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関連する概念動画

Biofuels01:25

Biofuels

The microbial conversion of organic matter into biofuels holds potential as a renewable energy source. Among biofuel sources, microalgae are recognized as a highly efficient and adaptable feedstock for biodiesel production, owing to their rapid biomass accumulation, elevated lipid productivity, and capacity to proliferate in diverse aquatic systems, including freshwater, marine, and wastewater habitats. Unlike terrestrial crops, microalgae do not compete for land and can achieve significantly...
Bioplastics01:27

Bioplastics

Bioplastics derived from microbial processes present a sustainable alternative to conventional petroleum-based plastics. Among these, polyhydroxyalkanoates (PHAs), particularly polyhydroxybutyrates (PHBs), have emerged as prominent candidates due to their biodegradability and biocompatibility. These polymers are synthesized by a variety of bacteria, such as Cupriavidus necator and Pseudomonas putida, which naturally accumulate PHAs as intracellular carbon and energy reserves, especially under...
Fates of Pyruvate01:20

Fates of Pyruvate

Pyruvate is the end product of glycolysis, where glucose is oxidized to pyruvate, simultaneously reducing NAD+ to NADH. Two molecules of ATP are also produced by substrate-level phosphorylation.
In aerobic organisms, pyruvate is metabolized via the citric acid cycle to produce reduced coenzymes NADH and FADH2. These coenzymes are then oxidized in the electron transport chain to produce ATP and, in the process, regenerate the NAD+ and FAD. As seen in some cell types and organisms, fermentation...
Production of Alcohol01:27

Production of Alcohol

Continuous fermentation is a key strategy in industrial ethanol production, particularly when efficiency, scalability, and high yields are essential. This approach allows for uninterrupted operation and optimized resource utilization. The primary feedstock, corn starch, undergoes enzymatic hydrolysis facilitated by α-amylase and glucoamylase. These enzymes break down the starch into fermentable sugars such as glucose, which are readily assimilated by fermentative microorganisms.Fermentation...
Production of Organic Acids01:25

Production of Organic Acids

Lactic acid, an important organic acid extensively applied in food, pharmaceutical, and biodegradable polymer industries, is primarily produced via microbial fermentation. This method is favored over chemical synthesis due to its environmental sustainability and capacity for enantiomerically pure product formation. Among various microbial processes, the fermentation of starch-based substrates stands out due to the abundance and renewability of raw materials like corn and potatoes.Hydrolysis of...
Cellulose and Pectic Polysaccharides01:15

Cellulose and Pectic Polysaccharides

Every plant cell has a cell wall that protects the cell, provides structural support, and gives the cell shape. Cellulose, the main structural component of the plant cell wall, makes up over 30% of plant matter. It is the most abundant organic compound on earth.  Cellulose is an unbranched polysaccharide composed of linear chains of glucose molecules linked by β (1→4) glycosidic bonds.
As a cell matures, its cell wall specializes according to its type. For example, the parenchyma cells of...

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関連する実験動画

Updated: Jun 10, 2026

Pretreatment of Lignocellulosic Biomass with Low-cost Ionic Liquids
10:42

Pretreatment of Lignocellulosic Biomass with Low-cost Ionic Liquids

Published on: August 10, 2016

リンゴセルロース基バイオ燃料の原料

Chris Somerville1, Heather Youngs, Caroline Taylor

  • 1Energy Biosciences Institute, the University of California Berkeley, Berkeley, CA 94720, USA. crs@berkeley.edu

Science (New York, N.Y.)
|August 14, 2010
PubMed
まとめ

2008年の世界の液体バイオ燃料生産は,食品の競争に関する懸念を引き起こした. リンゴセルロースの変換のための新しい技術は,食品作物を超えて,多様なバイオエネルギー作物オプションを提供しています.

科学分野:

  • 農業科学 農業科学とは
  • エネルギー科学 エネルギー科学
  • 環境科学 環境科学

背景:

  • 2008年,世界の液体バイオ燃料生産量は,主に食糧作物から87ギガリットルに達しました.
  • 食料作物への依存は,純エネルギーバランス,温室効果ガス排出量,食料,飼料,生態系サービスとの土地利用競争に関する懸念を提起しています.

研究 の 目的:

  • バイオ燃料生産のためのリンゴセルロース変換技術の可能性を調査する.
  • 将来のバイオエネルギー作物のための適切な植物種を特定し,議論し,現在の食品ベースの原料を超えて進む.

主な方法:

  • バイオ燃料の現在の生産方法と関連する課題のレビュー.
  • 新興のリンゴセルロース変換技術の分析.
  • 潜在的なバイオエネルギー作物候補の探査とその土地利用への影響.

主要な成果:

  • リンゴセルロースの変換技術は,液体燃料の生産のために非食品用植物の部分を使用することを可能にします.
  • このシフトは,原料の選択肢を多様化し,食品生産との直接的な競争を減らす.
  • 適切なバイオエネルギー作物に関するさらなる研究が必要である.

さらに関連する動画

High-throughput Screening of Recalcitrance Variations in Lignocellulosic Biomass: Total Lignin, Lignin Monomers, and Enzymatic Sugar Release
11:31

High-throughput Screening of Recalcitrance Variations in Lignocellulosic Biomass: Total Lignin, Lignin Monomers, and Enzymatic Sugar Release

Published on: September 15, 2015

Fractionation of Lignocellulosic Biomass using the OrganoCat Process
06:19

Fractionation of Lignocellulosic Biomass using the OrganoCat Process

Published on: June 5, 2021

関連する実験動画

Last Updated: Jun 10, 2026

Pretreatment of Lignocellulosic Biomass with Low-cost Ionic Liquids
10:42

Pretreatment of Lignocellulosic Biomass with Low-cost Ionic Liquids

Published on: August 10, 2016

High-throughput Screening of Recalcitrance Variations in Lignocellulosic Biomass: Total Lignin, Lignin Monomers, and Enzymatic Sugar Release
11:31

High-throughput Screening of Recalcitrance Variations in Lignocellulosic Biomass: Total Lignin, Lignin Monomers, and Enzymatic Sugar Release

Published on: September 15, 2015

Fractionation of Lignocellulosic Biomass using the OrganoCat Process
06:19

Fractionation of Lignocellulosic Biomass using the OrganoCat Process

Published on: June 5, 2021

結論:

  • 先進的なバイオ燃料技術は,食品ベースのバイオ燃料に関連した土地使用の紛争を緩和することができます.
  • 専用のバイオエネルギー作物の開発は,持続可能なバイオ燃料の拡大に不可欠です.
  • 最適なリンゴセルロース基生物エネルギー作物を特定し,栽培するためにさらなる研究が必要です.