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De Jaeger, M.

Publications and source records attributed to De Jaeger, M..

2 recordsLinked to original sources

A druggable ATP13A3-antizyme switch controls adaptive polyamine uptake in cancer

Cellular polyamine depletion is a promising anticancer strategy, but compensatory polyamine uptake limits efficacy when synthesis is blocked by DFMO (difluoromethylornithine), a clinically approved inhibitor of ornithine decarboxylase. The transporter and feedback mechanism driving this adaptive response have remained unclear. Despite their similar biochemical properties, we identify ATP13A3, rather than ATP13A2, as the principal DFMO-responsive polyamine importer, suggesting that these isoforms regulate distinct polyamine fluxes. Mechanistically, the polyamine sensor antizyme not only restrains polyamine biosynthesis but also selectively inhibits ATP13A3-mediated uptake, a brake that is relieved upon DFMO treatment. This regulatory circuit exposes distinct polyamine-acquisition states across cancers, defining synthesis- and/or uptake-biased subtypes that can shift during disease progression. Melanoma metastasis and vemurafenib resistance evolve toward increased ATP13A3-dependent uptake. The polyamine uptake branch controlled by ATP13A3-antizyme regulation can be pharmacologically blocked by AMXT 1501, which directly inhibits ATP13A3. Together, our findings explain DFMO adaptation through ATP13A3-antizyme control and establish ATP13A3 as a targetable node for polyamine depletion strategies in multiple cancers, supporting ongoing clinical evaluation of combined DFMO/AMXT 1501 therapy.

cell biology↗

Genetically encoded fluorescent sensors for visualizing polyamine levels, uptake, and distribution

Polyamines are abundant and physiologically essential biomolecules that play a role in numerous processes, but are disrupted in diseases such as cancer, and cardiovascular and neurological disorders. Despite their importance, measuring free polyamine concentrations and monitoring their metabolism and uptake in cells in real-time remains impossible due to the lack of appropriate biosensors. Here we engineered, characterized, and validated the first genetically encoded biosensors for polyamines, named iPASnFRs. We demonstrate the utility of iPASnFR for detecting polyamine import into mammalian cells, to the cytoplasm, mitochondria, and the nucleus. We demonstrate that these sensors are useful to probe the activity of polyamine transporters and to uncover biochemical pathways underlying the distribution of polyamines amongst organelles. The sensors powered a high-throughput small molecule compound library screen, revealing multiple compounds in different chemical classes that strongly modulate cellular polyamine levels. These sensors will be powerful tools to investigate the complex interplay between polyamine uptake and metabolic pathways, address open questions about their role in health and disease, and enable screening for therapeutic polyamine modulators.

cell biology↗