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Cairns, W.

Publications and source records attributed to Cairns, W..

3 recordsLinked to original sources

Microtubule curling as an efficient readout to uncover fundamental concepts of axonal cell biology

Nerve fibres (aka axons) are the slender, up-to-meter-long processes of nerve cells that wire nervous systems. These delicate structures must survive for an organisms lifetime, making them prime lesion sites in neurodegeneration. Their long-term maintenance requires the homeostasis of complex local cell biology upheld by motor protein-driven transport along microtubule bundles that run uninterrupted along axons. To gain an understanding of axonal homeostasis, we report and discuss here the functional loss of 105 genes from a wide range of cell biological processes using a standardised Drosophila primary neuron system. [~]40% of these gene deficiencies caused microtubule bundle disturbances referred to as microtubule-curling, which we use as an indicator of axonal atrophy. Our live imaging showed that microtubule-curling initiates in areas where axons widen, such as areas close to the soma, branch points or growth cones. In wild-type neurons, any initiated curling was contained, but it persisted as growing footprints in mutant curl-promoting conditions. Closer analyses of 20 curl-promoting conditions suggested a general classification into two groups: mutations affecting axonal physiology cause ROS-mediated microtubule-curling, whereas mutations causing motor hyperactivation or affecting microtubule-regulating proteins cause structurally induced ROS-independent curling. As will be discussed, our data provide consistent support for the previously proposed dependency cycle of local axon homeostasis model which can explain the long-standing conundrum that genes from a wide range of cell biological processes often have mutational links to the same class of inherited neurodegenerative disease.

cell biology↗

Assessing impacts of mitochondrial dysfunction on axonal microtubule bundles as potential mechanism in neurodegeneration

Mitochondrial dysfunction is an important cause for neurodegeneration, often associated with dyshomeostasis of reactive oxygen species, i.e. oxidative stress. However, apart from ATP production, mitochondria have many other functions the aberration of which may impact neurons in very different ways. Oxidative stress can cause the deterioration of axonal microtubule bundles, thus critically affecting the highways for life-sustaining transport and providing a potential path to neurodegeneration. We recently found that aberrant transport of mitochondria can have this effect by causing oxidative stress. We therefore asked which aberrations of mitochondrial physiology might impact microtubules, which of these might explain the observed consequences of aberrant mitochondrial transport, and whether mitochondria-induced microtubule phenotypes are always mediated by oxidative stress. Using one consistent Drosophila primary neuron system, we deleted 13 different mitochondrial factors known to be detrimental for neurons in vivo. Losses of five factors caused MT damage, all involving oxidative stress, hence supporting the path from mitochondria via oxidative stress to microtubule deterioration; we discuss Sod2 as potential candidate explaining effects of mitochondrial transport aberration. However, the loss of eight factors - seven of them important mitochondrial morphogenesis regulators - caused no microtubule damage, suggesting potential oxidative stress-independent pathways. Summary StatementAssessing mutant effects of 13 mitochondrial factors on axonal microtubule organisation to unravel potential mechanisms underpinning neurodegeneration

cell biology↗

Different mechanisms link gain and loss of kinesin functions to axonal degeneration

Axons are the slender, often meter-long projections of neurons that form the biological cables wiring our bodies. Most of these delicate structures must survive for an organisms lifetime, meaning up to a century in humans. Long-term maintenance and sustained functionality of axons requires motor protein-driven transport distributing life-sustaining materials and organelles to places of need. It seems therefore plausible that loss of motor function would cause axon degeneration; however, also gain-of-function conditions were linked to disorders including motor neuron disease or spastic paraplegia. To understand this phenomenon, we studied [~]40 genetic manipulations of motor proteins, cargo linkers and regulators of reactive oxygen species in one standardised Drosophila primary neuron system. Using axonal microtubule bundle organisation as a relevant readout reflecting the state of axon integrity, we found that losses of Dynein heavy chain, KIF1A/Unc-104 and KIF5/Kinesin heavy chain (Khc) all cause bundle disintegration in the form of chaotically curled microtubules. Detailed functional studies of Khc and its adaptor proteins revealed that losses of mitochondrial or lysosomal transport cause ROS dyshomeostasis, which is a microtubule-curl-inducing condition in fly and mouse neurons alike. We find that hyper-activated Khc induces the same microtubule curling phenotype, not through ROS but likely more directly through enhanced mechanical forces. Studies with loss of Unc-104 or KIFBP and expression of an ALS-linked mutant form of the human Khc orthologue KIF5A suggest that loss or hyperactivation of different types of transport motors cause MT curling as a shared feature. We discuss a model which can explain our findings and their relevance for understanding motor-linked neurodegeneration.

neuroscience↗