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Anthony, T. G.

Publications and source records attributed to Anthony, T. G..

5 recordsLinked to original sources

Branched-chain amino acid fermentation as an alternative mammalian electron sink

Hypoxia disrupts mitochondrial respiration and increases the NADH/NAD+ ratio, causing reductive stress. To maintain redox homeostasis, mammalian cells divert electrons toward fermentation. While fermentation in mammals typically involves lactate production, we identify the fermentation of branched-chain amino acids (BCAAs) as an alternative electron sink activated by hypoxia. The resulting metabolites are excreted in urine as a distinct mechanism for alleviating reductive stress. BCAA fermentation is catalyzed by lactate dehydrogenase (LDH) enzymes and is highly responsive to the NADH/NAD+ ratio. Consequently, BCAA fermentation products are sensitive biomarkers for reductive stress in human contexts ranging from resistance exercise to severe hypoxemia. Furthermore, we find that mouse sperm have evolved highly efficient BCAA fermentation, providing a specific metabolic strategy to support the anaerobic electron flow that facilitates flagellar hypermotility across mammalian sperm. Our work highlights an under-appreciated fate of BCAAs in response to reductive stress.

cell biology↗

Large deletion variants in a Plasmodium falciparum ookinete protein gene and associations with different endemic populations and mosquito vectors

The Plasmodium falciparum PIMMS43 gene encodes an ookinete protein that is important for mosquito infection. Here, large indel variants within the coding sequence are identified, and frequencies in natural infections of humans and mosquitoes investigated. Comparing long-read genome sequences in a small panel of P. falciparum strains and related species revealed a 150 bp deletion in the central part of the gene in several strains including the standard 3D7 reference genome. Mapping of short-read genome sequence data from 524 P. falciparum infections from nine different countries to full-length PIMMS43 showed the 150 bp deletion and an alternative 90 bp deletion to be common structural variants. Across African populations, the 150 bp deletion had a mean allele frequency of 32%, and the 90 bp deletion a mean frequency of 12%, with significant geographical variation. Targeted genotyping of 30 oocysts from naturally infected mosquitoes in Tanzania by nested PCR showed overall deletion variant frequencies similar to those seen in human infections in the same country. Although sample size was limited, a difference in the variant frequencies in oocysts from Anopheles gambiae and Anopheles funestus suggests potential vector-specific selection. The findings highlight the importance of surveying structural genomic variation and its potential role in parasite adaptation. Data summaryThe long-read genome sequence data sources are listed in the Supplementary Information (Supplementary Table 1). The short-read genome sequence data from human infections were extracted as a selected subset of those in the Pf7 release of global data from the MalariaGEN Consortium as described in the Methods. The SNP and indel genotypes derived from each sample of parasites cultured in the laboratory and from natural mosquito infections are given in the Supplementary Information (Supplementary Tables 1 and 3, Supplementary Figure 1). Impact statementThis study identifies large indel polymorphisms in the malaria parasite transmission-stage gene PIMMS43, reflecting substantial structural variation previously overlooked by genome-wide SNP-focused analyses. Using long- and short-read genomic data across diverse samples followed by targeted genotyping, we show that deletion variants are frequent and geographically structured, with initial evidence consistent with potential vector-specific selection. This highlights the importance of incorporating structural variation into population genomic surveillance and studies of parasite adaptation.

