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Spiesberger, G.

Publications and source records attributed to Spiesberger, G..

2 recordsLinked to original sources

Haptoglobin and glutamine synthetase may biomark cachexia induced by anti-acute myeloid leukemia chemotherapy

BackgroundAnti-cancer chemotherapy is an underappreciated contributor to cancer cachexia, an often irreversible body-wasting condition that causes 20-30% of cancer-related deaths. An obstacle to predicting, monitoring and understanding the mechanisms underlying chemotherapy cachexia is that each cancer (and sub-type) is assigned different chemotherapeutic compounds, typically in multi-agent regimens. Here, we investigate the chemotherapy induction regimen (CIR) used in the haematological cancer, acute myeloid leukemia (AML). We hypothesized that the AML CIR would induce cachexia, including loss of lean tissue mass and skeletal muscle atrophy. MethodsUsing an unbiased proteomics approach we interrogated the underlying molecular mechanisms. 3-month-old male Balb/c mice were treated with the AML CIR via intraperitoneal injections of daunorubicin (1.7 mg/kg) on days 1-3, and cytarabine (33.2 mg/kg) administered on days 1-7 or vehicle. Mice were assessed 24 hours after the last treatment, on day 8, or allowed to recover for 2 weeks and assessed on day 22. A third cohort was given access to running wheels in cages. We assessed body composition, whole body metabolism and assessed the muscle proteome using quantitative tandem mass tag labelling LC-MS/MS analysis. ResultsThe AML CIR-induced acute cachexia involved a [~]10% loss of body mass, [~]10% loss of lean mass and [~]20% reduction in skeletal muscle fibre size. Whole body metabolism and ambulatory activity declined. This cachexic phenotype did not recover over the 2-week post-CIR period (lean mass loss post-CIR: 1 week [~]7% vs 2 weeks [~]9%). In voluntarily active CIR-treated mice, body wasting was exacerbated due to unchecked loss of fat mass (CIR sedentary: [~]31% vs CIR active: [~]51%). Muscle proteome studies revealed upregulation of haptoglobin (Hp) and glutamine synthetase (Glul), which were positively correlated with body and lean mass loss. Hp was sensitive to the conditional induction, recovery and exacerbation of AML CIR-mediated cachexia, suggestive of biomarker potential. ConclusionsThe AML CIR induces an acute reduction of body, lean and fat mass underpinned by skeletal muscle atrophy, hypermetabolism and catabolism. Our data uncovered a conditionally sensitive muscle biomarker in Hp, which may be useful as a prognostic tool across other scenarios of chemotherapy-induced myopathy and cachexia or as a target for therapeutic discovery in follow-up studies.

physiology↗

Moderate-term dimethyl fumarate treatment reduces pathology of dystrophic skeletal and cardiac muscle in a mouse model

In Duchenne muscular dystrophy (DMD), corticosteroids significantly slow disease progression and have been used as a standard of care tool for more than 30 years. However, corticosteroids also impart side effects severe enough to preclude use in some patients. There remains an unmet need for new therapeutics that target the flow-on pathogenic mechanisms of DMD with a more favourable side-effect profile. We have previously demonstrated that short-term treatment with dual-purpose anti-inflammatory, anti-oxidative dimethyl fumarate (DMF), a drug with indication and established safety data in Multiple Sclerosis, more selectively modulates Duchenne (mdx) immunology than the frequently used corticosteroid, prednisone (PRED). Here, we assess the effect of moderate-term DMF treatment over 5 weeks in the typically mild mdx mouse model that we aggravated using exercise. We show that like PRED, DMF maintains anti-inflammatory action but with additional anti-fibrotic and anti-lipogenic effects on muscle with moderate-term use. This study supports our previous work highlighting DMF as a possible repurposing candidate for DMD, especially for patients who cannot tolerate chronic corticosteroid treatment.

pathology↗