Literature DB >> 25225207

Novel high-throughput in vitro model for identifying hemodynamic-induced inflammatory mediators of cerebral aneurysm formation.

Kamil W Nowicki1, Koji Hosaka1, Yong He1, Peter S McFetridge1, Edward W Scott1, Brian L Hoh2.   

Abstract

Cerebral aneurysms are thought to develop at locations of hemodynamic shear stress, via an inflammatory process. The molecular mechanism that links shear stress to inflammation, however, is not completely understood. Progress in studying this disease is limited by a lack of a suitable in vitro model. To address this, we designed novel in vitro parallel-plate flow chamber models of a straight artery, a bifurcation, and a bifurcation aneurysm. We compared endothelial cell phenotypes across the 3 different models and among microenvironments within each flow model by cytokine array, ELISA, and relative immunofluorescence. Human aneurysms express interleukin-8 and chemokine (C-X-C motif) ligand 1 (CXCL1), whereas normal arteries do not. The bifurcation aneurysm model showed significantly higher interleukin-8 and CXCL1 levels than both the straight artery and bifurcation models. Within the bifurcation and bifurcation aneurysm models, endothelial cells near the bifurcation or within the aneurysm sac microenvironments have significantly higher expression of CXCL1, and interleukin-8 and CXCL1, respectively, than at the straight proximal segment or the limbs of the bifurcation. Murine aneurysms express CXCL1, and it is the primary ELR+ CXC chemokine expressed, whereas normal arteries do not. CXCL1 antibody blockade results in significantly fewer murine aneurysms (13.3 versus 66.7%; P=0.0078), decreased neutrophil infiltration, and vascular cell adhesion molecule 1 expression than an immunoglobulin G control. We successfully designed and validated a novel hemodynamic model of cerebral aneurysms in vitro. We also show that shear stress-induced CXCL1 plays a critical role in cerebral aneurysm formation.
© 2014 American Heart Association, Inc.

Entities:  

Keywords:  aneurysm; endothelium; hemodynamics; inflammation

Mesh:

Substances:

Year:  2014        PMID: 25225207      PMCID: PMC4231007          DOI: 10.1161/HYPERTENSIONAHA.114.03775

Source DB:  PubMed          Journal:  Hypertension        ISSN: 0194-911X            Impact factor:   10.190


  30 in total

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Journal:  Pharmacol Ther       Date:  2006-05-23       Impact factor: 12.310

2.  Localized increase of chemokines in the lumen of human cerebral aneurysms.

Authors:  Nohra Chalouhi; Lauren Points; Gary L Pierce; Zuhair Ballas; Pascal Jabbour; David Hasan
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3.  Magnitude and role of wall shear stress on cerebral aneurysm: computational fluid dynamic study of 20 middle cerebral artery aneurysms.

Authors:  Masaaki Shojima; Marie Oshima; Kiyoshi Takagi; Ryo Torii; Motoharu Hayakawa; Kazuhiro Katada; Akio Morita; Takaaki Kirino
Journal:  Stroke       Date:  2004-11       Impact factor: 7.914

4.  Hemodynamics of Cerebral Aneurysms.

Authors:  Daniel M Sforza; Christopher M Putman; Juan Raul Cebral
Journal:  Annu Rev Fluid Mech       Date:  2009-01-01       Impact factor: 18.511

5.  Blood flow dynamics in patient-specific cerebral aneurysm models: the relationship between wall shear stress and aneurysm area index.

Authors:  Alvaro Valencia; Hernan Morales; Rodrigo Rivera; Eduardo Bravo; Marcelo Galvez
Journal:  Med Eng Phys       Date:  2007-06-06       Impact factor: 2.242

Review 6.  Intracranial aneurysms occur more frequently at bifurcation sites that typically experience higher hemodynamic stresses.

