Department of Plant Breeding, Swedish University of Agricultural Sciences , Box 101, SE-230 53 Alnarp, Sweden.
Biomacromolecules. 2015 Mar 9;16(3):695-705. doi: 10.1021/bm5017496. Epub 2015 Feb 17.
In the present study, we were able to produce composites of wheat gluten (WG) protein and a novel genetically modified potato starch (MPS) with attractive mechanical and gas barrier properties using extrusion. Characterization of the MPS revealed an altered chain length distribution of the amylopectin fraction and slightly increased amylose content compared to wild type potato starch. WG and MPS of different ratios plasticized with either glycerol or glycerol and water were extruded at 110 and 130 °C. The nanomorphology of the composites showed the MPS having semicrystalline structure of a characteristic lamellar arrangement with an approximately 100 Å period observed by small-angle X-ray scattering and a B-type crystal structure observed by wide-angle X-ray scattering analysis. WG has a structure resembling the hexagonal macromolecular arrangement as reported previously in WG films. A larger amount of β-sheets was observed in the samples 70/30 and 30/70 WG-MPS processed at 130 °C with 45% glycerol. Highly polymerized WG protein was found in the samples processed at 130 °C versus 110 °C. Also, greater amounts of WG protein in the blend resulted in greater extensibility (110 °C) and a decrease in both E-modulus and maximum stress at 110 and 130 °C, respectively. Under ambient conditions the WG-MPS composite (70/30) with 45% glycerol showed excellent gas barrier properties to be further explored in multilayer film packaging applications.
在本研究中,我们成功地利用挤压技术制备了具有吸引力的机械和气体阻隔性能的小麦面筋(WG)蛋白和新型基因改良马铃薯淀粉(MPS)复合材料。对 MPS 的特性分析表明,与野生型马铃薯淀粉相比,支链淀粉部分的链长分布发生了改变,直链淀粉含量略有增加。用甘油或甘油和水对不同比例的 WG 和 MPS 进行增塑,然后在 110 和 130°C 下进行挤压。复合材料的纳米形态显示,MPS 具有特征层状排列的半结晶结构,通过小角 X 射线散射观察到约 100 Å 的周期,通过广角 X 射线散射分析观察到 B 型晶体结构。WG 具有类似于之前报道的 WG 薄膜中的六方大分子排列的结构。在 130°C 下用 45%甘油处理的 70/30 和 30/70 WG-MPS 样品中观察到更多的 β-折叠。在 130°C 下处理的样品中发现了高度聚合的 WG 蛋白,而在 110°C 下处理的样品中则没有。此外,在共混物中添加更多的 WG 蛋白会导致更大的延展性(110°C),并分别降低 110 和 130°C 时的 E 模量和最大应力。在环境条件下,70/30 比例的 WG-MPS 复合材料(含 45%甘油)具有出色的气体阻隔性能,可进一步探索用于多层薄膜包装应用。