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Yegutkin, G. G.

Publications and source records attributed to Yegutkin, G. G..

2 recordsLinked to original sources

Adenosine impairs T cell function via activation of purine salvage pathway and AMP-induced inhibition of pyrimidine nucleotide biosynthesis

Extracellular adenosine (ADO) is a well-established immune checkpoint mediator suppressing T cells via activation of A2A receptors, yet intracellular mechanisms of ADO action remain less understood. Here, we show that activated human T cells transport extracellular ADO through equilibrative nucleoside transporter 1 (ENT1) and metabolize it through ATP salvage pathway. The generated ADO metabolite AMP inhibits UMP synthase (UMPS), the rate-limiting enzyme of de novo pyrimidine biosynthesis, leading to diminished ATP production via conventional bioenergetic pathways, increased apoptosis, and impaired effector functions of T cells. Flow cytometric and single-cell transcriptomic analyses further revealed that ADO restrains the exit of naive T cells from quiescence. All effects of ADO were phenocopied by treating T cells with the inhibitors of UMPS and reversed after pharmacological blockage of ENT1 or uridine supplementation. Additional molecular docking, molecular dynamics simulations, and free-energy analyses indicate that AMP can occupy the orotidine 5'-monophosphate (OMP) decarboxylase catalytic site of UMPS with the same anchoring contacts as substrate OMP and product UMP, providing a structural rationale for direct AMP-mediated inhibition of pyrimidine biosynthesis. These findings demonstrate that immunosuppressive effects of ADO extend beyond canonical adenosinergic signaling and involve cellular ADO uptake and modulation of purine and pyrimidine metabolism.

immunology↗

Positron emission tomography (PET) tracer enables imaging of high CD73 expression in cancer

Ecto-5-nucleotidase (CD73) is a potential new drug target for cancer immunotherapy. Its overexpression is associated with various aggressive cancers, including triple-negative breast cancer (TNBC) and pancreatic cancer, making it a promising target for diagnostic imaging. Besides antibodies, small molecule CD73 inhibitors have been developed and are currently in clinical trials. This study aimed to develop and evaluate fluorine-18 labeled high-affinity CD73 inhibitors as tracers for the non-invasive positron emission tomography (PET) imaging of CD73 expression in cancer. Two CD73 inhibitors were selected for radiolabeling based on their high potency (Ki values of ca. 1 nM), and favorable pharmacokinetic properties providing [18F]PSB-19427 ([18F]1) and [18F]MRS-4648 ([18F]2). Ex vivo imaging studies on human breast cancer tissues indicated specific binding of both radiotracers. Subsequent in vivo studies proved [18F]1 to be superior due to its long elimination half-life and its accumulation in TNBC and pancreatic cancer tissues, suggesting its potential as a versatile PET tracer for imaging various solid tumors. [18F]1 significantly outperformed [18F]FDG in visualizing triple-negative breast cancer, offering potential advantages over [18F]FDG in terms of specificity and diagnostic accuracy. Thus, [18F]1 is a PET tracer with outstanding properties suitable for broad application in cancer diagnosis and potentially in therapy control. Based on these results, further clinical development of PET tracers targeting CD73 is warranted. One Sentence SummaryA PET tracer for imaging CD73 expression was developed, enabling cancer diagnosis.

cancer biology↗