Superior low-immunogenicity of tilapia type I collagen based on unique secondary structure with single calcium binding motif over terrestrial mammals by inhibiting activation of DC intracellular Ca2+-mediated STIM1-Orai1/NF-кB pathway

IF 8.1 1区 工程技术 Q1 MATERIALS SCIENCE, BIOMATERIALS Materials science & engineering. C, Materials for biological applications Pub Date : 2021-12-01 DOI:10.1016/j.msec.2021.112503
Xiao Xu , Baiyan Sui , Xin Liu, Jiao Sun
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引用次数: 2

Abstract

The reason for low- or non-immunogenicity of fish collagens is still in doubt, which, to some extent, bottlenecks their production and clinical application as biomaterials. Employing bovine or porcine type I collagens (BCI or PCI) as controls in this paper, we intensively investigate the influence of tilapia type I collagens (TCI) on the function of dendritic cells (DCs) and T cells. From bio-informatic analyses, as well as data obtained in vitro and in vivo, we find the variations in amino acid sequences lead to only one calcium binding motif in the secondary structure of TCI, compared with three in BCI or PCI. So when TCI (together with the minor amount of Ca2+ they take) are uptaken, intracellular [Ca2+] remains stable and DCs maintain immature. On the contrary, those that have uptaken PCI or BCI experience not only increased [Ca2+] in the plasma but also phosphorylation of p65, resulting in activation of STIM1-Orai1/NF-кB signaling pathway and DC maturation. We fully prove our results on mice models, with no obvious cellular and humoral immune reactions. Our study primarily reveal the underlying mechanisms why TCI, different from BCI or PCI, show almost non-immunogenicity. Our findings are of great importance for the promotion and wide application of TCI in biomedicine.

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通过抑制DC细胞内Ca2+介导的STIM1-Orai1/NF-кB通路的激活,基于独特的二级结构的罗非鱼I型胶原蛋白对陆生哺乳动物具有优越的低免疫原性
鱼类胶原蛋白低免疫原性或无免疫原性的原因尚不清楚,这在一定程度上制约了其作为生物材料的生产和临床应用。本文以牛或猪I型胶原(BCI或PCI)为对照,深入研究罗非鱼I型胶原(TCI)对树突状细胞(dc)和T细胞功能的影响。从生物信息学分析以及体外和体内获得的数据中,我们发现氨基酸序列的变化导致TCI的二级结构中只有一个钙结合基序,而BCI或PCI则有三个。因此,当TCI(连同它们摄取的少量Ca2+)被摄取时,细胞内[Ca2+]保持稳定,dc保持不成熟。相反,那些接受PCI或BCI的患者不仅血浆中[Ca2+]增加,而且p65磷酸化,导致STIM1-Orai1/NF-кB信号通路激活和DC成熟。我们在小鼠模型上充分证明了我们的结果,没有明显的细胞和体液免疫反应。我们的研究主要揭示了为什么TCI与BCI或PCI不同,表现出几乎无免疫原性的潜在机制。本研究结果对TCI在生物医学领域的推广和广泛应用具有重要意义。
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来源期刊
CiteScore
12.60
自引率
0.00%
发文量
28
审稿时长
3.3 months
期刊介绍: Materials Today is a community committed to fostering the creation and sharing of knowledge and experience in materials science. With the support of Elsevier, this community publishes high-impact peer-reviewed journals, organizes academic conferences, and conducts educational webinars, among other initiatives. It serves as a hub for advancing materials science and facilitating collaboration within the scientific community.
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