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流体静压力与生长因子对组织形成的协同及相加作用。

Synergistic and additive effects of hydrostatic pressure and growth factors on tissue formation.

作者信息

Elder Benjamin D, Athanasiou Kyriacos A

机构信息

Department of Bioengineering, Rice University, Houston, Texas, United States of America.

出版信息

PLoS One. 2008 Jun 4;3(6):e2341. doi: 10.1371/journal.pone.0002341.

Abstract

BACKGROUND

Hydrostatic pressure (HP) is a significant factor in the function of many tissues, including cartilage, knee meniscus, temporomandibular joint disc, intervertebral disc, bone, bladder, and vasculature. Though studies have been performed in assessing the role of HP in tissue biochemistry, to the best of our knowledge, no studies have demonstrated enhanced mechanical properties from HP application in any tissue.

METHODOLOGY/PRINCIPAL FINDINGS: The objective of this study was to determine the effects of hydrostatic pressure (HP), with and without growth factors, on the biomechanical and biochemical properties of engineered articular cartilage constructs, using a two-phased approach. In phase I, a 3x3 full-factorial design of HP magnitude (1, 5, 10 MPa) and frequency (0, 0.1, 1 Hz) was used, and the best two treatments were selected for use in phase II. Static HP at 5 MPa and 10 MPa resulted in significant 95% and 96% increases, respectively, in aggregate modulus (H(A)), with corresponding increases in GAG content. These regimens also resulted in significant 101% and 92% increases in Young's modulus (E(Y)), with corresponding increases in collagen content. Phase II employed a 3x3 full-factorial design of HP (no HP, 5 MPa static, 10 MPa static) and growth factor application (no GF, BMP-2+IGF-I, TGF-beta1). The combination of 10 MPa static HP and TGF-beta1 treatment had an additive effect on both H(A) and E(Y), as well as a synergistic effect on collagen content. This group demonstrated a 164% increase in H(A), a 231% increase in E(Y), an 85% increase in GAG/wet weight (WW), and a 173% increase in collagen/WW, relative to control.

CONCLUSIONS/SIGNIFICANCE: To our knowledge, this is the first study to demonstrate increases in the biomechanical properties of tissue from pure HP application, using a cartilage model. Furthermore, it is the only study to demonstrate additive or synergistic effects between HP and growth factors on tissue functional properties. These findings are exciting as coupling HP stimulation with growth factor application has allowed for the formation of tissue engineered constructs with biomechanical and biochemical properties spanning native tissue values.

摘要

背景

流体静压(HP)是许多组织功能的重要因素,包括软骨、膝关节半月板、颞下颌关节盘、椎间盘、骨骼、膀胱和脉管系统。尽管已经开展了多项研究来评估HP在组织生物化学中的作用,但据我们所知,尚无研究表明施加HP能增强任何组织的力学性能。

方法/主要发现:本研究的目的是采用两阶段方法,确定有或无生长因子情况下,流体静压(HP)对工程化关节软骨构建体的生物力学和生物化学特性的影响。在第一阶段,采用HP大小(1、5、10兆帕)和频率(0、0.1、1赫兹)的3×3全因子设计,并选择最佳的两种处理方法用于第二阶段。5兆帕和10兆帕的静态HP分别使聚集模量(H(A))显著增加95%和96%,同时糖胺聚糖含量相应增加。这些方案还使杨氏模量(E(Y))分别显著增加101%和92%,同时胶原蛋白含量相应增加。第二阶段采用HP(无HP、5兆帕静态、10兆帕静态)和生长因子应用(无生长因子、骨形态发生蛋白-2+胰岛素样生长因子-I、转化生长因子-β1)的3×3全因子设计。10兆帕静态HP与转化生长因子-β1处理的组合对H(A)和E(Y)均有累加效应,对胶原蛋白含量有协同效应。相对于对照组,该组的H(A)增加了164%,E(Y)增加了231%,糖胺聚糖/湿重(WW)增加了85%,胶原蛋白/WW增加了173%。

结论/意义:据我们所知,这是第一项使用软骨模型证明单纯施加HP可增加组织生物力学性能的研究。此外,这也是唯一一项证明HP与生长因子对组织功能特性有累加或协同效应的研究。这些发现令人兴奋,因为将HP刺激与生长因子应用相结合,能够形成具有跨越天然组织值的生物力学和生物化学特性的组织工程构建体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e562/2394656/6b9222c8934d/pone.0002341.g001.jpg

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