Suppr超能文献

脉冲电磁场疗法和直流电场调制促进成纤维样滑膜细胞迁移以加速体外软骨修复

Pulsed Electromagnetic Field Therapy and Direct Current Electric Field Modulation Promote the Migration of Fibroblast-like Synoviocytes to Accelerate Cartilage Repair In Vitro.

作者信息

Sakhrani Neeraj, Stefani Robert M, Setti Stefania, Cadossi Ruggero, Ateshian Gerard A, Hung Clark T

机构信息

Department of Biomedical Engineering, Columbia University, New York, NY 10027, USA.

Igea Clinical Biophysics, 41012 Carpi, Italy.

出版信息

Appl Sci (Basel). 2022 Dec 1;12(23). doi: 10.3390/app122312406. Epub 2022 Dec 4.

Abstract

Articular cartilage injuries are a common source of joint pain and dysfunction. As articular cartilage is avascular, it exhibits a poor intrinsic healing capacity for self-repair. Clinically, osteochondral grafts are used to surgically restore the articular surface following injury. A significant challenge remains with the repair properties at the graft-host tissue interface as proper integration is critical toward restoring normal load distribution across the joint. A key to addressing poor tissue integration may involve optimizing mobilization of fibroblast-like synoviocytes (FLS) that exhibit chondrogenic potential and are derived from the adjacent synovium, the specialized connective tissue membrane that envelops the diarthrodial joint. Synovium-derived cells have been directly implicated in the native repair response of articular cartilage. Electrotherapeutics hold potential as low-cost, low-risk, non-invasive adjunctive therapies for promoting cartilage healing via cell-mediated repair. Pulsed electromagnetic fields (PEMFs) and applied direct current (DC) electric fields (EFs) via galvanotaxis are two potential therapeutic strategies to promote cartilage repair by stimulating the migration of FLS within a wound or defect site. PEMF chambers were calibrated to recapitulate clinical standards (1.5 ± 0.2 mT, 75 Hz, 1.3 ms duration). PEMF stimulation promoted bovine FLS migration using a 2D in vitro scratch assay to assess the rate of wound closure following cruciform injury. Galvanotaxis DC EF stimulation assisted FLS migration within a collagen hydrogel matrix in order to promote cartilage repair. A novel tissue-scale bioreactor capable of applying DC EFs in sterile culture conditions to 3D constructs was designed in order to track the increased recruitment of synovial repair cells via galvanotaxis from intact bovine synovium explants to the site of a cartilage wound injury. PEMF stimulation further modulated FLS migration into the bovine cartilage defect region. Biochemical composition, histological analysis, and gene expression revealed elevated GAG and collagen levels following PEMF treatment, indicative of its pro-anabolic effect. Together, PEMF and galvanotaxis DC EF modulation are electrotherapeutic strategies with complementary repair properties. Both procedures may enable direct migration or selective homing of target cells to defect sites, thus augmenting natural repair processes for improving cartilage repair and healing.

摘要

关节软骨损伤是关节疼痛和功能障碍的常见原因。由于关节软骨无血管,其自身修复的内在能力较差。临床上,骨软骨移植用于在损伤后通过手术修复关节表面。在移植物 - 宿主组织界面的修复特性方面仍然存在重大挑战,因为适当的整合对于恢复关节正常的负荷分布至关重要。解决组织整合不良的一个关键可能涉及优化具有软骨形成潜力且源自相邻滑膜(包裹滑膜关节的特殊结缔组织膜)的成纤维样滑膜细胞(FLS)的动员。滑膜来源的细胞直接参与了关节软骨的天然修复反应。电疗法作为低成本、低风险、非侵入性的辅助疗法,具有通过细胞介导的修复促进软骨愈合的潜力。脉冲电磁场(PEMF)和通过趋电性施加的直流电(DC)电场(EFs)是两种潜在的治疗策略,可通过刺激伤口或缺损部位的FLS迁移来促进软骨修复。PEMF室经过校准以符合临床标准(1.5±0.2 mT,75 Hz,持续时间1.3 ms)。使用二维体外划痕试验评估十字形损伤后伤口闭合率,PEMF刺激促进了牛FLS的迁移。趋电性DC EF刺激辅助FLS在胶原水凝胶基质内迁移,以促进软骨修复。设计了一种新型的组织规模生物反应器,能够在无菌培养条件下将DC EFs应用于三维构建体,以便通过趋电性追踪从完整牛滑膜外植体到软骨伤口损伤部位的滑膜修复细胞募集增加情况。PEMF刺激进一步调节了FLS向牛软骨缺损区域的迁移。生化成分、组织学分析和基因表达显示PEMF治疗后糖胺聚糖和胶原蛋白水平升高,表明其促合成代谢作用。总之,PEMF和趋电性DC EF调节是具有互补修复特性的电疗法策略。这两种方法都可以使靶细胞直接迁移或选择性归巢到缺损部位,从而增强自然修复过程以改善软骨修复和愈合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3434/10035757/ded28267e673/nihms-1882206-f0001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验