Coronary Artery Bypass, Coronary Artery Disease, Myocardial Infarction, Myocardial Ischemia
Conditions
Keywords
Coronary Artery Bypass, Myocardial Protection, Angina, Unstable, Myocardial Ischemia, Myocardial Infarction, Unstable Coronary Artery Disease, Glutamate
Brief summary
The main purpose of this study is to determine whether intravenous glutamate infusion given in association with surgery for unstable coronary artery disease can protect the heart from myocardial injury, postoperative heart failure and death.
Detailed description
Myocardial preservation in cardiac surgery has mainly focused on the period when the heart is arrested (cross-clamp time). Today the heart can be arrested for up to 2-3 hours without major consequences. However, in spite of comparatively short cross-clamp times approximately 10% of the patients undergoing coronary surgery sustain significant myocardial injury whereas perioperative myocardial infarction is rare in aortic valve surgery despite longer cross-clamp times. The reason for this is that preoperative ischemia, and to some extent postoperative ischemia, remain major risk factors for development of myocardial infarction in patients with ischemic heart disease. In light of this, we suggest that efforts to improve outcome and reduce permanent myocardial damage should focus on the preoperative and the postoperative phase of coronary surgery. Furthermore, efforts should be instituted to reduce reperfusion injury and minimize permanent myocardial damage in long-standing or severe myocardial ischemia. Metabolic intervention with intravenous glutamate infusion, offers the prospect of addressing the issues above and extending myocardial protection into the pre- and postoperative phase. Glutamate is an important substrate for the intermediary metabolism of the heart, particularly in association with ischemia. The effects of glutamate are partly related to its role in the malate-aspartate shuttle, transporting reducing equivalents across the mitochondrial membrane, regulating the NAD/NADH balance in the cytosol of the cells, and thereby enhancing anaerobic glycolysis during ischemia. Furthermore, glutamate contributes to an alternative anaerobic pathway for regeneration of high-energy phosphates, by substrate level phosphorylation in the Krebs cycle. Glutamate also improves clearance of metabolic waste produced during ischemia such as lactate and NH3, by taking part in the reactions involving transamination of pyruvate to alanine and of glutamate to glutamine. During reperfusion glutamate contributes to the replenishment of Krebs cycle intermediates lost during ischemia, which is essential for recovery of oxidative metabolism. Administration of glutamate to patients with stable angina pectoris has been found to increase tolerance to stress-induced ischemia. Ischemia before onset of cardiopulmonary bypass has been established as a major risk factor for postoperative myocardial infarction. Patients with unstable coronary artery disease may have critical ischemia at rest and are particularly vulnerable to the increased oxygen demands during the early stages of coronary surgery. In a pilot study on patients operated urgently for unstable angina we found metabolic signs compatible with improved tolerance to ischemia before surgery and improved recovery of oxidative metabolism during early reperfusion. These results warrant further studies to evaluate the potential clinical benefit of preoperative glutamate infusion extended into the early postoperative period. Comparisons: Intravenous infusion of 0.125 M glutamic acid solution v saline at a rate of 1.65 ml/hour and kg body weight beginning with institution of anesthesia and stopping 2 hours after unclamping of aorta in patients operated for unstable coronary artery disease. Preliminary power analysis (80% power; p\<0.05) suggests that 2214 patients will be required with regard to primary end-point assuming 30% reduction of events occurring in 12% of untreated patients. Stage I of the study comprises 800 patients\* and will lead to an interim analysis with report of secondary end-points\*\* and recalculation of sample-size with regard to primary end-point. An adaptive design with regard to primary end-point and analysis performed by external statistician blinded to the investigators will be used to avoid increasing the risk for type I error. \*Patient number 800 is anticipated to be enrolled during the summer of 2009 and for practical reasons all patients enrolled until the end of August 2009 will comprise the interim analysis. \*\*Secondary end-points include analysis of markers for myocardial injury (CK-MB, troponin-T), markers for hemodynamic adequacy (mixed venous oxygen saturation), renal function (p-creatinine, p-Cystatin C), brain injury (S100B, clinical signs). As a substudy a blinded analysis of the value of NT-pro BNP (obtained immediately before surgery, 24 hours postoperatively and on the 3rd postoperative day) as marker of postoperative heart failure and outcome will be conducted. NT-pro BNP will also be related to treatment with glutamate or placebo. Similar evaluation will involve markers troponin-T, p-Cystatin C and mixed venous oxygen saturation. For further details see outcome measures. Substudies will involve subgroup analyses of patients with regard to combined CABG + valve procedures, severely unstable patients requiring emergency surgery / intravenous nitrates, preoperative LV-dysfunction and patients with diabetes. For further details see outcome measures.
