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Lion, L. M.

Publications and source records attributed to Lion, L. M..

2 recordsLinked to original sources

Mitochondrial protein import stress causes progressive neurodegeneration opposed by PERK - eIF2α signalling

Mitochondrial dysfunction and impairments of the mitochondrial protein import system are often linked to neurodegenerative disease, but whether import stress per se causes neurodegeneration has not been tested. Here, we adapted the yeast clogger system to Drosophila motoneurons to block TOM-TIM23-mediated import with temporal control. Sustained import stress converts somatic mitochondria into donut-shaped structures, depletes functional mitochondria from synaptic terminals, and causes progressive neurodegeneration with impaired neurotransmitter release and locomotor dysfunction. This neurodegeneration is mechanistically distinct from mitochondrial absence, as miro mutant neurons that completely lack presynaptic mitochondria do not degenerate. Import-stressed motoneurons activate multiple protective programmes, including chaperone remodelling, metabolic repression, and translational control through the eIF2 kinase PERK. Both pharmacological PERK inhibition and reversal of translational attenuation via ISRIB accelerate neurodegeneration, whereas PERK overexpression alone is sufficient to cause it, defining a protective range of eIF2-dependent translational control. The observation that PERK inhibition is protective in protein misfolding models but detrimental during import stress shows that the nature of mitochondrial dysfunction determines the molecular consequence of translational control in neurodegeneration.

neuroscience↗

Loss of NudE-mediated dynein activation at synaptic terminals causes progressive axon length-dependent neurodegeneration

Progressive, axon length-dependent degeneration of nerve terminals is a defining feature of dying-back neuropathies; yet, whether defects in axonal transport initiate or are a consequence of this process remains unresolved. Here, we show that NudE, a scaffold for dynein motor activation, is required for the initiation of retrograde axonal transport at Drosophila motoneuron synapses in vivo. Loss of NudE impairs dynein activation at the synaptic terminal, severely reducing the proportion of cargo entering retrograde transport and decreasing retrograde motor velocity. Live imaging and temporal analysis establish that this transport initiation defect is the earliest event in a degenerative cascade, followed by progressive microtubule destabilization, impaired synaptic transmission, and structural degeneration in a distal-to-proximal gradient that recapitulates dying-back neuropathies. Structure-function analysis validates the biochemically defined NudE-dynein binding domains in vivo, with graded disruption producing correspondingly graded phenotypes. Genetic two-hit experiments uncover a reciprocal dependence between transport initiation and microtubule maintenance: perturbations in either process that are individually tolerated synergistically trigger degeneration when combined, while increasing microtubule levels alone cannot compensate for failed dynein activation. These findings reveal retrograde transport initiation as a critical vulnerability point in motoneurons and provide a mechanistic basis for how defects in dynein activation produce progressive neurodegeneration.

neuroscience↗