The Experts below are selected from a list of 309 Experts worldwide ranked by ideXlab platform

Jens Nielsen - One of the best experts on this subject based on the ideXlab platform.

  • impact of synthetic biology and metabolic engineering on Industrial Production of fine chemicals
    Biotechnology Advances, 2015
    Co-Authors: David Jullesson, Florian David, Jens Nielsen, Brian F Pfleger
    Abstract:

    © 2015 Elsevier Inc. Industrial bio-processes for fine chemical Production are increasingly relying on cell factories developed through metabolic engineering and synthetic biology. The use of high throughput techniques and automation for the design of cell factories, and especially platform strains, has played an important role in the transition from laboratory research to Industrial Production. Model organisms such as Saccharomyces cerevisiae and Escherichia coli remain widely used host strains for Industrial Production due to their robust and desirable traits. This review describes some of the bio-based fine chemicals that have reached the market, key metabolic engineering tools that have allowed this to happen and some of the companies that are currently utilizing these technologies for developing Industrial Production processes.

  • Impact of synthetic biology and metabolic engineering on Industrial Production of fine chemicals
    Biotechnology Advances, 2015
    Co-Authors: David Jullesson, Brian Pfleger, Florian David, Jens Nielsen
    Abstract:

    Industrial bio-processes for fine chemical Production are increasingly relying on cell factories developed through metabolic engineering and synthetic biology. The use of high throughput techniques and automation for the design of cell factories, and especially platform strains, has played an important role in the transition from laboratory research to Industrial Production. Model organisms such as Saccharomyces cerevisiae and Escherichia coli remain widely used host strains for Industrial Production due to their robust and desirable traits. This review describes some of the bio-based fine chemicals that have reached the market, key metabolic engineering tools that have allowed this to happen and some of the companies that are currently utilizing these technologies for developing Industrial Production processes.

David Jullesson - One of the best experts on this subject based on the ideXlab platform.

  • impact of synthetic biology and metabolic engineering on Industrial Production of fine chemicals
    Biotechnology Advances, 2015
    Co-Authors: David Jullesson, Florian David, Jens Nielsen, Brian F Pfleger
    Abstract:

    © 2015 Elsevier Inc. Industrial bio-processes for fine chemical Production are increasingly relying on cell factories developed through metabolic engineering and synthetic biology. The use of high throughput techniques and automation for the design of cell factories, and especially platform strains, has played an important role in the transition from laboratory research to Industrial Production. Model organisms such as Saccharomyces cerevisiae and Escherichia coli remain widely used host strains for Industrial Production due to their robust and desirable traits. This review describes some of the bio-based fine chemicals that have reached the market, key metabolic engineering tools that have allowed this to happen and some of the companies that are currently utilizing these technologies for developing Industrial Production processes.

  • Impact of synthetic biology and metabolic engineering on Industrial Production of fine chemicals
    Biotechnology Advances, 2015
    Co-Authors: David Jullesson, Brian Pfleger, Florian David, Jens Nielsen
    Abstract:

    Industrial bio-processes for fine chemical Production are increasingly relying on cell factories developed through metabolic engineering and synthetic biology. The use of high throughput techniques and automation for the design of cell factories, and especially platform strains, has played an important role in the transition from laboratory research to Industrial Production. Model organisms such as Saccharomyces cerevisiae and Escherichia coli remain widely used host strains for Industrial Production due to their robust and desirable traits. This review describes some of the bio-based fine chemicals that have reached the market, key metabolic engineering tools that have allowed this to happen and some of the companies that are currently utilizing these technologies for developing Industrial Production processes.

Emmanuel Ziramba - One of the best experts on this subject based on the ideXlab platform.

