Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

Cardiomyopathy VII: Pre and Post Operative Nursing Management01:28

Cardiomyopathy VII: Pre and Post Operative Nursing Management

101
Patients with hypertrophic cardiomyopathy (HCM) and left ventricular outflow tract (LVOT) obstruction who remain symptomatic despite optimal medical therapy may undergo a septal myectomy (Morrow procedure). This procedure involves excising a portion of the hypertrophied septum below the aortic valve using a heart-lung machine to improve blood flow through the LVOT. Effective preoperative and postoperative nursing management ensures successful patient outcomes, minimizes complications, and...
101
Peripheral Artery Disease V: Postoperative Nursing Management01:23

Peripheral Artery Disease V: Postoperative Nursing Management

98
During the postoperative period, it is crucial to focus on maintaining circulation, identifying and managing potential complications, and planning for discharge.Nursing AssessmentVital signs monitoring: Regularly monitor vital signs, including blood pressure, heart rate, respiratory rate, and temperature, to detect early signs of complications such as bleeding and infection.Circulation assessment: Monitor pulses, perform Doppler assessments, and check capillary refill, color, temperature, and...
98
Pre-Procedural Guidelines for Assessing Blood Pressure01:10

Pre-Procedural Guidelines for Assessing Blood Pressure

680
Accurate blood pressure assessment is crucial for diagnosing and managing various health conditions. To ensure the reliability of these measurements, healthcare professionals must adhere to standardized pre-procedural guidelines. These guidelines enhance patient safety and improve the overall quality of healthcare. The following steps are essential for obtaining accurate and consistent blood pressure readings, from using the appropriate tools to ensuring effective communication with the...
680
Heart Failure V: Medical Management01:30

Heart Failure V: Medical Management

70
Medical Management of Acute Decompensated Heart Failure (ADHF)The primary goals of therapy for patients hospitalized with acute decompensated heart failure (ADHF) include:Relieving symptomsOptimizing volume statusSupporting oxygenation and ventilationMaintaining cardiac output (CO) and end-organ perfusionIdentifying and addressing the cause of ADHFPreventing complicationsProviding patient education on factors precipitating HF exacerbationPlanning for dischargeOngoing monitoring and assessment...
70
Aneurysm IV: Nursing Management01:22

Aneurysm IV: Nursing Management

167
Vigilant monitoring for aneurysm rupture is essential for patients undergoing aortic surgery.Preoperative Nursing ManagementContinuously monitor the patient for manifestations of aneurysm rupture, such as pallor, weakness, tachycardia, hypotension, abdominal, back, groin, or periumbilical pain, changes in consciousness, and a pulsating abdominal mass. Regularly assess the patient's peripheral pulses.Instruct the patient to consume a clear liquid diet the day before surgery and administer...
167
Heart Failure VI: Adjunct Therapies01:22

Heart Failure VI: Adjunct Therapies

80
Additional therapies for treating patients with heart failure (HF) may include procedural interventions, supplemental oxygen, the management of sleep disorders, and nutritional therapy.Procedural InterventionsImplantable Cardioverter-Defibrillator: For patients at risk of life-threatening arrhythmias due to severe left ventricular dysfunction, an Implantable Cardioverter-Defibrillator (ICD) can detect and terminate these arrhythmias, preventing sudden cardiac death and improving survival rates.
80

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Forecasting Excessive Anesthesia Depth Using EEG α-Spindle Dynamics and Machine Learning.

IEEE transactions on neural systems and rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society·2026
Same authorSame journal

Capillary refill time changes are associated with Vascular Waterfall response in post-cardiac surgery patients.

Annals of intensive care·2026
Same author

Cardiovascular safety profile of prostaglandin E and prostacyclin analogues: Clinical reports and ex vivo studies on human coronary arteries.

Prostaglandins, leukotrienes, and essential fatty acids·2026
Same author

Portal vein Doppler in peri-operative and critical care medicine: Physiology, measurement and clinical applications.

European journal of anaesthesiology·2026
Same author

The diaphragm-sparing effect of interscalene block with a low-volume of ropivacaine 0.1% vs. 0.5%: A double-blind, controlled, randomised trial.

European journal of anaesthesiology and intensive care·2026
Same author

The IMPACT framework for evaluating generative AI in critical care: development and multinational consensus validation.

