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The use of fossil fuels results in rising CO2 and other greenhouse
gas (GHG) emissions, causing global temperature rise and climate
change that will negatively impact human health, the food supply,
and eventually worsen hunger and misery. Presently, fossil fuels
meet 88% of the energy demand, resulting in rising CO2/GHG
emissions at alarming rates. The increased use of biofuels would
help to mitigate climate change. Efficiently designing methods for
the production of biofuels and plant-derived high-value products
requires a deeper understanding of photosynthetic processes as a
prerequisite for applying novel biotechnologies. Accordingly, this
book provides ample information and a wealth of illustrative
examples. The book's eighteen richly illustrated chapters are
divided into three thematic parts. I: Photosynthesis and Biomass
Production under Changing Conditions, II: Microalgae and Engineered
Crops for Production of Biofuels and High-value Products, and III:
Genetic Resources and Engineering Methods to Improve Crop Plants.
Readers will find the latest information on the molecular basis of
photosynthetic processes in plants (including the regulatory
principles that allow plants to maintain homeostasis under changing
conditions), stress resistance and synthetic pathways. In addition,
the basic principles of important biotechnologies, as well as
examples of specially designed crops capable of growing under
stress conditions with improved productivity, are presented. The
book sets the course for future research in the field of biofuel
development and production and provides both general and specific
information for students, teachers, academic researchers,
industrial teams, and general readers who are interested in new
developments concerning the production of biofuels with value-added
properties.
The use of fossil fuels results in rising CO2 and other greenhouse
gas (GHG) emissions, causing global temperature rise and climate
change that will negatively impact human health, the food supply,
and eventually worsen hunger and misery. Presently, fossil fuels
meet 88% of the energy demand, resulting in rising CO2/GHG
emissions at alarming rates. The increased use of biofuels would
help to mitigate climate change. Efficiently designing methods for
the production of biofuels and plant-derived high-value products
requires a deeper understanding of photosynthetic processes as a
prerequisite for applying novel biotechnologies. Accordingly, this
book provides ample information and a wealth of illustrative
examples. The book's eighteen richly illustrated chapters are
divided into three thematic parts. I: Photosynthesis and Biomass
Production under Changing Conditions, II: Microalgae and Engineered
Crops for Production of Biofuels and High-value Products, and III:
Genetic Resources and Engineering Methods to Improve Crop Plants.
Readers will find the latest information on the molecular basis of
photosynthetic processes in plants (including the regulatory
principles that allow plants to maintain homeostasis under changing
conditions), stress resistance and synthetic pathways. In addition,
the basic principles of important biotechnologies, as well as
examples of specially designed crops capable of growing under
stress conditions with improved productivity, are presented. The
book sets the course for future research in the field of biofuel
development and production and provides both general and specific
information for students, teachers, academic researchers,
industrial teams, and general readers who are interested in new
developments concerning the production of biofuels with value-added
properties.
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