Compressive Force Upregulates Notch Target Genes and NOTCH2 mRNA in Human Dental Pulp Cells

Q4 Multidisciplinary
Hataichanok Charoenpong, Khitparat Kamoltham, Suchada Limsiriwong, Rutapakon Insawak, Apichart Veerawattanatigul, Sirawish Lertchatripong
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引用次数: 0

Abstract

Dental pulp cells encounter compressive force in various situations. While mechanical force can produce various effects on dental pulp cells, the mechanisms underlying their response remain unclear. In this study, we examined the mRNA expression of Notch target genes and Notch receptors in human dental pulp cells (HDPCs) under mechanical compressive force. We utilized two in vitro compressive force application models, direct compression and hydrostatic compression. The results showed that there was an upregulation of Notch target gene, HES1, in HDPCs subjected to the compressive force generated by both models for 2 hours. Hydrostatic compression also upregulated HES1 and HEY1 mRNA expression following 6 hours of force application. NOTCH2 was the only Notch receptor found to be upregulated in HDPCs following compressive force application, in which the upregulation was observed at 6 hours after hydrostatic compression. In conclusion, both hydrostatic and direct compressive forces can upregulate the mRNA expression of Notch target gene, HES1, in HDPCs. However, the hydrostatic compression model produced more prolonged activation of HES1 and it also stimulated the upregulation of HEY1 as well as NOTCH2.
压缩力上调人牙髓细胞中的 Notch 靶基因和 NOTCH2 mRNA
牙髓细胞在各种情况下都会遇到压缩力。虽然机械力可以对牙髓细胞产生各种影响,但其反应机制尚不清楚。本研究检测了Notch靶基因和Notch受体在机械压缩力作用下在人牙髓细胞(HDPCs)中的mRNA表达。我们采用了两种体外压缩力施加模型,直接压缩和静压压缩。结果显示,两种模型作用2小时后,HDPCs中Notch靶基因HES1表达均上调。静水压在施加力6小时后也上调了HES1和HEY1 mRNA的表达。NOTCH2是唯一发现HDPCs在施加压缩力后上调的Notch受体,在静水压后6小时观察到上调。综上所述,静水压和直接压缩力均可上调HDPCs中Notch靶基因HES1的mRNA表达。然而,静水压缩模型使HES1的激活时间更长,同时也刺激了HEY1和NOTCH2的上调。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Current Science and Technology
Journal of Current Science and Technology Multidisciplinary-Multidisciplinary
CiteScore
0.80
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