Skip to content

Central and Cerebral Circulation in Early Stages After LVAD Implantation

Evaluation of Central and Cerebral Circulation in Early Stages After Implantation of Left Ventricular Assist Device (LVAD)

Status
UNKNOWN
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT03087669
Acronym
ECOH3
Enrollment
20
Registered
2017-03-22
Start date
2017-02-16
Completion date
2020-03-01
Last updated
2017-03-22

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Heart Failure, Left-Sided, Heart Failure, Right-Sided

Keywords

Left Ventricular Assist Device, Hemodynamic monitoring

Brief summary

This trial will evaluate patients with a mechanical Left Ventricular Assist Device (LVAD) in early stages after surgical implantation. Within the first 2 days of postoperative ICU care, 20 patients will firstly be exposed to 4 different LVAD pump flow settings with a stable blood pressure. A second intervention will be mean arterial blood pressure (MAP) adjustments to 4 preset levels (60-70-80 and 90 mmHg) with a constant preset LVAD flow. The two manipulations; 1) Constant MAP with variation of LVAD flow and 2) Constant LVAD flow with variation of MAP, will be monitored by Central hemodynamic parameters, echocardiographic parameters and cerebral blood flow velocity (CBFV) parameters. The purpose of the trial is to find the optimal combination of LVAD pump flow, mean arterial pressure and right heart ventricle function for each patient. And at the same time describe the effect of flow and pressure variations on CBFV.

Detailed description

Patients with severe left ventricular heart failure and estimated short expected survival time despite optimal medical therapy can be treated with a left ventricular mechanical heart pump - described as a Left Ventricular Assist Device (LVAD). The LVAD can be used as a bridge for patient survival prior to heart transplantation, or as a destination therapy for terminal heart failure. The LVAD delivers a non-pulsatile blood flow into the patients aorta, supporting and/or taking over the left ventricular function. However the right heart ventricle (RV) is not supported by the LVAD. RV failure is a major threat to the patient, in particular during the early postoperative period. Postoperative RV failure after LVAD implantation is medically treated, but in severe cases a mechanical temporary right ventricular assist (RVAD) may be needed. Patients in need of postoperative RVAD after an LVAD implant have a significantly increased mortality. Thus it is of vital importance to balance the LVAD pump flow against the native RV function in order to avoid the need for an RVAD. If the LVAD flow rate is set too low the RV will be exposed to a high afterload and risk failure. If, on the other hand, the LVAD flow is set too high it can potentially completely empty the left ventricle with secondary geometrical distortion of the heart chambers and an increased venous return to the RV. This too increases the risk for RV failure. To find the optimal LVAD flow rate it is custom to do an extensive evaluation of central hemodynamic parameters (Cardiac Output(CO), Pulmonary Capillary Wedge Pressure (PCWP), Pulmonary Arterial Pressure (PAP), Central Venous Pressure (CVP)) and cardiac echocardiographic evaluation of RV function at different LVAD pump flow rates and MAP. The instant balance between RV filling pressure-CVP, and LV filling pressure-PCWP, is on the other hand easy to obtain. However it is not known if these measurements can be used to obtain an optimal LVAD flow rate. Furthermore all mechanically driven circulatory support devices, including LVAD, will expose the peripheral arterial circulation to a non-pulsatile blood flow.There are few previous reports on how an LVAD affects the cerebral blood flow autoregulation and microembolic load at different settings and MAP. This investigation aims to describe these cerebral effect af an LVAD using a continous Transcranial Doppler (TCD) detection of cerebral arteries.

