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1.
Biol Direct ; 18(1): 43, 2023 08 01.
Article in English | MEDLINE | ID: mdl-37528429

ABSTRACT

Antipsychotic drugs are the mainstay of treatment for schizophrenia and provide adjunct therapies for other prevalent psychiatric conditions, including bipolar disorder and major depressive disorder. However, they also induce debilitating extrapyramidal syndromes (EPS), such as Parkinsonism, in a significant minority of patients. The majority of antipsychotic drugs function as dopamine receptor antagonists in the brain while the most recent 'third'-generation, such as aripiprazole, act as partial agonists. Despite showing good clinical efficacy, these newer agents are still associated with EPS in ~ 5 to 15% of patients. However, it is not fully understood how these movement disorders develop. Here, we combine clinically-relevant drug concentrations with mutliscale model systems to show that aripiprazole and its primary active metabolite induce mitochondrial toxicity inducing robust declines in cellular ATP and viability. Aripiprazole, brexpiprazole and cariprazine were shown to directly inhibit respiratory complex I through its ubiquinone-binding channel. Importantly, all three drugs induced mitochondrial toxicity in primary embryonic mouse neurons, with greater bioenergetic inhibition in ventral midbrain neurons than forebrain neurons. Finally, chronic feeding with aripiprazole resulted in structural damage to mitochondria in the brain and thoracic muscle of adult Drosophila melanogaster consistent with locomotor dysfunction. Taken together, we show that antipsychotic drugs acting as partial dopamine receptor agonists exhibit off-target mitochondrial liabilities targeting complex I.


Subject(s)
Antipsychotic Agents , Depressive Disorder, Major , Animals , Mice , Aripiprazole/pharmacology , Aripiprazole/therapeutic use , Antipsychotic Agents/pharmacology , Antipsychotic Agents/therapeutic use , Depressive Disorder, Major/drug therapy , Drosophila melanogaster , Electron Transport
2.
ACS Chem Biol ; 17(7): 1733-1744, 2022 07 15.
Article in English | MEDLINE | ID: mdl-35793809

ABSTRACT

PROteolysis TArgeting Chimeras (PROTACs) use the ubiquitin-proteasome system to degrade a protein of interest for therapeutic benefit. Advances made in targeted protein degradation technology have been remarkable, with several molecules having moved into clinical studies. However, robust routes to assess and better understand the safety risks of PROTACs need to be identified, which is an essential step toward delivering efficacious and safe compounds to patients. In this work, we used Cell Painting, an unbiased high-content imaging method, to identify phenotypic signatures of PROTACs. Chemical clustering and model prediction allowed the identification of a mitotoxicity signature that could not be expected by screening the individual PROTAC components. The data highlighted the benefit of unbiased phenotypic methods for identifying toxic signatures and the potential to impact drug design.


Subject(s)
High-Throughput Screening Assays , Proteolysis , Ubiquitin-Protein Ligases , Humans , Proteasome Endopeptidase Complex/metabolism , Ubiquitin-Protein Ligases/metabolism
3.
Elife ; 92020 05 20.
Article in English | MEDLINE | ID: mdl-32432547

ABSTRACT

Disruption of mitochondrial function selectively targets tumour cells that are dependent on oxidative phosphorylation. However, due to their high energy demands, cardiac cells are disproportionately targeted by mitochondrial toxins resulting in a loss of cardiac function. An analysis of the effects of mubritinib on cardiac cells showed that this drug did not inhibit HER2 as reported, but directly inhibits mitochondrial respiratory complex I, reducing cardiac-cell beat rate, with prolonged exposure resulting in cell death. We used a library of chemical variants of mubritinib and showed that modifying the 1H-1,2,3-triazole altered complex I inhibition, identifying the heterocyclic 1,3-nitrogen motif as the toxicophore. The same toxicophore is present in a second anti-cancer therapeutic carboxyamidotriazole (CAI) and we demonstrate that CAI also functions through complex I inhibition, mediated by the toxicophore. Complex I inhibition is directly linked to anti-cancer cell activity, with toxicophore modification ablating the desired effects of these compounds on cancer cell proliferation and apoptosis.


