Literature DB >> 35687157

A real-time monitoring system for automatic morphology analysis of yeast cultivation in a jar fermenter.

Yukina Kitahara1, Ayaka Itani2, Yosuke Oda3, Makoto Okamura4, Mizue Mizoshiri3, Yosuke Shida2, Toru Nakamura4, Ken Kasahara5, Wataru Ogasawara6,7.   

Abstract

The monitoring of microbial cultivation in real time and controlling their cultivation aid in increasing the production yield of useful material in a jar fermenter. Common sensors such as dissolved oxygen (DO) and pH can easily provide general-purpose indexes but do not reveal the physiological states of microbes because of the complexity of measuring them in culture conditions. It is well known from microscopic observations that the microbial morphology changes in response to the intracellular state or extracellular environment. Recently, studies have focused on rapid and quantitative image analysis techniques using machine learning or deep learning for gleaning insights into the morphological, physiological or gene expression information in microbes. During image analysis, it is necessary to retrieve high-definition images to analyze the microbial morphology in detail. In this study, we have developed a microfluidic device with a high-speed camera for the microscopic observation of yeast, and have constructed a system capable of generating their morphological information in real-time and at high definition. This system was connected to a jar fermenter, which enabled the automatic sampling for monitoring the cultivation. We successfully acquired high-definition images of over 10,000 yeast cells in about 2.2 s during ethanol fermentation automatically for over 168 h. We recorded 33,600 captures containing over 1,680,000 cell images. By analyzing these images, the morphological changes of yeast cells through ethanol fermentation could be captured, suggesting the expansion of the application of this system in controlling microbial fermentation using the morphological information generated. KEY POINTS: • Enables real-time visualization of microbes in a jar fermenter using microscopy. • Microfluidic device for acquiring high-definition images. • Generates a large amount of image data by using a high-speed camera.
© 2022. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.

Entities:  

Keywords:  High-speed camera; Jar fermenter; Microfluidic device; Microscopy; Morphology; Real-time monitoring

Mesh:

Substances:

Year:  2022        PMID: 35687157     DOI: 10.1007/s00253-022-12002-0

Source DB:  PubMed          Journal:  Appl Microbiol Biotechnol        ISSN: 0175-7598            Impact factor:   4.813


  20 in total

1.  High-throughput single-microparticle imaging flow analyzer.

Authors:  Keisuke Goda; Ali Ayazi; Daniel R Gossett; Jagannath Sadasivam; Cejo K Lonappan; Elodie Sollier; Ali M Fard; Soojung Claire Hur; Jost Adam; Coleman Murray; Chao Wang; Nora Brackbill; Dino Di Carlo; Bahram Jalali
Journal:  Proc Natl Acad Sci U S A       Date:  2012-07-02       Impact factor: 11.205

2.  Cellular image analysis and imaging by flow cytometry.

Authors:  David A Basiji; William E Ortyn; Luchuan Liang; Vidya Venkatachalam; Philip Morrissey
Journal:  Clin Lab Med       Date:  2007-09       Impact factor: 1.935

Review 3.  In situ sensor techniques in modern bioprocess monitoring.

Authors:  Sascha Beutel; Steffen Henkel
Journal:  Appl Microbiol Biotechnol       Date:  2011-07-23       Impact factor: 4.813

4.  Magnetic levitation of single cells.

Authors:  Naside Gozde Durmus; H Cumhur Tekin; Sinan Guven; Kaushik Sridhar; Ahu Arslan Yildiz; Gizem Calibasi; Ionita Ghiran; Ronald W Davis; Lars M Steinmetz; Utkan Demirci
Journal:  Proc Natl Acad Sci U S A       Date:  2015-06-29       Impact factor: 11.205

5.  Spatio-temporal dynamics of calcium electrotransfer during cell membrane permeabilization.

Authors:  Alexis Guionet; S Moosavi Nejad; Justin Teissié; Takashi Sakugawa; Sunao Katsuki; Hidenori Akiyama; Hamid Hosseini
Journal:  Drug Deliv Transl Res       Date:  2018-10       Impact factor: 4.617

Review 6.  Saccharomyces cerevisiae cell cycle.

Authors:  L H Hartwell
Journal:  Bacteriol Rev       Date:  1974-06

Review 7.  Microfluidic technologies for yeast replicative lifespan studies.

Authors:  Kenneth L Chen; Matthew M Crane; Matt Kaeberlein
Journal:  Mech Ageing Dev       Date:  2016-03-23       Impact factor: 5.432

8.  Microfluidic Platforms for Yeast-Based Aging Studies.

Authors:  Myeong Chan Jo; Lidong Qin
Journal:  Small       Date:  2016-09-26       Impact factor: 13.281

9.  Flexible microfluidic device for mechanical property characterization of soft viscoelastic solids such as bacterial biofilms.

Authors:  Danial N Hohne; John G Younger; Michael J Solomon
Journal:  Langmuir       Date:  2009-07-07       Impact factor: 3.882

10.  Using buoyant mass to measure the growth of single cells.

Authors:  Michel Godin; Francisco Feijó Delgado; Sungmin Son; William H Grover; Andrea K Bryan; Amit Tzur; Paul Jorgensen; Kris Payer; Alan D Grossman; Marc W Kirschner; Scott R Manalis
Journal:  Nat Methods       Date:  2010-04-11       Impact factor: 28.547

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