The impact of TP53 activation and apoptosis in primary hereditary microcephaly
Giorgia Iegiani1,2, Alessia Ferraro1,2, Gianmarco Pallavicini1,2
1Department of Neuroscience 'Rita Levi Montalcini', University of Turin, Turin, Italy.
Abstract:
Autosomal recessive primary microcephaly (MCPH) is a constellation of disorders that share significant brain size reduction and mild to moderate intellectual disability, which may be accompanied by a large variety of more invalidating clinical signs. Extensive neural progenitor cells (NPC) proliferation and differentiation are essential to determine brain final size. Accordingly, the 30 MCPH loci mapped so far (MCPH1-MCPH30) encode for proteins involved in microtubule and spindle organization, centriole biogenesis, nuclear envelope, DNA replication and repair, underscoring that a wide variety of cellular processes is required for sustaining NPC expansion during development. Current models propose that altered balance between symmetric and asymmetric division, as well as premature differentiation, are the main mechanisms leading to MCPH. Although studies of cellular alterations in microcephaly models have constantly shown the co-existence of high DNA damage and apoptosis levels, these mechanisms are less considered as primary factors. In this review we highlight how the molecular and cellular events produced by mutation of the majority of MCPH genes may converge on apoptotic death of NPCs and neurons, via TP53 activation. We propose that these mechanisms should be more carefully considered in the alterations of the sophisticated equilibrium between proliferation, differentiation and death produced by MCPH gene mutations. In consideration of the potential druggability of cell apoptotic pathways, a better understanding of their role in MCPH may significantly facilitate the development of translational approaches.
Insights
Autosomal recessive primary microcephaly (MCPH) causes reduced brain size and intellectual disability. Our review highlights how gene mutations trigger neural progenitor cell death, suggesting new therapeutic targets.
Area of Science:
- Genetics and Developmental Neuroscience
- Cell Biology
Background:
- Autosomal recessive primary microcephaly (MCPH) is characterized by reduced brain size and intellectual disability.
- Neural progenitor cell (NPC) proliferation and differentiation are critical for brain development.
Purpose of the Study:
- To review the molecular and cellular mechanisms underlying MCPH, focusing on NPC apoptosis.
- To explore the potential of targeting apoptotic pathways for therapeutic development in MCPH.
Main Methods:
- Literature review of MCPH genes, cellular processes, and disease mechanisms.
- Analysis of proposed pathways linking MCPH gene mutations to NPC and neuron apoptosis via TP53 activation.
Main Results:
- MCPH gene mutations affect diverse cellular processes essential for NPC expansion.
- Evidence suggests that DNA damage and apoptosis are significant, often overlooked, factors in MCPH pathogenesis.
- TP53 activation is a converging mechanism leading to NPC and neuron apoptotic death.
Conclusions:
- Altered balance between proliferation, differentiation, and apoptosis, particularly NPC death via TP53, is a key mechanism in MCPH.
- Targeting apoptotic pathways presents a promising avenue for developing translational therapies for MCPH.
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