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Exploring Structural Uncertainty and Impact of Health State Utility Values on Lifetime Outcomes in Diabetes Economic Simulation Models: Findings from the Ninth Mount Hood Diabetes Quality-of-Life Challenge

BACKGROUND: Structural uncertainty can affect model-based economic simulation estimates and study conclusions. Unfortunately, unlike parameter uncertainty, relatively little is known about its magnitude of impact on life-years (LYs) and quality-adjusted life-years (QALYs) in modeling of diabetes. We...

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Autores principales: Tew, Michelle, Willis, Michael, Asseburg, Christian, Bennett, Hayley, Brennan, Alan, Feenstra, Talitha, Gahn, James, Gray, Alastair, Heathcote, Laura, Herman, William H., Isaman, Deanna, Kuo, Shihchen, Lamotte, Mark, Leal, José, McEwan, Phil, Nilsson, Andreas, Palmer, Andrew J., Patel, Rishi, Pollard, Daniel, Ramos, Mafalda, Sailer, Fabian, Schramm, Wendelin, Shao, Hui, Shi, Lizheng, Si, Lei, Smolen, Harry J., Thomas, Chloe, Tran-Duy, An, Yang, Chunting, Ye, Wen, Yu, Xueting, Zhang, Ping, Clarke, Philip
Formato: Online Artículo Texto
Lenguaje:English
Publicado: SAGE Publications 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9329757/
https://www.ncbi.nlm.nih.gov/pubmed/34911405
http://dx.doi.org/10.1177/0272989X211065479
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author Tew, Michelle
Willis, Michael
Asseburg, Christian
Bennett, Hayley
Brennan, Alan
Feenstra, Talitha
Gahn, James
Gray, Alastair
Heathcote, Laura
Herman, William H.
Isaman, Deanna
Kuo, Shihchen
Lamotte, Mark
Leal, José
McEwan, Phil
Nilsson, Andreas
Palmer, Andrew J.
Patel, Rishi
Pollard, Daniel
Ramos, Mafalda
Sailer, Fabian
Schramm, Wendelin
Shao, Hui
Shi, Lizheng
Si, Lei
Smolen, Harry J.
Thomas, Chloe
Tran-Duy, An
Yang, Chunting
Ye, Wen
Yu, Xueting
Zhang, Ping
Clarke, Philip
author_facet Tew, Michelle
Willis, Michael
Asseburg, Christian
Bennett, Hayley
Brennan, Alan
Feenstra, Talitha
Gahn, James
Gray, Alastair
Heathcote, Laura
Herman, William H.
Isaman, Deanna
Kuo, Shihchen
Lamotte, Mark
Leal, José
McEwan, Phil
Nilsson, Andreas
Palmer, Andrew J.
Patel, Rishi
Pollard, Daniel
Ramos, Mafalda
Sailer, Fabian
Schramm, Wendelin
Shao, Hui
Shi, Lizheng
Si, Lei
Smolen, Harry J.
Thomas, Chloe
Tran-Duy, An
Yang, Chunting
Ye, Wen
Yu, Xueting
Zhang, Ping
Clarke, Philip
author_sort Tew, Michelle
collection PubMed
description BACKGROUND: Structural uncertainty can affect model-based economic simulation estimates and study conclusions. Unfortunately, unlike parameter uncertainty, relatively little is known about its magnitude of impact on life-years (LYs) and quality-adjusted life-years (QALYs) in modeling of diabetes. We leveraged the Mount Hood Diabetes Challenge Network, a biennial conference attended by international diabetes modeling groups, to assess structural uncertainty in simulating QALYs in type 2 diabetes simulation models. METHODS: Eleven type 2 diabetes simulation modeling groups participated in the 9th Mount Hood Diabetes Challenge. Modeling groups simulated 5 diabetes-related intervention profiles using predefined baseline characteristics and a standard utility value set for diabetes-related complications. LYs and QALYs were reported. Simulations were repeated using lower and upper limits of the 95% confidence intervals of utility inputs. Changes in LYs and QALYs from tested interventions were compared across models. Additional analyses were conducted postchallenge to investigate drivers of cross-model differences. RESULTS: Substantial cross-model variability in incremental LYs and QALYs was observed, particularly for HbA1c and body mass index (BMI) intervention profiles. For a 0.5%-point permanent HbA1c reduction, LY gains ranged from 0.050 to 0.750. For a 1-unit permanent BMI reduction, incremental QALYs varied from a small decrease in QALYs (−0.024) to an increase of 0.203. Changes in utility values of health states had a much smaller impact (to the hundredth of a decimal place) on incremental QALYs. Microsimulation models were found to generate a mean of 3.41 more LYs than cohort simulation models (P = 0.049). CONCLUSIONS: Variations in utility values contribute to a lesser extent than uncertainty captured as structural uncertainty. These findings reinforce the importance of assessing structural uncertainty thoroughly because the choice of model (or models) can influence study results, which can serve as evidence for resource allocation decisions. HIGHLIGHTS: The findings indicate substantial cross-model variability in QALY predictions for a standardized set of simulation scenarios and is considerably larger than within model variability to alternative health state utility values (e.g., lower and upper limits of the 95% confidence intervals of utility inputs). There is a need to understand and assess structural uncertainty, as the choice of model to inform resource allocation decisions can matter more than the choice of health state utility values.
