Apoptotic cells subjected to cold/warming exposure disorganize apoptotic microtubule network and undergo secondary

Manuel Oropesa-Ávila1, Alejandro Fernández-Vega, Mario de la Mata

  • 1Centro Andaluz de Biología del Desarrollo (CABD), Consejo Superior de Investigaciones Científicas (CSIC), Universidad Pablo de Olavide, and Centro de Investigación Biomédica en Red: Enfermedades Raras, Instituto de Salud Carlos III, Carretera de Utrera Km 1, 41013, Seville, Spain.

Insights

Cold/warming exposure disrupts the apoptotic microtubule network, leading to cell death. Stabilizing microtubules or inhibiting caspases prevents this process, preserving cell integrity and promoting clearance.

Area of Science:

  • Cell Biology
  • Apoptosis Research
  • Cytoskeletal Dynamics

Background:

  • The apoptotic microtubule network (AMN) is crucial for maintaining cell morphology and plasma membrane integrity during apoptosis.
  • Understanding factors affecting AMN stability is vital for controlling cell death pathways.

Purpose of the Study:

  • To investigate the impact of cold/warming exposure on AMN and plasma membrane integrity during apoptosis.
  • To elucidate the mechanisms by which cold/warming affects apoptotic cells and identify protective strategies.

Main Methods:

  • Induction of apoptosis in H460 cells using camptothecin.
  • Exposure of apoptotic cells to cold/warming conditions.
  • Assessment of microtubule network organization, caspase activity, protein cleavage, and plasma membrane permeability.
  • Inhibition of caspases using z-VAD and stabilization of microtubules using taxol.

Main Results:

  • Cold/warming exposure disorganized the AMN, allowing caspase access and cleavage of key proteins (α-spectrin, paxilin, FAK, PMCA-4).
  • This cleavage led to increased plasma permeability, calcium overload, and secondary necrosis.
  • Caspase inhibition (z-VAD) or microtubule stabilization (taxol) prevented protein cleavage and secondary necrosis.
  • Both interventions also improved phosphatidylserine externalization and macrophage-mediated clearance of apoptotic cells.

Conclusions:

  • Cold/warming exposure induces secondary necrosis in apoptotic cells by disrupting the AMN and promoting caspase-mediated degradation of essential proteins.
  • Microtubule stabilization or caspase inhibition effectively prevents cold/warming-induced secondary necrosis and enhances apoptotic cell clearance.

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