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Observing Mitotic Division and Dynamics in a Live Zebrafish Embryo
Published on: July 15, 2016
Proteostasis failure and mitochondrial dysfunction contribute to chromosomal instability-induced microcephaly
Amanda González-Blanco1, Adrián Acuña-Higaki1, David Boettger1
1Institute for Research in Biomedicine (IRB Barcelona), The Barcelona Institute of Science and Technology, Baldiri Reixac, Barcelona, Spain.
Abstract:
Mosaic variegated aneuploidy (MVA), a rare human congenital disorder that causes microcephaly, is characterized by extensive abnormalities in chromosome number and results from mutations in genes involved in accurate mitotic chromosome segregation. To characterize the cellular mechanisms underlying this disease, here we generated a Drosophila model of microcephaly caused by the depletion of a single spindle assembly checkpoint (SAC) gene in the neural stem cell (NSC) compartment. We present evidence that loss of stemness - compromised identity and proliferative capacity of NSCs- plays an important role in MVA and results in a reduced number of neurons and glial cells. We show that loss of stemness arises from the accumulation over time of an unbalanced number of gains and losses of more than one chromosome, rather than a direct consequence of chromosomal instability-induced DNA damage or the production of simple aneuploidies. We unravel a contribution of proteostasis failure and mitochondrial dysfunction to the negative impact of complex aneuploidies on stemness, a highly energy demanding cellular state. We identify overexpression of Radical Oxygen Species scavengers, mitochondria chaperones and apoptosis inhibition as genetic interventions capable of dampening the deleterious effects of aneuploidy on brain size.
Insights
Mosaic variegated aneuploidy (MVA) causes microcephaly due to chromosome segregation errors. Loss of neural stem cell (NSC) stemness, driven by complex aneuploidies, significantly impacts brain development.
Area of Science:
- Developmental Biology
- Genetics
- Cell Biology
Background:
- Mosaic variegated aneuploidy (MVA) is a rare human congenital disorder causing microcephaly.
- It is characterized by extensive chromosome number abnormalities, stemming from mutations in genes critical for mitotic chromosome segregation.
Purpose of the Study:
- To investigate the cellular mechanisms underlying MVA-associated microcephaly.
- To establish a Drosophila model for studying MVA by depleting a spindle assembly checkpoint (SAC) gene in neural stem cells (NSCs).
Main Methods:
- Generation of a Drosophila model with depleted SAC gene in neural stem cells.
- Analysis of neural stem cell (NSC) stemness, proliferation, and differentiation.
- Investigation of the role of proteostasis and mitochondrial function in aneuploidy's effects.
Main Results:
- Loss of NSC stemness, characterized by compromised identity and proliferation, contributes to MVA.
- This loss of stemness results from accumulated complex aneuploidies, not direct DNA damage or simple aneuploidies.
- Proteostasis failure and mitochondrial dysfunction exacerbate the negative impact of aneuploidy on stemness.
Conclusions:
- Loss of neural stem cell (NSC) stemness is a key cellular mechanism in MVA.
- Complex aneuploidies, proteostasis failure, and mitochondrial dysfunction collectively impair brain development in MVA.
- Genetic interventions targeting ROS, mitochondrial chaperones, and apoptosis show potential for mitigating MVA's effects.
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