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Related Concept Videos

Decreased Body Temperature01:29

Decreased Body Temperature

A decreased body temperature can occur in patients with hypothermia and frostbite. Heat loss with extended cold exposure overpowers the body's ability to create heat, resulting in hypothermia. Core temperature readings help classify hypothermia. Mild hypothermia is temperatures between 32 °C (89.6 °F) and 35°C (95 °F) and is caused by impaired thermoregulation. Moderate hypothermia is temperatures between 28 C (82.4 °F) and 32 °C (89.6 °F) caused by sustained extreme cold exposure, and severe...
Methods of reducing fever01:22

Methods of reducing fever

The signs and symptoms of fever include hot and dry skin, flushed face, thirst, muscle aches, anorexia, headache, tachycardia, tachypnea, and fatigue. Elevated body temperature is reduced using two methods: pharmacological and nonpharmacological. Proper identification and treatment of the root cause of a fever is of utmost importance.
Pharmacological Methods of Reducing Fever:
Increased Body Temperature01:25

Increased Body Temperature

A body temperature above  38°C  (100.4 °F) is known as fever or pyrexia, and a person with fever is termed 'febrile.' Typically, the hypothalamus, a part of the brain that acts as the body's thermostat, regulates body temperature through a thermoregulatory setpoint. It receives signals from cold and warm thermal receptors throughout the body and adjusts the body's temperature accordingly. Fever occurs when this hypothalamic setpoint is altered, usually in response to an infection or illness.
Homeostatic Imbalances in Body Temperature01:19

Homeostatic Imbalances in Body Temperature

Hyperthermia occurs when the body's temperature becomes unusually high, often due to heat exposure, intense physical activity, or certain illnesses. This condition can create a dangerous cycle where elevated body temperature increases the metabolic rate, generating more heat and potentially leading to organ failure and brain damage. A severe form of hyperthermia, called heat stroke, can raise body temperature to life-threatening levels. Fever, on the other hand, is a controlled form of...

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Related Experiment Video

Updated: Jun 12, 2026

Short-Duration Hypothermia Induction in Rats using Models for Studies examining Clinical Relevance and Mechanisms
05:00

Short-Duration Hypothermia Induction in Rats using Models for Studies examining Clinical Relevance and Mechanisms

Published on: March 3, 2021

Therapeutic hypothermia: a case study.

Anne Federico1

  • 1PACU, New York University Langone Medical Center, New York City, NY 10016, USA. anne.federico@nyumc.org

Journal of Perianesthesia Nursing : Official Journal of the American Society of Perianesthesia Nurses
|June 1, 2010
PubMed
Summary

Therapeutic hypothermia (TH) improves survival rates for sudden cardiac arrest (SCA) survivors. This intervention, though recommended, remains underutilized despite its proven benefits in preventing neurological damage.

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Related Experiment Videos

Last Updated: Jun 12, 2026

Short-Duration Hypothermia Induction in Rats using Models for Studies examining Clinical Relevance and Mechanisms
05:00

Short-Duration Hypothermia Induction in Rats using Models for Studies examining Clinical Relevance and Mechanisms

Published on: March 3, 2021

Esophageal Heat Transfer for Patient Temperature Control and Targeted Temperature Management
06:43

Esophageal Heat Transfer for Patient Temperature Control and Targeted Temperature Management

Published on: November 21, 2017

In vitro Assessment of Myocardial Protection following Hypothermia-Preconditioning in a Human Cardiac Myocytes Model
08:22

In vitro Assessment of Myocardial Protection following Hypothermia-Preconditioning in a Human Cardiac Myocytes Model

Published on: October 27, 2020

Area of Science:

  • Cardiology
  • Neurology
  • Critical Care Medicine

Background:

  • Sudden cardiac arrest (SCA) affects 300,000 individuals annually, with survival rates ranging from 10% to 25%.
  • Post-resuscitation syndrome, including brain injury, often leads to permanent neurological deficits in SCA survivors.

Observation:

  • Landmark studies demonstrate that therapeutic hypothermia (TH) significantly enhances hospital discharge rates for SCA survivors.
  • Despite endorsements from major medical organizations, TH is not widely recognized or implemented.

Findings:

  • Therapeutic hypothermia effectively mitigates post-cardiac arrest brain injury.
  • TH improves neurological outcomes and survival rates following SCA and resuscitation.

Implications:

  • Perianesthesia nurses require specialized knowledge to manage TH effectively and address potential side effects.
  • Increased awareness and implementation of TH are crucial for improving patient outcomes after SCA.