression profiles for functional in vitro studies using HDACis. Finally, the QGP-1 xenograft mouse model, with low basal SSTR2 expression, was used to analyze the therapeutic efficacy of combined HDACi and 177Lu-DOTATATE therapies. ResultsHuman PNET SSTR2 promoter methylation showed a significant positive correlation with higher tumor grades (P = 0.000014). We also found a significant negative correlation (P < 0.0001) between SSTR2 promoter methylation and SSTR2 expression in three NET cell lines. In vitro, SSTR2 expression increased significantly in BON-1 and QGP-1 cells at 48 and 72 hours in a dose-dependent fashion using two different HDACis, valproic acid and CI-994. In vivo studies demonstrated a significant increase in 177Lu-DOTATATE tumor uptake in QGP-1-engrafted mice after 10 days of CI-994 pretreatment (P = 0.0175). Treatment with 177Lu-DOTATATE reduced tumor size in mice pretreated with CI-994 compared to 177Lu-DOTATATE alone (at 15 days, P = 0.0028). ConclusionHDACis increase SSTR2 surface expression in models of high-grade, SSTR2-deficient PNETs. This approach has the potential to improve tumor response to targeted therapy with 177 Lu-DOTATATE in patients with receptor-negative, metastatic PNETs. Translational Relevance StatementPancreatic neuroendocrine tumors (PNETs) express high levels of somatostatin receptor type 2 (SSTR2), a unique target for both tumor imaging and therapy. Unfortunately, high-grade PNETs lose SSTR2 surface expression and thus become ineligible for SSTR2-targeted 177Lu-DOTATATE peptide receptor radionuclide therapy (PRRT). Restoring SSTR2 expression through the reversal of inhibitory epigenetic gene silencing mechanisms has the potential for improving tumor responsiveness to PRRT. We demonstrate that histone deacetylase inhibitors (HDACis) upregulate SSTR2 surface expression in three NET cell lines in vitro. In an in vivo PNET xenograft model with low basal SSTR2 expression, our studies validate a significantly higher tumor uptake of SSTR2-targeted 177Lu-DOTATATE in animals pretreated with HDACis compared to controls. Furthermore, we show that this higher tumor uptake results in significant anti-tumor response when compared to standard PRRT alone. Our preclinical results thus provide a rationale for utilizing HDACi pretreatment to improve targeted radionuclide therapy in patients with SSTR2-negative, metastatic PNETs.

molecular biology↗

mir-21 is associated with inactive low molecular weight Argonaute complexes in thyroid cancer cell lines

Thyroid cancer is the most prevalent endocrine malignancy. We and others have shown that several microRNAs, which are post-transcriptional gene regulators, are aberrantly expressed in anaplastic thyroid cancer (ATC) and papillary thyroid cancer (PTC) tissues, as well as cell lines derived from these cancers. In the cell, miRNAs are bound to Argonaute (AGO) proteins as what could be termed low molecular weight RNA-Induced Silencing Complexes (LMW-RISCs) that can assemble with additional proteins, mRNA, and translation machinery into high molecular weight RISCs (HMW-RISCs) that exert regulatory function. In this study, we sought to analyze the association of miRNAs with RISC complexes in ATC and PTC. For ATC and PTC lines, miRNA species were enriched in both HMW-RISC and LMW-RISC cellular fractions, compared with intermediate molecular weight fractions and very low molecular weight (AGO-poor) fractions. Furthermore, 60% of all miRNAs were slightly more abundant in LMW-RISC versus HMW-RISC fractions by ~2-4 fold. Surprisingly, miR-21-5p, one of the most abundant miRNAs in both ATC and PTC lines and one of the most widely studied oncogenic miRNAs in many solid tumors, was consistently one the least abundant miRNAs in HMW-RISC and the most enriched miRNA in LMW-RISC fractions. These findings may suggest that miR-21 has a role or roles distinct from canonical post-transcriptional regulation in cancer. Furthermore, the methodology described here is a useful way to assess the distribution of miR-21 between HMW and LMW-RISCs and may help to reveal the true roles of this miRNA in thyroid cancer development, progression, and treatment.

molecular biology↗