Annals of intensive care·2026

Related Experiment Video

Updated: Nov 9, 2025

Hemodynamic Precision in the Neonatal Intensive Care Unit using Targeted Neonatal Echocardiography
09:31

Hemodynamic Precision in the Neonatal Intensive Care Unit using Targeted Neonatal Echocardiography

Published on: January 27, 2023

1.2K

Perioperative hemodynamic optimization: from guidelines to implementation-an experts' opinion paper.

Jean-Luc Fellahi1,2, Emmanuel Futier3,4, Camille Vaisse5

  • 1Service D'Anesthésie-Réanimation, Hôpital Louis Pradel, 59 boulevard Pinel, 69500, Hospices Civils de Lyon, Lyon, France. jean-luc.fellahi@chu-lyon.fr.

Annals of Intensive Care
|April 14, 2021
PubMed
Summary

Implementing hemodynamic optimization guidelines, including maintaining mean arterial pressure above 65 mmHg and using dynamic indices for fluid therapy, can reduce surgical complications and hospital stays. Expert recommendations aim to improve patient outcomes in high-risk surgical settings.

Keywords:
Blood pressureFluid responsivenessHealth costsHemodynamic optimizationHigh-risk surgeryPerioperative morbidityVasopressors

More Related Videos

Standardized Hemorrhagic Shock Induction Guided by Cerebral Oximetry and Extended Hemodynamic Monitoring in Pigs
07:51

Standardized Hemorrhagic Shock Induction Guided by Cerebral Oximetry and Extended Hemodynamic Monitoring in Pigs

Published on: May 21, 2019

7.6K
Invasive Hemodynamic Monitoring of Aortic and Pulmonary Artery Hemodynamics in a Large Animal Model of ARDS
08:12

Invasive Hemodynamic Monitoring of Aortic and Pulmonary Artery Hemodynamics in a Large Animal Model of ARDS

Published on: November 26, 2018

10.3K

Related Experiment Videos

Last Updated: Nov 9, 2025

Hemodynamic Precision in the Neonatal Intensive Care Unit using Targeted Neonatal Echocardiography
09:31

Hemodynamic Precision in the Neonatal Intensive Care Unit using Targeted Neonatal Echocardiography

Published on: January 27, 2023

1.2K
Standardized Hemorrhagic Shock Induction Guided by Cerebral Oximetry and Extended Hemodynamic Monitoring in Pigs
07:51

Standardized Hemorrhagic Shock Induction Guided by Cerebral Oximetry and Extended Hemodynamic Monitoring in Pigs

Published on: May 21, 2019

7.6K
Invasive Hemodynamic Monitoring of Aortic and Pulmonary Artery Hemodynamics in a Large Animal Model of ARDS
08:12

Invasive Hemodynamic Monitoring of Aortic and Pulmonary Artery Hemodynamics in a Large Animal Model of ARDS

Published on: November 26, 2018

10.3K

Area of Science:

  • Critical care medicine
  • Surgical perioperative care
  • Hemodynamics

Background:

  • Implementation of hemodynamic optimization and goal-directed therapy guidelines is limited in clinical practice.
  • Clinicians frequently encounter challenges in applying these guidelines.
  • Expert consensus is needed to bridge the gap between evidence and practice.

Purpose of the Study:

  • To propose an expert-driven approach to facilitate the implementation of hemodynamic optimization guidelines.
  • To address common clinical questions regarding hemodynamic management during surgery.
  • To reduce postoperative organ dysfunction and hospital length of stay.

Main Methods:

  • Critical appraisal of existing literature.
  • Modified Delphi process involving a panel of experts.
  • Development of question-and-answer format addressing clinical queries.

Main Results:

  • Unanimous recommendation to maintain mean arterial pressure ≥ 65 mmHg to prevent organ dysfunction.
  • Proposal for using dynamic indices for fluid therapy in non-cardiac surgery, with a validity checklist.
  • Recommendation for mini- or non-invasive monitoring of stroke volume/cardiac output in moderate-to-high-risk patients.
  • Suggestion to combine fluids and vasoconstrictors for optimal perfusion.
  • Acknowledgement of potential cost-effectiveness through reduced morbidity and length of stay.

Conclusions:

  • Individualized hemodynamic optimization is crucial for high-risk surgical patients.
  • Explicit clinical reasoning tools and decision algorithms are necessary for guideline implementation.
  • Effective hemodynamic management can significantly decrease postoperative morbidity and hospital duration.