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Selective Delivery of Dicarboxylates to Mitochondria by Conjugation to a Lipophilic Cation via a Cleavable Linker.
Prag, Hiran A; Kula-Alwar, Duvaraka; Pala, Laura; Caldwell, Stuart T; Beach, Timothy E; James, Andrew M; Saeb-Parsy, Kourosh; Krieg, Thomas; Hartley, Richard C; Murphy, Michael P.
  • Prag HA; Molecular Research Center, Mitochondrial Biology Unit, Biomedical Campus, University of Cambridge, Cambridge CB2 0XY, United Kingdom.
  • Kula-Alwar D; Department of Medicine, University of Cambridge, Cambridge CB2 0QQ, United Kingdom.
  • Pala L; School of Chemistry, University of Glasgow, Glasgow G12 8QQ, United Kingdom.
  • Caldwell ST; School of Chemistry, University of Glasgow, Glasgow G12 8QQ, United Kingdom.
  • Beach TE; Department of Surgery, Cambridge National Institute for Health Research Biomedical Research Centre, University of Cambridge, Cambridge CB2 0QQ, United Kingdom.
  • James AM; Molecular Research Center, Mitochondrial Biology Unit, Biomedical Campus, University of Cambridge, Cambridge CB2 0XY, United Kingdom.
  • Saeb-Parsy K; Department of Surgery, Cambridge National Institute for Health Research Biomedical Research Centre, University of Cambridge, Cambridge CB2 0QQ, United Kingdom.
  • Krieg T; Department of Medicine, University of Cambridge, Cambridge CB2 0QQ, United Kingdom.
  • Hartley RC; School of Chemistry, University of Glasgow, Glasgow G12 8QQ, United Kingdom.
  • Murphy MP; Molecular Research Center, Mitochondrial Biology Unit, Biomedical Campus, University of Cambridge, Cambridge CB2 0XY, United Kingdom.
Mol Pharm ; 17(9): 3526-3540, 2020 09 08.
Article en En | MEDLINE | ID: mdl-32692564
ABSTRACT
Many mitochondrial metabolites and bioactive molecules contain two carboxylic acid moieties that make them unable to cross biological membranes. Hence, there is considerable interest in facilitating the uptake of these molecules into cells and mitochondria to modify or report on their function. Conjugation to the triphenylphosphonium (TPP) lipophilic cation is widely used to deliver molecules selectively to mitochondria in response to the membrane potential. However, permanent attachment to the cation can disrupt the biological function of small dicarboxylates. Here, we have developed a strategy using TPP to release dicarboxylates selectively within mitochondria. For this, the dicarboxylate is attached to a TPP compound via a single ester bond, which is then cleaved by intramitochondrial esterase activity, releasing the dicarboxylate within the organelle. Leaving the second carboxylic acid free also means mitochondrial uptake is dependent on the pH gradient across the inner membrane. To assess this strategy, we synthesized a range of TPP monoesters of the model dicarboxylate, malonate. We then tested their mitochondrial accumulation and ability to deliver malonate to isolated mitochondria and to cells, in vitro and in vivo. A TPP-malonate monoester compound, TPP11-malonate, in which the dicarboxylate group was attached to the TPP compound via a hydrophobic undecyl link, was most effective at releasing malonate within mitochondria in cells and in vivo. Therefore, we have developed a TPP-monoester platform that enables the selective release of bioactive dicarboxylates within mitochondria.
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Texto completo: 1 Banco de datos: MEDLINE Asunto principal: Ácidos Carboxílicos / Cationes / Mitocondrias Límite: Animals / Female / Humans / Male Idioma: En Año: 2020 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Asunto principal: Ácidos Carboxílicos / Cationes / Mitocondrias Límite: Animals / Female / Humans / Male Idioma: En Año: 2020 Tipo del documento: Article