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Knockout mouse models of insulin signaling: Relevance past and future
Anne E Bunner1, P Charukeshi Chandrasekera1, Neal D Barnard1
1Anne E Bunner, P Charukeshi Chandrasekera, Neal D Barnard, Physicians Committee for Responsible Medicine, Washington, DC 20016, United States.
Abstract:
Insulin resistance is a hallmark of type 2 diabetes. In an effort to understand and treat this condition, researchers have used genetic manipulation of mice to uncover insulin signaling pathways and determine the effects of their perturbation. After decades of research, much has been learned, but the pathophysiology of insulin resistance in human diabetes remains controversial, and treating insulin resistance remains a challenge. This review will discuss limitations of mouse models lacking select insulin signaling molecule genes. In the most influential mouse models, glucose metabolism differs from that of humans at the cellular, organ, and whole-organism levels, and these differences limit the relevance and benefit of the mouse models both in terms of mechanistic investigations and therapeutic development. These differences are due partly to immutable differences in mouse and human biology, and partly to the failure of genetic modifications to produce an accurate model of human diabetes. Several factors often limit the mechanistic insights gained from experimental mice to the particular species and strain, including: developmental effects, unexpected metabolic adjustments, genetic background effects, and technical issues. We conclude that the limitations and weaknesses of genetically modified mouse models of insulin resistance underscore the need for redirection of research efforts toward methods that are more directly relevant to human physiology.
Insights
Genetically modified mouse models for insulin resistance research show significant differences in glucose metabolism compared to humans. These limitations necessitate exploring alternative research methods more relevant to human physiology.
Area of Science:
- Endocrinology and Metabolism
- Molecular Biology
- Genetics
Background:
- Insulin resistance is a key feature of type 2 diabetes, posing significant challenges for treatment.
- Mouse models are widely used to study insulin signaling pathways and their role in diabetes.
Purpose of the Study:
- To review the limitations of genetically modified mouse models in studying insulin resistance.
- To assess the relevance of these models for understanding human diabetes pathophysiology and therapeutic development.
Main Methods:
- Analysis of existing literature on genetically modified mouse models lacking specific insulin signaling genes.
- Comparison of glucose metabolism in mouse models versus human physiology at cellular, organ, and whole-organism levels.
Main Results:
- Significant differences exist in glucose metabolism between mouse models and humans.
- Genetic modifications in mice do not fully replicate human diabetes pathophysiology.
- Factors like developmental effects, metabolic adjustments, and genetic background limit mechanistic insights.
Conclusions:
- Genetically modified mouse models have inherent limitations in accurately reflecting human insulin resistance.
- These models' weaknesses highlight the need for research methods more directly applicable to human physiology.
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