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Three-dimensional Imaging and Analysis of Mitochondria within Human Intraepidermal Nerve Fibers
Published on: September 29, 2017
Miro's N-terminal GTPase domain is required for transport of mitochondria into axons and dendrites
Milos Babic1, Gary J Russo2, Andrea J Wellington3
1Department of Neuroscience, Graduate Interdisciplinary Program in Neuroscience, and.
Abstract:
Mitochondria are dynamically transported in and out of neuronal processes to maintain neuronal excitability and synaptic function. In higher eukaryotes, the mitochondrial GTPase Miro binds Milton/TRAK adaptor proteins linking microtubule motors to mitochondria. Here we show that Drosophila Miro (dMiro), which has previously been shown to be required for kinesin-driven axonal transport, is also critically required for the dynein-driven distribution of mitochondria into dendrites. In addition, we used the loss-of-function mutations dMiroT25N and dMiroT460N to determine the significance of dMiro's N-terminal and C-terminal GTPase domains, respectively. Expression of dMiroT25N in the absence of endogenous dMiro caused premature lethality and arrested development at a pupal stage. dMiroT25N accumulated mitochondria in the soma of larval motor and sensory neurons, and prevented their kinesin-dependent and dynein-dependent distribution into axons and dendrites, respectively. dMiroT25N mutant mitochondria also were severely fragmented and exhibited reduced kinesin and dynein motility in axons. In contrast, dMiroT460N did not impair viability, mitochondrial size, or the distribution of mitochondria. However, dMiroT460N reduced dynein motility during retrograde mitochondrial transport in axons. Finally, we show that substitutions analogous to the constitutively active Ras-G12V mutation in dMiro's N-terminal and C-terminal GTPase domains cause neomorphic phenotypic effects that are likely unrelated to the normal function of each GTPase domain. Overall, our analysis indicates that dMiro's N-terminal GTPase domain is critically required for viability, mitochondrial size, and the distribution of mitochondria out of the neuronal soma regardless of the employed motor, likely by promoting the transition from a stationary to a motile state.
Insights
Drosophila Miro (dMiro) is essential for mitochondrial transport in neurons. Its N-terminal GTPase domain regulates mitochondrial distribution and viability, while the C-terminal domain impacts retrograde transport.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Mitochondria are vital for neuronal function, requiring dynamic transport along microtubules.
- In higher eukaryotes, Miro and Milton/TRAK proteins link mitochondria to motor proteins like kinesin and dynein.
- Drosophila Miro (dMiro) is known to be crucial for kinesin-driven axonal transport.
Purpose of the Study:
- To investigate the role of dMiro in dynein-driven mitochondrial distribution into dendrites.
- To determine the specific functions of dMiro's N-terminal and C-terminal GTPase domains using loss-of-function mutations.
- To elucidate the role of dMiro in regulating mitochondrial motility and neuronal development.
Main Methods:
- Utilized loss-of-function mutations (dMiroT25N and dMiroT460N) in Drosophila.
- Analyzed mitochondrial distribution, size, and motility in larval motor and sensory neurons.
- Observed effects on neuronal viability and developmental stages.
Main Results:
- The dMiroT25N mutation caused premature lethality, arrested development, and mitochondrial accumulation in the soma.
- dMiroT25N prevented mitochondrial transport into axons and dendrites, leading to fragmentation and reduced motor protein-driven motility.
- The dMiroT460N mutation did not affect viability but impaired dynein-mediated retrograde mitochondrial transport.
- Constitutively active mutations in GTPase domains induced neomorphic effects.
Conclusions:
- dMiro's N-terminal GTPase domain is essential for viability, mitochondrial integrity, and transport out of the neuronal soma.
- This domain likely facilitates the transition of mitochondria from a stationary to a motile state, irrespective of the motor protein used.
- dMiro plays a critical role in both anterograde and retrograde mitochondrial transport, ensuring neuronal health and function.
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