Authors:  Jaclyn M Alfano; John Kolega; Sabareesh K Natarajan; Jianping Xiang; Rocco A Paluch; Elad I Levy; Adnan H Siddiqui; Hui Meng
Journal:  Neurosurgery       Date:  2013-09       Impact factor: 4.654

7.  Endothelial cell layer subjected to impinging flow mimicking the apex of an arterial bifurcation.

Authors:  Michael P Szymanski; Eleni Metaxa; Hui Meng; John Kolega
Journal:  Ann Biomed Eng       Date:  2008-07-25       Impact factor: 3.934

8.  Interleukin-8 induces neutrophil transendothelial migration.

Authors:  W B Smith; J R Gamble; I Clark-Lewis; M A Vadas
Journal:  Immunology       Date:  1991-01       Impact factor: 7.397

9.  CXCL1 induced by prostaglandin E2 promotes angiogenesis in colorectal cancer.

Authors:  Dingzhi Wang; Haibin Wang; Joanne Brown; Takiko Daikoku; Wei Ning; Qiong Shi; Ann Richmond; Robert Strieter; Sudhansu K Dey; Raymond N DuBois
Journal:  J Exp Med       Date:  2006-03-27       Impact factor: 14.307

10.  Adaptation of endothelial cells to physiologically-modeled, variable shear stress.

Authors:  Joseph S Uzarski; Edward W Scott; Peter S McFetridge
Journal:  PLoS One       Date:  2013-02-14       Impact factor: 3.240

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1.  Treatment with dimethyl fumarate reduces the formation and rupture of intracranial aneurysms: Role of Nrf2 activation.

Authors:  Crissey L Pascale; Alejandra N Martinez; Christopher Carr; David M Sawyer; Marcelo Ribeiro-Alves; Mimi Chen; Devon B O'Donnell; Jessie J Guidry; Peter S Amenta; Aaron S Dumont
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2.  M1 macrophages are required for murine cerebral aneurysm formation.

Authors:  Kamil W Nowicki; Koji Hosaka; Frank J Walch; Edward W Scott; Brian L Hoh
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3.  Identification of crucial genes in intracranial aneurysm based on weighted gene coexpression network analysis.

Authors:  X Zheng; C Xue; G Luo; Y Hu; W Luo; X Sun
Journal:  Cancer Gene Ther       Date:  2015-02-27       Impact factor: 5.987

Review 4.  Bioprinting of freestanding vascular grafts and the regulatory considerations for additively manufactured vascular prostheses.

Authors:  Sara Abdollahi; Joseph Boktor; Narutoshi Hibino
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Review 5.  Disturbed flow's impact on cellular changes indicative of vascular aneurysm initiation, expansion, and rupture: A pathological and methodological review.

Authors:  Kevin Sunderland; Jingfeng Jiang; Feng Zhao
Journal:  J Cell Physiol       Date:  2021-09-06       Impact factor: 6.384

6.  Hemodynamic characteristics in a cerebral aneurysm model using non-Newtonian blood analogues.

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Journal:  Phys Fluids (1994)       Date:  2022-10-03       Impact factor: 4.980

7.  Aneurysm-on-a-Chip: Setting Flow Parameters for Microfluidic Endothelial Cultures Based on Computational Fluid Dynamics Modeling of Intracranial Aneurysms.

Authors:  Aisen Vivas; Julia Mikhal; Gabriela M Ong; Anna Eigenbrodt; Andries D van der Meer; Rene Aquarius; Bernard J Geurts; Hieronymus D Boogaarts
Journal:  Brain Sci       Date:  2022-05-05

8.  The efficacy of microsurgery in the treatment of cerebral aneurysm rupture and its effect on NF-κB, MCP-1 and MMP-9.

Authors:  Xintong Zhang; Lei Chen; Feng Zheng; Yanli Du
Journal:  Exp Ther Med       Date:  2017-08-14       Impact factor: 2.447

9.  Estrogen Deficiency Promotes Cerebral Aneurysm Rupture by Upregulation of Th17 Cells and Interleukin-17A Which Downregulates E-Cadherin.

Authors:  Brian L Hoh; Kelley Rojas; Li Lin; Hanain Z Fazal; Siham Hourani; Kamil W Nowicki; Matheus B Schneider; Koji Hosaka
Journal:  J Am Heart Assoc       Date:  2018-04-13       Impact factor: 5.501

10.  A molecular map of murine lymph node blood vascular endothelium at single cell resolution.

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Journal:  Nat Commun       Date:  2020-07-30       Impact factor: 14.919

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