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関連する概念動画

Respiration and Gaseous Exchange01:20

Respiration and Gaseous Exchange

The intricate interplay between the cardiovascular and respiratory systems is crucial for efficiently transporting respiratory gases throughout the body. Let us explore the cardiovascular system's multifaceted functions, emphasizing its pivotal role in gas exchange.
Respiration involves the exchange of gases, especially oxygen (O2) and carbon dioxide (CO2), between the alveoli and body cells, a process facilitated by blood circulation. As a result, the cardiovascular system, which involves the...
Overview of Systemic and Pulmonary Circulation01:15

Overview of Systemic and Pulmonary Circulation

The systemic and pulmonary circuits are crucial components of the circulatory system, working together to transport blood between the heart, lungs, and the rest of the body. The process begins with pulmonary circulation, where deoxygenated blood is pumped from the right ventricle to the lungs via the pulmonary trunk and arteries. Upon reaching the lungs, the blood becomes oxygenated and returns to the heart, specifically to the left atrium, via the pulmonary veins.
The oxygenated blood is sent...
Overview of Pulmonary Circulation01:19

Overview of Pulmonary Circulation

The pulmonary circulation is a vital system in our body that acts as a bridge between the respiratory and cardiovascular systems. It serves as a transport network for deoxygenated blood from the heart to the lungs and then returns oxygen-rich blood back to the heart.
The process begins with the right ventricle of the heart pumping deoxygenated blood into the pulmonary trunk. This large vessel extends about 5 centimeters before splitting into the left and right pulmonary arteries. These arteries...
Gross Anatomy of the Lungs01:17

Gross Anatomy of the Lungs

The lungs are a pair of vital organs connected to the trachea via the left and right bronchi. The base of these organs meets the dome-shaped muscle known as the diaphragm. Encased by the pleurae, the lungs contact the mediastinum. The right lung is shorter yet wider, and has a larger volume than the left lung. The left lung has an indentation known as the cardiac notch. The superior region of the lungs is referred to as the apex, whereas the base is the lower region near the diaphragm. The...
Pulmonary Embolism I: Introduction01:29

Pulmonary Embolism I: Introduction

Pulmonary embolism (PE) occurs when a thrombus, fat or air embolus, amniotic fluid, or tumor tissue blocks one or more pulmonary arteries. These blockages originate in the venous system or the right side of the heart.EtiologyPE primarily arises from deep vein thrombosis (DVT) and other hypercoagulable states, such as inherited thrombophilias. Additional etiological factors include venous stasis, commonly seen in obesity, and endothelial injury from surgery and trauma. Less common causes include...
Pulmonary Edema II: Pathophysiology01:18

Pulmonary Edema II: Pathophysiology

Pulmonary edema is the accumulation of fluid in the interstitial and alveolar spaces of the lungs, impairing gas exchange and oxygen delivery. It may be cardiogenic or noncardiogenic, but both reduce oxygenation and lung compliance.Cardiogenic Pulmonary EdemaCardiogenic edema results from increased hydrostatic pressure in pulmonary capillaries, usually due to left ventricular dysfunction from myocardial infarction, heart failure, or valvular disease. Ineffective cardiac pumping causes blood to...

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関連する実験動画

Updated: Jun 29, 2026

Quantifying Single Microvessel Permeability in Isolated Blood-perfused Rat Lung Preparation
07:22

Quantifying Single Microvessel Permeability in Isolated Blood-perfused Rat Lung Preparation

Published on: June 30, 2014

ボリューム輸液中の肺腫

L Stein, J J Beraud, M Morissette

    Circulation
    |September 1, 1975
    PubMed
    まとめ

    プラズマコロイドのオスモス圧の低下は,単に充填圧だけでなく,低血圧患者の肺腫を引き起こす可能性があります. 結晶液注入は,コロイド透圧を下げることで,このリスクを高めることがあります.

    科学分野:

    • 心臓病学 心臓病学
    • 肺内医学は肺内医学である.
    • クリティカルケア・メディシン

    背景:

    • 肺腫は,しばしば流体管理と関連付けられている重大な状態です.
    • 心臓の充填圧とプラズマのオンコティック圧の相互作用を理解することは,患者のアウトカムにとって不可欠です.

    研究 の 目的:

    • 左心室の充填圧,プラズマコロイドのオスモティック圧,および低血圧患者における肺腫の発生との関係を調査する.
    • 液体蘇生中に肺腫の危険因子を特定するために.

    主な方法:

    • 低血圧患者37人を検査し,左心室の充填圧とプラズマのコロイド透圧をモニタリングした.
    • 肺腫の発生と液体の投与 (コロイド対結晶体) に基づいて患者の分類.
    • フロセミドが肺腫とプラズマコロイドのオスモティック圧力に及ぼす効果を評価した.

    主要な成果:

    • 液体注入中に16人の患者に肺腫が発症した.
    • 腫れのない患者には,正常またはわずかに上昇した左心室の充填圧と正常なコロイド・オスモス圧がありました.
    • 充填圧が高く,コロイド透圧が正常であった患者 (n=5) と,充填圧が正常であったが,コロイド透圧が著しく低下した患者 (n=11) の間で,しばしば結晶剤注入後,腫れが発生した.

    さらに関連する動画

    Method of Isolated Ex Vivo Lung Perfusion in a Rat Model: Lessons Learned from Developing a Rat EVLP Program
    08:59

    Method of Isolated Ex Vivo Lung Perfusion in a Rat Model: Lessons Learned from Developing a Rat EVLP Program

    Published on: February 25, 2015

    Exploring Alternative Perfusion Solutions Using Next-Generation Polymerized Hemoglobin-Based Oxygen Carriers in a Model of Rat Ex Vivo Lung Perfusion
    09:47

    Exploring Alternative Perfusion Solutions Using Next-Generation Polymerized Hemoglobin-Based Oxygen Carriers in a Model of Rat Ex Vivo Lung Perfusion

    Published on: June 14, 2024

    関連する実験動画

    Last Updated: Jun 29, 2026

    Quantifying Single Microvessel Permeability in Isolated Blood-perfused Rat Lung Preparation
    07:22

    Quantifying Single Microvessel Permeability in Isolated Blood-perfused Rat Lung Preparation

    Published on: June 30, 2014

    Method of Isolated Ex Vivo Lung Perfusion in a Rat Model: Lessons Learned from Developing a Rat EVLP Program
    08:59

    Method of Isolated Ex Vivo Lung Perfusion in a Rat Model: Lessons Learned from Developing a Rat EVLP Program

    Published on: February 25, 2015

    Exploring Alternative Perfusion Solutions Using Next-Generation Polymerized Hemoglobin-Based Oxygen Carriers in a Model of Rat Ex Vivo Lung Perfusion
    09:47

    Exploring Alternative Perfusion Solutions Using Next-Generation Polymerized Hemoglobin-Based Oxygen Carriers in a Model of Rat Ex Vivo Lung Perfusion

    Published on: June 14, 2024

    結論:

    • 低血コロイド透圧の低下は,正常な左心室充填圧にもかかわらず,低血患者における肺腫の重大なリスク因子である.
    • 積極的な結晶体液投与は,血コロイドのオスモティック圧力を低下させ,肺腫につながる可能性があるため,危険である可能性があります.
    • 血コロイドのオスモス圧の監視と維持は,リスク集団における液体蘇生中に極めて重要です.