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Analysis of intravenous glucose tolerance test data using parametric and nonparametric modeling: application to a population at risk for diabetes

Articolo
Data di Pubblicazione:
2013
Abstract:
Background: Modeling studies of the insulin-glucose relationship have mainly utilized parametric models, most notably the minimal model (MM) of glucose disappearance. This article presents results from the comparative analysis of the parametric MM and a nonparametric Laguerre based Volterra Model (LVM) applied to the analysis of insulin modified (IM) intravenous glucose tolerance test (IVGTT) data from a clinical study of gestational diabetes mellitus (GDM). Methods: An IM IVGTT study was performed 8 to 10 weeks postpartum in 125 women who were diagnosed with GDM during their pregnancy [population at risk of developing diabetes (PRD)] and in 39 control women with normal pregnancies (control subjects). The measured plasma glucose and insulin from the IM IVGTT in each group were analyzed via a population analysis approach to estimate the insulin sensitivity parameter of the parametric MM. In the nonparametric LVM analysis, the glucose and insulin data were used to calculate the first-order kernel, from which a diagnostic scalar index representing the integrated effect of insulin on glucose was derived. Results: Both the parametric MM and nonparametric LVM describe the glucose concentration data in each group with good fidelity, with an improved measured versus predicted r 2 value for the LVM of 0.99 versus 0.97 for the MM analysis in the PRD. However, application of the respective diagnostic indices of the two methods does result in a different classification of 20% of the individuals in the PRD. Conclusions: It was found that the data based nonparametric LVM revealed additional insights about the manner in which infused insulin affects blood glucose concentration.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
diabetes risk; intravenous glucose tolerance test; minimal model; nonparametric volterra model
Elenco autori:
Pacini, Giovanni
Link alla scheda completa:
https://iris.cnr.it/handle/20.500.14243/206281
Pubblicato in:
JOURNAL OF DIABETES SCIENCE AND TECHNOLOGY
Journal
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URL

http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3879759/
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