Cargando…

Inflammation and Mechanical Stress Stimulate Osteogenic Differentiation of Human Aortic Valve Interstitial Cells

Background: Aortic valve calcification is an active proliferative process, where interstitial cells of the valve transform into either myofibroblasts or osteoblast-like cells causing valve deformation, thickening of cusps and finally stenosis. This process may be triggered by several factors includi...

Descripción completa

Detalles Bibliográficos
Autores principales: Bogdanova, Maria, Kostina, Aleksandra, Zihlavnikova Enayati, Katarina, Zabirnyk, Arsenii, Malashicheva, Anna, Stensløkken, Kåre-Olav, Sullivan, Gareth John, Kaljusto, Mari-Liis, Kvitting, John-Peder Escobar, Kostareva, Anna, Vaage, Jarle, Rutkovskiy, Arkady
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6256176/
https://www.ncbi.nlm.nih.gov/pubmed/30524301
http://dx.doi.org/10.3389/fphys.2018.01635
_version_ 1783374095386148864
author Bogdanova, Maria
Kostina, Aleksandra
Zihlavnikova Enayati, Katarina
Zabirnyk, Arsenii
Malashicheva, Anna
Stensløkken, Kåre-Olav
Sullivan, Gareth John
Kaljusto, Mari-Liis
Kvitting, John-Peder Escobar
Kostareva, Anna
Vaage, Jarle
Rutkovskiy, Arkady
author_facet Bogdanova, Maria
Kostina, Aleksandra
Zihlavnikova Enayati, Katarina
Zabirnyk, Arsenii
Malashicheva, Anna
Stensløkken, Kåre-Olav
Sullivan, Gareth John
Kaljusto, Mari-Liis
Kvitting, John-Peder Escobar
Kostareva, Anna
Vaage, Jarle
Rutkovskiy, Arkady
author_sort Bogdanova, Maria
collection PubMed
description Background: Aortic valve calcification is an active proliferative process, where interstitial cells of the valve transform into either myofibroblasts or osteoblast-like cells causing valve deformation, thickening of cusps and finally stenosis. This process may be triggered by several factors including inflammation, mechanical stress or interaction of cells with certain components of extracellular matrix. The matrix is different on the two sides of the valve leaflets. We hypothesize that inflammation and mechanical stress stimulate osteogenic differentiation of human aortic valve interstitial cells (VICs) and this may depend on the side of the leaflet. Methods: Interstitial cells isolated from healthy and calcified human aortic valves were cultured on collagen or elastin coated plates with flexible bottoms, simulating the matrix on the aortic and ventricular side of the valve leaflets, respectively. The cells were subjected to 10% stretch at 1 Hz (FlexCell bioreactor) or treated with 0.1 μg/ml lipopolysaccharide, or both during 24 h. Gene expression of myofibroblast- and osteoblast-specific genes was analyzed by qPCR. VICs cultured in presence of osteogenic medium together with lipopolysaccharide, 10% stretch or both for 14 days were stained for calcification using Alizarin Red. Results: Treatment with lipopolysaccharide increased expression of osteogenic gene bone morphogenetic protein 2 (BMP2) (5-fold increase from control; p = 0.02) and decreased expression of mRNA of myofibroblastic markers: α-smooth muscle actin (ACTA2) (50% reduction from control; p = 0.0006) and calponin (CNN1) (80% reduction from control; p = 0.0001) when cells from calcified valves were cultured on collagen, but not on elastin. Mechanical stretch of VICs cultured on collagen augmented the effect of lipopolysaccharide. Expression of periostin (POSTN) was inhibited in cells from calcified donors after treatment with lipopolysaccharide on collagen (70% reduction from control, p = 0.001), but not on elastin. Lipopolysaccharide and stretch both enhanced the pro-calcific effect of osteogenic medium, further increasing the effect when combined for cells cultured on collagen, but not on elastin. Conclusion: Inflammation and mechanical stress trigger expression of osteogenic genes in VICs in a side-specific manner, while inhibiting the myofibroblastic pathway. Stretch and lipopolysaccharide synergistically increase calcification.
format Online
Article
Text
id pubmed-6256176
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-62561762018-12-06 Inflammation and Mechanical Stress Stimulate Osteogenic Differentiation of Human Aortic Valve Interstitial Cells Bogdanova, Maria Kostina, Aleksandra Zihlavnikova Enayati, Katarina Zabirnyk, Arsenii Malashicheva, Anna Stensløkken, Kåre-Olav Sullivan, Gareth John Kaljusto, Mari-Liis Kvitting, John-Peder Escobar Kostareva, Anna Vaage, Jarle Rutkovskiy, Arkady Front Physiol Physiology Background: Aortic valve calcification is an active proliferative process, where interstitial cells of the valve transform into either myofibroblasts or osteoblast-like cells causing valve deformation, thickening of cusps and finally stenosis. This process may be triggered by