Lai Cheuk Yin, Ng Ka Lun, Wang Hao, Lam Chui Chi, Wong Wan Keung Raymond
Division of Life Science, The Hong Kong University of Science and Technology, Kowloon, Hong Kong, China.
Institute of Synthetic Biology, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, China.
Microbiol Insights. 2021 Jun 15;14:11786361211024637. doi: 10.1177/11786361211024637. eCollection 2021.
CenA is an endoglucanase secreted by the Gram-positive cellulolytic bacterium, , to the environment as a glycosylated protein. The role of glycosylation in CenA is unclear. However, it seems not crucial for functional activity and secretion since the unglycosylated counterpart, recombinant CenA (rCenA), is both bioactive and secretable in . Using a systematic screening approach, we have demonstrated that rCenA is subjected to spontaneous cleavages (SC) in both the cytoplasm and culture medium of , under the influence of different environmental factors. The cleavages were found to occur in both the cellulose-binding (CellBD) and catalytic domains, with a notably higher occurring rate detected in the former than the latter. In CellBD, the cleavages were shown to occur close to potential N-linked glycosylation sites, suggesting that these sites might serve as 'attributive tags' for differentiating rCenA from endogenous proteins and the points of initiation of SC. It is hypothesized that glycosylation plays a crucial role in protecting CenA from SC when interacting with cellulose in the environment. Subsequent to hydrolysis, SC would ensure the dissociation of CenA from the enzyme-substrate complex. Thus, our findings may help elucidate the mechanisms of protein turnover and enzymatic cellulolysis.
CenA是一种由革兰氏阳性纤维素分解菌分泌到环境中的内切葡聚糖酶,以糖基化蛋白的形式存在。糖基化在CenA中的作用尚不清楚。然而,它似乎对功能活性和分泌并不关键,因为未糖基化的对应物重组CenA(rCenA)在[具体环境]中既具有生物活性又可分泌。通过系统筛选方法,我们证明rCenA在[具体环境]的细胞质和培养基中,在不同环境因素的影响下会发生自发切割(SC)。这些切割在纤维素结合(CellBD)结构域和催化结构域中均有发生,且在前一个结构域中的发生率明显高于后一个结构域。在CellBD中,切割发生在潜在的N - 连接糖基化位点附近,这表明这些位点可能作为将rCenA与内源性蛋白质区分开来的“归因标签”以及SC的起始点。据推测,糖基化在CenA与环境中的纤维素相互作用时保护其免受SC方面起着关键作用。水解后,SC将确保CenA从酶 - 底物复合物中解离。因此,我们的发现可能有助于阐明蛋白质周转和酶促纤维素分解的机制。