Cyclophilin D regulates neuronal activity-induced filopodiagenesis by fine-tuning dendritic mitochondrial calcium

Shaomei Sui1,2, Jing Tian2, Esha Gauba2

  • 1AD Center, Department of Neurology, Qianfoshan Hospital Affiliated to Shandong University, Jinan, Shandong, China.

Insights

Cyclophilin D (CypD) is crucial for healthy neuronal plasticity, regulating mitochondrial calcium. Loss of CypD impairs dendritic filopodia growth and calcium homeostasis, but protects against oxidative stress.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Mitochondrial Biology

Background:

  • Mitochondria are vital for dendritic plasticity, but mechanisms remain unclear.
  • Cyclophilin D (CypD) regulates mitochondrial permeability, with known pathological roles but undefined physiological functions in neurons.

Purpose of the Study:

  • To elucidate the physiological role of CypD in neuronal dendritic plasticity.
  • To investigate how CypD influences mitochondrial calcium regulation and dendritic filopodia morphogenesis.

Main Methods:

  • Genetic depletion and pharmaceutical inhibition of CypD in neurons.
  • KCl-stimulated neuronal depolarization.
  • Cell biological assays measuring calcium homeostasis, mitochondrial motility, and dendritic protrusion dynamics.

Main Results:

  • CypD deficiency blunts dendritic filopodia outgrowth during neuronal depolarization.
  • Loss of CypD impairs mitochondrial calcium regulation flexibility and intradendritic calcium homeostasis.
  • CypD-deficient neurons show altered mitochondrial motility and redistribution.
  • CypD loss attenuates oxidative stress-induced mitochondrial calcium issues and dendritic injury.

Conclusions:

  • CypD acts as a physiological fine-tuner of mitochondrial calcium homeostasis, essential for dendritic plasticity.
  • CypD exhibits distinct roles in neuronal physiology versus pathology, highlighting its complex function.

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