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Published on: October 6, 2017
WNT signalling control by KDM5C during development affects cognition
Violetta Karwacki-Neisius1, Ahram Jang2,3, Engin Cukuroglu4
1Division of Newborn Medicine and Epigenetics Program, Department of Pediatrics, Boston Children's Hospital, Harvard Medical School, Boston, MA, USA. violetta.karwacki-neisius@childrens.harvard.edu.
Abstract:
Although KDM5C is one of the most frequently mutated genes in X-linked intellectual disability1, the exact mechanisms that lead to cognitive impairment remain unknown. Here we use human patient-derived induced pluripotent stem cells and Kdm5c knockout mice to conduct cellular, transcriptomic, chromatin and behavioural studies. KDM5C is identified as a safeguard to ensure that neurodevelopment occurs at an appropriate timescale, the disruption of which leads to intellectual disability. Specifically, there is a developmental window during which KDM5C directly controls WNT output to regulate the timely transition of primary to intermediate progenitor cells and consequently neurogenesis. Treatment with WNT signalling modulators at specific times reveal that only a transient alteration of the canonical WNT signalling pathway is sufficient to rescue the transcriptomic and chromatin landscapes in patient-derived cells and to induce these changes in wild-type cells. Notably, WNT inhibition during this developmental period also rescues behavioural changes of Kdm5c knockout mice. Conversely, a single injection of WNT3A into the brains of wild-type embryonic mice cause anxiety and memory alterations. Our work identifies KDM5C as a crucial sentinel for neurodevelopment and sheds new light on KDM5C mutation-associated intellectual disability. The results also increase our general understanding of memory and anxiety formation, with the identification of WNT functioning in a transient nature to affect long-lasting cognitive function.
Insights
KDM5C gene mutations cause intellectual disability by disrupting neurodevelopment timing. Restoring WNT signaling temporarily during development can correct cellular changes and rescue cognitive deficits.
Area of Science:
- Neuroscience
- Genetics
- Developmental Biology
Background:
- KDM5C mutations are common in X-linked intellectual disability, but the underlying mechanisms are unclear.
- Understanding KDM5C's role is crucial for addressing cognitive impairments.
Purpose of the Study:
- To elucidate the function of KDM5C in neurodevelopment and its link to intellectual disability.
- To investigate the molecular mechanisms by which KDM5C mutations lead to cognitive impairment.
Main Methods:
- Utilized human patient-derived induced pluripotent stem cells and Kdm5c knockout mouse models.
- Conducted cellular, transcriptomic, chromatin, and behavioral analyses.
- Investigated the role of WNT signaling pathway modulation.
Main Results:
- Identified KDM5C as a critical regulator of neurodevelopmental timing.
- Demonstrated KDM5C's direct control over WNT output during a specific developmental window.
- Showed that transient WNT pathway modulation can rescue cellular and behavioral deficits associated with KDM5C disruption.
Conclusions:
- KDM5C acts as a safeguard for proper neurodevelopmental timing, and its disruption causes intellectual disability.
- Transient WNT signaling modulation offers a potential therapeutic strategy for KDM5C-associated intellectual disability.
- Revealed the transient nature of WNT signaling in influencing long-lasting cognitive functions like memory and anxiety.
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