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Method Article

Murine Aortic Crush Injury: An Efficient In Vivo Model of Smooth Muscle Cell Proliferation and Endothelial Function

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DOI:

10.3791/55201

June 11th, 2017

In This Article

Summary

Restenosis following cardiovascular procedures (bypass surgery, angioplasty, or stenting) is a significant problem reducing the durability of these procedures. An ideal therapy would inhibit smooth muscle cell (VSMC) proliferation while promoting regeneration of the endothelium. We describe a model for simultaneous assessment of VSMC proliferation and endothelial function in vivo.

Abstract

Arterial reconstruction, whether angioplasty or bypass surgery, involves iatrogenic trauma causing endothelial disruption and vascular smooth muscle cell (VSMC) proliferation. Common murine models study small vessels such as the carotid and femoral arteries. Herein we describe an in vivo system in which both VSMC proliferation and endothelial barrier function can be simultaneously assessed in a large vessel. We studied the infrarenal aortic response to injury in C57BL/6 mice. The aorta was injured from the left renal vein to the aortic bifurcation by 30 transmural crushes of 5-seconds duration with a cotton-tipped applicator. Morphological changes were assessed with conventional histology. Aorta wall thickness was measured from the luminal surface to the adventitia. EdU integration and counter staining with DAPI and alpha-actin was used to demonstrate VSMC proliferation. Activation of ERK1/2, a known moderator of intimal hyperplasia formation, was determined by Western Blot analysis. The effect of inflammation was determined by immunohistochemistry for B-cells, T-cells, and macrophages. En face sections of endothelium were visualized with scanning electron microscopy (SEM). Endothelial barrier function was determined with Evans Blue staining. Transmural injury resulted in aortic wall thickening. This injury induced VSMC proliferation, most prominently at 3 days after injury, and early activation of ERK1/2 and decreased p27kip1 expression. Injury did not result in increased B-cells, T-cells, or macrophages infiltration in the vessel wall. Injury caused partial endothelial cell denudation and loss of cell-cell contact. Injury resulted in a significant loss of endothelial barrier function, which returned to baseline after seven days. The murine transmural blunt aortic injury model provides an efficient system to simultaneously study both VSMC proliferation and endothelial barrier function in a large vessel.

Introduction

Restenosis following cardiovascular procedures (bypass surgery, angioplasty, or stenting) is a significant problem reducing the durability of these procedures. All revascularization procedures are plagued by restenosis. Present strategies to prevent restenosis (drug-eluting stents and drug-coated balloons) inhibit both vascular smooth muscle cell (VSMC) and endothelial cell proliferation (EC). Consequently, these interventions prevent VSMC mediated restenosis, but also prevent the regeneration of the endothelium. Without an intact endothelium, patients are required to be on potent antiplatelet agents to decrease the risk of in situ thrombosis at the r....

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Protocol

Ethics Statement: The protocols for animal handling were approved by the Institutional Animal Care and Use Committee (IACUC) of the University of Maryland (protocol number 0416009) and conducted according to AAALAC-International standards.

1. Surgical Procedure

  1. Anesthetic Technique
    1. Sterilize all instruments used in survival surgery with steam sterilization at 121 °C for 30 min.
    2. Induce anesthesia via an induction tank with 100% O2 and 2.5% isoflurane delivered via precision vaporizer. Post-induction, discontinue the isoflurane and flush the chamber with O

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Results

Transverse sections aorta embedded in OCT were sectioned, and stained with hematoxylin and eosin then counter stained with Verhoeff-Van Gieson (VVG) stain to identify the internal and external elastic lamina 7. Crush injury induced aortic wall thickening compared to the aortas of animals treated with a sham procedure (laparotomy and small bowel mobilization alone). Wall thickness, as assessed by the distance from adventitia to the lumen, was greatest three days aft.......

