Méndez Mariana B, Trelles Jorge A, Rivero Cintia W
Laboratory of Sustainable Biotechnology (LIBioS), National University of Quilmes, Roque Sáenz Peña 352, B1876BXD, Bernal, Argentina.
National Scientific and Technical Research Council (CONICET), Godoy Cruz 2290, C1425FQB, Caba, Argentina.
AMB Express. 2020 Sep 29;10(1):173. doi: 10.1186/s13568-020-01109-0.
A novel IDA-LaNDT derivative was able to reach the highest productivity in the biosynthesis of a well-known antitumoral agent called decitabine. However, the combination of two simple and inexpensive techniques such as ionic absorption and gel entrapment with the incorporation of a bionanocomposite such as bentonite significantly improved the stability of this biocatalyst. These modifications allowed the enhancement of storage stability (for at least 18 months), reusability (400 h of successive batches without significant loss of its initial activity), and thermal and solvent stability with respect to the non-entrapped derivative. Moreover, reaction conditions were optimized by increasing the solubility of 5-aza by dilution with dimethylsulfoxide. Therefore, a scale-up of the bioprocess was assayed using the developed biocatalyst, obtaining 221 mg/L·h of DAC. Finally, green parameters were calculated using the nanostabilized biocatalyst, whose results indicated that it was able to biosynthesize DAC by a smooth, cheap, and environmentally friendly methodology.
一种新型的IDA-LaNDT衍生物在一种名为地西他滨的著名抗肿瘤药物的生物合成中能够达到最高的生产率。然而,将离子吸收和凝胶包埋这两种简单且廉价的技术与膨润土等生物纳米复合材料相结合,显著提高了这种生物催化剂的稳定性。这些改进使得储存稳定性(至少18个月)、可重复使用性(连续400小时批次,初始活性无显著损失)以及相对于未包埋衍生物的热稳定性和溶剂稳定性得到了增强。此外,通过用二甲基亚砜稀释来提高5-氮杂胞苷的溶解度,对反应条件进行了优化。因此,使用所开发的生物催化剂对生物过程进行了放大试验,获得了221mg/L·h的DAC。最后,使用纳米稳定化生物催化剂计算了绿色参数,其结果表明它能够通过一种平稳、廉价且环保的方法生物合成DAC。