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Nanobiotechnology as a novel paradigm for enzyme immobilisation and stabilisation with potential applications in biodiesel production

机译:纳米生物技术是酶固定和稳定化的新范例,在生物柴油生产中具有潜在应用

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Nanobiotechnology is emerging as a new frontier of biotechnology. The potential applications of nanobiotechnology in bioenergy and biosensors have encouraged researchers in recent years to investigate new novel nanoscaffolds to build robust nanobiocatalytic systems. Enzymes, mainly hydrolytic class of enzyme, have been extensively immobilised on nanoscaffold support for long-term stabilisation by enhancing thermal, operational and storage catalytic potential. In the present report, novel nanoscaffold variants employed in the recent past for enzyme immobilisation, namely nanoparticles, nanofibres, nanotubes, nanopores, nanosheets and nanocomposites, are discussed in the context of lipase-mediated nanobiocatalysis. These nanocarriers have an inherently large surface area that leads to high enzyme loading and consequently high volumetric enzyme activity. Due to their high tensile strengths, nanoscale materials are often robust and resistant to breakage through mechanical shear in the running reactor making them suitable for multiple reuses. The optimisation of various nanosupports process parameters, such as the enzyme type and selection of suitable immobilisation method may help lead to the development of an efficient enzyme reactor. This might in turn offer a potential platform for exploring other enzymes for the development of stable nanobiocatalytic systems, which could help to address global environmental issues by facilitating the production of green energy. The successful validation of the feasibility of nanobiocatalysis for biodiesel production represents the beginning of a new field of research. The economic hurdles inherent in viably scaling nanobiocatalysts from a lab-scale to industrial biodiesel production are also discussed.
机译:纳米生物技术正在成为生物技术的新领域。纳米生物技术在生物能源和生物传感器中的潜在应用鼓励了近年来的研究人员研究新型的纳米支架,以构建强大的纳米生物催化系统。酶(主要是水解类酶)已广泛固定在纳米支架载体上,可通过增强热,操作和存储催化潜能来长期稳定。在本报告中,在脂肪酶介导的纳米生物催化的背景下,讨论了近来用于酶固定的新型纳米支架变体,即纳米颗粒,纳米纤维,纳米管,纳米孔,纳米片和纳米复合材料。这些纳米载体具有固有的大表面积,这导致高的酶负载以及因此高的体积酶活性。由于它们的高拉伸强度,纳米级材料通常是坚固的,并且可以抵抗运行中反应器中的机械剪切而破裂,从而使其适合多次重复使用。各种纳米载体工艺参数的优化,例如酶的类型和合适的固定方法的选择,可能有助于开发高效的酶反应器。这反过来可能会提供一个潜在的平台,用于探索其他酶来开发稳定的纳米生物催化系统,从而可以通过促进绿色能源的生产来帮助解决全球环境问题。纳米生物催化在生物柴油生产中的可行性的成功验证代表了新研究领域的开始。还讨论了将纳米生物催化剂从实验室规模规模扩大到工业化生物柴油生产所固有的经济障碍。

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