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Sachindra, S.

Publications and source records attributed to Sachindra, S..

2 recordsLinked to original sources

SPECT/CT imaging, biodistribution and radiation dosimetry of a 177Lu-DOTA-integrin αvβ6 cystine knot peptide in a pancreatic cancer xenograft model

IntroductionPancreatic ductal adenocarcinoma (PDAC) is one of the most aggressive malignant neoplasms, as many cases go undetected until they reach an advanced stage. Integrin v{beta}6 is a cell surface receptor overexpressed in PDAC. Consequently, it may serve as a target for the development of probes for imaging diagnosis and radioligand therapy. Engineered cystine knottin peptides specific for integrin v{beta}6 have recently been developed showing high affinity and stability. This study aimed to evaluate an integrin v{beta}6-specific knottin molecular probe containing the therapeutic radionuclide 177Lu for targeting of PDAC. MethodsThe expression of integrin v{beta}6 in PDAC cell lines BxPC3 and Capan2 was analyzed using RT-qPCR and immunofluorescence. In vitro competition and saturation radioligand binding assays were performed to calculate the binding affinity of the DOTA-coupled tracer loaded with and without lutetium to BxPC3 and Capan2 cell lines. To evaluate tracer accumulation in the tumor and organs, SPECT/CT, biodistribution and dosimetry projections were carried out using a Capan2 xenograft tumor mouse model. ResultsRT-qPCR and immunofluorescence results showed high expression of integrin v{beta}6 in BxPC3 and Capan2 cells. A competition binding assay revealed high affinity of the tracer with IC50 values of 1.69 nM and 9.46 nM for BxPC3 and Capan2, respectively. SPECT/CT and biodistribution analysis of the conjugate 177Lu-DOTA-integrin v{beta}6 knottin demonstrated accumulation in Capan2 xenograft tumors (3.13 {+/-} 0.63 %IA/g at day 1 post injection) with kidney uptake at 19.2 {+/-} 2.5 %IA/g, declining much more rapidly than in tumors. Conclusion177Lu-DOTA-integrin v{beta}6 knottin was found to be a high-affinity tracer for PDAC tumors with considerable tumor accumulation and moderate, rapidly declining kidney uptake. These promising results warrant a preclinical treatment study to establish therapeutic efficacy.

cancer biology

AGTR1 is overexpressed in neuroendocrine neoplasms, regulates secretion and may serve as a target for molecular imaging and therapy

Peptide receptor targeting has proven to be a pivotal tool for diagnostic imaging and radioligand therapy of neuroendocrine neoplasms (NENs), which frequently express somatostatin receptors (SSTRs) on their cell surface. However, up to 30 % of NEN patients do not benefit from SSTR-based approaches, others develop a resistance. Consequently, alternative cell surface targets need to be identified. In this study, cell-based dynamic mass redistribution and calcium mobilization screening using a 998-compound library identified and confirmed angiotensin II (ATII) as a strong activator of cellular signaling in NEN cells. Expression analyses of the ATII receptor type 1 (AGTR1) revealed an upregulation of both mRNA levels (RT-qPCR) and radioligand binding (autoradiography) in pancreatic (n=42) and small-intestinal (n=71) NEN tissues compared to healthy controls (n=25). The two NEN cell lines BON (pancreas) and H727 (lung) with elevated AGTR1 expression exhibited concentration-dependent calcium mobilization and chromogranin A secretion upon stimulation with ATII, blocked by AGTR1 antagonism and Gq inhibition. To assess the applicability of AGTR1 for optical in vivo imaging, the receptor ligand saralasin was coupled to the near-infrared dye indotricarbocyanine and tested for its biodistribution in a NMRI Foxn1nu/Foxn1nu mouse model bearing AGTR1-positive BON and negative QGP-1 xenograft tumors. Near-infrared fluorescent imaging showed a significantly higher uptake in BON tumors 3-6 hours after injection. This successful targeting in an NEN model establishes AGTR1 as an interesting target in this tumor entity, paving the way for the development of translational chelator-based probes for diagnostic PET imaging and peptide receptor radioligand therapy.

cancer biology