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Related Concept Videos

Parenteral Anesthetics: Overview01:24

Parenteral Anesthetics: Overview

199
Intravenous anesthetics are drugs administered parenterally to induce anesthesia or sedation. Propofol is a widely used agent formulated as a 1% emulsion in soybean oil, glycerol, and egg phosphatide. It induces rapid anesthesia primarily due to its rapid distribution from the bloodstream to target tissues and is metabolized in the liver. However, it can cause significant pain on injection and hypertriglyceridemia. Fospropofol, a water-based prodrug of propofol, lacks these adverse effects.
199
General Anesthesia: Overview01:24

General Anesthesia: Overview

283
Anesthesia is a medical procedure that uses drugs for CNS suppression to enable painless surgeries and procedures. The selection of anesthetics is influenced by their pharmacokinetic properties, side effects, and patient characteristics. Various types of anesthesia include general, local, regional, spinal, and inhalational.
General anesthesia induces unconsciousness in the whole body, while the others target specific areas or sensations. It is administered to minimize adverse effects, maintain...
283
Inhalational Anesthetics: Overview01:20

Inhalational Anesthetics: Overview

505
Inhalation anesthetics are drugs that induce general anesthesia upon inhalation. They work by increasing the sensitivity of GABAA receptors or inhibiting NMDA receptors, leading to a decrease in central nervous system activity. The depth of anesthesia can be rapidly adjusted by changing the concentration of the inhaled gas. Some common examples of inhalational anesthetics include volatile liquids like isoflurane, desflurane, sevoflurane and gases like xenon and nitrous oxide. Isoflurane, a...
505
Drug Delivery: Parenteral Route01:29

Drug Delivery: Parenteral Route

834
The parenteral route is a critical method of drug administration. It delivers compounds directly into the systemic circulation and bypasses the gastrointestinal tract. This approach is particularly advantageous for drugs that exhibit poor absorption or instability when administered orally.
There are three primary parenteral routes: intravenous (IV), intramuscular (IM), and subcutaneous (SC). The IV route introduces the drug directly into the bloodstream, ensuring immediate action. The IM route...
834
Stages of General Anesthesia01:22

Stages of General Anesthesia

702
Various sedation levels offer significant advantages in facilitating procedural interventions for patients undergoing medical or invasive surgical procedures. These levels span from anxiolysis to general anesthesia, providing a spectrum of sedative effects to cater to specific patient needs. Anxiolysis reduces anxiety and is achieved through minimal sedation, enabling patients to remain awake and responsive while feeling more at ease during the procedure. This level can benefit minor...
702
Cardiopulmonary Resuscitation IV: Pharmacological Management01:25

Cardiopulmonary Resuscitation IV: Pharmacological Management

77
Pharmacologic intervention is crucial in treating cardiac arrest patients during ACLS or Advanced Cardiovascular Life Support. The ACLS algorithms guide the administration of specific drugs based on the patient's cardiac arrest rhythm, which includes pulseless ventricular tachycardia (VT), ventricular fibrillation (VF), asystole, and pulseless electrical activity (PEA).EpinephrineIndication: Epinephrine is the first-line drug for all cardiac arrest rhythms.Mechanism of Action: Epinephrine...
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Related Experiment Video

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Use of a Low-flow Digital Anesthesia System for Mice and Rats
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Artificial Intelligence in Anesthesiology Drug Administration.

Jiancheng Ye1, Sophie Bronstein1

  • 1Weill Cornell Medicine, Cornell University, New York, USA.

Anesthesiology Clinics
|August 2, 2025
PubMed
Summary

Artificial intelligence (AI) enhances anesthetic drug administration for improved precision and safety in healthcare. AI systems offer better decision-making and monitoring compared to traditional methods, with future potential for autonomous delivery.

Keywords:
Anesthesia managementAnesthetic drug administrationArtificial intelligenceClinical practiceDecision support systemsHealth care innovationPatient safety

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Area of Science:

  • Anesthesiology
  • Medical Artificial Intelligence
  • Health Informatics

Background:

  • Traditional anesthetic drug administration relies on manual processes, potentially leading to variability and errors.
  • Advancements in artificial intelligence (AI) offer opportunities to improve the precision, safety, and efficiency of anesthetic practices.
  • Existing AI systems like McSleepy and ENDOANGEL provide insights into AI's capabilities in anesthesia.

Purpose of the Study:

  • To review the integration of AI in anesthetic drug administration.
  • To highlight the benefits and limitations of AI technologies in clinical anesthesiology.
  • To compare AI-assisted anesthesia with traditional methods.

Main Methods:

  • Review of existing literature and case studies on AI systems in anesthesiology.
  • Comparative analysis of traditional anesthetic practices versus AI-assisted approaches.
  • Examination of AI system functionalities in decision-making, dosing, and monitoring.

Main Results:

  • AI integration in anesthesia offers enhanced precision, safety, and efficiency.
  • AI systems demonstrate potential for improved clinical decision-making and accurate dosing.
  • Real-time monitoring capabilities are significantly enhanced with AI assistance.

Conclusions:

  • AI represents a significant advancement in anesthetic drug administration.
  • Further development of AI in anesthesiology promises optimized drug combinations and autonomous systems.
  • AI holds the potential to revolutionize patient care through advanced anesthesia delivery.