  • disaggregate energy consumption and Industrial Production in south africa
    Energy Policy, 2009
    Co-Authors: Emmanuel Ziramba
    Abstract:

    This paper tries to assess the relationship between disaggregate energy consumption and Industrial output in South Africa by undertaking a cointegration analysis using annual data from 1980 to 2005. We also investigate the causal relationships between the various disaggregate forms of energy consumption and Industrial Production. Our results imply that Industrial Production and employment are long-run forcing variables for electricity consumption. Applying the [Toda, H.Y., Yamamoto, T., 1995. Statistical inference in vector autoregressions with possibly integrated processes. Journal of Econometrics 66, 225-250] technique to Granger-causality, we find bi-directional causality between oil consumption and Industrial Production. For the other forms of energy consumption, there is evidence in support of the energy neutrality hypothesis. There is also evidence of causality between employment and electricity consumption as well as coal consumption causing employment.

  • Disaggregate energy consumption and Industrial Production in South Africa
    Energy Policy, 2009
    Co-Authors: Emmanuel Ziramba
    Abstract:

    Abstract This paper tries to assess the relationship between disaggregate energy consumption and Industrial output in South Africa by undertaking a cointegration analysis using annual data from 1980 to 2005. We also investigate the causal relationships between the various disaggregate forms of energy consumption and Industrial Production. Our results imply that Industrial Production and employment are long-run forcing variables for electricity consumption. Applying the [Toda, H.Y., Yamamoto, T., 1995. Statistical inference in vector autoregressions with possibly integrated processes. Journal of Econometrics 66, 225–250] technique to Granger-causality, we find bi-directional causality between oil consumption and Industrial Production. For the other forms of energy consumption, there is evidence in support of the energy neutrality hypothesis. There is also evidence of causality between employment and electricity consumption as well as coal consumption causing employment.

Florian David - One of the best experts on this subject based on the ideXlab platform.

  • impact of synthetic biology and metabolic engineering on Industrial Production of fine chemicals
    Biotechnology Advances, 2015
    Co-Authors: David Jullesson, Florian David, Jens Nielsen, Brian F Pfleger
    Abstract:

    © 2015 Elsevier Inc. Industrial bio-processes for fine chemical Production are increasingly relying on cell factories developed through metabolic engineering and synthetic biology. The use of high throughput techniques and automation for the design of cell factories, and especially platform strains, has played an important role in the transition from laboratory research to Industrial Production. Model organisms such as Saccharomyces cerevisiae and Escherichia coli remain widely used host strains for Industrial Production due to their robust and desirable traits. This review describes some of the bio-based fine chemicals that have reached the market, key metabolic engineering tools that have allowed this to happen and some of the companies that are currently utilizing these technologies for developing Industrial Production processes.

  • Impact of synthetic biology and metabolic engineering on Industrial Production of fine chemicals
    Biotechnology Advances, 2015
    Co-Authors: David Jullesson, Brian Pfleger, Florian David, Jens Nielsen
    Abstract:

    Industrial bio-processes for fine chemical Production are increasingly relying on cell factories developed through metabolic engineering and synthetic biology. The use of high throughput techniques and automation for the design of cell factories, and especially platform strains, has played an important role in the transition from laboratory research to Industrial Production. Model organisms such as Saccharomyces cerevisiae and Escherichia coli remain widely used host strains for Industrial Production due to their robust and desirable traits. This review describes some of the bio-based fine chemicals that have reached the market, key metabolic engineering tools that have allowed this to happen and some of the companies that are currently utilizing these technologies for developing Industrial Production processes.

Stephen F. Witt - One of the best experts on this subject based on the ideXlab platform.

  • Forecasting Industrial Production using structural time series models
    Omega, 1998
    Co-Authors: Gerhard Thury, Stephen F. Witt
    Abstract:

    Abstract Industrial Production data series are volatile and often also cyclical. Hence, univariate time series models which allow for these features are expected to generate relatively accurate forecasts of Industrial Production. A particular class of unobservable components models — structural time series models — is used to generate forecasts of Austrian and German Industrial Production. A widely applied ARIMA model is used as a baseline for comparison. The empirical results show that the basic structural model generates more accurate forecasts than the ARIMA model when accuracy is measured in terms of size of error or directional change; and that the basic structural model forecasts better than the structural model with a cyclical component included on the basis of numerical measures, and tracking error for month-to-month changes.