Title :
LTI Models for 3-Iodothyronamine Time Dynamics: A Multiscale View
Author :
Orsi, Gianni ; Frascarelli, Sabina ; Zucchi, Riccardo ; Vozzi, Giovanni
Author_Institution :
Interdept. Res. Center E. Piaggio, Univ. of Pisa, Pisa, Italy
Abstract :
3-Iodothyronamine (Tι AM) is a novel relative of thyroid hormone that plays a role in critical body regulatory processes such as glucose metabolism, thermal regulation, and heart beating. This paper was aimed at characterizing time dynamics of T1AM and its catabolite 3-iodothyroacetic acid (TA1) in different biological scales with linear time-invariant models. Culture medium samples coming from culture of H9c2 murine cells and perfusion liquid samples from perfused rat heart were collected after the injection of a T1AM bolus. T1AM and TA1 concentrations in the samples were assayed with high-performance liquid chromatography coupled to tandem mass spectrometry. Kinetic constants relative to T1AM transport and conversion were estimated with weighted least-squares method. We found that these constants can be related with an allometric power law depending on mass, with a negative exponent of -0.27 ± 0.19, implying that the velocity of conversion and internalization of Ti AM decreases with increasing of system mass.
Keywords :
biochemistry; cardiology; cellular biophysics; chromatography; least squares approximations; mass spectroscopic chemical analysis; organic compounds; physiological models; 3-iodothyronamine time dynamics; H9c2 murine cell culture; Kinetic constants; LTI model; T1AM bolus; allometric power law; biological scales; catabolite 3-iodothyroacetic acid; high-performance liquid chromatography; linear time-invariant model; perfused rat heart; perfusion liquid sample; tandem mass spectrometry; thyroid hormone; weighted least-squares method; Biochemistry; Biological system modeling; Heart; Mathematical model; Uncertainty; 3-Iodothyronamine; Allometry; mathematical modeling; multiscale; uncertainty; Animals; Cell Line; Chromatography, High Pressure Liquid; Heart; Kinetics; Least-Squares Analysis; Linear Models; Male; Mice; Models, Biological; Myoblasts, Cardiac; Myocardium; Perfusion; Rats; Rats, Wistar; Tandem Mass Spectrometry; Thyronines;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2011.2163716