Key result
Progressive right ventricular pacing to induce heart failure in rabbits resulted in 33 differentially expressed proteins in pulmonary tissue compared to untreated controls.
Why the study?
Does experimental heart failure induce alterations in the lung proteome in a rabbit model?
Does experimental heart failure induce alterations in the lung proteome in a rabbit model?
Experimental heart failure profoundly alters the pulmonary proteome, providing insight into the molecular mechanisms of pulmonary stress failure.
Rabbit HF model alters lung proteome; hypothesis-generating and leaves open human translation.
BACKGROUND: Heart failure (CHF) is characterized by dyspnea and pulmonary changes. The underlying molecular adaptations are unclear, but might provide targets for therapeutic interventions. We therefore conceived a study to determine molecular changes of early pulmonary stress failure in a model of tachycardia-induced heart failure. METHODS: CHF was induced in rabbits by progessive right ventricular pacing (n=6). Invasive blood pressure measurements and echocardiography were repeatedly performed. Untreated animals served as controls (n=6). Pulmonary tissue specimens were subjected to two-dimensional gel electrophoresis, and differentially expressed proteins were identified by mass spectrometry. Selected proteins were validated by Western Blot analysis and localized by immunohistochemical staining. RESULTS: CHF animals were characterized by significantly altered functional, morphological, and hemodynamic parameters. Upon proteomic profiling, a total of 33 proteins was found to be differentially expressed in pulmonary tissue of CHF animals (18 up-regulated, and 15 down-regulated) belonging to 4 functional groups: 1. proteins involved in maintaining cytoarchitectural integrity, 2. plasma proteins indicating impaired alveolar-capillary permeability, 3. proteins with antioxidative properties, and 4. proteins participating in the metabolism of selenium compounds CONCLUSION: Experimental heart failure profoundly alters the pulmonary proteome. Our results supplement the current knowledge of pulmonary stress failure by specifying its molecular fundament.
No takes yet. Share an insight, caveat, or question.
Birner et al. (2014) studied Heart failure (n=12). Progressive right ventricular pacing vs. Untreated controls was evaluated on Differentially expressed proteins in pulmonary tissue. Progressive right ventricular pacing to induce heart failure in rabbits resulted in 33 differentially expressed proteins in pulmonary tissue compared to untreated controls.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: