Key result
Elite athletes engaged in high static and high dynamic exercise demonstrated a greater resting longitudinal contribution to left ventricular volume change, which correlated with increased mean wall thickness (r=0.4, p<0.0001).
Cross-Sectional (n=92)
Effect estimate: r = 0.4
p-value: p=<0.0001
Elite athletes engaging in high static and high dynamic sports exhibit distinct physiological adaptations, including a greater resting longitudinal contribution to LV volume change related to increased wall thickness, and a lower longitudinal contribution to RV area change.
Should not change athlete screening practice; leaves open prognostic implications of sport-specific LV remodeling.
We propose a novel ultrasound approach with the primary aim of establishing the temporal relationship of structure and function in athletes of varying sporting demographics. 92 male athletes were studied [Group IA, (low static-low dynamic) (n = 20); Group IC, (low static-high dynamic) (n = 25); Group IIIA, (high static-low dynamic) (n = 21); Group IIIC, (high static-high dynamic) (n = 26)]. Conventional echocardiography of both the left ventricles (LV) and right ventricles (RV) was undertaken. An assessment of simultaneous longitudinal strain and LV volume/RV area was provided. Data was presented as derived strain for % end diastolic volume/area. Athletes in group IC and IIIC had larger LV end diastolic volumes compared to athletes in groups IA and IIIA (50 ± 6 and 54 ± 8 ml/(m(2))(1.5) versus 42 ± 7 and 43 ± 2 ml/(m(2))(1.5) respectively). Group IIIC also had significantly larger mean wall thickness (MWT) compared to all groups. Athletes from group IIIC required greater longitudinal strain for any given % volume which correlated to MWT (r = 0.4, p < 0.0001). Findings were similar in the RV with the exception that group IIIC athletes required lower strain for any given % area. There are physiological differences between athletes with the largest LV and RV in athletes from group IIIC. These athletes also have greater resting longitudinal contribution to volume change in the LV which, in part, is related to an increased wall thickness. A lower longitudinal contribution to area change in the RV is also apparent in these athletes.
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Oxborough et al. (2016) conducted a cross-sectional in Healthy elite athletes (n=92). High static and high dynamic exercise training vs. Lower static and/or dynamic exercise training was evaluated on Correlation between left ventricular longitudinal strain for a given % volume and mean wall thickness (r = 0.4, p=<0.0001). Elite athletes engaged in high static and high dynamic exercise demonstrated a greater resting longitudinal contribution to left ventricular volume change, which correlated with increased mean wall thickness (r=0.4, p<0.0001).
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