4.7 Article

MT1-matrix metalloproteinase directs arterial wall invasion and neointima formation by vascular smooth muscle cells

Journal

JOURNAL OF EXPERIMENTAL MEDICINE
Volume 202, Issue 5, Pages 663-671

Publisher

ROCKEFELLER UNIV PRESS
DOI: 10.1084/jem.20050607

Keywords

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Funding

  1. NCI NIH HHS [R01 CA088308, CA088308, R01 CA071699, CA71699] Funding Source: Medline
  2. NHLBI NIH HHS [HL57346, HL65224, R01 HL065224, P01 HL057346] Funding Source: Medline

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During pathologic vessel remodeling, vascular smooth muscle cells (VSMCs) embedded within the collagen-rich matrix of the artery wall mobilize uncharacterized proteolytic systems to infiltrate the subendothelial space and generate neointimal lesions. Although the VSMC-derived serine proteinases, plasminogen activator and plasminogen, the cysteine proteinases, cathepsins L, S, and K, and the matrix metalloproteinases MMP-2 and MMP-9 have each been linked to pathologic matrix-remodeling states in vitro and in vivo, the role that these or other proteinases play in allowing VSMCs to negotiate the three-dimensional (3-D) cross-linked extracellular matrix of the arterial wall remains undefined. Herein, we demonstrate that VSMCs proteolytically remodel and invade collagenous barriers independently of plasmin, cathepsins L, S, or K, MMP-2, or MMP-9. Instead, we identify the membrane-anchored matrix metalloproteinase, MT1-MMP, as the key pericellular collagenolysin that controls the ability of VSMCs to degrade and infiltrate 3-D barriers of interstitial collagen, including the arterial wall. Furthermore, genetic deletion of the proteinase affords mice with a protected status against neointimal hyperplasia and lumen narrowing in vivo. These studies suggest that therapeutic interventions designed to target MT1-MMP could prove beneficial in a range of human vascular disease states associated with the destructive remodeling of the vessel wall extracellular matrix.

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