several factors including inflammation, mechanical stress or interaction of cells with certain components of extracellular matrix. The matrix is different on the two sides of the valve leaflets. We hypothesize that inflammation and mechanical stress stimulate osteogenic differentiation of human aortic valve interstitial cells (VICs) and this may depend on the side of the leaflet. Methods: Interstitial cells isolated from healthy and calcified human aortic valves were cultured on collagen or elastin coated plates with flexible bottoms, simulating the matrix on the aortic and ventricular side of the valve leaflets, respectively. The cells were subjected to 10% stretch at 1 Hz (FlexCell bioreactor) or treated with 0.1 μg/ml lipopolysaccharide, or both during 24 h. Gene expression of myofibroblast- and osteoblast-specific genes was analyzed by qPCR. VICs cultured in presence of osteogenic medium together with lipopolysaccharide, 10% stretch or both for 14 days were stained for calcification using Alizarin Red. Results: Treatment with lipopolysaccharide increased expression of osteogenic gene bone morphogenetic protein 2 (BMP2) (5-fold increase from control; p = 0.02) and decreased expression of mRNA of myofibroblastic markers: α-smooth muscle actin (ACTA2) (50% reduction from control; p = 0.0006) and calponin (CNN1) (80% reduction from control; p = 0.0001) when cells from calcified valves were cultured on collagen, but not on elastin. Mechanical stretch of VICs cultured on collagen augmented the effect of lipopolysaccharide. Expression of periostin (POSTN) was inhibited in cells from calcified donors after treatment with lipopolysaccharide on collagen (70% reduction from control, p = 0.001), but not on elastin. Lipopolysaccharide and stretch both enhanced the pro-calcific effect of osteogenic medium, further increasing the effect when combined for cells cultured on collagen, but not on elastin. Conclusion: Inflammation and mechanical stress trigger expression of osteogenic genes in VICs in a side-specific manner, while inhibiting the myofibroblastic pathway. Stretch and lipopolysaccharide synergistically increase calcification. Frontiers Media S.A. 2018-11-20 /pmc/articles/PMC6256176/ /pubmed/30524301 http://dx.doi.org/10.3389/fphys.2018.01635 Text en Copyright © Bogdanova, Kostina, Zihlavnikova Enayati, Zabirnyk, Malashicheva, Stensløkken, Sullivan, Kaljusto, Kvitting, Kostareva, Vaage and Rutkovskiy. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Bogdanova, Maria
Kostina, Aleksandra
Zihlavnikova Enayati, Katarina
Zabirnyk, Arsenii
Malashicheva, Anna
Stensløkken, Kåre-Olav
Sullivan, Gareth John
Kaljusto, Mari-Liis
Kvitting, John-Peder Escobar
Kostareva, Anna
Vaage, Jarle
Rutkovskiy, Arkady
Inflammation and Mechanical Stress Stimulate Osteogenic Differentiation of Human Aortic Valve Interstitial Cells
title Inflammation and Mechanical Stress Stimulate Osteogenic Differentiation of Human Aortic Valve Interstitial Cells
title_full Inflammation and Mechanical Stress Stimulate Osteogenic Differentiation of Human Aortic Valve Interstitial Cells
title_fullStr Inflammation and Mechanical Stress Stimulate Osteogenic Differentiation of Human Aortic Valve Interstitial Cells
title_full_unstemmed Inflammation and Mechanical Stress Stimulate Osteogenic Differentiation of Human Aortic Valve Interstitial Cells
title_short Inflammation and Mechanical Stress Stimulate Osteogenic Differentiation of Human Aortic Valve Interstitial Cells
title_sort inflammation and mechanical stress stimulate osteogenic differentiation of human aortic valve interstitial cells
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6256176/
https://www.ncbi.nlm.nih.gov/pubmed/30524301
http://dx.doi.org/10.3389/fphys.2018.01635
work_keys_str_mv AT bogdanovamaria inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT kostinaaleksandra inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT zihlavnikovaenayatikatarina inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT zabirnykarsenii inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT malashichevaanna inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT stensløkkenkareolav inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT sullivangarethjohn inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT kaljustomariliis inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT kvittingjohnpederescobar inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT kostarevaanna inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT vaagejarle inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells
AT rutkovskiyarkady inflammationandmechanicalstressstimulateosteogenicdifferentiationofhumanaorticvalveinterstitialcells