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相关概念视频

Pulse Oximetry01:24

Pulse Oximetry

323
Pulse oximetry, or SpO2, is a non-invasive method for continuously monitoring arterial oxygen saturation (SaO2). This procedure involves attaching a probe or sensor to the patient's fingertip, forehead, earlobe, or nose bridge. The sensor works by detecting changes in oxygen saturation levels through light signals generated by the oximeter and reflected by the pulsing blood under the probe.
Purpose
Average SpO2 values are greater than 95%. If the readings fall below 90%, it indicates that...
323
Special considerations while measuring oxygen saturation01:19

Special considerations while measuring oxygen saturation

551
Assessing respiratory rate concurrently with pulse measurement is fundamental to patient care, providing valuable insights into the patient's respiratory function. The normal breathing rate for an adult usually falls within a normal range of 12 to 20 breaths per minute. Abnormal respiratory rates can signal underlying health conditions or the need for immediate intervention.
Ensuring accuracy in vital sign recordings while prioritizing patient comfort and minimizing anxiety is...
551
Chemical Factors Affecting Respiration Centers01:31

Chemical Factors Affecting Respiration Centers

1.0K
Chemical factors such as changing CO2, O2, and H+ levels in arterial blood play a critical role in influencing respiration depth and rates. These variations are detected by chemoreceptors—specialized sensors located in two primary body areas. Central chemoreceptors are found throughout the brain stem, including the ventrolateral medulla, while peripheral chemoreceptors are located in the aortic arch and carotid arteries.
CO2 has a potent influence on respiration and is strictly regulated....
1.0K
Oxygen Delivering System II: Venturi Mask and Transtracheal Oxygen01:16

Oxygen Delivering System II: Venturi Mask and Transtracheal Oxygen

422
Oxygen therapy is a pivotal aspect of medical care, particularly for patients with respiratory ailments. Two prominent oxygen-delivering systems include the Venturi mask and the transtracheal oxygen catheter.
Venturi Mask
The Venturi mask, named after the Venturi effect, is designed to deliver precise oxygen concentrations. It consists of a large tube with an oxygen inlet that narrows down, causing a pressure drop that pulls air in through adjustable side ports. The mask is a lightweight,...
422
Assessing Body Temperature - Temporal Artery01:19

Assessing Body Temperature - Temporal Artery

534
Here is a stepwise guide to assessing the body temperature at the temporal artery using a temporal artery thermometer
Step 1: Perform hand hygiene and don a fresh pair of gloves to prevent cross-infection and ensure patient safety.
Step 2: Explain the procedure to the patient to establish trust. Clear communication establishes trust with the patient, ensures they understand what to expect, promotes cooperation, and enhances comfort during the procedure.  
Step 3: Assess the patient's...
534
Assessing Body Temperature - Oral01:14

Assessing Body Temperature - Oral

733
Here are the steps to accurately measure oral temperature using an electronic thermometer:
Step 1:
Start by practicing proper hand hygiene to prevent the spread of microorganisms.
Step 2:
Take the thermometer out of the charging unit, switch it on, and wait for the ready sign.
Step 3:
Gently slide the probe cover until a click is heard. This simple action prevents cross-contamination and ensures the correct placement of the probe cover.
Step 4:
Instruct the patient to open their mouth and place...
733

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相关实验视频

Updated: Jun 14, 2025

Experimental Approach to Examine Leptin Signaling in the Carotid Bodies and its Effects on Control of Breathing
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Experimental Approach to Examine Leptin Signaling in the Carotid Bodies and its Effects on Control of Breathing

Published on: October 25, 2019

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动脉体的氧气传感器

Lin Gao1, Alejandro Moreno-Domínguez1, Patricia Ortega-Sáenz1

  • 1Institute of Biomedicine of Seville (IBiS), University Hospital "Virgen del Rocío"/CSIC/University of Seville, Seville, Spain; Department of Medical Physiology and Biophysics. School of Medicine, University of Seville, Seville, Spain; CIBERNED, Madrid, Spain.

Current opinion in neurobiology
|April 23, 2025
PubMed
概括

状体状体细胞通过专门的线粒体感知氧气水平,而不是单个传感器. 这种依赖HIF2α的途径调节离子通道,为呼吸道和心血管疾病提供新的药理目标.

科学领域:

  • 生理学 生理学 生理学
  • 细胞生物学 细胞生物学
  • 生物化学 生物化学

背景情况:

  • 状体 (CB) 状体细胞对于感知血液氧气水平至关重要.
  • 缺氧会触发K+通道的抑制,导致Ca2+的涌入和神经递质的释放.
  • 在CB囊细胞中感知氧气的精确分子机制仍在争论中.

研究的目的:

  • 为了阐明在动脉体中引起急性氧气传感的分子途径.
  • 为了确定参与氧气张力检测 glomus 细胞的关键组件.

主要方法:

  • 审查和总结有关动脉体氧气传感的现有研究.
  • 专注于线粒体和特定分子通路的作用.

主要成果:

  • 在CB质细胞中感知氧气并非由单个O2传感器介导.
  • 这个过程涉及HIF2α-依赖的,基因特异的线粒体.
  • 这些线粒体检测生理氧张力变化,并产生调节膜离子通道的信号.

结论:

  • 阴道体细胞中的急性氧气感应通路是基于线粒体的,并且依赖于HIF2α.

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  • 这一途径为呼吸道和心血管药理学提供了潜在的新目标.