The pharmaceutical industry needs to make safe and effective drugs. At the same time this industry is under pressure to keep the costs of developing these drugs at an acceptable level. Drugs work by interacting with and typically blocking a specific target, such as a protein in a particular type of cell. Sometimes, however, drugs also bind other unexpected targets. These "off-target" effects can be the reason for a drug's toxicity, and it is important ­ both for the benefit of patients and the money that can be saved when developing drugs ­ to identify how drugs cause toxic side effects. The earlier researchers detect off-target effects, the better. Recent data has suggested that an anti-cancer drug called mubritinib has off-target effects on the compartments within cells that provide the cell with most of their energy, the mitochondria. This drug's intended target is a protein called HER2, which is found in large amounts on the surfaces of some breast cancer cells. Yet if mubritinib has this off-target effect on mitochondria, it may be harmful to other cells including heart cells because the heart is an organ that needs a large amount of energy from its mitochondria. Stephenson et al. have now performed experiments to show that mubritinib does not actually interact with HER2 at all, but only targets mitochondria. The effect of mubritinib as an anti-cancer drug is therefore only due to its activity against mitochondria. Digging deeper into the chemistry revealed the small parts of its chemical structure that was responsible for mubritinib's toxicity against heart cells, the so-called toxic substructure. Another anti-cancer drug called carboxyamidotriazole also has the same toxic substructure. Carboxyamidotriazole is supposed to stop cells from taking up calcium ions, but a final set of experiments demonstrated that this drug also only acts by inhibiting mitochondria. Often there is not enough information about many drugs' substructures, meaning off-target effects and toxicities cannot be predicted. The pharmaceutical industry will now be able to benefit from this new knowledge about the toxic substructures within some drugs. This research may also help patients who take mubritinib or carboxyamidotriazole, because their doctors will have to check for side effects on the heart more carefully.


Subject(s)
Electron Transport Complex I/metabolism , Mitochondria, Heart/drug effects , Mitochondria, Heart/metabolism , Oxazoles/pharmacology , Triazoles/pharmacology , Adenosine Triphosphate/metabolism , Antineoplastic Agents/chemistry , Antineoplastic Agents/pharmacology , Cell Death , Cell Line , Cell Proliferation/drug effects , Gene Expression Regulation/drug effects , Humans , Mitochondria/metabolism , Myocytes, Cardiac , Oxazoles/chemistry , Oxazoles/toxicity , Oxidative Phosphorylation , Protein Binding , Receptor, ErbB-2 , Triazoles/chemistry , Triazoles/toxicity
4.
J Cell Biol ; 213(2): 163-71, 2016 04 25.
Article in English | MEDLINE | ID: mdl-27091447

ABSTRACT

Mitochondrial fission is essential for the degradation of damaged mitochondria. It is currently unknown how the dynamin-related protein 1 (DRP1)-associated fission machinery is selectively targeted to segregate damaged mitochondria. We show that PTEN-induced putative kinase (PINK1) serves as a pro-fission signal, independently of Parkin. Normally, the scaffold protein AKAP1 recruits protein kinase A (PKA) to the outer mitochondrial membrane to phospho-inhibit DRP1. We reveal that after damage, PINK1 triggers PKA displacement from A-kinase anchoring protein 1. By ejecting PKA, PINK1 ensures the requisite fission of damaged mitochondria for organelle degradation. We propose that PINK1 functions as a master mitophagy regulator by activating Parkin and DRP1 in response to damage. We confirm that PINK1 mutations causing Parkinson disease interfere with the orchestration of selective fission and mitophagy by PINK1.


Subject(s)
Mitochondria/metabolism , Mitochondrial Dynamics/physiology , Mitophagy/genetics , Protein Kinases/physiology , Calcium/chemistry , Calcium/physiology , Cell Line , Gene Silencing , Humans , Mitophagy/physiology , Phosphorylation , Protein Kinases/genetics , Protein Kinases/metabolism , Substrate Specificity , Ubiquitin-Protein Ligases/genetics , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/physiology
5.
J Biol Chem ; 286(20): 18056-65, 2011 May 20.
Article in English | MEDLINE | ID: mdl-21393237

ABSTRACT

NADH:ubiquinone oxidoreductase (complex I) is a major source of reactive oxygen species in mitochondria and a contributor to cellular oxidative stress. In isolated complex I the reduced flavin is known to react with molecular oxygen to form predominantly superoxide, but studies using intact mitochondria contend that superoxide may result from a semiquinone species that responds to the proton-motive force (Δp) also. Here, we use bovine heart submitochondrial particles to show that a single mechanism describes superoxide production by complex I under all conditions (during both NADH oxidation and reverse electron transfer). NADH-induced superoxide production is inhibited by complex I flavin-site inhibitors but not by inhibitors of ubiquinone reduction, and it is independent of Δp. Reverse electron transfer (RET) through complex I in submitochondrial particles, driven by succinate oxidation and the Δp created by ATP hydrolysis, reduces the flavin, leading to NAD(+) and O(2) reduction. RET-induced superoxide production is inhibited by both flavin-site and ubiquinone-reduction inhibitors. The potential dependence of NADH-induced superoxide production (set by the NAD(+) potential) matches that of RET-induced superoxide production (set by the succinate potential and Δp), and they both match the potential dependence of the flavin. Therefore, both NADH- and RET-induced superoxide are produced by the flavin, according to the same molecular mechanism. The unified mechanism describes how reactive oxygen species production by complex I responds to changes in cellular conditions. It establishes a route to understanding causative connections between the enzyme and its pathological effects and to developing rational strategies for addressing them.


