工业生物技术保存过程:与生物有机体自然长期保存的相似性。

IF 2.7 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
BioTech Pub Date : 2023-01-31 DOI:10.3390/biotech12010015
Alexis Laurent, Corinne Scaletta, Philippe Abdel-Sayed, Wassim Raffoul, Nathalie Hirt-Burri, Lee Ann Applegate
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引用次数: 0

摘要

冷冻保存和冻干工艺广泛用于制药、生物技术和食品工业或医学移植的保存目的。这些过程处理极低温度(例如-196°C)和水的多种物理状态,水是许多生物生命形式的普遍和必需分子。本研究首先考虑了在瑞士祖细胞移植计划下,在细胞材料冷冻保存和冻干过程中,用于支持特定水相转变的受控实验室/工业人工条件。这两种生物技术工具都成功地用于生物样品和产品的长期储存,具有可逆的准停止代谢活动(例如,在液氮中低温储存)。其次,概述了这种人工局部环境修饰与生物有机体中有利于代谢率修饰的一些自然生态位(例如隐生)之间的相似之处。具体来说,讨论了小型多细胞动物(例如缓步动物)在极端物理参数下生存的例子,进一步考虑在受控条件下可逆地减缓或暂时阻止特定复杂生物体的代谢活性率的可能性。生物有机体适应极端环境参数能力的关键例子最终使人们能够从自然生物技术和进化的角度讨论早期原始生物生命形式的出现。总的来说,所提供的例子/相似之处证实了进一步将自然过程和现象转移到受控的实验室环境中的兴趣,最终目标是获得对复杂生物有机体代谢活动的更好控制和调节能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Industrial Biotechnology Conservation Processes: Similarities with Natural Long-Term Preservation of Biological Organisms.

Industrial Biotechnology Conservation Processes: Similarities with Natural Long-Term Preservation of Biological Organisms.

Cryopreservation and lyophilization processes are widely used for conservation purposes in the pharmaceutical, biotechnological, and food industries or in medical transplantation. Such processes deal with extremely low temperatures (e.g., -196 °C) and multiple physical states of water, a universal and essential molecule for many biological lifeforms. This study firstly considers the controlled laboratory/industrial artificial conditions used to favor specific water phase transitions during cellular material cryopreservation and lyophilization under the Swiss progenitor cell transplantation program. Both biotechnological tools are successfully used for the long-term storage of biological samples and products, with reversible quasi-arrest of metabolic activities (e.g., cryogenic storage in liquid nitrogen). Secondly, similarities are outlined between such artificial localized environment modifications and some natural ecological niches known to favor metabolic rate modifications (e.g., cryptobiosis) in biological organisms. Specifically, examples of survival to extreme physical parameters by small multi-cellular animals (e.g., tardigrades) are discussed, opening further considerations about the possibility to reversibly slow or temporarily arrest the metabolic activity rates of defined complex organisms in controlled conditions. Key examples of biological organism adaptation capabilities to extreme environmental parameters finally enabled a discussion about the emergence of early primordial biological lifeforms, from natural biotechnology and evolutionary points of view. Overall, the provided examples/similarities confirm the interest in further transposing natural processes and phenomena to controlled laboratory settings with the ultimate goal of gaining better control and modulation capacities over the metabolic activities of complex biological organisms.

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来源期刊
BioTech
BioTech Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
3.70
自引率
0.00%
发文量
51
审稿时长
11 weeks
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