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spelling pubmed-93297572022-07-29 Exploring Structural Uncertainty and Impact of Health State Utility Values on Lifetime Outcomes in Diabetes Economic Simulation Models: Findings from the Ninth Mount Hood Diabetes Quality-of-Life Challenge Tew, Michelle Willis, Michael Asseburg, Christian Bennett, Hayley Brennan, Alan Feenstra, Talitha Gahn, James Gray, Alastair Heathcote, Laura Herman, William H. Isaman, Deanna Kuo, Shihchen Lamotte, Mark Leal, José McEwan, Phil Nilsson, Andreas Palmer, Andrew J. Patel, Rishi Pollard, Daniel Ramos, Mafalda Sailer, Fabian Schramm, Wendelin Shao, Hui Shi, Lizheng Si, Lei Smolen, Harry J. Thomas, Chloe Tran-Duy, An Yang, Chunting Ye, Wen Yu, Xueting Zhang, Ping Clarke, Philip Med Decis Making Original Research Articles BACKGROUND: Structural uncertainty can affect model-based economic simulation estimates and study conclusions. Unfortunately, unlike parameter uncertainty, relatively little is known about its magnitude of impact on life-years (LYs) and quality-adjusted life-years (QALYs) in modeling of diabetes. We leveraged the Mount Hood Diabetes Challenge Network, a biennial conference attended by international diabetes modeling groups, to assess structural uncertainty in simulating QALYs in type 2 diabetes simulation models. METHODS: Eleven type 2 diabetes simulation modeling groups participated in the 9th Mount Hood Diabetes Challenge. Modeling groups simulated 5 diabetes-related intervention profiles using predefined baseline characteristics and a standard utility value set for diabetes-related complications. LYs and QALYs were reported. Simulations were repeated using lower and upper limits of the 95% confidence intervals of utility inputs. Changes in LYs and QALYs from tested interventions were compared across models. Additional analyses were conducted postchallenge to investigate drivers of cross-model differences. RESULTS: Substantial cross-model variability in incremental LYs and QALYs was observed, particularly for HbA1c and body mass index (BMI) intervention profiles. For a 0.5%-point permanent HbA1c reduction, LY gains ranged from 0.050 to 0.750. For a 1-unit permanent BMI reduction, incremental QALYs varied from a small decrease in QALYs (−0.024) to an increase of 0.203. Changes in utility values of health states had a much smaller impact (to the hundredth of a decimal place) on incremental QALYs. Microsimulation models were found to generate a mean of 3.41 more LYs than cohort simulation models (P = 0.049). CONCLUSIONS: Variations in utility values contribute to a lesser extent than uncertainty captured as structural uncertainty. These findings reinforce the importance of assessing structural uncertainty thoroughly because the choice of model (or models) can influence study results, which can serve as evidence for resource allocation decisions. HIGHLIGHTS: The findings indicate substantial cross-model variability in QALY predictions for a standardized set of simulation scenarios and is considerably larger than within model variability to alternative health state utility values (e.g., lower and upper limits of the 95% confidence intervals of utility inputs). There is a need to understand and assess structural uncertainty, as the choice of model to inform resource allocation decisions can matter more than the choice of health state utility values. SAGE Publications 2021-12-15 2022-07 /pmc/articles/PMC9329757/ /pubmed/34911405 http://dx.doi.org/10.1177/0272989X211065479 Text en © The Author(s) 2021 https://creativecommons.org/licenses/by-nc/4.0/This article is distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 License (https://creativecommons.org/licenses/by-nc/4.0/) which permits non-commercial use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access pages (https://us.sagepub.com/en-us/nam/open-access-at-sage).
spellingShingle Original Research Articles
Tew, Michelle
Willis, Michael
Asseburg, Christian
Bennett, Hayley
Brennan, Alan
Feenstra, Talitha
Gahn, James
Gray, Alastair
Heathcote, Laura
Herman, William H.
Isaman, Deanna
Kuo, Shihchen
Lamotte, Mark
Leal, José
McEwan, Phil
Nilsson, Andreas
Palmer, Andrew J.
Patel, Rishi
Pollard, Daniel
Ramos, Mafalda
Sailer, Fabian
Schramm, Wendelin
Shao, Hui
Shi, Lizheng
Si, Lei
Smolen, Harry J.
Thomas, Chloe
Tran-Duy, An
Yang, Chunting
Ye, Wen
Yu, Xueting
Zhang, Ping
Clarke, Philip
Exploring Structural Uncertainty and Impact of Health State Utility Values on Lifetime Outcomes in Diabetes Economic Simulation Models: Findings from the Ninth Mount Hood Diabetes Quality-of-Life Challenge
title Exploring Structural Uncertainty and Impact of Health State Utility Values on Lifetime Outcomes in Diabetes Economic Simulation Models: Findings from the Ninth Mount Hood Diabetes Quality-of-Life Challenge
title_full Exploring Structural Uncertainty and Impact of Health State Utility Values on Lifetime Outcomes in Diabetes Economic Simulation Models: Findings from the Ninth Mount Hood Diabetes Quality-of-Life Challenge
title_fullStr Exploring Structural Uncertainty and Impact of Health State Utility Values on Lifetime Outcomes in Diabetes Economic Simulation Models: Findings from the Ninth Mount Hood Diabetes Quality-of-Life Challenge
title_full_unstemmed Exploring Structural Uncertainty and Impact of Health State Utility Values on Lifetime Outcomes in Diabetes Economic Simulation Models: Findings from the Ninth Mount Hood Diabetes Quality-of-Life Challenge
title_short Exploring Structural Uncertainty and Impact of Health State Utility Values on Lifetime Outcomes in Diabetes Economic Simulation Models: Findings from the Ninth Mount Hood Diabetes Quality-of-Life Challenge
title_sort exploring structural uncertainty and impact of health state utility values on lifetime outcomes in diabetes economic simulation models: findings from the ninth mount hood diabetes quality-of-life challenge
topic Original Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9329757/
https://www.ncbi.nlm.nih.gov/pubmed/34911405
http://dx.doi.org/10.1177/0272989X211065479
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