Interventions
Intravenous infusion of isotonic saline at a rate of 1.65 ml/hour and kg body weight beginning with institution of anesthesia and stopping 2 hours after unclamping of aorta in patients operated for unstable coronary artery disease.
Intravenous infusion of 0.125 M glutamic acid solution at a rate of 1.65 ml/hour and kg body weight beginning with institution of anesthesia and stopping 2 hours after unclamping of aorta in patients operated for unstable coronary artery disease.
Sponsors
Study design
Eligibility
Inclusion criteria
* surgery for unstable coronary artery disease (unstable angina, non-STEMI) * accepted for surgery \< 2 weeks after STEMI * coronary surgery for indications above performed with or without cardiopulmonary bypass * coronary surgery for indications above with or without simultaneous valve procedure
Exclusion criteria
* informed consent not possible because of critical condition or other reason * preoperative use of inotropes or mechanical circulatory assist * preoperative dialysis * redo-procedure * unexpected intraoperative finding / event that increased the dignity of the procedure to overshadow the originally planned operation * body weight \> 125 kg * food allergy known to have caused flush, rash or asthma
Design outcomes
Primary
| Measure | Time frame |
|---|---|
| Number of Participants With Perioperative Myocardial Infarction, Postoperative Heart Failure or Postoperative Mortality | 30 days |
Secondary
| Measure | Time frame | Description |
|---|---|---|
| Postoperative Hemodynamic State | Until arrival to ICU | Mixed venous oxygen saturation (SvO2) measured at weaning from cardiopulmonary bypass and on arrival to ICU |
| Postoperative Hemodynamic State in Patients With Severely Reduced Left Ventricular Ejection Fraction (LVEF<0.40) | End of surgery | Hemodynamic instability despite inotropes or need for IABP at the end of surgery in patients with severely reduced left ventricular ejection fraction (LVEF\<0.40) |
| Postoperative Renal Function | 30 days | maximum p-creatinine value recorded postoperatively \< 30 days |
| Number of Participants With Postoperative Stroke < 24 Hours | 24 hours | Incidence of Postoperative stroke \< 24 hours of surgery verifed by CT-scan |
| Degree of Perioperative Myocardial Injury | perioperative | p-CK-MB postoperative day 1, p-troponin-T postoperative day 3 |
| Atrial Fibrillation | Hospital stay | Number of patients with atrial fibrillation recorded postoperatively |
| Severe Circulatory Failure in CCS Class IV Patients | 30 days | Severe circulatory failure according to prespecified criteria as judged by a blinded endpoints committee in CCS class IV patients |
| 10-year Survival | 10 year - survival (crude) | 10-year survival - related to intervention. Last follow-up August 3, 2022. Follow-up time ranged from 12.7-16.8 years. |
| Postoperative Mortality | 30 days | Postoperative mortality within 30 days of surgery |
| ICU Stay | ICU stay | ICU duration of stay (hours) |
Countries
Sweden
Participant flow
Recruitment details
4 patients, 2 in each group were excluded because of intraoperative exclusion criteria
Participants by arm
| Arm | Count |
|---|---|
| Intravenous Glutamate Intravenous infusion of 0.125 M glutamic acid solution at a rate of 1.65 ml/hour and kg body weight beginning with institution of anesthesia and stopping 2 hours after unclamping of aorta in patients operated for unstable coronary artery disease.
