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Updated: Jun 26, 2026

Technique of Minimally Invasive Transverse Aortic Constriction in Mice for Induction of Left Ventricular Hypertrophy
Published on: September 25, 2017
Regression of pressure-induced left ventricular hypertrophy is characterized by a distinct gene expression profile
William E Stansfield1, Peter C Charles, Ru-hang Tang
1Department of Surgery, University of North Carolina at Chapel Hill, Chapel Hill, NC, USA.
Insights
Left ventricular hypertrophy (LVH) regression has a unique genomic profile distinct from its development. Understanding these genetic differences offers new therapeutic targets for promoting LVH reversal.
Area of Science:
- Cardiovascular Biology
- Genomics
- Molecular Medicine
Background:
- Left ventricular hypertrophy (LVH) is a significant predictor of cardiovascular events.
- Current strategies focus on halting LVH progression, with limited clinical success.
- Investigating LVH regression mechanisms may offer novel therapeutic avenues.
Purpose of the Study:
- To investigate the distinct genomic profile associated with left ventricular hypertrophy regression.
- To establish a mouse model for studying LVH progression and regression.
Main Methods:
- Transverse aortic arch banding and debanding in male C57Bl6 mice to induce and reverse LVH.
- Physiological (echocardiography), structural (histology), and molecular (gene expression) assessments.
- Whole-genome microarray analysis of left ventricular tissue.
Main Results:
- LVH was successfully induced and reversed within weeks in the mouse model.
- Genomic analysis revealed distinct gene expression profiles for LVH progression and regression, with only 23 shared genes.
- Regression was associated with altered signaling pathways, energy metabolism, and protein production, unlike progression.
Conclusions:
- LVH regression is genomically distinct from its development.
- The identified genomic profiles provide insights into LVH regression mechanisms.
- This research opens possibilities for therapeutic strategies aimed at promoting LVH regression.
Objective:
Left ventricular hypertrophy is a highly prevalent and robust predictor of cardiovascular morbidity and mortality. Existing studies have finely detailed mechanisms involved with its development, yet clinical translation of these findings remains unsatisfactory. We propose an alternative strategy focusing on mechanisms of left ventricular hypertrophy regression rather than its progression and hypothesize that left ventricular hypertrophy regression is associated with a distinct genomic profile.
Methods:
Minimally invasive transverse arch banding and debanding (or their respective sham procedures) were performed in C57Bl6 male mice. Left ventricular hypertrophy was assessed physiologically by means of transthoracic echocardiographic analysis, structurally by means of histology, and molecularly by means of real-time polymerase chain reaction. Mouse hearts were genomically analyzed with Agilent (Santa Clara, Calif) mouse 44k developmental gene chips.
Results:
Compared with control animals, animals banded for 28 days had a robust hypertrophic response, as determined by means of heart weight/body weight ratio, histologic analysis, echocardiographic analysis, and fetal gene expression. These parameters were reversed within 1 week of debanding. Whole-genome arrays on left ventricular tissue revealed 288 genes differentially expressed during progression, 265 genes differentially expressed with regression, and only 23 genes shared by both processes. Signaling-related expression patterns were more prevalent with regression rather than the structure-related patterns associated with left ventricular hypertrophy progression. In addition, regressed hearts showed comparatively more changes in energy metabolism and protein production.
Conclusions:
This study demonstrates an effective model for characterizing left ventricular hypertrophy and reveals that regression is genomically distinct from its development. Further examination of these expression profiles will broaden our understanding of left ventricular hypertrophy and provide a novel therapeutic paradigm focused on promoting regression of left ventricular hypertrophy and not just halting its progression.
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