Yildirim Deniz, Tükel S Seyhan, Alagöz Dilek
Dept. of Chemistry, Faculty of Sciences & Letters, University of Cukurova, Adana, 01330, Turkey.
Biotechnol Prog. 2014 Jul-Aug;30(4):818-27. doi: 10.1002/btpr.1925. Epub 2014 May 17.
Hydroxynitrile lyases are powerful catalysts in the synthesis of enantiopure cyanohydrins which are key synthons in the preparations of a variety of important chemicals. The response surface methodology including three-factor and three-level Box-Behnken design was applied to optimize immobilization of hydroxynitrile lyase purified partially from Prunus dulcis seeds as crosslinked enzyme aggregates (PdHNL-CLEAs). The quadratic model was developed for predicting the response and its adequacy was validated with the analysis of variance test. The optimized immobilization parameters were initial glutaraldehyde concentration, ammonium sulfate saturation concentration, and crosslinking time, and the response was relative activity of PdHNL-CLEA. The optimal conditions were determined as initial glutaraldehyde concentration of 25% w/v, ammonium sulfate saturation concentration of 43% w/v, and crosslinking time of 18 h. The preparations of PdHNL-CLEA were examined for the synthesis of (R)-mandelonitrile, (R)-2-chloromandelonitrile, (R)-3,4-dihydroxymandelonitrile, (R)-2-hydroxy-4-phenyl butyronitrile, (R)-4-bromomandelonitrile, (R)-4-fluoromandelonitrile, and (R)-4-nitromandelonitrile from their corresponding aldehydes and hydrocyanic acid. After 96-h reaction time, the yield-enantiomeric excess values (%) were 100-99, 100-21, 100-99, 83-91, 100-99, 100-72, and 100-14%, respectively, for (R)-mandelonitrile, (R)-2-chloromandelonitrile, (R)-3,4-dihydroxymandelonitrile, (R)-2-hydroxy-4-phenyl butyronitrile, (R)-4-bromomandelonitrile, (R)-4-fluoromandelonitrile, and (R)-4-nitromandelonitrile. The results show that PdHNL-CLEA offers a promising potential for the preparation of enantiopure (R)-mandelonitrile, (R)-3,4-dihydroxymandelonitrile, (R)-2-hydroxy-4-phenyl butyronitrile, and (R)-4-bromomandelonitrile with a high yield and enantiopurity.
羟基腈裂解酶是合成对映体纯氰醇的高效催化剂,而氰醇是制备多种重要化学品的关键合成子。采用包含三因素和三水平的Box-Behnken设计的响应面法,对从甜杏仁种子中部分纯化得到的羟基腈裂解酶作为交联酶聚集体(PdHNL-CLEAs)的固定化条件进行优化。建立了二次模型来预测响应值,并通过方差分析验证了其适用性。优化的固定化参数为戊二醛初始浓度、硫酸铵饱和浓度和交联时间,响应值为PdHNL-CLEA的相对活性。确定的最佳条件为戊二醛初始浓度25% w/v、硫酸铵饱和浓度43% w/v和交联时间18小时。考察了PdHNL-CLEA用于从相应醛类和氢氰酸合成(R)-扁桃腈、(R)-2-氯扁桃腈、(R)-3,4-二羟基扁桃腈、(R)-2-羟基-4-苯基丁腈、(R)-4-溴扁桃腈、(R)-4-氟扁桃腈和(R)-4-硝基扁桃腈的性能。反应96小时后,(R)-扁桃腈、(R)-2-氯扁桃腈、(R)-3,4-二羟基扁桃腈、(R)-2-羟基-4-苯基丁腈、(R)-4-溴扁桃腈、(R)-4-氟扁桃腈和(R)-4-硝基扁桃腈的产率-对映体过量值(%)分别为100-99、100-21、100-99、83-91、100-99、100-72和100-14%。结果表明,PdHNL-CLEA在制备高产率和高对映体纯度的对映体纯(R)-扁桃腈、(R)-3,4-二羟基扁桃腈、(R)-2-羟基-4-苯基丁腈和(R)-4-溴扁桃腈方面具有广阔的应用前景。