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J Am Coll Cardiol, 2007; 49:811-821, doi:10.1016/j.jacc.2006.06.083 (Published online 6 February 2007).
© 2007 by the American College of Cardiology Foundation
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Left Ventricular Eccentric Remodeling and Matrix Loss Are Mediated by Bradykinin and Precede Cardiomyocyte Elongation in Rats With Volume Overload

Thomas D. Ryan, MD, PhD*, Emily C. Rothstein, PhD*, Inmaculada Aban, PhD{dagger}, Jose A. Tallaj, MD{ddagger},§, Ahsan Husain, PhD*,{ddagger}, Pamela A. Lucchesi, PhD* and Louis J. Dell'Italia, MD*,{ddagger},§,*

* Departments of Physiology and Biophysics
{dagger} Department of Biostatistics
{ddagger} Department of Medicine, Division of Cardiovascular Disease, University of Alabama at Birmingham, Birmingham, Alabama
§ Birmingham Veteran Affairs Medical Center, Birmingham, Alabama


Figure 1
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Figure 1 LV Remodeling in Age-Matched Sham and ACF Rats

Left ventricular (LV) remodeling in aortocaval fistula (ACF) (open circles) at 12 h; 2 and 5 days; and 4, 8, and 15 weeks compared with age-matched shams (closed circles). Left ventricular end-diastolic dimension (LVEDD) (A), LVEDD/wall thickness (B), isolated cardiomyocyte length (C), left ventricular end-diastolic (LVED) wall thickness (D), and LV wet weight (E). Alternating black and white boxes each represent one 24-h period. Data are presented as mean ± SEM, n values given in Tables 1 and 2 except: 4-week sham LVEDD, LVEDD/wall thickness, LVED wall thickness (n = 9); 4-week ACF echocardiographic parameters and LV wet weight (n = 9); 8-week sham echocardiographic parameters and LV wet weight (n = 8); 15-week sham LV wet weight (n = 12); and 15-week ACF LV wet weight (n = 9). *p < 0.008 (= 0.05/6) for sham versus ACF at each time of the 6 time points except for isolated cardiomyocyte length, where p < 0.01 (= 0.05/5) for each of the 5 time points. Analyses were based on ranks of all the variables in this figure.

 

Figure 2
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Figure 2 Representative Examples of LV Interstitial Collagen in Control and ACF Rats

Representative examples of LV interstitial collagen in control (CTL) (n = 8) (A) and ACF at 12 h (n = 5) (B), 2 days (n = 8) (C), and 5 days (n = 4) (D). Mean collagen volume percent in 2-day CTL vs. ACF at 12 h, 2 days, and 5 days, where *p < 0.0167 (= 0.05/3) using variance component analysis (E). Mean collagen fiber width at 5 days of ACF versus CTL (F) where *p < 0.05 using t test. Data are presented as mean ± SEM. Abbreviations as in Figure 1.

 

Figure 3
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Figure 3 Indexes of LV Systolic Function in Age-Matched Sham and ACF Rats

Left ventricular (LV) function in ACF (open circles) at 12 h; 2 and 5 days; and 4, 8, and 15 weeks compared with age-matched shams (closed circles). Left ventricular end-systolic (LVES) pressure (A), left ventricular end-systolic dimension (LVESD) (B), LV fractional shortening (FS) (C), LVES wall stress ({sigma}) (D), and LV velocity of circumferential shortening (VCFr) (E). Alternating black and white boxes each represent one 24-h period. Data are presented as mean ± SEM, n values given in Table 1 except: 4-week sham LVESD, LV fractional shortening, and LV VCFr (n = 9); 8-week sham LVESD, LV fractional shortening, and LV VCFr (n = 8). *p < 0.008 (= 0.05/6) sham versus ACF at each of the 6 time points. Analyses for left ventricular end-systolic pressure (LVESP), LVESD, and LVVCFr were based on their ranks, whereas analyses for LV fractional shortening and LVES {sigma} were based on their natural logarithms.

 

Figure 4
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Figure 4 Indexes of Diastolic LV Remodeling in Age-Matched Sham and ACF Rats

Indexes of diastolic LV remodeling in ACF (open circles) at 12 h; 2 and 5 days; and 4, 8, and 15 weeks compared with age-matched shams (closed circles). LVED pressure (A), LVED wall stress ({sigma}) (B), lung wet weight (C), and right ventricular (RV) wet weight (D). Alternating black and white boxes each represent one 24-h period. Data are presented as mean ± SEM, n values given in Table 1 except: 4-week sham LVED pressure and LVED {sigma} (n = 5); 4-week sham lung wet weight and RV wet weight (n = 8); 4-week ACF lung wet weight and RV wet weight (n = 9); 8-week sham lung wet weight and RV wet weight (n = 8); 15-week sham lung wet weight and RV wet weight (n = 12); and 15-week ACF lung wet weight and RV wet weight (n = 9). *p < 0.008 (= 0.05/6) sham versus ACF at each of the 6 time points. Analyses were based on ranks of all the variables in this figure. Abbreviations as in Figure 1.

 

Figure 5
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Figure 5 Indexes of Collagen Homeostasis in Hoe 140-Treated Sham and ACF Rats

Collagen volume percent (A), matrix metalloproteinase (MMP)-13 (B), tissue inhibitor of matrix metalloproteinase (TIMP)-1 (C), and TIMP-4 (D) levels at 2 days in sham (SHM) and ACF rats with and without Hoe 140 treatment. Data are presented as mean ± SEM, n values given in Table 3. *p < 0.008 (= 0.05/6) versus SHM; {dagger}p < 0.008 versus ACF. Collagen volume and MMP-13 were analyzed via variance component, whereas TIMP-1 and -4 were analyzed using a Kruskal-Wallis test. Abbreviations as in Figure 1.

 

Figure 6
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Figure 6 Volume Percent of Collagen in Ramipril-Treated Sham and ACF Rats

Collagen volume percent in 4-week sham (SHM) and aortocaval fistula (ACF), 4-week sham + ramipril, and 4-week ACF + ramipril. Data are presented as mean ± SEM, n values given in Table 5. *p < 0.008 (= 0.05/6) versus sham, {dagger}p < 0.008 versus ACF, {ddagger}p < 0.008 versus sham + ramipril. Variance components analysis was used.

 




 
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