Macrophages are essential for maintaining a M2 protective response early after ischemic brain injury

Carlo Perego1, Stefano Fumagalli2, Elisa R Zanier1

  • 1IRCCS - Istituto di Ricerche Farmacologiche Mario Negri, Department of Neuroscience, via La Masa 19, 20156 Milan, Italy.

Neurobiology of Disease
|October 5, 2016
PubMed

Insights

Depleting monocytes and macrophages after stroke worsens brain injury by increasing M1 pro-inflammatory responses. These myeloid cells may normally control inflammation and promote protective M2 polarization.

Area of Science:

  • Neuroscience
  • Immunology
  • Pathology

Background:

  • Microglia and macrophages are key in post-stroke inflammation.
  • Their specific roles after brain injury are debated.
  • Understanding these myeloid cells is crucial for stroke treatment.

Purpose of the Study:

  • To investigate the role of monocytes/macrophages in brain lesion progression after ischemia.
  • To determine their influence on the post-ischemic inflammatory environment.
  • To clarify the functional contribution of these myeloid cells in stroke.

Main Methods:

  • Used CD11b-DTR transgenic mice for conditional monocyte/macrophage depletion via diphtheria toxin.
  • Induced permanent middle cerebral artery occlusion to model ischemic stroke.
  • Assessed lesion size, myeloid cell activation/polarization (CD45, CD11b, CD68, M1/M2 markers), and gene expression (iNOS, Arg1).

Main Results:

  • Monocyte/macrophage depletion significantly worsened the ischemic lesion size within 24 hours.
  • Depletion led to an increased M1/M2 polarization ratio in the ischemic area.
  • Increased expression of M1 markers and iNOS, with decreased Arg1 mRNA in remaining myeloid cells.

Conclusions:

  • Recruited monocytes/macrophages play a protective role in ischemic stroke by limiting excessive M1 pro-inflammatory responses.
  • These cells appear to drive beneficial M2 polarization, mitigating tissue damage.
  • Targeting monocyte/macrophage depletion strategies requires careful consideration of their dual role in stroke.

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