Department of Applied Chemistry, Faculty of Science and Engineering, Chuo University, 1-13-27 Kasuga, Bunkyo-ku, Tokyo 113-8551, Japan.
Chemistry. 2011 Feb 7;17(6):1849-54. doi: 10.1002/chem.201001937. Epub 2011 Jan 12.
This report describes the synthesis and enzyme activities of multilayered protein nanotubes with an α-glucosidase (αGluD) interior surface. The nanotubes were prepared by using an alternating layer-by-layer (LbL) assembly of human serum albumin (HSA) and oppositely charged poly-L-arginine (PLA) into a track-etched polycarbonate (PC) membrane (pore size=400 nm) followed by addition of αGluD as the last layer of the wall. Subsequent dissolution of the PC template yielded (PLA/HSA)(2)PLA/αGluD nanotubes. SEM measurements revealed the formation of uniform hollow cylinders with (413±17) nm outer diameter and (52±3) nm wall thickness. In aqueous media, the nanotubes captured a fluorogenic glucopyranoside, 4-methyl-umbelliferyl-α-D-glucopyranoside (MUGlc), into their one-dimensional pore space and hydrolyzed the substrate efficiently to form α-D-glucose. We determined the enzyme parameters (Michaelis constant, K(M), and catalytic constant, k(cat), values) of the protein nanotubes. The several-micrometers-long cylinders were of sufficient length to be spun down by centrifugation at 4000 g, so the product could therefore be easily separated. Similar biocatalysts were prepared by complexation of biotinylated-αGluD into HSA-based nanotubes bearing a single avidin layer as an internal surface. The obtained hybrid nanotubes also exhibited the same enzyme activity for the MUGlc hydrolysis.
本报告描述了具有α-葡萄糖苷酶(αGluD)内表面的多层蛋白纳米管的合成和酶活性。纳米管是通过交替层-层(LbL)组装人血清白蛋白(HSA)和带相反电荷的聚-L-精氨酸(PLA)到刻蚀的聚碳酸酯(PC)膜(孔径=400nm)中制备的,然后加入αGluD 作为壁的最后一层。随后溶解 PC 模板得到(PLA/HSA)(2)PLA/αGluD 纳米管。SEM 测量显示形成了均匀的空心圆柱体,外径为(413±17)nm,壁厚为(52±3)nm。在水介质中,纳米管将荧光葡萄糖苷,4-甲基伞形酮-α-D-吡喃葡萄糖苷(MUGlc)捕获到其一维孔空间中,并有效地水解底物形成α-D-葡萄糖。我们测定了蛋白纳米管的酶参数(米氏常数 K(M)和催化常数 k(cat)值)。这些数微米长的圆柱体长度足以在 4000g 下离心沉淀,因此产物可以很容易地分离。通过将生物素化的αGluD 与带有单个亲和素层的基于 HSA 的纳米管复合,制备了类似的生物催化剂,作为内部表面。所得的杂交纳米管也表现出对 MUGlc 水解的相同酶活性。