Search bioRxiv⌕ Search

Biology subjects

Turkki, T. H.

Publications and source records attributed to Turkki, T. H..

2 recordsLinked to original sources

Motor experience leads to structural changes in the adult male mouse inferior olive

The activity of the inferior olive (IO), conveyed to the cerebellar cortex via climbing fibers and manifesting as the complex spikes (CSs) in Purkinje neurons, is at the core of major theories of cerebellar function and motor learning. While the computational meaning of the CSs remains under intense debate, it is well accepted that changes in their occurrence and timing play a critical role in guiding cerebellar plasticity. However, it has not been examined whether the plastic processes leading to these changes in cerebellar CS activity are expressed in the IO, or whether they are entirely caused by changes in brain structures upstream of the climbing fibers, including the cerebellar nuclei. Here, we examine whether prolonged, kinematically challenging motor experience can lead to detectable changes in the IO network structure that could underlie shifts in cerebellar CS activity. As the IO neurons communicate exclusively via electrical synapses (gap junctions) residing on dendritic structures, we hypothesized that if long-term increases in electrical coupling related to the insertion of new gap junctions occur in response to novel motor experiences, morphological changes in the dendrites would also be expected. To investigate this, we quantitatively characterized the geometry of the IO neuropil revealed by immunohistochemical staining in adult male mice. We found that the neuropil structure varies across olivary subnuclei in naive animals, possibly underlying known differences in cerebellar complex spike co-activation patterns. Geometrical measures related to structural complexity also revealed that exposing the animals to a challenging high-speed treadmill running task requiring full-body coordination led to localized changes suggestive of increased network connectivity. In addition, the density of immunofluorescence puncta labeling Cx36 increased in the same regions, supporting the notion that exposure to contexts where novel motor skills need to be acquired may lead to changes in the clustering strength among IO neurons and thereby restructuring of the olivo-cerebellar micromodules. To our knowledge, this is the first report of experience-related plasticity within the IO, calling for renewed attention to the role of the IO in olivocerebellar function.

neuroscience↗

Impairment in axonal translation and cytoplasmic viscosity during aging in sensory neurons

Mitochondria are trafficked along axons and provide the energy required for several intracellular mechanisms including molecular transport and local translation, which is believed to contribute to the homeostasis of the axonal compartment. Decline in mitochondria activity is one of the hallmarks of aging. It is still unclear, though, whether this decline corresponds to a concomitant reduction in the extent of axonal translation during aging. Using live cell imaging of sensory neurons, we found a significant decrease in the number of active mitochondria and the percentage of mitochondria localized to axons in aged mice compared to young mice. This decrease was mirrored by a loss of intracellular ATP as well as an ATP-dependent decrease in axoplasmic viscosity. In addition, the size of G3BP1 positive axonal granules and the number of FMRP axonal granules increased. Cumulatively, we found a functional decrease in the overall level of axonal translation in aged neurons. We were able to rescue this effect by increasing ATP synthesis, which induced a global decrease in axoplasmic viscosity, while promoting RNA granule solubilization and boosting axonal translation. Proteomic analysis of newly synthesized proteins in axons of aged vs young neurons revealed a dysregulation of pathways related to axonal biology and growth. We identified MAP1B and STAT3 as proteins whose axonal local synthesis was impaired in aged axons, and more notably show that this impairment could be rescued by increasing ATP synthesis. We believe that this research sheds light on axonal translation in aged neurons and its relationship with energy sources inside the axonal compartment, possibly presenting an opportunity for future therapeutics.

neuroscience↗