2003Unpublished venueRequires access

Impaired autonomic vascular control: a non linear dynamic analysis

Giampiero Merati, Marco Di Rienzo, A. Veicsteinas, Paolo Castiglioni

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Abstract

The specific role of autonomic vascular control in determining non-linear behaviour of RR intervals is not clear. In 10 T/sub 12/-L/sub 4/ paraplegic subjects (light vascular autonomic impairment), 12 T/sub 5/-T/sub 11/ paraplegic subjects (moderate vascular autonomic impairment), and 24 controls RR time series were recorded (10 min): 1) in resting supine position; 2) sitting on the wheelchair and 3) during a light (5 W) arm exercise. Fractal dimension (FD), approximate entropy (ApEn) and the /spl alpha/ scaling exponent (/spl alpha/-DFA, detrended fluctuation analysis) were calculated. The lesional level significantly affected ApEn (p = 0.004), FD (p = 0.007) and /spl alpha/-DFA (p = 0.002). Autonomic activation did not influence FD and /spl alpha/-DFA, but significantly affected ApEn (p = 0.035). It seems that FD and /spl alpha/-DFA are influenced by the changes in non-linear RR dynamics due to vascular autonomic impairment but not to autonomic activation, whereas ApEn may be equally responsive to either condition.

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What this paper is about

The specific role of autonomic vascular control in determining non-linear behaviour of RR intervals is not clear. In 10 T/sub 12/-L/sub 4/ paraplegic subjects (light vascular autonomic impairment), 12 T/sub 5/-T/sub 11/ paraplegic subjects (moderate vascular autonomic impairment), and 24 controls RR time series were recorded (10 min): 1) in resting supine position; 2) sitting on the wheelchair and 3) during a light (5 W) arm exercise. Fractal dimension (FD), approximate entropy (ApEn) and the /spl alpha/ scaling exponent (/spl alpha/-DFA, detrended fluctuation analysis) were calculated. The lesional level significantly affected ApEn (p = 0.004), FD (p = 0.007) and /spl alpha/-DFA (p = 0.002). Autonomic activation did not influence FD and /spl alpha/-DFA, but significantly affected ApEn (p = 0.035). It seems that FD and /spl alpha/-DFA are influenced by the changes in non-linear RR dynamics due to vascular autonomic impairment but not to autonomic activation, whereas ApEn may be equally responsive to either condition.

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Available abstract

The specific role of autonomic vascular control in determining non-linear behaviour of RR intervals is not clear. In 10 T/sub 12/-L/sub 4/ paraplegic subjects (light vascular autonomic impairment), 12 T/sub 5/-T/sub 11/ paraplegic subjects (moderate vascular autonomic impairment), and 24 controls RR time series were recorded (10 min): 1) in resting supine position; 2) sitting on the wheelchair and 3) during a light (5 W) arm exercise. Fractal dimension (FD), approximate entropy (ApEn) and the /spl alpha/ scaling exponent (/spl alpha/-DFA, detrended fluctuation analysis) were calculated. The lesional level significantly affected ApEn (p = 0.004), FD (p = 0.007) and /spl alpha/-DFA (p = 0.002). Autonomic activation did not influence FD and /spl alpha/-DFA, but significantly affected ApEn (p = 0.035). It seems that FD and /spl alpha/-DFA are influenced by the changes in non-linear RR dynamics due to vascular autonomic impairment but not to autonomic activation, whereas ApEn may be equally responsive to either condition.

Key concepts: Approximate entropy, Detrended fluctuation analysis, Supine position, Pure autonomic failure, Autonomic nervous system, Cardiology, Medicine, Sample entropy

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