Intravenous glutamate infusion: Intravenous infusion of 0.125 M glutamic acid solution at a rate of 1.65 ml/hour and kg body weight beginning with institution of anesthesia and stopping 2 hours after unclamping of aorta in patients operated for unstable coronary artery disease. | 428 |
| Saline Infusion Intravenous infusion of saline at a rate of 1.65 ml/hour and kg body weight beginning with institution of anesthesia and stopping 2 hours after unclamping of aorta in patients operated for unstable coronary artery disease.
Intravenous infusion of saline: Intravenous infusion of isotonic saline at a rate of 1.65 ml/hour and kg body weight beginning with institution of anesthesia and stopping 2 hours after unclamping of aorta in patients operated for unstable coronary artery disease. | 433 |
| Total | 861 |
Withdrawals & dropouts
| Period | Reason | FG000 | FG001 |
|---|---|---|---|
| Overall Study | Intraoperative exclusion criteria | 1 | 1 |
Baseline characteristics
| Characteristic | Saline Infusion | Total | Intravenous Glutamate |
|---|---|---|---|
| Age, Continuous | 68 years STANDARD_DEVIATION 9 | 68 years STANDARD_DEVIATION 9 | 68 years STANDARD_DEVIATION 9 |
| Race and Ethnicity Not Collected | — | 0 Participants | — |
| Region of Enrollment Sweden | 433 participants | 861 participants | 428 participants |
| Sex: Female, Male Female | 82 Participants | 157 Participants | 75 Participants |
| Sex: Female, Male Male | 351 Participants | 704 Participants | 353 Participants |
Adverse events
| Event type | EG000 affected / at risk | EG001 affected / at risk |
|---|---|---|
| deaths Total, all-cause mortality | 126 / 427 | 131 / 432 |
| other Total, other adverse events | 164 / 428 | 165 / 433 |
| serious Total, serious adverse events | 54 / 428 | 59 / 433 |
Outcome results
Number of Participants With Perioperative Myocardial Infarction, Postoperative Heart Failure or Postoperative Mortality
Time frame: 30 days
| Arm | Measure | Value (COUNT_OF_PARTICIPANTS) |
|---|---|---|
| Intravenous Glutamate | Number of Participants With Perioperative Myocardial Infarction, Postoperative Heart Failure or Postoperative Mortality | 31 Participants |
| Saline Infusion | Number of Participants With Perioperative Myocardial Infarction, Postoperative Heart Failure or Postoperative Mortality | 25 Participants |
10-year Survival
10-year survival - related to intervention. Last follow-up August 3, 2022. Follow-up time ranged from 12.7-16.8 years.
Time frame: 10 year - survival (crude)
Population: Two patients were lost to follow-up, one in each group. One patient had moved abroad, the other one for unknown reason.