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Discussion

We have characterized the effects of a murine aortic injury model that results in medial hyperplasia and endothelial barrier dysfunction. Partial EC detachment along the aorta intima accompanied the loss of cell-cell contact and enhancement of cell protrusions. Correspondingly, endothelial barrier function was significantly impaired, which stimulated the mitogen-sensitive signaling pathways, leading to proliferation of VSMCs and thickening of the vessel wall. The strengths of this model is that it is technically easier t.......

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Disclosures

This work was funded by the Department of Veterans Affairs Career Development Award (1IK2BX001553-01) (TSM) and the Vascular Cures E. J. Wylie Scholarship (TSM).

Acknowledgements

We thank Hsia Ru-ching PhD, from the Electron Microscopy Core Facility of University of Maryland School of Medicine, for her technical support in processing the scanning electronic microscopy samples.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
Ocular lubricantDechra17033-211-38Pharmaceutical agents
IsofluraneVetOne502017Pharmaceutical agents
CarprofenZoetis26357Pharmaceutical agents
Precision vaporizerSummit Medical10675Surgical supplies
Charcoal scavengerBickford Inc.80120Surgical supplies
Isothermal padHarvard Apparatus50-7053-RSurgical supplies
Sterile cotton-tipped applicatorFisher Scientific23-400-124Surgical supplies
4-0 absorbable monofilament suture Ethicon, IncJ310Surgical supplies
5-0 non-absorbable monofilament sutureEthicon,Inc1666Surgical supplies
21-gauge x 1 inch needleBD Biosciences305165Surgical supplies
25-gauge x 1 inch  needleBD Biosciences305125Surgical supplies
Dry sterilizerCellpoint 7770Surgical supplies
Fine scissorsFine Science Tools14058-09Surgical instruments
Adson forcepsFine Science Tools11006-12Surgical instruments
Dumont #5 fine forcepsFine Science Tools11254-20Surgical instruments
Vannas Spring Scissors 3 mm cutting edgeFine Science Tools15000-00Surgical instruments
Needle driverFine Science Tools91201-13Surgical instruments
Scalpel handle #4Fine Science Tools10004-13Surgical instruments
Scalpel blades #10Fine Science Tools10010-00Surgical instruments
PBS Lonza17-516FReagents for tissue processing
Evans BlueSigma-AldrichE2129Reagents for tissue processing
ParaformaldehydeSigma-AldrichP6148Reagents for tissue processing
Modeling waxBego40001Reagents for tissue processing
OCT compoundTissue-Tek Sakura4583Reagents for tissue processing
Mayer's hematoxylin solutionSigma-AldrichMHS16Reagents for immunohistological analysis
Eosin Y solution alcoholic Sigma-AldrichHT110316Reagents for immunohistological analysis
Elastin stain kitSigma-AldrichHT25AReagents for immunohistological analysis
Click-it Edu Alexa-488 Imaging KitInvitrogenC10337Reagents for immunohistological analysis
Anti-Erk1/2 antibodyCell Signaling Technology4695Reagents for immunohistological analysis
Anti-phospho-Erk1/2 antibodyCell Signaling Technology4370Reagents for immunohistological analysis
Anti-p27kip1 antibodyCell Signaling Technology3698Reagents for immunohistological analysis
Trichloroacetic acidSigma-AldrichT9159Reagents for immunohistological analysis

References

  1. Carmeliet, P. Mechanisms of angiogenesis and arteriogenesis. Nat Med. 6 (4), 389-395 (2000).
  2. Carmeliet, P., Moons, L., Collen, D. Mouse models of angiogenesis, arterial stenosis, atherosclerosis and hemostasis. Cardiovasc Res. 39 (1), 8-33 (1998).
  3. Baker....

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Tags

Vascular Smooth Muscle Cell ProliferationEndothelial Barrier FunctionEvans Blue StainingScanning Electron MicroscopyWestern Blot AnalysisEdU IncorporationC57BL 6 MiceInfrarenal AortaTransmural Injury