Bacterial Cellular Metabolic Systems

Metabolic Regulation of a Cell System with 13C-Metabolic Flux Analysis

Nonfiction, Science & Nature, Science, Biological Sciences, Bacteriology, Biochemistry
Cover of the book Bacterial Cellular Metabolic Systems by K. Shimizu, Elsevier Science
View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart
Author: K. Shimizu ISBN: 9781908818201
Publisher: Elsevier Science Publication: March 26, 2013
Imprint: Woodhead Publishing Language: English
Author: K. Shimizu
ISBN: 9781908818201
Publisher: Elsevier Science
Publication: March 26, 2013
Imprint: Woodhead Publishing
Language: English

The metabolic regulation of a cell system is of critical importance in systems biology, and a robust model of these mechanisms is essential in predicting the effects on the metabolism of both the culture environment and the knockout of specific genes. Bacterial cellular metabolic systems focuses on this highly topical subject in relation to culture environment and provides a detailed analysis from gene level to metabolic level regulation, as well as offering a discussion of the most recent modelling approaches. The book begins with an introduction to metabolic mechanisms and to the metabolic regulation of a cell, before moving on to discussing the action of global regulators in response to a specific culture environment. The second half of the book examines conventional flux balance analysis and its applications, 13C-metabolic flux analysis, and the effect of a specific gene knockout on the metabolism.

  • Comprehensive account of metabolic regulation via global regulators in response to changes in the culture environment
  • Basic formulation of 13C-metabolic flux analysis based on 13C-labelling experiments
  • Systems biology approach for the modelling and computer simulation of the main metabolic pathways of a cell system
View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart

The metabolic regulation of a cell system is of critical importance in systems biology, and a robust model of these mechanisms is essential in predicting the effects on the metabolism of both the culture environment and the knockout of specific genes. Bacterial cellular metabolic systems focuses on this highly topical subject in relation to culture environment and provides a detailed analysis from gene level to metabolic level regulation, as well as offering a discussion of the most recent modelling approaches. The book begins with an introduction to metabolic mechanisms and to the metabolic regulation of a cell, before moving on to discussing the action of global regulators in response to a specific culture environment. The second half of the book examines conventional flux balance analysis and its applications, 13C-metabolic flux analysis, and the effect of a specific gene knockout on the metabolism.

More books from Elsevier Science

Cover of the book Bone Substitute Biomaterials by K. Shimizu
Cover of the book Management of Industrial Cleaning Technology and Processes by K. Shimizu
Cover of the book Process Safety Calculations by K. Shimizu
Cover of the book Geographic Knowledge Infrastructure by K. Shimizu
Cover of the book Active Coatings for Smart Textiles by K. Shimizu
Cover of the book Science of Heat and Thermophysical Studies by K. Shimizu
Cover of the book Protein Folding in Silico by K. Shimizu
Cover of the book Business Continuity and Disaster Recovery Planning for IT Professionals by K. Shimizu
Cover of the book The Eye's Aqueous Humor by K. Shimizu
Cover of the book Physical Chemistry by K. Shimizu
Cover of the book Basic Neurochemistry by K. Shimizu
Cover of the book Advances in Structure and Activity Relationship of Coumarin Derivatives by K. Shimizu
Cover of the book Homology Effects by K. Shimizu
Cover of the book Radioactive Geochronometry by K. Shimizu
Cover of the book Advances in Immunology by K. Shimizu
We use our own "cookies" and third party cookies to improve services and to see statistical information. By using this website, you agree to our Privacy Policy