利用摇动培养箱的旋转运动为好氧微生物烧瓶培养供气的装置

IF 3.9 4区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Minseo Jung, Jinwon Lee, Si Jae Park, Jeong-Geol Na
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引用次数: 0

摘要

摇瓶培养是生物工艺研究的基石,它在提供充足氧气和交换气体方面存在局限性,限制了其评估微生物生长和代谢活动的准确性。在这篇通讯中,我们介绍了一种创新的供气装置,它利用振荡培养箱的旋转运动来促进连续供气,从而有效地克服了这些限制。我们测量了传质系数(kLa),并使用不同的工作容积对谷氨酸棒杆菌 H36LsGAD 进行了批量培养,以评估其性能。结果表明,该供气装置在氧气输送方面明显优于传统的硅胶瓶塞,其 kLa 值为 2531.7 h-1,而在 230 rpm 转速下为 20.25 h-1。此外,在批量培养中,供气装置大大改善了微生物的生长,即使在较大的工作容积下也能保持指数增长。与现有系统相比,当使用 20% 的烧瓶容积时,最终细胞质量增加了 3.4 倍,当使用 60% 的烧瓶容积时,最终细胞质量显著增加了 9 倍。此外,气体供应装置确保了烧瓶内氧气供应的一致性和气体交换的高效性,克服了与低工作容积相关的挑战。这种方法为加强摇瓶培养中的气体传输提供了一种简单而有效的解决方案,缩小了实验室规模实验与工业发酵罐之间的差距。它的广泛适用性为推进生物工艺优化和放大研究带来了希望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Gas supply apparatus using rotational motion of shaking incubator for flask culture of aerobic microorganisms

Gas supply apparatus using rotational motion of shaking incubator for flask culture of aerobic microorganisms

Shake flask cultivation, a cornerstone in bioprocess research encounters limitations in supplying sufficient oxygen and exchanging gases, restricting its accuracy in assessing microbial growth and metabolic activity. In this communication, we introduce an innovative gas supply apparatus that harnesses the rotational motion of a shaking incubator to facilitate continuous air delivery, effectively overcoming these limitations. We measured the mass transfer coefficient (kLa) and conducted batch cultures of Corynebacterium glutamicum H36LsGAD using various working volumes to assess its performance. Results demonstrated that the gas supply apparatus significantly outperforms conventional silicone stoppers regarding oxygen delivery, with kLa values of 2531.7 h−1 compared to 20.25 h−1 at 230 rpm. Moreover, in batch cultures, the gas supply apparatus enabled substantial improvements in microbial growth, maintaining exponential growth even at larger working volumes. Compared to the existing system, an increase in final cell mass by a factor of 3.4-fold was observed when utilizing 20% of the flask's volume, and a remarkable 9-fold increase was achieved when using 60%. Furthermore, the gas supply apparatus ensured consistent oxygen supply and efficient gas exchange within the flask, overcoming challenges associated with low working volumes. This approach offers a simple yet effective solution to enhance gas transfer in shake flask cultivation, bridging the gap between laboratory-scale experiments and industrial fermenters. Its broad applicability holds promise for advancing research in bioprocess optimization and scale-up endeavors.

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来源期刊
Engineering in Life Sciences
Engineering in Life Sciences 工程技术-生物工程与应用微生物
CiteScore
6.40
自引率
3.70%
发文量
81
审稿时长
3 months
期刊介绍: Engineering in Life Sciences (ELS) focuses on engineering principles and innovations in life sciences and biotechnology. Life sciences and biotechnology covered in ELS encompass the use of biomolecules (e.g. proteins/enzymes), cells (microbial, plant and mammalian origins) and biomaterials for biosynthesis, biotransformation, cell-based treatment and bio-based solutions in industrial and pharmaceutical biotechnologies as well as in biomedicine. ELS especially aims to promote interdisciplinary collaborations among biologists, biotechnologists and engineers for quantitative understanding and holistic engineering (design-built-test) of biological parts and processes in the different application areas.
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