特刊“细胞与细胞”和“细胞与生物反应器”相互作用的社论

IF 3.9 4区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Engineering in Life Sciences Pub Date : 2023-01-04 DOI:10.1002/elsc.202200062
Ralf Takors
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引用次数: 0

摘要

将目前的化石燃料经济转变为碳中性供应是一项巨大的挑战。当前的地缘政治问题严重危及长期建立的化石供应链,成为催生新解决方案的催化剂。在此背景下,建立弹性经济的目标符合减少人类在大气中的足迹的气候保护要求。利用可再生资源生产精细化学品和商品的生物技术过程可以在实现向循环经济的转变方面发挥重要作用。生物工艺已经成功地证明了其卓越的品质,不仅可以与现有的化石路线竞争,而且可以在工业实践中补充甚至取代它们。长期建立的例子包括微生物生产氨基酸、有机酸、技术酶、食品添加剂、活性药物成分……等等。有趣的是,主要使用单一文化。这反映了有效操纵微生物以产生感兴趣的分子的分子工具的稳步改进。然而,可能出现的问题是,单一培养是否应该是开发新型生物工艺的首选。通常,对前体、还原等效物、能量需求等的足够的产物形成需求与细胞生长和维持的需求相矛盾。此外,如果目标产物的形成与细胞的生活方式相反,宿主的基因工程很可能达到技术极限。此外,已知的抗生素生产的许多例子概述了抗生素生产只有在另一种相互作用菌株存在的情况下才开始。因此,实现具有良好平衡相互作用的共培养是建立新一代生物生产过程的有希望的方法。因此,这个主题(细胞间相互作用)是当前特刊的重点,也是德国科学基金会(DFG)优先计划“InterZell SPP2170”的中心主题,该计划共同推动了特刊。一旦在实验室中开发出来,新的生物过程应该找到进入大规模生物反应器的方式,将创新转化为实践。通常情况下,所谓的放大暴露出关键性能标准的恶化,如滴度、速率和产量(TRY)。这基本上反映了细胞对混合异质性的反应,这在工业规模中不可避免地会发生。为了减轻相关的性能损失,有必要进行深入的研究。因此,特刊还涵盖了相关研究(细胞-生物反应器相互作用),详细分析微生物反应并开发新型缩小设备。
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Editorial for the special issue ‘cell-to-cell’ and ‘cell-to-bioreactor’ interactions

Shifting the current fossil economy to a carbon neutral supply is an enormous challenge. Current geopolitical issues that severely endanger long-term established fossil supply chains function as catalysts fostering novel solutions. In this context, the goals for establishing a resilient economy meet climate protection demands for reducing the human footprint in atmosphere. Biotechnological processes for producing fine chemicals and commodities by utilizing renewable resources may play an important role to make the transformation to a circular economy happen.

Bioprocesses already successfully documented their outstanding quality not only to compete with established fossil routes but also to complement and even to replace them in industrial practice. Long-term established examples comprise the microbial production of amino acids, organic acids, technical enzymes, food additives, active pharma ingredients … and many more.

Interestingly enough, mono-cultures are used, predominately. This reflects the steady improvement of molecular tools for efficiently manipulating microbes to produce the molecule of interests. However, the question may arise whether mono-cultures should be the first choice for developing novel bioprocesses. Often enough product formation demands for precursors, reduction equivalents, energy demands, etc. that contradict cellular needs for growth and maintenance. Furthermore, the genetic engineering of hosts may well reach technical limits if targeted product formation opposes the lifestyle of the cells. Additionally, many examples for the production of antibiotics are known outlining that antibiotic production only starts in the presence of another interacting strain.

Consequently, the implementation of co-cultures with well-equilibrated interactions is a promising approach for establishing a new generation of bioproduction processes. Accordingly, this topic (cell-to-cell interactions) is highlighted in the current special issue and is also a central theme in the priority program ‘InterZell SPP2170’ of the German Science Foundation (DFG) that co-fuels the special issue.

Once developed in the labs, novel bioprocesses should find their way into large-scale bioreactors to translate innovation into practice. Often enough the so-called scale-up reveals the deterioration of key performance criteria such as titer, rates, and yield (TRY). This basically reflects cellular responses on mixing heterogeneities that inevitably occur in industrial scale. For mitigating related performance losses profound research is necessary. Consequently, the special issue also covers related studies (cell-to-bioreactor interactions) analyzing microbial responses in detail and developing novel scale-down devices.

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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.
期刊最新文献
Optimizations of Placenta Extracellular Matrix-Loaded Silk Fibroin/Alginate 3D-Printed Scaffolds Structurally and Functionally for Bone Tissue Engineering. A Consecutive Genome Engineering Method Reveals a New Phenotype and Regulation of Glucose and Glycerol Utilization in Clostridium Pasteurianum. Investigating Ultrafiltration Membranes and Operation Modes for Improved Lentiviral Vector Processing. Issue Information Cover Picture: Engineering in Life Sciences 12'24
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