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1.
Gastroenterology ; 165(1): 187-200.e7, 2023 Jul.
Article in English | MEDLINE | ID: mdl-36966941

ABSTRACT

BACKGROUND & AIMS: Excess copper causes hepatocyte death in hereditary Wilson's disease (WD). Current WD treatments by copper-binding chelators may gradually reduce copper overload; they fail, however, to bring hepatic copper close to normal physiological levels. Consequently, lifelong daily dose regimens are required to hinder disease progression. This may result in severe issues due to nonadherence or unwanted adverse drug reactions and also due to drug switching and ultimate treatment failures. This study comparatively tested bacteria-derived copper binding agents-methanobactins (MBs)-for efficient liver copper depletion in WD rats as well as their safety and effect duration. METHODS: Copper chelators were tested in vitro and in vivo in WD rats. Metabolic cage housing allowed the accurate assessment of animal copper balances and long-term experiments related to the determination of minimal treatment phases. RESULTS: We found that copper-binding ARBM101 (previously known as MB-SB2) depletes WD rat liver copper dose dependently via fecal excretion down to normal physiological levels within 8 days, superseding the need for continuous treatment. Consequently, we developed a new treatment consisting of repetitive cycles, each of ∼1 week of ARBM101 applications, followed by months of in-between treatment pauses to ensure a healthy long-term survival in WD rats. CONCLUSIONS: ARBM101 safely and efficiently depletes excess liver copper from WD rats, thus allowing for short treatment periods as well as prolonged in-between rest periods.


Subject(s)
Hepatolenticular Degeneration , Rats , Animals , Hepatolenticular Degeneration/drug therapy , Hepatolenticular Degeneration/metabolism , Copper , Hepatobiliary Elimination , Liver/metabolism , Chelating Agents/pharmacology , Chelating Agents/therapeutic use
2.
Anal Bioanal Chem ; 416(20): 4591-4604, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38960940

ABSTRACT

From organs to subcellular organelles, trace element (TE) homeostasis is fundamental for many physiological processes. While often overlooked in early stages, manifested TE disbalance can have severe health consequences, particularly in the context of aging or pathological conditions. Monitoring TE concentrations at the mitochondrial level could identify organelle-specific imbalances, contributing to targeted diagnostics and a healthier aging process. However, mitochondria isolation from frozen tissue is challenging, as it poses the risk of TE losses from the organelles due to cryodamage, but would significantly ease routine laboratory work. To address this, a novel method to isolate an enriched mitochondria fraction (EMF) from frozen tissue was adapted from already established protocols. Validation of manganese (Mn), iron (Fe), and copper (Cu) quantification via inductively coupled plasma tandem mass spectrometry (ICP-MS/MS) showed sufficiently low quantification limits for EMF TE analysis. Successful mitochondrial enrichment from frozen liver samples was confirmed via immunoblots and transmission electron microscopy (TEM) revealed sufficient structural integrity of the EMFs. No significant differences in EMF TEs between frozen and fresh tissue were evident for Mn and Cu and only slight decreases in EMF Fe. Consequently, EMF TEs were highly comparable for isolates from both tissue states. In application, this method effectively detected dietary differences in EMF Fe of a murine feeding study and identified the disease status in a Wilson disease rat model based on drastically increased EMF Cu. In summary, the present method is suitable for future applications, facilitating sample storage and high-throughput analyses of mitochondrial TEs.


Subject(s)
Liver , Tandem Mass Spectrometry , Trace Elements , Animals , Liver/chemistry , Liver/metabolism , Trace Elements/analysis , Mice , Tandem Mass Spectrometry/methods , Mitochondria, Liver/metabolism , Freezing , Manganese/analysis , Mice, Inbred C57BL , Male , Copper/analysis , Copper/metabolism , Iron/analysis , Iron/metabolism
3.
Redox Biol ; 75: 103256, 2024 09.
Article in English | MEDLINE | ID: mdl-38959622

ABSTRACT

Higher eukaryotes' life is impossible without copper redox activity and, literally, every breath we take biochemically demonstrates this. However, this dependence comes at a considerable price to ensure target-oriented copper action. Thereto its uptake, distribution but also excretion are executed by specialized proteins with high affinity for the transition metal. Consequently, malfunction of copper enzymes/transporters, as is the case in hereditary Wilson disease that affects the intracellular copper transporter ATP7B, comes with serious cellular damage. One hallmark of this disease is the progressive copper accumulation, primarily in liver but also brain that becomes deadly if left untreated. Such excess copper toxicity may also result from accidental ingestion or attempted suicide. Recent research has shed new light into the cell-toxic mechanisms and primarily affected intracellular targets and processes of such excess copper that may even be exploited with respect to cancer therapy. Moreover, new therapies are currently under development to fight against deadly toxic copper.


Subject(s)
Copper-Transporting ATPases , Copper , Hepatolenticular Degeneration , Copper/metabolism , Copper/toxicity , Humans , Hepatolenticular Degeneration/metabolism , Hepatolenticular Degeneration/genetics , Hepatolenticular Degeneration/drug therapy , Copper-Transporting ATPases/metabolism , Copper-Transporting ATPases/genetics , Animals , Oxidation-Reduction , Liver/metabolism , Liver/drug effects , Liver/pathology , Brain/metabolism , Brain/pathology , Brain/drug effects
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