Skip to content
Open access

Long‐term imoxin treatment does not attenuate disease severity in dystrophic diaphragm of male mice

Sep 2026 · Physiological Reports · Vol 14 · 0 citations · 69 references
Medicine

TL;DR

Overall, the dose of IMX was insufficient to attenuate PKR activation and failed to improve muscle function or prevent pathology in dystrophic skeletal muscle.

Abstract

Duchenne muscular dystrophy (DMD) is characterized by chronic skeletal muscle injury and degeneration. We discovered activation of protein kinase R (PKR; EIF2AK2), a regulator of the integrated stress response, in dystrophic muscle; however, its role in DMD remains unknown. We hypothesized that the PKR inhibitor imoxin (IMX) would improve muscle force and attenuate fibrosis, inflammatory signaling, and ER stress in diaphragms from mdx mice. C57 and mdx mice were treated with vehicle or IMX for ~24 wks (0.5 mg/kg, subcutaneous, 5 times/wk). Specific force was decreased (p < 0.001), and dynamic passive force was increased (p = 0.001) by disease, but there were no IMX effects. Disease‐increased fibrotic area was decreased by IMX (p = 0.038); however, IMX failed to reduce fibronectin, collagen, or TGF‐β1 signaling proteins. PKR and phosphorylated (p)PKR (thr446) were increased in mdx (p < 0.001) and maintained despite IMX treatment. Similarly, PKR regulators (total PACT, pPACT (ser18), TRBP, and PP1α), and PKR substrates (total eIF2α and peIF2α (ser51)) were also increased with disease (p < 0.001), but unaffected by IMX. Likewise, IMX did not attenuate disease‐mediated elevations in inflammatory signaling and ER stress markers. Overall, the dose of IMX was insufficient to attenuate PKR activation and failed to improve muscle function or prevent pathology in dystrophic skeletal muscle.

Read PDF

Similar papers

Open access Sep 2026

Dystrophin Deficiency Creates a Pro-Ferroptotic Environment in Diaphragm of mdx Mice That Is Modified by Diet and Glucocorticoid Treatment

Findings indicate that dystrophic diaphragms experience ferroptotic stress that is actively constrained, likely by compensatory GPX4 changes, and partially offset disease-related changes in iron-handling and antioxidant proteins.

Morgan E. Vorwald, Melissa Roths, Rudy J. Valentine et al. · 0 citations
Open access 2026

Study of the effects of arabinogalactan on Muscular Dystrophy in the mdx mouse model

INTRODUCTION: Duchenne Muscular Dystrophy (DMD) is a genetic disorder characterized by dystrophin deficiency, leading to progressive muscle degeneration and increased oxidative stress. The mdx mouse model mimics this pathophysiology, presenting muscle weakness, necrosis, and elevated creatine kinase levels. Arabinogala...

Isabella Di Pietro Carneiro, Larissa Fonseca de França Machado, Isabella Conti de Assunção et al. · 0 citations
Open access Sep 2026

Positive allosteric modulator of SERCA pump NDC-1171 attenuates cardiac functional decline in mouse model of Duchenne muscular dystrophy.

Progressive cardiomyopathy is the leading cause of death in Duchenne muscular dystrophy (DMD). Dysregulation of calcium handling has been implicated in cardiomyopathy progression in DMD. Here we describe a therapeutic approach to improve calcium homeostasis in a mouse model of DMD using the novel therapeutic NDC-1171,...

Niharika Narra, Alyssa M. Richards, Conner C. Earl et al. · 0 citations
Open access Sep 2026

β-hydroxy-β-methylbutyrate improves fast-twitch muscle function, histopathology and mitochondrial respiration in the D2.mdx dystrophic mouse.

Duchenne muscular dystrophy (DMD) is a severe inherited muscle disorder caused by mutations that eliminate the protein, dystrophin, resulting in disrupted protein homeostasis, mitochondrial dysfunction, chronic inflammation and progressive muscle degeneration. The leucine metabolite, β-hydroxy-β-methylbutyrate (HMB), h...

Nicholas Giourmas, Hannah Lalunio, Memphis Calzoni et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.