genomics↗

Off-target depletion of plasma tryptophan by allosteric inhibitors of BCKDK

The activation of branched chain amino acid (BCAA) catabolism has garnered interest as a potential therapeutic approach to improve insulin sensitivity, enhance recovery from heart failure, and blunt tumor growth. Evidence for this interest relies in part on BT2, a small molecule that promotes BCAA oxidation and is protective in mouse models of these pathologies. BT2 and other analogs allosterically inhibit branched chain ketoacid dehydrogenase kinase (BCKDK) to promote BCAA oxidation, which is presumed to underlie the salutary effects of BT2. Potential "off-target" effects of BT2 have not been considered, however. We therefore tested for metabolic off-target effects of BT2 in Bckdk-/- animals. As expected, BT2 failed to activate BCAA oxidation in these animals. Surprisingly, however, BT2 strongly reduced plasma tryptophan levels and promoted catabolism of tryptophan to kynurenine in both control and Bckdk-/- mice. Mechanistic studies revealed that none of the principal tryptophan catabolic or kynurenine-producing/consuming enzymes (TDO, IDO1, IDO2, or KATs) were required for BT2-mediated lowering of plasma tryptophan. Instead, using equilibrium dialysis assays and mice lacking albumin, we show that BT2 avidly binds plasma albumin and displaces tryptophan, releasing it for catabolism. These data confirm that BT2 activates BCAA oxidation via inhibition of BCKDK but also reveal a robust off-target effect on tryptophan metabolism via displacement from serum albumin. The data highlight a potential confounding effect for pharmaceutical compounds that compete for binding with albumin-bound tryptophan.

pharmacology and toxicology↗

Investigating the Synergistic Role of GCN2 and HPA Axis in Regulating Integrated Stress Response in the Central Circadian Timing System

The circadian timing and integrated stress response (ISR) systems are fundamental regulatory mechanisms that maintain body homeostasis. The central circadian pacemaker in the suprachiasmatic nucleus (SCN) governs daily rhythms through interactions with peripheral oscillators via the hypothalamus-pituitary-adrenal (HPA) axis. On the other hand, ISR signaling is pivotal for preserving cellular homeostasis in response to physiological changes. Notably, disrupted circadian rhythms are observed in cases of impaired ISR signaling. In this work, we examine the potential interplay between the central circadian system and the ISR, mainly through the SCN and HPA axis. We introduce a semi-mechanistic mathematical model to delineate the suprachiasmatic nucleus (SCN)s capacity for indirectly perceiving physiological stress through glucocorticoid-mediated feedback from the HPA axis, and orchestrating a cellular response via the ISR mechanism. Key components of our investigation include evaluating general control nonderepressible 2 (GCN2) expression in the SCN, the effect of physiological stress stimuli on the HPA axis, and the interconnected feedback between the HPA and SCN. Simulation reveals a critical role for GCN2 in linking ISR with circadian rhythms. Notably, a Gcn2 deletion in mice led to swift re-entrainment of the circadian clock post simulated-jetlag. This is attributed to the diminished robustness of neuronal oscillators and an extended circadian period. Our model also offers insights into phase shifts induced by acute physiological stress and the alignment/misalignment of physiological stress with external light-dark cues. Such understanding aids in strategizing responses to stressful events, such as nutritional status changes and jetlag.

systems biology↗

GCN2 eIF2 kinase promotes prostate cancer by maintaining amino acid homeostasis

A stress adaptation pathway termed the integrated stress response has been suggested to be active in many cancers including prostate cancer (PCa). Here, we demonstrate that the eIF2 kinase GCN2 is required for sustained growth in androgen-sensitive and castration-resistant models of PCa both in vitro and in vivo, and is active in PCa patient samples. Using RNA-seq transcriptome analysis and a CRISPR-based phenotypic screen, GCN2 was shown to regulate expression of over 60 solute-carrier (SLC) genes, including those involved in amino acid transport and loss of GCN2 function reduces amino acid import and levels. Addition of essential amino acids or expression of 4F2 (SLC3A2) partially restored growth following loss of GCN2, suggesting that GCN2 targeting of SLC transporters is required for amino acid homeostasis needed to sustain tumor growth. A small molecule inhibitor of GCN2 showed robust in vivo efficacy in androgen-sensitive and castration-resistant mouse models of PCa, supporting its therapeutic potential for the treatment of PCa. SignificanceThe ISR kinase GCN2 is critical for maintaining tumor amino acid levels to facilitate growth, suggesting a novel therapeutic strategy for the treatment of prostate cancer by inducing starvation for essential amino acids.

cancer biology↗