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相关概念视频

Fates of Pyruvate01:20

Fates of Pyruvate

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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...
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Introduction to Cellular Respiration01:22

Introduction to Cellular Respiration

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Organisms harvest energy from food, but this energy cannot be directly used by cells. Cells convert the energy stored in nutrients into a more usable form: adenosine triphosphate (ATP).
ATP stores energy in chemical bonds that can be quickly released when needed. Cells produce energy in the form of ATP through the process of cellular respiration. Although much of the energy from cellular respiration is released as heat, some of it is used to make ATP.
During cellular respiration, several...
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Outcomes of Glycolysis01:13

Outcomes of Glycolysis

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Nearly all the energy used by cells comes from the bonds that make up complex organic compounds. These organic compounds are broken down into simpler molecules, such as glucose. As a result, cells extract energy from glucose over many chemical reactions—a process called cellular respiration.
Cellular respiration can occur aerobically (with oxygen) or anaerobically (without oxygen). In the presence of oxygen, cellular respiration starts with glycolysis and continues with pyruvate...
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Hyperpnea and Hyperventilation01:25

Hyperpnea and Hyperventilation

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Hyperventilation refers to a higher-than-normal rate and depth of breathing, often associated with anxiety attacks. This excessive breathing surpasses the body's need to expel CO2, leading to a condition known as hypocapnia - an unusually low level of carbon dioxide in the blood. Hypocapnia can constrict cerebral blood vessels, reducing blood flow to the brain, which may result in dizziness or fainting. Early signs include tingling and muscle spasms in the hands and face, caused by falling...
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Physiological Control of Respiration01:23

Physiological Control of Respiration

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Introduction
Breathing, a seemingly passive process, is regulated by the respiratory center in the brainstem. This center coordinates the involuntary control of respirations, which means it occurs without conscious effort, ensuring a smooth and uninterrupted pattern.
Regulation of Ventilation
The body maintains ventilation by monitoring levels of carbon dioxide (CO2), oxygen (O2), and hydrogen ion concentration (pH) in the arterial blood. Among these factors, the level of CO2 plays a crucial...
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Muscle Recovery and Fatigue01:24

Muscle Recovery and Fatigue

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Muscle fatigue refers to the decline in a muscle's ability to maintain the force of contraction after prolonged activity. It primarily stems from changes within muscle fibers. Even before experiencing muscle fatigue, one may feel tired and have the urge to stop the activity. This response, known as central fatigue, occurs due to changes in the central nervous system, namely the brain and spinal cord. While there is no single mechanism that induces fatigue, it may serve as a protective...
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相关实验视频

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Medium Preparation for the Cultivation of Microorganisms under Strictly Anaerobic/Anoxic Conditions
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解开无氧呼吸的神秘:一个解决问题的练习.

Tomas Linder1

  • 1Department of Molecular Sciences, Swedish University of Agricultural Sciences, Uppsala, Sweden.

Journal of microbiology & biology education
|August 19, 2024
PubMed
概括

本练习向本科生介绍无氧呼吸,重点关注如何在缺乏氧气的环境中控制微生物代谢的氧化还原电位差异 (ΔE). 它强调了这些基本的生物地球化学过程背后的热力学原理.

科学领域:

  • 微生物学 微生物学
  • 生物地质化学生物地质化学
  • 环境科学 环境科学

背景情况:

  • 无氧呼吸对于全球元素循环至关重要.
  • 本科生经常发现没有氧气的呼吸的概念,使用无机基质,不熟悉.
  • 了解氧化还原潜力是理解无氧环境中的微生物代谢的关键.

研究的目的:

  • 为本科生介绍无氧呼吸的热力学基础.
  • 解释氧化还原潜力 (E) 在微生物代谢反应中的作用.
  • 为了证明氧化还原潜力 (ΔE) 的差异如何影响无氧环境中允许的反应.

主要方法:

  • 一个针对本科生设计的解决问题的练习.
  • 专注于呼吸的热力学原理.
  • 减少剂和氧化剂之间的氧化还原潜力差异 (ΔE) 的研究.

主要成果:

  • 学生探索 ΔE 如何决定微生物代谢途径的可行性.
  • 该练习澄清了在无氧呼吸中可用的无机基质的范围.
  • 在无毒条件下对微生物生命的热力学约束被阐明.

结论:

关键词:
积极学习是积极学习.无氧呼吸是一种无氧呼吸.代谢 代谢 代谢 代谢基于问题的学习.氧化还原潜力是一种潜在的.

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  • 氧化还原潜力是无氧微生物新陈代谢的基本决定因素.
  • 了解ΔE对于理解生物地球化学循环至关重要.
  • 这种教育方法增强了学生对复杂微生物过程的理解.