Biocatalysis, Department of Biotechnology, Delft University of Technology, Delft, The Netherlands.
EMBL Hamburg, Hamburg, Germany.
Appl Environ Microbiol. 2019 Apr 4;85(8). doi: 10.1128/AEM.03084-18. Print 2019 Apr 15.
LeLoir glycosyltransferases are important biocatalysts for the production of glycosidic bonds in natural products, chiral building blocks, and pharmaceuticals. Trehalose transferase (TreT) is of particular interest since it catalyzes the stereo- and enantioselective α,α-(1→1) coupling of a nucleotide sugar donor and monosaccharide acceptor for the synthesis of disaccharide derivatives. Heterologously expressed thermophilic trehalose transferases were found to be intrinsically aggregation prone and are mainly expressed as catalytically active inclusion bodies in To disfavor protein aggregation, the thermostable protein mCherry was explored as a fluorescent protein tag. The fusion of mCherry to trehalose transferase from (TreT) demonstrated increased protein solubility. Chaotropic agents like guanidine or the divalent cations Mn(II), Ca(II), and Mg(II) enhanced the enzyme activity of the fusion protein. The thermodynamic equilibrium constant, , for the reversible synthesis of trehalose from glucose and a nucleotide sugar was determined in both the synthesis and hydrolysis directions utilizing UDP-glucose and ADP-glucose, respectively. UDP-glucose was shown to achieve higher conversions than ADP-glucose, highlighting the importance of the choice of nucleotide sugars for LeLoir glycosyltransferases under thermodynamic control. The heterologous expression of proteins in is of great relevance for their functional and structural characterization and applications. However, the formation of insoluble inclusion bodies is observed in approximately 70% of all cases, and the subsequent effects can range from reduced soluble protein yields to a complete failure of the expression system. Here, we present an efficient methodology for the production and analysis of a thermostable, aggregation-prone trehalose transferase (TreT) from via its fusion with mCherry as a thermostable fluorescent protein tag. This fusion strategy allowed for increased enzyme stability and solubility and could be applied to other (thermostable) proteins, allowing rapid visualization and quantification of the mCherry-fused protein of interest. Finally, we have demonstrated that the enzymatic synthesis of trehalose from glucose and a nucleotide sugar is reversible by approaching the thermodynamic equilibrium in both the synthesis and hydrolysis directions. Our results show that uridine establishes an equilibrium constant which is more in favor of the product trehalose than when adenosine is employed as the nucleotide under identical conditions. The influence of different nucleotides on the reaction can be generalized for all LeLoir glycosyltransferases under thermodynamic control as the position of the equilibrium depends solely on the reaction conditions and is not affected by the nature of the catalyst.
LeLoir 糖基转移酶是天然产物、手性砌块和药物中糖苷键合成的重要生物催化剂。海藻糖转移酶 (TreT) 特别有趣,因为它催化核苷酸糖供体和单糖受体的立体和对映选择性α,α-(1→1)偶联,用于二糖衍生物的合成。发现异源表达的嗜热海藻糖转移酶容易内在聚集,并且主要以催化活性包含体的形式在 中表达。为了抑制蛋白质聚集,研究了热稳定蛋白 mCherry 作为荧光蛋白标签。mCherry 与来自 (TreT)的海藻糖转移酶融合证明了蛋白质溶解度的增加。变性剂如胍或二价阳离子 Mn(II)、Ca(II) 和 Mg(II) 增强了融合蛋白的酶活性。利用 UDP-葡萄糖和 ADP-葡萄糖分别在合成和水解方向上,确定了可逆合成海藻糖的热力学平衡常数 ,对于来自葡萄糖和核苷酸糖的海藻糖的可逆合成。结果表明 UDP-葡萄糖比 ADP-葡萄糖实现了更高的转化率,突出了在热力学控制下选择核苷酸糖对 LeLoir 糖基转移酶的重要性。在 中异源表达蛋白质对于它们的功能和结构表征和应用非常重要。然而,在大约 70%的情况下,会观察到不溶性包涵体的形成,随后的影响范围从可溶性蛋白产量降低到表达系统完全失败。在这里,我们提出了一种通过融合 mCherry 作为热稳定荧光蛋白标签来生产和分析来自 (Thermus thermophilus)的不稳定、易聚集的海藻糖转移酶 (TreT) 的有效方法。这种融合策略允许增加酶的稳定性和溶解度,并可应用于其他(热稳定)蛋白质,允许快速可视化和量化感兴趣的 mCherry 融合蛋白。最后,我们证明了通过在合成和水解方向上接近热力学平衡,可以使葡萄糖和核苷酸糖的酶促合成逆转。我们的结果表明,与使用腺苷作为核苷酸时相比,尿苷在相同条件下建立了更有利于产物海藻糖的平衡常数。不同核苷酸对反应的影响可以推广到所有在热力学控制下的 LeLoir 糖基转移酶,因为平衡的位置仅取决于反应条件,不受催化剂性质的影响。