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Related Concept Videos

Formation of the Platelet Plug01:22

Formation of the Platelet Plug

The platelet phase, the second stage of hemostasis, commences around 15-20 seconds after an injury. It follows and overlaps with the vascular phase, during which blood vessels constrict to minimize blood loss.
As the injured blood vessel contracts, endothelial cells undergo contraction, revealing collagen fibers in the basement membrane and underlying connective tissue. Furthermore, the plasma membrane of endothelial cells becomes adhesive, preparing the site for platelet adhesion. Platelets...
Disorders of Hemostasis01:24

Disorders of Hemostasis

Hemostasis, the process that stops bleeding after a blood vessel injury, is crucial for maintaining the integrity of the circulatory system. However, disorders of hemostasis can disrupt this delicate balance, leading to either excessive clotting or bleeding. These disorders can be broadly classified into thromboembolic disorders and bleeding disorders.
Thromboembolic Disorders
Two factors primarily cause thromboembolic conditions.
Acute Respiratory Failure-II01:21

Acute Respiratory Failure-II

Type I Respiratory Failure, or hypoxemic respiratory failure, occurs when the partial pressure of oxygen (PaO2) in arterial blood falls below 60 mmHg while breathing room air without a corresponding increase in arterial carbon dioxide levels (PaCO2). This condition highlights a significant impairment in the lungs' capacity to oxygenate the blood.
The underlying physiological abnormalities that contribute to hypoxemic respiratory failure include:
Introduction to Hemostasis01:05

Introduction to Hemostasis

Hemostasis is a complex physiological process that prevents excessive bleeding when a blood vessel is injured. It's crucial for maintaining the integrity of the circulatory system, as it ensures that our blood remains fluid while still within the vascular network and yet clots to prevent blood loss upon vessel injury.
The three phases of hemostasis involve many clotting factors present in plasma and several substances released by platelets and injured tissue cells. It is a fast, localized, and...
Hemorrhagic Stroke ll: Pathophysiology01:29

Hemorrhagic Stroke ll: Pathophysiology

A hemorrhagic stroke develops when a cerebral blood vessel ruptures, allowing blood to escape into the surrounding brain tissue, as in intracerebral hemorrhage (ICH), or into the subarachnoid space, as in subarachnoid hemorrhage (SAH). Because the skull is a rigid compartment, the sudden presence of extravascular blood rapidly increases intracranial pressure and compresses adjacent neural structures, leading to immediate tissue injury and impaired cerebral perfusion.Mass Effect and Primary...
Atelectasis II: Pathophysiology01:10

Atelectasis II: Pathophysiology

Atelectasis develops when alveoli lose their air and collapse inward. Because lung tissue is naturally elastic, these air sacs shrink rather than remaining open. Collapsed alveoli are no longer ventilated, reducing their role in gas exchange. Blood flow may continue in these regions, creating a ventilation–perfusion mismatch. Clinical findings include decreased breath sounds, dullness to percussion, reduced chest expansion, and decreased tactile fremitus as sound transmission through collapsed...

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Related Experiment Video

Updated: Jun 5, 2026

A Swine Model of Neonatal Asphyxia
10:36

A Swine Model of Neonatal Asphyxia

Published on: October 11, 2011

Hemostasis and platelet dysfunction in asphyxiated neonates.

Mary E Bauman1, Po-Yin Cheung, M Patricia Massicotte

  • 1Department of Pediatrics, University of Alberta, Edmonton, Alberta, Canada.

The Journal of Pediatrics
|January 18, 2011
PubMed
Summary

Neonates have unique hemostasis, but asphyxia can disrupt this balance, leading to bleeding and thrombosis. Understanding these changes is crucial for managing neonatal hemostasis and preventing complications.

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The Perinatal Asphyxiated Lamb Model: A Model for Newborn Resuscitation
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The Perinatal Asphyxiated Lamb Model: A Model for Newborn Resuscitation

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Related Experiment Videos

Last Updated: Jun 5, 2026

A Swine Model of Neonatal Asphyxia
10:36

A Swine Model of Neonatal Asphyxia

Published on: October 11, 2011

A Piglet Perinatal Asphyxia Model to Study Cardiac Injury and Hemodynamics after Cardiac Arrest, Resuscitation, and the Return of Spontaneous Circulation
10:55

A Piglet Perinatal Asphyxia Model to Study Cardiac Injury and Hemodynamics after Cardiac Arrest, Resuscitation, and the Return of Spontaneous Circulation

Published on: January 13, 2023

The Perinatal Asphyxiated Lamb Model: A Model for Newborn Resuscitation
09:03

The Perinatal Asphyxiated Lamb Model: A Model for Newborn Resuscitation

Published on: August 15, 2018

Area of Science:

  • Physiology
  • Neonatal Medicine
  • Hematology

Background:

  • Hemostasis is a critical balance between bleeding and clotting, involving coagulation, fibrinolysis, and platelets.
  • Developmental hemostasis highlights differences between neonates and adults, though neonates generally maintain hemostatic balance unless disturbed.
  • Perinatal asphyxia is a significant clinical event that can disrupt this delicate balance.

Purpose of the Study:

  • To elucidate the normal mechanisms of hemostasis.
  • To describe laboratory methods for assessing hemostasis.
  • To explain the concept of developmental hemostasis in neonates.
  • To detail the impact of perinatal asphyxia on neonatal hemostasis.

Main Methods:

  • Literature review and synthesis of existing research on hemostasis.
  • Explanation of standard laboratory coagulation tests.
  • Comparison of hemostatic parameters in neonates versus older individuals.
  • Analysis of studies investigating asphyxia's effects on coagulation and fibrinolysis.

Main Results:

  • Neonates possess distinct hemostatic profiles compared to adults.
  • Perinatal asphyxia significantly alters neonatal hemostasis, increasing risks.
  • Asphyxia-induced hemostatic abnormalities can manifest as both bleeding and thrombosis.
  • Laboratory measures are essential for detecting these alterations.

Conclusions:

  • Neonatal hemostasis is a dynamic process that differs from adult hemostasis.
  • Perinatal asphyxia is a potent disruptor of neonatal hemostatic balance.
  • Prompt recognition and management of asphyxia-related hemostatic dysfunction are vital for improving neonatal outcomes.