Amyloid-β aggregation disrupts actomyosin architecture and impairs contractility in human brain vascular smooth

Hiroki Kobayashi1, Akari Moizumi2, Takuma Maeda3

  • 1Graduate School of Engineering, Muroran Institute of Technology, Hokkaido, 050-8585, Japan; Ohkawara Neurosurgical Hospital, Hokkaido, 050-0082, Japan.

Insights

Amyloid-beta deposits disrupt human brain vascular smooth muscle cells, disorganizing their actin networks and impairing matrix contraction. This cellular pathology may link to impaired vasomotion in cerebral amyloid angiopathy.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Vascular Biology

Background:

  • Cerebral amyloid angiopathy (CAA) and Alzheimer's disease (AD) involve amyloid-beta (Aβ) accumulation in cerebral vessels.
  • Aβ deposits are linked to vascular dysfunction and intracerebral hemorrhage in CAA.
  • Cellular mechanisms of Aβ's impact on cerebral vasculature, particularly smooth muscle cells, are not fully understood.

Purpose of the Study:

  • To investigate the effects of Aβ on human brain vascular smooth muscle cells (hBSMCs).
  • To analyze Aβ's impact on hBSMC actomyosin architecture and contractile function.
  • To establish a cellular framework for Aβ-associated vascular pathology in CAA.

Main Methods:

  • Utilized quantum dot-labeled Aβ (QDAβ) for single-cell imaging.
  • Employed F-actin and SiR-actin labeling with confocal 3D reconstructions.
  • Assessed hBSMC contractile function using a collagen gel contraction assay.

Main Results:

  • Observed Aβ deposits at the cell edge of hBSMCs, leading to F-actin disorganization and abnormal aggregates.
  • Time-lapse imaging showed progressive QDAβ accumulation, disorganizing stress fibers and condensing myosin II.
  • Aβ-exposed hBSMCs exhibited reduced matrix contraction compared to controls, indicating impaired contractile function.

Conclusions:

  • Aβ deposition disrupts the actin cytoskeleton in hBSMCs.
  • Impaired hBSMC contractility and cytoskeletal disorganization are associated with Aβ accumulation.
  • These findings provide a cellular basis for impaired vasomotion and perivascular clearance in CAA.

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