Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi 214122, Jiangsu, China.
Zaozhuang Jienuo Enzyme Co., Ltd., Zaozhuang 277100, China.
J Agric Food Chem. 2022 Jun 22;70(24):7479-7489. doi: 10.1021/acs.jafc.2c01983. Epub 2022 Jun 9.
Cell surface display technology, which expresses and anchors proteins on the surface of microbial cells, has broad application prospects in many fields, such as protein library screening, biocatalysis, and biosensor development. However, traditional cell surface display systems have disadvantages: the molecular weight of phage display proteins cannot be too large; bacterial display lacks the post-translational modification process for eukaryotic proteins; yeast display is prone to excessive protein glycosylation and misfolding of multisubunit proteins; and the compatibility of spore display needs to be further improved. Therefore, it is extremely valuable to develop an efficient surface display platform with strong universality and stress resistance properties. Although yeast surface display systems have been extensively investigated, the establishment of a surface display platform using yeast spores has rarely been reported. In this study, a novel cell surface display platform based on natural "chitosan beads" of yeast spores was developed. The target protein in fusion with the chitosan affinity protein (CAP) exhibited strong binding capability with "chitosan beads" of yeast spores and . Moreover, this protein display system showed highly preferable enzymatic properties and stability. As an example, the displayed LXYL-P1-2-CAP demonstrated high thermostability and reusability (60% of the initial activity after seven cycles of reuse), high storage stability (75% of original activity after 8 weeks), and excellent tolerance to a concentration up to 75% (v/v) organic reagents. To prove the practicability of this surface display system, the semisynthesis of paclitaxel intermediate was demonstrated and its highest conversion rate was 92% using 0.25 mM substrate. This study provides a novel and useful platform for the surface display of proteins, especially for multimeric macromolecular proteins of eukaryotic origin.
细胞表面展示技术将蛋白质表达并锚定在微生物细胞表面,在蛋白质文库筛选、生物催化和生物传感器开发等许多领域具有广泛的应用前景。然而,传统的细胞表面展示系统存在一些缺点:噬菌体展示蛋白的分子量不能太大;细菌展示缺乏真核蛋白的翻译后修饰过程;酵母展示容易导致蛋白质过度糖基化和多亚基蛋白的错误折叠;孢子展示的兼容性有待进一步提高。因此,开发一种具有强通用性和抗应激性的高效表面展示平台极具价值。尽管已经广泛研究了酵母表面展示系统,但利用酵母孢子建立表面展示平台的报道却很少。本研究开发了一种基于酵母孢子天然“壳聚糖珠”的新型细胞表面展示平台。融合了壳聚糖亲和蛋白(CAP)的目标蛋白与酵母孢子的“壳聚糖珠”具有很强的结合能力。此外,该蛋白展示系统表现出了高度优选的酶学性质和稳定性。例如,展示的 LXYL-P1-2-CAP 表现出了很高的热稳定性和可重复使用性(重复使用七次后仍保留初始活性的 60%)、高储存稳定性(8 周后仍保留原始活性的 75%)和对高达 75%(v/v)有机溶剂的优异耐受性。为了证明这种表面展示系统的实用性,展示了紫杉醇中间体的半合成,使用 0.25mM 底物时其最高转化率达到 92%。本研究为蛋白质的表面展示提供了一个新颖而有用的平台,特别是对于真核来源的多聚大分子蛋白质。