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微生物生理学学术课程中用于教授恒化器培养的模拟器辅助工作坊

A Simulator-Assisted Workshop for Teaching Chemostat Cultivation in Academic Classes on Microbial Physiology.

作者信息

Hakkaart Xavier D V, Pronk Jack T, van Maris Antonius J A

机构信息

Department of Biotechnology, Delft University of Technology, Van der Maasweg 9, 2629HZ Delft, The Netherlands.

Present address: Division of Industrial Biotechnology, School of Biotechnology, KTH Royal Institute of Technology, AlbaNova University Center, SE 106 91, Stockholm, Sweden.

出版信息

J Microbiol Biol Educ. 2017 Oct 4;18(3). doi: 10.1128/jmbe.v18i3.1292. eCollection 2017.

Abstract

Understanding microbial growth and metabolism is a key learning objective of microbiology and biotechnology courses, essential for understanding microbial ecology, microbial biotechnology and medical microbiology. Chemostat cultivation, a key research tool in microbial physiology that enables quantitative analysis of growth and metabolism under tightly defined conditions, provides a powerful platform to teach key features of microbial growth and metabolism. Substrate-limited chemostat cultivation can be mathematically described by four equations. These encompass mass balances for biomass and substrate, an empirical relation that describes distribution of consumed substrate over growth and maintenance energy requirements (Pirt equation), and a Monod-type equation that describes the relation between substrate concentration and substrate-consumption rate. The authors felt that the abstract nature of these mathematical equations and a lack of visualization contributed to a suboptimal operative understanding of quantitative microbial physiology among students who followed their Microbial Physiology B.Sc. courses. The studio-classroom workshop presented here was developed to improve student understanding of quantitative physiology by a set of question-guided simulations. Simulations are run on Chemostatus, a specially developed MATLAB-based program, which visualizes key parameters of simulated chemostat cultures as they proceed from dynamic growth conditions to steady state. In practice, the workshop stimulated active discussion between students and with their teachers. Moreover, its introduction coincided with increased average exam scores for questions on quantitative microbial physiology. The workshop can be easily implemented in formal microbial physiology courses or used by individuals seeking to test and improve their understanding of quantitative microbial physiology and/or chemostat cultivation.

摘要

了解微生物的生长和代谢是微生物学和生物技术课程的关键学习目标,对于理解微生物生态学、微生物生物技术和医学微生物学至关重要。恒化器培养是微生物生理学中的一种关键研究工具,能够在严格定义的条件下对生长和代谢进行定量分析,为讲授微生物生长和代谢的关键特征提供了一个强大的平台。底物限制的恒化器培养可以用四个方程进行数学描述。这些方程包括生物量和底物的质量平衡、描述消耗的底物在生长和维持能量需求之间分配的经验关系(Pirt方程),以及描述底物浓度与底物消耗速率之间关系的莫诺德型方程。作者认为,这些数学方程的抽象性质以及缺乏可视化,导致修读其微生物生理学理学学士课程的学生对定量微生物生理学的实际操作理解欠佳。本文介绍的工作室课堂研讨会旨在通过一系列问题引导的模拟来提高学生对定量生理学的理解。模拟在Chemostatus上运行,这是一个专门开发的基于MATLAB的程序,它可以将模拟的恒化器培养从动态生长条件到稳态过程中的关键参数可视化。在实践中,该研讨会激发了学生之间以及学生与教师之间的积极讨论。此外,引入该研讨会的同时,定量微生物生理学问题的平均考试成绩有所提高。该研讨会可以很容易地在正式的微生物生理学课程中实施,也可供个人用于测试和提高他们对定量微生物生理学和/或恒化器培养的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/553e/5976038/625672b792d5/jmbe-18-51f1.jpg

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