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.

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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