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Farinha Antunes, I.

Publications and source records attributed to Farinha Antunes, I..

2 recordsLinked to original sources

Italia: A PARP-Directed Auger Electron-Emitting Agent for Targeted Radionuclide Therapy of Cancer

Poly(ADP-ribose) polymerase 1 (PARP1) is a central mediator of DNA damage repair and an established therapeutic target in homologous recombination-deficient cancers. Radiolabelled PARP inhibitors provide a strategy to deliver cytotoxic radiation directly to tumour DNA by exploiting PARP overexpression and trapping at sites of DNA damage. Here, we describe the design, radiosynthesis, and in vitro evaluation of [123I]Italia, a talazoparib-derived Auger electron-emitting agent for PARP-targeted radionuclide therapy. Stereochemically pure [123I]Italia, (8S,9R)-5-fluoro-8-(4-(iodo-123I)phenyl)-9-(1-methyl-1H-1,2,4-triazol-5-yl)-2,7,8,9-tetrahydro-3H-pyrido[4,3,2-de]phthalazin-3-one was synthesised in one step via copper-mediated iodo-deboronation, achieving activity yields >80% and molar activities >6.2 {+/-} 3.1 GBq/{micro}mol (n=8). UPLC analysis confirmed radiochemical purity >97%. Italia exhibited potent PARP1 inhibition (IC50 0.48 nM) and in silico predicted binding affinity comparable to talazoparib. In a panel of PARP-expressing cancer cell lines, [123I]Italia demonstrated highest uptake at 60 min, PARP-selective uptake, predominant nuclear localisation (up to 60% of added activity) and chromatin association consistent with PARP trapping (up to 15% of total activity recorded). Uptake was reduced more than 50-fold by addition of an excess of any PARP inhibitor (e.g. olaparib, talazoparib, and rucaparib) and in PARP1 knockout cells, confirming target specificity. Clonogenic assays showed a marked, added activity-dependent reduction in survival of PARP-expressing cells following a brief one-hour exposure, whereas PARP1-deficient cells were resistant. Collectively, these findings identify [123I]Italia as a promising PARP-targeted Auger electron-emitting theranostic candidate that warrants further in vivo evaluation.

cancer biology↗

Patient-Derived Medullary Thyroid Cancer Organoids; a Model for Patient-tailored Drug and PET-Tracer Screening

BackgroundMedullary thyroid carcinoma (MTC) is a neuroendocrine tumor derived from the parafollicular C-cells of the thyroid gland. PET imaging, with various PET tracers, is performed when distant metastatic disease is suspected. After the recognition of progressive disease on imaging, targeted therapy may be initiated to prolong survival. Mutations in the gene encoding the REarranged during Transfection (RET) tyrosine kinase play a key role in the development of MTC. It seems that tyrosine kinase inhibitors (TKIs) inhibit tumor proliferation, but it remains challenging to determine the best patient specific treatment option. Here, we aim to set up an in vitro MTC organoid model to study its potential for patient-tailored drug-screening and uptake of PET tracers. MethodsDispersed cells obtained from surgical MTC biopsies were suspended in Matrigel with defined medium allowing MTC organoid formation. To study putative MTC stem cells, the self-renewal potential of organoids was tested by dissociation to single cells and re-plating. To check MTC origin, MTC-specific gene expression and proteins were characterized by qPCR and immunofluorescent (IF) staining. To investigate cytotoxicity, MTC-organoids (MTOs) were exposed to various TKIs after which hormone (calcitonin and CEA) excretion levels were determined. Lastly, we evaluated cell-specific uptake of clinically used Positron Emission Tomography (PET) tracers. ResultsNine MTC biopsies were processed and cultured as MTOs. Eight MTO lines were used to determine organoid formation efficiency (OFE), which yielded a maximum OFE of 6.3% in passage 1 (p1), 5.9% in p2, and 9.4% in p3, indicating the presence of putative stem cells. IF staining showed expression of MTC-specific markers in both tissue and MTOs showing tissue resemblance. Tumor marker measurements in MTO medium showed MTC-specific production of calcitonin and CEA with changed concentrations after exposure to TKIs. Exposure to PET tracers showed significant uptake in the MTOs. ConclusionMTC organoids can be successfully cultured and resemble the tissue of origin in gene expression, protein expression and functionality. In addition, MTOs can take up PET tracers, and have the potential to be used as a prediction model for TKI treatment in the future.

cancer biology↗