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Updated: Aug 17, 2026

In Vivo Biosensor Tracks Non-apoptotic Caspase Activity in Drosophila
Published on: November 27, 2016
Axonal dynactin p150Glued transports caspase-8 to drive retrograde olfactory receptor neuron apoptosis
Christine Carson1, Maya Saleh, France W Fung
1Department of Zoology, University of British Columbia, Vancouver, British Columbia, Canada V5Z 4H4.
Abstract:
Olfactory receptor neurons (ORNs) undergo caspase-mediated retrograde apoptosis after target removal (bulbectomy), in which axonal caspase-9 and caspase-3 activation leads to terminal apoptosis in ORN soma of the olfactory epithelium. Here, we show that caspase-8 can act as an initiator of ORN apoptosis after bulbectomy and also after synaptic instability is induced by NMDA-mediated excitotoxic death of ORN target neurons in the olfactory bulb. Caspase-8 and caspase-3 are sequentially activated within ORN presynaptic terminals, and caspase-8 complexes with dynactin p150Glued, (a retrograde motor protein) and is transported retrogradely, preceding axonal caspase-3 activation and apoptosis of ORN cell bodies. Focal in vivo inhibition of initiator caspase activation or microtubule-dependent transport (with Taxol) at the lesioned axon terminus results in a significant reduction in retrograde axonal caspase-8 and caspase-3 activation and inhibition of retrograde ORN death. Caspase-8 activation and retrograde transport after NMDA lesion is similarly reduced in mice null for p75, the low-affinity nerve growth factor receptor. The retrograde apoptosis of ORNs thus involves a novel mechanism that used p75 in the local activation of caspase-8. Once caspase-8 is maximally activated in the presynaptic terminal, it is transported retrogradely by the motor complex dynactin/dynein, a process that can be inhibited focally to inhibit ORN apoptosis after acute axonal lesion. These data have revealed a novel mechanism of retrograde apoptosis, in which caspase-8 complexes directly with axonal dynactin p150Glued to reveal a differential vulnerability of subpopulations of ORNs to undergo apoptosis after axonal damage and the loss of olfactory bulb target neurons.
Insights
Olfactory receptor neurons undergo programmed cell death via a novel retrograde apoptosis pathway initiated by caspase-8. This process involves caspase-8 complexing with dynactin and transport along axons, which can be inhibited to prevent neuron death.
Area of Science:
- Neuroscience
- Cell Biology
- Apoptosis Research
Background:
- Olfactory receptor neurons (ORNs) normally undergo caspase-mediated apoptosis after target removal.
- Previous understanding implicated caspase-9 and caspase-3 in this retrograde apoptosis.
- Axonal caspase activation leads to cell body death in the olfactory epithelium.
Purpose of the Study:
- To investigate the role of caspase-8 in ORN apoptosis following axonal damage.
- To elucidate the mechanism of retrograde transport of apoptotic factors in ORNs.
- To identify novel therapeutic targets for preventing ORN death after injury.
Main Methods:
- Induction of ORN apoptosis via bulbectomy and NMDA-mediated excitotoxicity.
- In vivo inhibition of initiator caspase activation and microtubule-dependent transport (Taxol).
- Analysis of caspase-8 and caspase-3 activation, complex formation, and retrograde transport.
- Investigation using p75 (low-affinity nerve growth factor receptor) knockout mice.
Main Results:
- Caspase-8 acts as an initiator of ORN apoptosis, sequentially activated with caspase-3 in presynaptic terminals.
- Activated caspase-8 complexes with dynactin p150Glued and is retrogradely transported, preceding axonal caspase-3 activation.
- Inhibiting caspase activation or axonal transport at the lesion site significantly reduces retrograde apoptosis.
- p75 knockout mice show reduced caspase-8 activation and retrograde transport after NMDA lesion.
Conclusions:
- A novel retrograde apoptosis mechanism in ORNs involves p75-mediated local activation of caspase-8.
- Caspase-8 complexes with dynactin/dynein motor proteins for retrograde transport, inhibiting ORN apoptosis is possible.
- This pathway reveals differential vulnerability of ORN subpopulations to axonal damage and target neuron loss.
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