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Desmin modifications associate with amyloid-like oligomers deposition in heart failure
Giulio Agnetti1, Victoria L Halperin, Jonathan A Kirk
1Department of Medicine, Division of Cardiology, Johns Hopkins University, Baltimore, MD 21224, USA.
Aims:
The ultimate cause of heart failure (HF) is not known to date. The cytoskeletal protein desmin is differentially modified and forms amyloid-like oligomers in HF. We postulated that desmin post-translational modifications (PTMs) could drive aberrant desmin aggregation in HF. Therefore, we identified these PTMs and investigated their impact on desmin amyloidogenicity in human and experimental HF.
Methods And Results:
We detected increased levels of selectively phosphorylated and cleaved desmin in a canine pacing model of dyssynchronous HF (DHF) compared with either controls or animals treated with cardiac resynchronization therapy (CRT). This unique animal model combines clinically relevant features with the possibility of a partly rescued phenotype. We confirmed analogous changes in desmin modifications in human HF and identified two phosphorylation sites within a glycogen synthase kinase 3 (GSK3) consensus sequence. Desmin-positive oligomers were also increased in DHF hearts compared with controls. Their amyloid properties were decreased by treatment with CRT or an anti-amyloid small molecule. Finally, we confirmed GSK3's involvement with desmin phosphorylation using an in vitro model.
Conclusions:
Based on these findings, we postulate a new mechanism of cardiac toxicity based on the PTM-driven accumulation of desmin amyloid-like oligomers. Phosphorylation and cleavage as well as oligomers formation are reduced by treatment (CRT) indicating a relationship between the three. Finally, the decrease of desmin amyloid-like oligomers with CRT or small molecules points both to a general mechanism of HF based on desmin toxicity that is independent of protein mutations and to novel potential therapies.
Insights
Post-translational modifications (PTMs) of desmin, a cytoskeletal protein, drive its aggregation into toxic amyloid-like oligomers in heart failure (HF). Therapies like cardiac resynchronization (CRT) reduce these toxic desmin oligomers, suggesting a new HF mechanism.
Area of Science:
- Cardiovascular Biology
- Protein Biochemistry
- Molecular Medicine
Background:
- The precise cause of heart failure (HF) remains elusive.
- The cytoskeletal protein desmin undergoes abnormal modifications and forms amyloid-like oligomers in HF.
- Post-translational modifications (PTMs) are hypothesized to drive desmin aggregation in HF.
Purpose of the Study:
- To identify PTMs of desmin in HF.
- To investigate the impact of these PTMs on desmin's amyloidogenicity.
- To explore potential therapeutic strategies targeting desmin aggregation.
Main Methods:
- Utilized a canine pacing model of dyssynchronous heart failure (DHF).
- Analyzed desmin phosphorylation and cleavage in canine and human HF samples.
- Employed in vitro models to confirm glycogen synthase kinase 3 (GSK3) involvement.
- Assessed the effect of cardiac resynchronization therapy (CRT) and anti-amyloid small molecules.
Main Results:
- Increased levels of phosphorylated and cleaved desmin were detected in DHF models and human HF.
- Two specific GSK3 phosphorylation sites on desmin were identified.
- Desmin-positive oligomers, with reduced amyloid properties, increased in DHF hearts.
- CRT and small molecule treatment decreased desmin oligomerization and amyloidogenicity.
Conclusions:
- A novel mechanism of cardiac toxicity involving PTM-driven desmin amyloid-like oligomer accumulation is proposed.
- Desmin phosphorylation, cleavage, and oligomerization are linked and reduced by CRT.
- Targeting desmin toxicity offers a potential therapeutic avenue for HF, independent of genetic mutations.
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