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September 10, 2025The Journal of Cell Biology10 citationsOpen Access

Mitochondrial fission controls astrocyte morphogenesis and organization in the cortex

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MRMaria Pia RodriguezSKSprihaa KolanukuduruVRValentina Ramirez

Key Points

  • Mitochondrial fission reduces morphological complexity of astrocytes, impacting brain organization and function.
  • Loss of Drp1 results in decreased mitochondria in distal processes, confirming its role in astrocyte development.
  • Astrocyte-specific deletion of Drp1 leads to reactive astrocytes and perturbed organization in the cortex.
  • Research highlights the importance of mitochondrial dynamics in neurodevelopment, underscoring its potential role in disorders.

Abstract

Dysfunctional mitochondrial dynamics are a hallmark of devastating neurodevelopmental disorders such as childhood refractory epilepsy. However, the role of glial mitochondria in proper brain development is not well understood. We show that astrocyte mitochondria undergo extensive fission while populating astrocyte distal branches during postnatal cortical development. Loss of mitochondrial fission regulator, dynamin-related protein 1 (Drp1), decreases mitochondrial localization to distal astrocyte processes, and this mitochondrial mislocalization reduces astrocyte morphological complexity. Functionally, astrocyte-specific conditional deletion of Drp1 induces astrocyte reactivity and disrupts astrocyte organization in the cortex. These morphological and organizational deficits are accompanied by loss of perisynaptic astrocyte process (PAP) proteins such as gap junction protein connexin 43. These findings uncover a crucial role for mitochondrial fission in coordinating astrocytic morphogenesis and organization, revealing the regulation of astrocytic mitochondrial dynamics as a critical step in neurodevelopment.

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Cite This Study

Rodriguez et al. (2025) studied this question.

synapsesocial.com/papers/68c187209b7b07f3a0611079https://doi.org/10.1083/jcb.202410130
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