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Updated: Feb 9, 2026

Inducing Dendritic Growth in Cultured Sympathetic Neurons
Published on: March 21, 2012
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.
Abstract:
Recent studies have highlighted the role of mitochondria in dendritic protrusion growth and plasticity. However, the detailed mechanisms that mitochondria regulate dendritic filopodia morphogenesis remain elusive. Cyclophilin D (CypD, gene name: Ppif) controls the opening of mitochondrial permeability transition pore. Although the pathological relevance of CypD has been intensively investigated, little is known about its physiological function in neurons. Here, we have found that genetic depletion of or pharmaceutical inhibition of CypD blunts the outgrowth of dendritic filopodia in response to KCl-stimulated neuronal depolarization. Further cell biological studies suggest that such inhibitory effect of CypD loss-of-function is closely associated with compromised flexibility of dendritic mitochondrial calcium regulation during neuronal depolarization, as well as the resultant changes in intradendritic calcium homeostasis, calcium signaling activation, dendritic mitochondrial motility and redistribution. Interestingly, loss of CypD attenuates oxidative stress-induced mitochondrial calcium perturbations and dendritic protrusion injury. Therefore, our study has revealed the physiological function of CypD in dendritic plasticity by acting as a fine-tuner of mitochondrial calcium homeostasis. Moreover, CypD plays distinct roles in neuronal physiology and pathology. Cover Image for this issue: doi: 10.1111/jnc.14189.
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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