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An inherited TUBB2B mutation alters a kinesin-binding site and causes polymicrogyria, CFEOM and axon dysinnervation
Gustav Y Cederquist1, Anna Luchniak, Max A Tischfield
1Department of Neurology, Boston Children's Hospital, Boston, MA, USA.
Abstract:
Microtubules are essential components of axon guidance machinery. Among β-tubulin mutations, only those in TUBB3 have been shown to cause primary errors in axon guidance. All identified mutations in TUBB2B result in polymicrogyria, but it remains unclear whether TUBB2B mutations can cause axon dysinnervation as a primary phenotype. We have identified a novel inherited heterozygous missense mutation in TUBB2B that results in an E421K amino acid substitution in a family who segregates congenital fibrosis of the extraocular muscles (CFEOM) with polymicrogyria. Diffusion tensor imaging of brains of affected family members reveals aberrations in the trajectories of commissural projection neurons, implying a paucity of homotopic connections. These observations led us to ask whether axon dysinnervation is a primary phenotype, and why the E421K, but not other, TUBB2B substitutions cause CFEOM. Expression of exogenous Tubb2b-E421K in developing callosal projection neurons is sufficient to perturb homotopic connectivity, without affecting neuronal production or migration. Using in vitro biochemical assays and yeast genetics, we find that TUBB2B-E421K αβ-heterodimers are incorporated into the microtubule network where they alter microtubule dynamics and can reduce kinesin localization. These data provide evidence that TUBB2B mutations can cause primary axon dysinnervation. Interestingly, by incorporating into microtubules and altering their dynamic properties, the E421K substitution behaves differently than previously identified TUBB2B substitutions, providing mechanistic insight into the divergence between resulting phenotypes. Together with previous studies, these findings highlight that β-tubulin isotypes function in both conserved and divergent ways to support proper human nervous system development.
Insights
A novel TUBB2B gene mutation causes congenital fibrosis of the extraocular muscles and polymicrogyria by disrupting axon guidance. This study reveals TUBB2B mutations can lead to primary axon dysinnervation, impacting nervous system development.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- Microtubules are crucial for axon guidance.
- While TUBB3 mutations affect axon guidance, TUBB2B mutations primarily cause polymicrogyria.
- The role of TUBB2B mutations in primary axon dysinnervation remained unclear.
Purpose of the Study:
- To investigate if TUBB2B mutations can cause primary axon dysinnervation.
- To understand why a specific TUBB2B substitution (E421K) leads to congenital fibrosis of the extraocular muscles (CFEOM).
Main Methods:
- Identified a novel inherited heterozygous missense mutation in TUBB2B (E421K).
- Utilized diffusion tensor imaging to analyze brain connectivity in affected family members.
- Expressed exogenous Tubb2b-E421K in developing neurons and performed in vitro biochemical and yeast genetics assays.
Main Results:
- The TUBB2B E421K mutation was linked to CFEOM and polymicrogyria.
- Diffusion tensor imaging showed aberrant trajectories of commissural projection neurons.
- Tubb2b-E421K expression perturbed neuronal connectivity without affecting neuronal production or migration.
- Tubb2b-E421K αβ-heterodimers altered microtubule dynamics and reduced kinesin localization.
Conclusions:
- TUBB2B mutations can cause primary axon dysinnervation.
- The E421K substitution's distinct effect on microtubule dynamics explains its specific phenotype.
- This highlights conserved and divergent roles of β-tubulin isotypes in nervous system development.
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