Department of Microbiology, School of Sciences, Jain University, 18/3, 9th Main, Jayanagar 3rd Block, Bangalore, 560011, Karnataka, India.
Department of Biotechnology, School of Sciences, Jain University, 18/3, 9th Main, Jayanagar 3rd Block, Bangalore, 560011, Karnataka, India.
J Environ Manage. 2020 Feb 1;255:109884. doi: 10.1016/j.jenvman.2019.109884. Epub 2019 Dec 3.
Polyhydroxyalkanoates (PHAs) are biodegradable biopolymers acclaimed as an eco-friendly substitute of hazardously polluting petrochemical plastics. Using industrial by-products as PHA feedstocks could improve its process economics and market implementation. Valorizing the plenteous, nutritive pollutant whey as PHA production feedstock would be an excellent whey management strategy. This study aimed at whole/crude whey valorization for value-added PHA production using B. megaterium Ti3 innate protease, alleviating pretreatments. Response surface methodology (RSM) media optimization ascertained whey (%) as the key influential factor (p < 0.05). The optimized and validated RSM model (R, 0.991; desirability, 1) facilitated 12.2, 11.5 folds increased PHA yield (2.20 ± 0.11 g/L) and productivity (0.05 gPHA/L/h). A positive correlation (r, 0.95 and 0.87) was observed amid the innate enzymes (protease and lipase) and PHA production. The PHA was characterized by H and C NMR, GPC, TGA, and was identified as poly (3-hydroxybutyrate) (P3HB) by NMR. A significantly reduced roughness (110 ± 5.6 nm); increased hydrophilicity (8.6 ± 0.3 and 8.7 ± 0.5%), protein adsorption (68.75 ± 2.55 μg/cm) and 1.6 folds higher biocompatibility achieved on poly (ethylene glycol) (PEG) blending compared to neat P3HB films. This is the first report on B. megaterium innate enzyme based whey valorization to PHAs also demonstrating its biomedical applicability.
聚羟基脂肪酸酯(PHA)是一种可生物降解的生物聚合物,被誉为对环境有害的石油化工塑料的环保替代品。使用工业副产品作为 PHA 的原料可以提高其工艺经济性和市场应用。将丰富的、有营养的污染物乳清作为 PHA 生产的原料,将是一种极好的乳清管理策略。本研究旨在利用巨大芽孢杆菌 Ti3 天然蛋白酶对全乳/粗乳清进行增值利用,以生产附加值 PHA,从而减轻预处理的负担。响应面法(RSM)对培养基进行了优化,确定乳清(%)是关键影响因素(p<0.05)。优化和验证的 RSM 模型(R,0.991;理想度,1)促进了 PHA 产量(2.20±0.11g/L)和生产力(0.05gPHA/L/h)分别提高了 12.2 倍和 11.5 倍。天然酶(蛋白酶和脂肪酶)和 PHA 生产之间存在正相关(r,0.95 和 0.87)。PHA 通过 H 和 C NMR、GPC、TGA 进行了表征,通过 NMR 鉴定为聚(3-羟基丁酸酯)(P3HB)。与纯 P3HB 薄膜相比,PEG 共混物的粗糙度显著降低(110±5.6nm);亲水性提高(8.6±0.3 和 8.7±0.5%)、蛋白质吸附量增加(68.75±2.55μg/cm)和生物相容性提高了 1.6 倍。这是首次报道基于巨大芽孢杆菌天然酶的乳清增值利用生产 PHA,也证明了其在生物医学中的应用。