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関連する概念動画

Production Efficiency01:01

Production Efficiency

Net production efficiency (NPE) is the efficiency at which organisms assimilate energy into biomass for the next trophic level. Due to low metabolic rates and less energy spent on thermoregulatory processes, the NPE of ectotherms (cold-blooded animals) is 10 times higher than endotherms (warm-blooded animals).
Trophic Efficiency00:46

Trophic Efficiency

Trophic level transfer efficiency (TLTE) is a measure of the total energy transfer from one trophic level to the next. Due to extensive energy loss as metabolic heat, an average of only 10% of the original energy obtained is passed on to the next level. This pattern of energy loss severely limits the possible number of trophic levels in a food chain.
Entropy within the Cell01:22

Entropy within the Cell

A living cell's primary tasks of obtaining, transforming, and using energy to do work may seem simple. However, the second law of thermodynamics explains why these tasks are harder than they appear. None of the energy transfers in the universe are completely efficient. In every energy transfer, some amount of energy is lost in a form that is unusable. In most cases, this form is heat energy. Thermodynamically, heat energy is defined as the energy transferred from one system to another that is...
Energy Losses in Transformers01:21

Energy Losses in Transformers

In an ideal transformer, it is assumed that there are no energy losses, and, hence, all the power at the primary winding is transferred to the secondary winding. However, in reality,  the transformers always have some energy losses, and, hence, the output power obtained at the secondary winding is less than the input power at the primary winding due to energy losses.
There are four main reasons for energy losses in transformers.
The first cause can be  the high resistance of the copper windings...
Chambers of the Heart01:16

Chambers of the Heart

The human heart is a complex organ made up of four chambers: the right and left atria and the right and left ventricles. These internal chambers are separated by partitions known as the interatrial and interventricular septa. The exterior of the heart features a groove known as the coronary sulcus that demarcates the atria from the ventricles, while the anterior and posterior interventricular sulci distinguish between the two ventricles.
Deoxygenated blood from the body is received in the right...
Lateralization01:28

Lateralization

Brain lateralization refers to the division of mental processes and functions between the two hemispheres of the brain, a phenomenon that optimizes neural efficiency and underpins complex abilities in humans. This specialization allows each hemisphere to perform tasks where it has a comparative advantage, facilitating more refined cognitive capabilities across different domains.

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関連する実験動画

Updated: Jul 25, 2026

Assessment of Cardiac Function and Energetics in Isolated Mouse Hearts Using 31P NMR Spectroscopy
11:38

Assessment of Cardiac Function and Energetics in Isolated Mouse Hearts Using 31P NMR Spectroscopy

Published on: August 31, 2010

人間の左心室におけるエネルギー変換効率

T Kameyama1, H Asanoi, S Ishizaka

  • 1Second Department of Internal Medicine, Toyama Medical and Pharmaceutical University, Japan.

Circulation
|March 1, 1992
PubMed
まとめ

左心室の機械的効率は,心臓機能の変化にもかかわらず,収縮性がひどく損なわれない限り,安定しています. この研究は,なぜ機械効率がポンプの性能の変化に無感であるかを明らかにしています.

科学分野:

  • 心血管生理学 心血管の生理学
  • 心臓のメカニズム 心臓のメカニズム
  • 心不全に関する研究

背景:

  • 左心室の機械的効率は,心臓ポンプの性能の重要な指標である.
  • 以前の研究では,心不全でも機械的効率が驚くほど安定していることが示されました.
  • ポンプの性能の変化に対する機械効率の無感性は,さらなる調査を必要とする.

研究 の 目的:

  • 圧力-体積面積 (PVA) コンセプトを使用して,人間の左心室の機械効率を分析する.
  • ポンプの性能の変化に対する機械効率の感知不全の理由を明らかにする.
  • 心筋の酸素消費量 (MVO2),PVA,および外部の仕事との関係を調査する.

主な方法:

  • 異なる収縮状態の11人の患者で,MVO2-PVAの関係と外部作用を決定した.
  • 計算されたPVA/MVO2効率,作業効率,および全体的な機械効率.
  • 左心室の圧力-体積のループを構成し,末期のシストリック圧力-体積関係 (Ees) の傾きを評価した.

主要な成果:

  • 圧力負荷は,外部作業,PVA,MVO2を増加させ,作業効率を低下させ,PVA/MVO2の効率を高めました.
  • これらの効率の相反する変化は,整体的な機械効率を一定に維持した.

さらに関連する動画

Measurement of Energy Metabolism in Explanted Retinal Tissue Using Extracellular Flux Analysis
10:19

Measurement of Energy Metabolism in Explanted Retinal Tissue Using Extracellular Flux Analysis

Published on: January 7, 2019

Real-Time Analysis of Bioenergetics in Primary Human Retinal Pigment Epithelial Cells Using High-Resolution Respirometry
09:16

Real-Time Analysis of Bioenergetics in Primary Human Retinal Pigment Epithelial Cells Using High-Resolution Respirometry

Published on: February 3, 2023

関連する実験動画

Last Updated: Jul 25, 2026

Assessment of Cardiac Function and Energetics in Isolated Mouse Hearts Using 31P NMR Spectroscopy
11:38

Assessment of Cardiac Function and Energetics in Isolated Mouse Hearts Using 31P NMR Spectroscopy

Published on: August 31, 2010

Measurement of Energy Metabolism in Explanted Retinal Tissue Using Extracellular Flux Analysis
10:19

Measurement of Energy Metabolism in Explanted Retinal Tissue Using Extracellular Flux Analysis

Published on: January 7, 2019

Real-Time Analysis of Bioenergetics in Primary Human Retinal Pigment Epithelial Cells Using High-Resolution Respirometry
09:16

Real-Time Analysis of Bioenergetics in Primary Human Retinal Pigment Epithelial Cells Using High-Resolution Respirometry

Published on: February 3, 2023

  • PVA/MVO2効率はEesと逆相関し,作業効率はEesと線形相関した.
  • 結論:

    • 左心室の機械的効率は,負荷やイノトロピック条件の変化によってほとんど影響を受けません.
    • この安定性は,左心房の収縮性が著しく低下しない限り持続します.
    • PVAコンセプトは,異なる心臓状態における機械効率の強さを説明するのに役立ちます.