前胶原肽酶
重组DNA
转基因
生物化学
分子生物学
细胞外基质
II型胶原
化学
Ⅰ型胶原
细胞培养
信号肽
三螺旋
表达式向量
酶
生物
转染
基因
肽
基质金属蛋白酶
肽序列
细胞生物学
中国仓鼠卵巢细胞
细胞外
金属蛋白酶
转基因小鼠
基因表达
细胞
蛋白酶
烟草蚀刻病毒
作者
Tairu Wu,Weisong Pan,Jiahao Pan,Yahui Wu,Waichi Li,Eric Po Keung Tsang,Chong Wu
出处
期刊:Plants
[Multidisciplinary Digital Publishing Institute]
日期:2026-03-03
卷期号:15 (5): 774-774
标识
DOI:10.3390/plants15050774
摘要
Collagen is the primary protein in the extracellular matrix of human cells and the body and is essential for cell structure and function. Here, for the first time, we report a method for producing recombinant triple-helical collagen type III (rhCOL3) in transgenic tobacco as a bioreactor. We constructed a pMDV-COL3A1 vector containing the human type III collagen gene COL3A1, as well as a pMDV-COL3A1:5E vector that coexpressed COL3A1 and the enzymes required for its posttranslational modification. These two vectors were used to transform tobacco genetically. The COL3A1 gene was successfully coexpressed in tobacco plants with four enzymes that promote its posttranslational modification. The transcriptional level of COL3A1 in the transgenic lines coexpressing posttranslational modification genes was greater than that in the transgenic lines expressing only COL3A1. The enzyme-modified recombinant collagen was subsequently purified from a COL3A1:5E transgenic line. Our experimental results demonstrated that the terminal propeptides of plant-derived rhCOL3 can be correctly cleaved through the enzymatic hydrolysis of procollagen by coexpressed procollagen C proteinase (PCP) and procollagen N proteinase (PNP). The plant-derived rhCOL3 was thermally stable because the purified peptide chains can form a triple helix structure. Experiments have shown that plant-derived rhCOL3 has biological activity. In this study, functional recombinant full-length mature type III collagen with a triple-helix structure was successfully expressed in tobacco, providing a foundational plant-made material for future applications of collagen in human skin and bone repair in regenerative medicine.
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