Department of Chemistry, University of British Columbia, Vancouver, BC V6T 1Z1, Canada.
Michael Smith Laboratories, University of British Columbia, Vancouver, BC V6T 1Z4, Canada.
Angew Chem Int Ed Engl. 2023 May 15;62(21):e202301258. doi: 10.1002/anie.202301258. Epub 2023 Apr 14.
Suitably configured allyl ethers of unsaturated cyclitols act as substrates of β-glycosidases, reacting via allylic cation transition states. Incorporation of halogens at the vinylic position of these carbasugars, along with an activated leaving group, generates potent inactivators of β-glycosidases. Enzymatic turnover of these halogenated cyclitols (F, Cl, Br) displayed a counter-intuitive trend wherein the most electronegative substituents yielded the most labile pseudo-glycosidic linkages. Structures of complexes with the Sulfolobus β-glucosidase revealed similar enzyme-ligand interactions to those seen in complexes with a 2-fluorosugar inhibitor, the lone exception being displacement of tyrosine 322 from the active site by the halogen. Mutation of Y322 to Y322F largely abolished glycosidase activity, consistent with lost interactions at O5, but minimally affected (7-fold) rates of carbasugar hydrolysis, yielding a more selective enzyme for unsaturated cyclitol ether hydrolysis.
合适取代的不饱和环糖醇烯丙基醚可作为β-糖苷酶的底物,通过烯丙基阳离子过渡态进行反应。在这些碳环糖的乙烯基位置引入卤素以及活化离去基团,可生成β-糖苷酶的强效抑制剂。这些卤代环糖醇(F、Cl、Br)的酶促转化显示出一种违反直觉的趋势,其中电负性最强的取代基生成最不稳定的拟糖苷键。与 Sulfolobus β-葡萄糖苷酶形成复合物的结构揭示了与与 2-氟糖抑制剂形成复合物的相似的酶-配体相互作用,唯一的例外是卤素取代了活性部位的酪氨酸 322。将 Y322 突变为 Y322F 基本上完全消除了糖苷酶活性,与 O5 处的相互作用丧失一致,但对碳环糖水解的速率(7 倍)的影响最小,从而得到对不饱和环糖醇烯丙基醚水解更具选择性的酶。