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基于呼吸作用的吸附剂-生物过程兼容性研究。

Respiration-based investigation of adsorbent-bioprocess compatibility.

作者信息

Pastoors Johannes, Baltin Chris, Bettmer Jens, Deitert Alexander, Götzen Tobias, Michel Carina, Deischter Jeff, Schroll Isabel, Biselli Andreas, Palkovits Regina, Rose Marcus, Jupke Andreas, Büchs Jochen

机构信息

AVT - Biochemical Engineering, RWTH Aachen University, Forckenbeckstraße 51, 52074, Aachen, Germany.

ITMC - Institute of Technical and Macromolecular Chemistry, RWTH Aachen University, Worringerweg 2, 52074, Aachen, Germany.

出版信息

Biotechnol Biofuels Bioprod. 2023 Mar 18;16(1):49. doi: 10.1186/s13068-023-02297-0.

Abstract

BACKGROUND

The efficiency of downstream processes plays a crucial role in the transition from conventional petrochemical processes to sustainable biotechnological production routes. One promising candidate for product separation from fermentations with low energy demand and high selectivity is the adsorption of the target product on hydrophobic adsorbents. However, only limited knowledge exists about the interaction of these adsorbents and the bioprocess. The bioprocess could possibly be harmed by the release of inhibitory components from the adsorbent surface. Another possibility is co-adsorption of essential nutrients, especially in an in situ application, making these nutrients unavailable to the applied microorganism.

RESULTS

A test protocol investigating adsorbent-bioprocess compatibility was designed and applied on a variety of adsorbents. Inhibitor release and nutrient adsorption was studied in an isolated manner. Respiratory data recorded by a RAMOS device was used to assess the influence of the adsorbents on the cultivation in three different microbial systems for up to six different adsorbents per system. While no inhibitor release was detected in our investigations, adsorption of different essential nutrients was observed.

CONCLUSION

The application of adsorption for product recovery from the bioprocess was proven to be generally possible, but nutrient adsorption has to be assessed for each application individually. To account for nutrient adsorption, adsorptive product separation should only be applied after sufficient microbial growth. Moreover, concentrations of co-adsorbed nutrients need to be increased to compensate nutrient loss. The presented protocol enables an investigation of adsorbent-bioprocess compatibility with high-throughput and limited effort.

摘要

背景

下游工艺的效率在从传统石化工艺向可持续生物技术生产路线的转变中起着关键作用。从发酵液中分离产品且能量需求低、选择性高的一个有前景的方法是将目标产物吸附在疏水吸附剂上。然而,关于这些吸附剂与生物工艺之间的相互作用,目前了解有限。生物工艺可能会因吸附剂表面释放抑制性成分而受到损害。另一种可能性是必需营养物质的共吸附,特别是在原位应用中,使这些营养物质无法被所应用的微生物利用。

结果

设计了一种研究吸附剂 - 生物工艺兼容性的测试方案,并应用于多种吸附剂。分别研究了抑制剂释放和营养物质吸附情况。使用RAMOS设备记录的呼吸数据来评估吸附剂对三种不同微生物系统培养的影响,每个系统最多使用六种不同的吸附剂。在我们的研究中未检测到抑制剂释放,但观察到了不同必需营养物质的吸附。

结论

已证明通过吸附从生物工艺中回收产物通常是可行的,但每种应用都必须单独评估营养物质吸附情况。为了考虑营养物质吸附,吸附性产品分离应仅在微生物充分生长后应用。此外,需要提高共吸附营养物质的浓度以补偿营养物质损失。所提出的方案能够以高通量且省力的方式研究吸附剂 - 生物工艺的兼容性。

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