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◆ Biochemical pharmacology2026-09-11

A novel pipeline for the validation of manganese chelators for the treatment of manganese overload.

Hendrik K Vogt, Chiara Pojani, Jack Devonport, Andrew McGown, George Firth, Ivan Doykov, Valeria Nikolaenko, Sofia Anagianni, Leonardo E Valdivia, Youssef Khalil, Nikolett Bodnár, Csilla Kállay, Chris Dadswell, Ramon Gonzalez-Mendez, Rupert Purchase, Frances M Platt, Flavia C M Zacconi, Amy F Geard, Wendy E Heywood, Kevin Mills, Philippa B Mills, Ahad A Rahim, Jason Rihel, Stephen W Wilson, George E Kostakis, John Spencer, Karin Tuschl

原始摘要(英文原文)· Original abstract
Manganese neurotoxicity, arising from environmental overexposure or inherited transporter disorders due to pathogenic variants in SLC30A10 and SLC39A14, leads to manganism, a debilitating Parkinsonian movement disorder. Although chelation therapy can partially reverse neuropathology, current clinical practice relies on intravenous CaNa2EDTA, which is burdensome and poorly suited for long-term use. Consequently, there remains a significant unmet need for more effective, orally bioavailable chelators. This study aimed to establish and validate a pipeline for identifying and assessing novel ligands that attenuate manganese neurotoxicity and support preclinical translational development. Based on the structural features of manganese-based MRI contrast agents, we selected two chelators, N-picolyl-N,N',N'-trans-1,2-cyclohexylenediaminetriacetic acid (H3PyC3A) and ethylenediaminetetraacetic acid - benzothiazole aniline (H4EDTA-BTA), and their methyl ester derivatives, Me3PyC3A and Me4EDTA-BTA. These were evaluated in vivo using zebrafish (slc39a14U801/U801) and mouse (Slc30a10KO/KO) models of manganese overload. H3PyC3A and Me3PyC3A demonstrated greater manganese-mobilizing efficacy than CaNa2EDTA, improving locomotor behavior in slc39a14U801/U801 zebrafish. In Slc30a10KO/KO mice, intravenous administration confirmed selective in vivo chelation of excess manganese over physiological concentrations of zinc and copper. Although oral bioavailability was low (<1%), long-term oral administration of H3PyC3A reduced liver and brain Mn accumulation, suggesting an added benefit of oral administration via gastrointestinal chelation. This integrated in vitro to in vivo pipeline provides a robust and scaleable approach for the development of next-generation Mn chelators. Slc39a14U801/U801 loss-of-function zebrafish enable high throughput identification of candidate compounds while Slc30a10KO/KO mice offer a clinically relevant disease model for pharmacokinetic profiling and proof-of-concept validation.
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A novel pipeline for the validation of manganese chelators for the treatment of manganese overload. — 科研速览 Science Skim