| Arm | Measure | Value (COUNT_OF_PARTICIPANTS) |
|---|---|---|
| Intravenous Glutamate | 10-year Survival | 301 Participants |
| Saline Infusion | 10-year Survival | 301 Participants |
Atrial Fibrillation
Number of patients with atrial fibrillation recorded postoperatively
Time frame: Hospital stay
| Arm | Measure | Value (COUNT_OF_PARTICIPANTS) |
|---|---|---|
| Intravenous Glutamate | Atrial Fibrillation | 147 Participants |
| Saline Infusion | Atrial Fibrillation | 152 Participants |
Degree of Perioperative Myocardial Injury
p-CK-MB postoperative day 1, p-troponin-T postoperative day 3
Time frame: perioperative
| Arm | Measure | Group | Value (MEDIAN) |
|---|---|---|---|
| Intravenous Glutamate | Degree of Perioperative Myocardial Injury | Troponin-T day 3 | 0.27 µg/L |
| Intravenous Glutamate | Degree of Perioperative Myocardial Injury | CK-MB day 1 | 14 µg/L |
| Saline Infusion | Degree of Perioperative Myocardial Injury | Troponin-T day 3 | 0.24 µg/L |
| Saline Infusion | Degree of Perioperative Myocardial Injury | CK-MB day 1 | 14 µg/L |
ICU Stay
ICU duration of stay (hours)
Time frame: ICU stay
| Arm | Measure | Value (MEDIAN) |
|---|---|---|
| Intravenous Glutamate | ICU Stay | 21 hours |
| Saline Infusion | ICU Stay | 21 hours |
Number of Participants With Postoperative Stroke < 24 Hours
Incidence of Postoperative stroke \< 24 hours of surgery verifed by CT-scan
Time frame: 24 hours
| Arm | Measure | Value (COUNT_OF_PARTICIPANTS) |
|---|---|---|
| Intravenous Glutamate | Number of Participants With Postoperative Stroke < 24 Hours | 4 Participants |
| Saline Infusion | Number of Participants With Postoperative Stroke < 24 Hours | 6 Participants |
Postoperative Hemodynamic State
Mixed venous oxygen saturation (SvO2) measured at weaning from cardiopulmonary bypass and on arrival to ICU
Time frame: Until arrival to ICU
| Arm | Measure | Group | Value (MEAN) | Dispersion |
|---|---|---|---|---|
| Intravenous Glutamate | Postoperative Hemodynamic State | SvO2 at weaning from CPB | 72.0 percentage of saturated hemoglobin | Standard Deviation 7.6 |
| Intravenous Glutamate | Postoperative Hemodynamic State | SvO2 on arrival to ICU | 65.0 percentage of saturated hemoglobin | Standard Deviation 7 |
| Saline Infusion | Postoperative Hemodynamic State | SvO2 at weaning from CPB | 72.2 percentage of saturated hemoglobin | Standard Deviation 7.3 |
| Saline Infusion | Postoperative Hemodynamic State | SvO2 on arrival to ICU | 64.9 percentage of saturated hemoglobin | Standard Deviation 6.9 |
Postoperative Hemodynamic State in Patients With Severely Reduced Left Ventricular Ejection Fraction (LVEF<0.40)
Hemodynamic instability despite inotropes or need for IABP at the end of surgery in patients with severely reduced left ventricular ejection fraction (LVEF\<0.40)
Time frame: End of surgery
Population: Moderately or severely reduced LVEF (\<0.40)
| Arm | Measure | Value (COUNT_OF_PARTICIPANTS) |
|---|---|---|
| Intravenous Glutamate | Postoperative Hemodynamic State in Patients With Severely Reduced Left Ventricular Ejection Fraction (LVEF<0.40) | 1 Participants |
| Saline Infusion | Postoperative Hemodynamic State in Patients With Severely Reduced Left Ventricular Ejection Fraction (LVEF<0.40) | 5 Participants |
Postoperative Mortality
Postoperative mortality within 30 days of surgery
Time frame: 30 days
| Arm | Measure | Value (COUNT_OF_PARTICIPANTS) |
|---|---|---|
| Intravenous Glutamate | Postoperative Mortality | 4 Participants |
| Saline Infusion | Postoperative Mortality | 5 Participants |
Postoperative Renal Function
maximum p-creatinine value recorded postoperatively \< 30 days
Time frame: 30 days
| Arm | Measure | Value (MEAN) | Dispersion |
|---|---|---|---|
| Intravenous Glutamate | Postoperative Renal Function | 106 µmol/L | Standard Deviation 50 |
| Saline Infusion | Postoperative Renal Function | 106 µmol/L | Standard Deviation 50 |
Severe Circulatory Failure in CCS Class IV Patients
Severe circulatory failure according to prespecified criteria as judged by a blinded endpoints committee in CCS class IV patients
Time frame: 30 days
Population: CCS class IV patients
| Arm | Measure | Value (COUNT_OF_PARTICIPANTS) |
|---|---|---|
| Intravenous Glutamate | Severe Circulatory Failure in CCS Class IV Patients | 3 Participants |
| Saline Infusion | Severe Circulatory Failure in CCS Class IV Patients | 16 Participants |