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Huntington's disease mouse models: unraveling the pathology caused by CAG repeat expansion
Julia Kaye1, Terry Reisine2, Steve Finkbeiner1,3,4
1Center for Systems and Therapeutics, Gladstone Institutes, San Francisco, CA, USA.
Insights
Mouse models are crucial for understanding Huntington's disease (HD) pathogenesis and testing therapies. Different models, like R6/2, BACHD, and knock-in (KI) mice, offer unique insights into this neurodegenerative disorder.
Area of Science:
- Neuroscience
- Genetics
- Animal Models
Background:
- Huntington's disease (HD) is a fatal neurodegenerative disorder characterized by motor and cognitive decline.
- HD pathogenesis is linked to expanded CAG repeat sequences in the huntingtin gene (HTT).
- Mouse models are essential tools for studying HD mechanisms and evaluating therapeutic strategies.
Purpose of the Study:
- To review existing mouse models of Huntington's disease.
- To discuss their utility in understanding disease mechanisms.
- To highlight their role in preclinical therapeutic testing.
Main Methods:
- Review of established Huntington's disease mouse models, including R6/2, BAC transgenic (BACHD), and knock-in (KI) models.
- Analysis of the genetic modifications and resulting phenotypes in each model.
- Comparison of model fidelity to human HD pathology and behavioral deficits.
Main Results:
- The R6/2 model exhibits rapid, robust behavioral and degenerative phenotypes.
- The BACHD model allows for studying the role of mutant huntingtin (mHTT) in specific neuronal populations.
- The KI model demonstrates pathology and behavioral deficits that closely mimic human HD.
Conclusions:
- Various mouse models offer distinct advantages for studying Huntington's disease.
- Knock-in models may provide a more accurate representation of human HD compared to other models.
- Advancements in mouse model design will continue to drive therapeutic development for HD.
Abstract:
Huntington's disease (HD) is a neurodegenerative disease that results in motor and cognitive dysfunction, leading to early death. HD is caused by an expansion of CAG repeats in the huntingtin gene (HTT). Here, we review the mouse models of HD. They have been used extensively to better understand the molecular and cellular basis of disease pathogenesis as well as to provide non-human subjects to test the efficacy of potential therapeutics. The first and best-studied in vivo rodent model of HD is the R6/2 mouse, in which a transgene containing the promoter and exon 1 fragment of human HTT with 150 CAG repeats was inserted into the mouse genome. R6/2 mice express rapid, robust behavioral pathologies and display a number of degenerative abnormalities in neuronal populations most vulnerable in HD. The first conditional full-length mutant huntingtin (mHTT) mouse model of HD was the bacterial artificial chromosome (BAC) transgenic mouse model of HD (BACHD), which expresses human full-length mHTT with a mixture of 97 CAG-CAA repeats under the control of endogenous HTT regulatory machinery. It has been useful in identifying the role of mHTT in specific neuronal populations in degenerative processes. In the knock-in (KI) model of HD, the expanded human CAG repeats and human exon 1 are inserted into the mouse Htt locus, so a chimera of the full-length mouse protein with the N-terminal human portion is expressed. Many of aspects of the pathology and behavioral deficits in the KI model better mimic disease characteristics found in HD patients than other models. Accordingly, some have proposed that these mice may be preferable models of the disease over others. Indeed, as our understanding of HD advances, so will the design of animal models to test and develop HD therapies.
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