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Isolation of Atrial Cardiomyocytes from a Rat Model of Metabolic Syndrome-related Heart Failure with Preserved Ejection Fraction
Published on: July 26, 2018
Cellular environment of TTR deposits in an animal model of ATTR-Cardiomyopathy
Cristina Teixeira1,2, Helena Sofia Martins1,2, Maria João Saraiva1,2
1i3S-Instituto de Investigação e Inovação em Saúde, University of Porto, Porto, Portugal.
Abstract:
Introduction: Cardiac amyloidoses are the most fatal manifestation of systemic amyloidoses. It is believed the number of cases to be greatly underestimated mostly due to misdiagnosis. Particularly, the involvement of TTR V30M in the heart of ATTRV30M amyloidosis has not been completely understood specifically in terms of implicated cellular pathways, heart function and cardiac physiology. In the present work we proposed to characterize TTR V30M cardiac involvement particularly at the tissue cellular level in a mouse model. Methods: HSF ± hTTR V30M mice, a model that expresses human TTRV30M in a Ttr null background, widely used for the characterization and modulation of neurological features of ATTRV30M amyloidosis was used. SDS-PAGE of cardiac homogenates followed by Western blot was performed. Immunohistochemistry and double immunofluorescence analyses were carried out to determine TTR deposition pattern and sub-localization. Results: Western blots were able to detect TTR in its monomeric state at ∼14 kDa. Immunofluorescent images showed TTR was found mostly in the intercellular spaces. Blood contamination was excluded by CD31 staining. Tissues were Congo Red negative. Upon TTR and macrophages (CD68) staining in the cardiac tissue a clear tendency of macrophage convergence to the tissue regions where TTR was more abundant was observed. Moreover, in some instances it was possible to detect co-localization of both fluorophores. Cardiac fibroblasts were stained with PDGFr-alpha, and here the co-localization was not so evident although there was some degree of co-occurrence. The hearts of transgenic mice revealed higher content of Galectin-3. Conclusion: This animal model and associated features observed as result of cardiac TTR deposition provide a promising and invaluable research tool for a better understanding of the implicated pathways that lead to the lethality associated to TTR cardiac amyloidosis. New therapeutic strategies can be tested and ultimately this will lead to improved treatment alternatives capable of increasing patient's quality of life and life expectancy and, hopefully to eradicate a condition that is silently spreading worldwide.
Insights
This study characterizes transthyretin V30M (TTR V30M) cardiac involvement in a mouse model, revealing TTR deposition and macrophage convergence. This research tool aids understanding of TTR cardiac amyloidosis pathways and treatments.
Area of Science:
- Cardiovascular Research
- Molecular Biology
- Genetics
Background:
- Cardiac amyloidoses, particularly transthyretin amyloidosis (ATTRV30M), are fatal but often misdiagnosed.
- The specific cellular mechanisms and physiological impact of TTR V30M in the heart remain incompletely understood.
- Accurate diagnosis and understanding of ATTRV30M cardiac involvement are crucial for patient outcomes.
Purpose of the Study:
- To characterize the cardiac tissue and cellular involvement of TTR V30M in a relevant mouse model.
- To investigate the cellular pathways and physiological changes associated with TTR V30M cardiac deposition.
- To establish a research tool for studying TTR cardiac amyloidosis.
Main Methods:
- Utilized HSF ± hTTR V30M mice expressing human TTRV30M.
- Employed Western blot for TTR detection and immunofluorescence for TTR sub-localization.
- Conducted co-staining for TTR, macrophages (CD68), cardiac fibroblasts (PDGFr-alpha), and Galectin-3.
Main Results:
- Detected monomeric TTR (∼14 kDa) primarily in intercellular spaces, excluding blood contamination.
- Observed macrophage convergence towards TTR-rich regions, with some co-localization.
- Found increased Galectin-3 content in the hearts of transgenic mice.
Conclusions:
- The developed mouse model effectively demonstrates cardiac TTR deposition and associated cellular responses.
- This model serves as a valuable tool for understanding TTR cardiac amyloidosis pathogenesis.
- Further research using this model can advance therapeutic strategies for ATTRV30M, improving patient prognosis.