Subject(s)
Adenosine Triphosphate/chemistry , Electron Transport Complex I/chemistry , Mitochondria, Heart/enzymology , NADP/chemistry , Superoxides/chemistry , Adenosine Triphosphate/metabolism , Animals , Cattle , Electron Transport Complex I/metabolism , NADP/metabolism , Oxidation-Reduction , Superoxides/metabolism
6.
Biochem Soc Trans ; 36(Pt 5): 976-80, 2008 Oct.
Article in English | MEDLINE | ID: mdl-18793173

ABSTRACT

ROS (reactive oxygen species) are considered to be a major cause of cellular oxidative stress, linked to neuromuscular diseases and aging. Complex I (NADH:ubiquinone oxidoreductase) is one of the main contributors to superoxide production by mitochondria, and knowledge of its mechanism of O2 reduction is required for the formulation of causative connections between complex I defects and pathological effects. There is evidence for two distinct (but not mutually exclusive) sites of O2 reduction by complex I. Studies of the isolated enzyme largely support the participation of the reduced flavin mononucleotide in the active site for NADH oxidation, and this mechanism is supported in mitochondria by correlations between the NAD(P)+ potential and O2 reduction. In addition, studies of intact mitochondria or submitochondrial particles have suggested a mechanism involving the quinone-binding site, supported by observations during reverse electron transport and the use of 'Q-site' inhibitors. Here, we discuss extant data and models for O2 reduction by complex I. We compare results from the isolated enzyme with results from intact mitochondria, aiming to identify similarities and differences between them and progress towards combining them to form a single, unified picture.


Subject(s)
Electron Transport Complex I/metabolism , Reactive Oxygen Species/metabolism , Binding Sites , Electron Transport , Electron Transport Complex I/antagonists & inhibitors , Electron Transport Complex I/chemistry , Flavins/chemistry , Flavins/metabolism , Oxidation-Reduction , Oxygen/metabolism , Protein Conformation
7.
J Gen Virol ; 89(Pt 8): 1911-1920, 2008 Aug.
Article in English | MEDLINE | ID: mdl-18632962

ABSTRACT

GB virus B (GBV-B) is the closest relative to hepatitis C virus (HCV) with which it shares a common genome organization, however, unlike HCV in humans, it generally causes an acute resolving hepatitis in New World monkeys. It is important to understand the factors regulating the different disease profiles of the two viruses and in this regard, as well as playing a key role in viral RNA replication, the HCV NS5A non-structural protein modulates a variety of host-cell signalling pathways. We have shown previously that HCV NS5A, expressed either alone, or in the context of the complete polyprotein, inhibits the Ras-extracellular-signal-regulated kinase (Erk) pathway and activates the phosphoinositide 3-kinase (PI3K) pathway. In this report, we investigate whether these functions are shared by GBV-B NS5A. Immunofluorescence analysis revealed that a C-terminally FLAG-tagged GBV-B NS5A exhibited a punctate cytoplasmic distribution. However, unlike HCV NS5A, the GBV-B protein did not partially co-localize with early endosomes. Utilizing a transient luciferase reporter system, we observed that GBV-B NS5A failed to inhibit Ras-Erk signalling, however GBV-B NS5A expression did result in the elevation of beta-catenin-dependent transcription via activation of the PI3K pathway. These effects of GBV-B and HCV NS5A on the PI3K and Ras-Erk pathways were confirmed in cells harbouring subgenomic replicons derived from the two viruses. Based on these data we speculate that the differential effects of the two NS5A proteins on cellular signalling pathways may contribute to the differences in the natural history of the two viruses.


Subject(s)
GB virus B/pathogenicity , Hepacivirus/pathogenicity , Hepatocytes/virology , Host-Pathogen Interactions , Phosphatidylinositol 3-Kinases/metabolism , Signal Transduction , Viral Nonstructural Proteins/metabolism , Animals , COS Cells , Cell Line, Tumor , Chlorocebus aethiops , Extracellular Signal-Regulated MAP Kinases/genetics , Extracellular Signal-Regulated MAP Kinases/metabolism , GB virus B/genetics , GB virus B/metabolism , Gene Expression Regulation , Hepacivirus/genetics , Hepacivirus/metabolism , Humans , Phosphatidylinositol 3-Kinases/genetics , Subcellular Fractions/metabolism , Transcription Factor AP-1/antagonists & inhibitors , Transcription Factor AP-1/genetics , Transcription Factor AP-1/metabolism , Viral Nonstructural Proteins/genetics , beta Catenin/genetics , beta Catenin/metabolism , ras Proteins/genetics , ras Proteins/metabolism
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