In vitro and in vivo evaluation of effects of high-purity magnesium on tight junction of intestinal epithelial cell.

IF 3.1 4区 医学 Q2 BIOPHYSICS Journal of Applied Biomaterials & Functional Materials Pub Date : 2023-01-01 DOI:10.1177/22808000231165281
Ting Shan, Jun Yan, Xiaonong Zhang, Yigang Chen
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Abstract

After anastomosis of sutures or pins, the restoration of intestinal barrier function can avoid several complications, such as tissue damage and inflammation. Our previous studies demonstrated the feasibility of biodegradable magnesium (Mg) pins as novel anastomosing implants to spontaneously absorb in the body, avoiding secondary removal surgery and long-term inflammation. However, the effect of Mg pins on the intestinal tight junction barrier is rarely investigated. In this study, we conducted high-purity Mg pins inserted in the intestine of rats and prepared Mg extracts cultured intestinal epithelial cell line to investigate the biological effect on the intestinal barrier associated with tight junction protein expression. We discovered that the concentration of released Mg ions over 1.7 mM was the critical threshold, above which mRNA expression of intestinal tight junction and cell apoptosis were affected considerably. Results of the immunohistochemical analysis revealed that Mg functions to stimulate ZO-1, caspase-3, occluding, and claudin-3 expressions. We offer new insight into the effectiveness of biodegradable Mg materials as the next generation of intestinal anastomosis pins, which effectively filters toxins as well as bacteria, and reduces inflammation.

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高纯度镁对肠上皮细胞紧密连接影响的体内外评价。
在缝合或钉吻合后,肠屏障功能的恢复可以避免一些并发症,如组织损伤和炎症。我们之前的研究表明,可生物降解的镁(Mg)钉作为一种新型吻合植入物的可行性,可以在体内自发吸收,避免二次移除手术和长期炎症。然而,Mg针对肠紧密结屏障的影响很少被研究。本研究采用高纯度Mg针插入大鼠肠道,制备Mg提取物培养肠上皮细胞系,研究其对紧密连接蛋白表达相关肠屏障的生物学影响。我们发现释放的Mg离子浓度超过1.7 mM是临界阈值,超过该阈值肠道紧密连接mRNA表达和细胞凋亡受到明显影响。免疫组化分析结果显示,Mg具有刺激ZO-1、caspase-3、occlocclin和claudin-3表达的功能。我们对生物可降解镁材料作为下一代肠吻合钉的有效性提供了新的见解,它有效地过滤毒素和细菌,并减少炎症。
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来源期刊
Journal of Applied Biomaterials & Functional Materials
Journal of Applied Biomaterials & Functional Materials BIOPHYSICS-ENGINEERING, BIOMEDICAL
CiteScore
4.40
自引率
4.00%
发文量
36
审稿时长
>12 weeks
期刊介绍: The Journal of Applied Biomaterials & Functional Materials (JABFM) is an open access, peer-reviewed, international journal considering the publication of original contributions, reviews and editorials dealing with clinical and laboratory investigations in the fast growing field of biomaterial sciences and functional materials. The areas covered by the journal will include: • Biomaterials / Materials for biomedical applications • Functional materials • Hybrid and composite materials • Soft materials • Hydrogels • Nanomaterials • Gene delivery • Nonodevices • Metamaterials • Active coatings • Surface functionalization • Tissue engineering • Cell delivery/cell encapsulation systems • 3D printing materials • Material characterization • Biomechanics
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