Zinc-Alpha-2-Glycoprotein Peptide Downregulates Type I and III Collagen Expression via Suppression of TGF-β and p-Smad 2/3 Pathway in Keloid Fibroblasts and Rat Incisional Model.

IF 4.4 4区 医学 Q2 CELL & TISSUE ENGINEERING Tissue engineering and regenerative medicine Pub Date : 2024-10-01 Epub Date: 2024-08-06 DOI:10.1007/s13770-024-00664-y
Shin Hyun Kim, Jung Min Oh, Hyun Roh, Kee-Won Lee, Ju Hee Lee, Won Jai Lee
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Abstract

Background: Keloids and hypertrophic scars result from abnormal collagen accumulation and the inhibition of its degradation. Although the pathogenesis remains unclear, excessive accumulation of the extracellular matrix (ECM) is believed to be associated with the TGF-β/SMAD pathway. Zinc-alpha-2-glycoprotein (ZAG) inhibits TGF-β-mediated epithelial-to-mesenchymal transdifferentiation and impacts skin barrier functions. In this study, we investigated the potential of a small ZAG-derived peptide against hypertrophic scars and keloids.

Methods: The study examined cell proliferation and mRNA expression of collagen types I and III in human dermal fibroblast (HDF) cell lines and keloid-derived fibroblasts (KF) following ZAG peptide treatment. A rat incisional wound model was used to evaluate the effect of ZAG peptide in scar tissue.

Results: Significantly lower mRNA levels of collagen types I and III were observed in ZAG-treated fibroblasts, whereas matrix metalloproteinase (MMP)-1 and MMP-3 mRNA levels were significantly increased in HDFs and KFs. Furthermore, ZAG peptide significantly reduced protein expression of collagen type I and III, TGF-β1, and p-Smad2/3 complex in KFs. Rat incisional scar models treated with ZAG peptide presented narrower scar areas and reduced immature collagen deposition, along with decreased expression of collagen type I, α-SMA, and p-Smad2/3.

Conclusion: ZAG peptide effectively suppresses the TGF-β and p-Smad2/3 pathway and inhibits excessive cell proliferation during scar formation, suggesting its potential therapeutic implications against keloids and hypertrophic scars.

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锌-α-2-糖蛋白肽通过抑制 TGF-β 和 p-Smad 2/3 通路下调瘢痕疙瘩成纤维细胞和大鼠切口模型中 I 型和 III 型胶原蛋白的表达
背景:瘢痕疙瘩和增生性疤痕是胶原蛋白异常堆积和降解受抑制的结果。虽然发病机制尚不清楚,但细胞外基质(ECM)的过度积聚被认为与 TGF-β/SMAD 通路有关。锌-α-2-糖蛋白(ZAG)可抑制 TGF-β 介导的上皮细胞向间质细胞的转分化,并影响皮肤屏障功能。在这项研究中,我们探讨了一种源自 ZAG 的小肽对抗增生性疤痕和瘢痕疙瘩的潜力:本研究检测了经 ZAG 肽处理后的人真皮成纤维细胞(HDF)细胞系和瘢痕疙瘩衍生成纤维细胞(KF)的细胞增殖以及 I 型和 III 型胶原蛋白的 mRNA 表达。大鼠切口模型用于评估 ZAG 肽对瘢痕组织的影响:结果:经 ZAG 处理的成纤维细胞中 I 型和 III 型胶原的 mRNA 水平显著降低,而 HDFs 和 KFs 中基质金属蛋白酶(MMP)-1 和 MMP-3 mRNA 水平显著升高。此外,ZAG 肽还能明显降低 KFs 中 I 型和 III 型胶原蛋白、TGF-β1 和 p-Smad2/3 复合物的蛋白表达。用 ZAG 肽治疗的大鼠切口瘢痕模型的瘢痕面积更窄,未成熟胶原沉积减少,I 型胶原、α-SMA 和 p-Smad2/3 的表达也减少:结论:ZAG 肽能有效抑制 TGF-β 和 p-Smad2/3 通路,抑制疤痕形成过程中细胞的过度增殖,对瘢痕疙瘩和增生性疤痕具有潜在的治疗意义。
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来源期刊
Tissue engineering and regenerative medicine
Tissue engineering and regenerative medicine CELL & TISSUE ENGINEERING-ENGINEERING, BIOMEDICAL
CiteScore
6.80
自引率
5.60%
发文量
83
审稿时长
6-12 weeks
期刊介绍: Tissue Engineering and Regenerative Medicine (Tissue Eng Regen Med, TERM), the official journal of the Korean Tissue Engineering and Regenerative Medicine Society, is a publication dedicated to providing research- based solutions to issues related to human diseases. This journal publishes articles that report substantial information and original findings on tissue engineering, medical biomaterials, cells therapy, stem cell biology and regenerative medicine.
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