Interventions

DEVICELVAD flow velocity setting-Rounds per Minute(RPM) on HeartMate III®

Increase in LVAD RPM setting induces an actual increase in LVAD outflow to the patient.This gives the patient an increased systemic Cardiac Output(CO)

DRUGMAP intervention using Noradrenalin

At a fixed RPM rate for the LVAD the Mean Arterial Pressure (MAP) is increased to preset levels of 60-70-80-90 mmHG using Noradrenalin

Sponsors

Sahlgrenska University Hospital
Lead SponsorOTHER

Study design

Allocation
NA
Intervention model
SINGLE_GROUP
Primary purpose
TREATMENT
Masking
NONE

Intervention model description

1. LVAD will have a setting of 4800 rounds per minute (RPM). Hemodynamic, echocardiographic and cerebral blood flow measurements will be performed: CO, PCWP, CVP, PAP, MAP, Peripheral and central hemoglobine oxygen saturation (SaO2 and SvO2), Heart Rate (HR), RV outflow tract Velocity Time Integral (RVOT VTI), RV and LV diameter, VTI of LVAD outflow. CBFV of right and left medial cerebral artery (RMCA and LMCA) 2. The above mentioned measurements will be repeated with LVAD settings of 5200 RPM, 5600 RPM, and 6000 RPM. 3. With the LVAD fixed to an optimized setting detected by the previous interventions, the blood pressure will be adjusted to MAP 60 mmHg. The above mentioned measurements will be repeated. 4. Using Noradrenaline the MAP will be adjusted to 70mmHg, 80 mmHg and 90 mmHg. At steady state for each level of MAP with a fixed LVAD flow, all the above mentioned measurements will be repeatedly performed.

Eligibility

Sex/Gender
ALL
Healthy volunteers
No

Inclusion criteria

* All patients receiving LVAD of the type HeartMate3® at Sahlgrenska University hospital

Exclusion criteria

* Perioperative need for an RVAD first 3 days postoperatively after an LVAD implantation

Design outcomes

Primary

MeasureTime frameDescription
Changes PCWP/CVP ratioChange from baseline at different settings of LVAD RPM within 10 minutes for each levelThe change in PCWP (mmHg)/CVP (mmHg) ratio at different levels of LVAD flow as a marker for the optimal balance between LVAD flow and RV function

Secondary

MeasureTime frameDescription
COChange from baseline at different settings of LVAD RPM within 10 minutes for each levelCardiac Output in litres/minute
LVAD Velocity Time IntegralChange from baseline at different settings of LVAD RPM within 10 minutes for each levelLVAD Velocity Time Integral in centimeters(cm)
Right Ventricle Outflow Tract (RVOT) Velocity Time Integral (VTI)Change from baseline at different settings of LVAD RPM within 10 minutes for each levelRVOT Velocity Time Integral in centimeters(cm)
CBFVChange from baseline at different settings of LVAD RPM within 10 minutes for each levelCBFV in cm/second

Other

MeasureTime frameDescription
Changes PCWP/CVP ratio at different MAPChange from baseline at different settings of MAP with a fixed LVAD RPM setting within 10 minutes for each levelThe change in PCWP (mmHg)/CVP (mmHg) ratio at different levels of MAP as a marker for the optimal balance between LVAD flow and RV function
LVAD VTI at different MAPChange from baseline at different settings of MAP with a fixed LVAD RPM setting within 10 minutes for each levelLVAD Velocity Time Integral in centimeters(cm)
CO at different MAPChange from baseline at different settings of MAP with a fixed LVAD RPM setting within 10 minutes for each levelCardiac Output in litres/minute
RVOT VTI at different MAPChange from baseline at different settings of MAP with a fixed LVAD RPM setting within 10 minutes for each levelRVOT Velocity Time Integral in centimeters(cm)
CBFV at different MAPChange from baseline at different settings of MAP with a fixed LVAD RPM setting within 10 minutes for each levelCBFV in cm/second

Countries

Sweden

Contacts

Primary ContactBengt Redfors, MD.PhD
bengt.redfors@vgregion.se0046313427445
Backup ContactBjorn Reinsfelt, MD.PhD
bjorn.reinsfelt@gu.se0046313428183

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026