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Addinsall, A. B.

Publications and source records attributed to Addinsall, A. B..

3 recordsLinked to original sources

Mechanism and cellular actions of the potent AMPK inhibitor BAY-3827

Inhibition of AMP-activated protein kinase (AMPK) is under increasing investigation for its therapeutic potential in many diseases, including certain cancers. However, existing AMPK- inhibitors available as tool compounds are largely limited to compound C/dorsomorphin and SBI-0206965, both of which suffer from poor selectivity and off-target effects. Here we describe the structure-based molecular insights and cellular actions of a recently identified potent AMPK inhibitor, BAY-3827. Kinase selectivity profiling and sequence analyses of kinases that are highly or weakly inhibited by BAY-3827 uncovered key conserved residues involved in its inhibitory mechanism. A 2.5 [A] co-crystal structure of the AMPK kinase domain (KD)-BAY-3827 complex and comparison with known KD-inhibitor structures, revealed an overlapping site in the ATP-binding pocket and an C helix-out conformation. A distinct feature of the BAY-3827-bound state is the formation of a disulfide bridge between the D helix Cys106 and the activation loop residue Cys174. This bridge appears to stabilize the activation loop such that Asn162 repositions the DFG motif Phe158 toward the C-terminal kinase lobe, displacing His137 and disrupting the regulatory spine, thereby promoting an inactive state. In hepatocytes, 2.5-5 M BAY-3827, but not the structurally resembling inactive BAY-974, fully blocked AMPK activator (MK-8722)-mediated phosphorylation of ACC1 and corresponding inhibition of lipogenesis. Unbiased transcriptome analysis in MK- 8722-treated wild-type and AMPK-null hepatocytes revealed that 5 M BAY-3827 downregulated >30% of MK-8722-stimulated AMPK-dependent genes. Based on its greater selectivity and potency substantiated by comprehensive structural and cellular investigations, BAY-3827 is a powerful tool to delineate AMPK functions. One-sentence summaryWe provide the mechanism of action of the potent and selective AMPK inhibitor BAY-3827, which blocks AMPK-dependent cellular functions.

biochemistry↗

In dystrophic mdx hindlimb muscles where fibrosis is limited versican haploinsufficiency transiently improves contractile function without decreasing inflammation

The provisional matrix protein versican is upregulated in Duchenne muscular dystrophy. Versican heightens inflammation in fibrotic diseases and is involved in myogenesis. In fibrotic diaphragm muscles from dystrophic mdx mice, versican reduction attenuated macrophage infiltration and improved contractile function. We investigated the association between versican and mdx hindlimb muscle pathology, where inflammation and regeneration are increased but fibrosis is minimal. Immunohistochemistry and qRT-PCR were used to assess how fiber type and glucocorticoids (-methylprednisolone) modulate versican expression. Female mdx and male versican haploinsufficient (hdf) mice were bred resulting in male mdx-hdf and mdx (control) pups. Versican expression, contractile function, and pathology were evaluated in fast extensor digitorum longus (EDL) and slow soleus muscles, excised under medetomidine-midazolam- fentanyl anesthesia. Versican immunoreactivity was highest in soleus muscles. Versican mRNA transcripts were reduced by -methylprednisolone in soleus, but not EDL, muscles. Versican expression was decreased in soleus muscles from 6-week-old mdx-hdf mice leading to increased force output and a modest reduction in fatiguability. These functional benefits were not accompanied by decreased inflammation; muscle architecture, regeneration markers, and fiber type also did not differ between genotypes. Improvements in soleus function were lost in adult (20-week-old) mdx-hdf mice with no significant effect of versican haploinsufficiency on macrophage infiltration and regeneration markers. Soleus muscles from juvenile mdx mice were most responsive to pharmacological or genetic approaches targeting versican; however, the benefits of versican reduction were limited due to low fibrosis. Pre-clinical matrix research in dystrophy should account for muscle phenotype and the interdependence between the fibrosis and inflammation. NEW & NOTEWORTHYThe proteoglycan versican is upregulated in muscular dystrophy. In fibrotic diaphragm muscles from mdx mice, versican reduction attenuated macrophage infiltration and improved performance. Here, in hindlimb muscles from 6- and 20-week-old mdx mice, where pathology is mild, versican reduction did not decrease inflammation and contractile function improvements were limited to juvenile mice. In dystrophic mdx muscles, the association between versican and inflammation is mediated by fibrosis, demonstrating interdependence between the immune system and extracellular matrix.

physiology↗

Electrical Stimulated Glut4 Signaling Attenuates Critical Illness-Associated Muscle Wasting

BackgroundCritical illness myopathy (CIM) is a debilitating condition characterized by the preferential loss of the motor protein myosin. CIM is a byproduct of critical care, attributed to impaired recovery, long-term complications, and mortality. CIM pathophysiology is complex, heterogeneous and remains incompletely understood, however loss of mechanical stimuli contributes to critical illness associated muscle atrophy and weakness. Passive mechanical loading (ML) and electrical stimulation (ES) therapies augment muscle mass and function. While having beneficial outcomes, the mechanistic underpinning of these therapies is less known. Therefore, here we aimed to assess the mechanism by which chronic supramaximal ES ameliorates CIM in a unique experimental rat model of critical care. MethodsRats were subjected to 8 days critical care conditions entailing deep sedation, controlled mechanical ventilation, and immobilization with and without direct soleus ES. Muscle size and function were assessed at the single cell level. RNAseq and Western blotting were employed to understand the mechanisms driving ES muscle outcomes in CIM. ResultsFollowing 8 days of controlled mechanical ventilation and immobilization, soleus muscle mass, Myosin:Actin ratio and single muscle fiber maximum force normalized to cross-sectional area (specific force) were reduced by 40-50% (p< 0.0001). ES significantly reduced the loss of soleus muscle fiber cross-sectional area (CSA) and Myosin:Actin ratio by approximately 30% (p< 0.05) yet failed to effect specific force. RNAseq pathway analysis revealed downregulation of insulin signaling in the soleus muscle following critical care and GLUT4 trafficking was reduced by 55% leading to an 85% reduction of muscle glycogen content (p< 0.01). ES promoted phosphofructokinase and insulin signaling pathways to control levels (p< 0.05), consistent with the maintenance of GLUT4 translocation and glycogen levels. AMPK, but not AKT, signaling pathway was stimulated following ES, where the downstream target TBC1D4 increased 3 logFC (p= 0.029) and AMPK-specific P-TBC1D4 levels were increased approximately 2-fold (p= 0.06). Reduction of muscle protein degradation rather than protein synthesis promoted soleus CSA, as ES reduced E3 ubiquitin proteins, Atrogin-1 (p= 0.006) and MuRF1 (p= 0.08) by approximately 50%, downstream of AMPK-FoxO3. ConclusionsES maintained GLUT4 translocation through increased AMPK-TBC1D4 signaling leading to improved muscle glucose homeostasis. Soleus CSA and myosin content was promoted through reduced protein degradation via AMPK-FoxO3 E3 ligases, Atrogin-1 and MuRF1. These results demonstrate chronic supramaximal ES reduces critical care associated muscle wasting, preserved glucose signaling and reduced muscle protein degradation in CIM.

physiology↗