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Human embryonic stem cell models of Huntington disease
Jonathan C Niclis1, Alan O Trounson, Mirella Dottori
1Monash Immunology and Stem Cell Laboratories, Monash University, Victoria, Australia. david.cram@med.monash.edu.au
Insights
Researchers developed new human embryonic stem cell (hESC) models for Huntington disease (HD). These models show disease-specific characteristics and CAG repeat instability, offering potential for studying neurodegeneration and testing new therapies.
Area of Science:
- Neuroscience
- Genetics
- Stem Cell Biology
Background:
- Huntington disease (HD) is a fatal neurodegenerative disorder linked to CAG repeat expansion in the HTT gene.
- Current in-vitro models for HD are limited, hindering research into disease mechanisms and therapeutic development.
Purpose of the Study:
- To establish and characterize human embryonic stem cell (hESC) lines modeling Huntington disease (HD).
- To assess the potential of these HD hESC lines as in-vitro tools for understanding neurodegeneration and for drug screening.
Main Methods:
- Derivation of hESC lines from embryos with confirmed Huntington disease (HD) genotypes (CAG(37) and CAG(51)) using preimplantation genetic diagnosis (PGD).
- Confirmation of HD genotypes via fluorescence polymerase chain reaction (F-PCR) and Genescan analysis.
- Analysis of mutant transcript and protein expression using RT-PCR and Western blotting.
- Induction of neural differentiation into neurospheres and subsequently neurons and astrocytes using noggin.
- Assessment of CAG repeat instability in differentiated cells using small pool PCR.
Main Results:
- Successfully derived and confirmed two HD hESC lines with partial and full penetrant mutant alleles.
- Demonstrated expression of mutant huntingtin transcripts and proteins in the HD hESC lines.
- Induced neural differentiation into neurospheres, neurons, and astrocytes.
- Observed instability of expanded CAG repeats during neural differentiation in vitro.
- Confirmed the presence of active HTT genes and neural differentiation potential.
Conclusions:
- The developed HD hESC lines provide a valuable human in-vitro model for studying Huntington disease.
- These models exhibit key disease features, including CAG repeat instability, making them suitable for investigating neurodegeneration mechanisms.
- The HD hESC lines offer a platform for screening potential therapeutic compounds for Huntington disease clinical trials.
Abstract:
Huntington disease (HD) is an incurable late-onset neurodegenerative disorder caused by a CAG repeat expansion in exon 1 of the HD gene (HTT). The major hallmark of disease pathology is neurodegeneration in the brain. Currently, there are no useful in-vitro human models of HD. Recently, two human embryonic stem cell (hESC) lines carrying partial (CAG(37)) and fully (CAG(51)) penetrant mutant alleles have been derived from affected IVF embryos identified following preimplantation genetic diagnosis (PGD). Fluorescence polymerase chain reaction (F-PCR) and Genescan analysis confirmed the original embryonic HD genotypes. Reverse transcription PCR (RT-PCR) analysis confirmed the expression of mutant transcripts and western blot analysis demonstrated expression of mutant huntingtin protein (HTT). After treatment with noggin, HD hESC formed neurospheres, which could be further differentiated into cells susceptible to neurodegeneration in HD, namely primary neurones and astrocytes. Small pool PCR analysis of neurosphere cells revealed instability of disease-length CAG repeats following differentiation. The presence of active HTT genes, neural differentiation capabilities and evidence of CAG repeat instability indicates these HD hESC lines may serve as valuable in-vitro human models of HD to better understand the mechanisms of neurodegeneration in patients, and for drug screening to identify new therapies for human clinical trials.
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