Target temperature 36°C
ProcedureIn hospital target temperature management to achieve a core body temperature of 36°C for 24 hours
NCT Number: NCT01020916
Experimental studies and previous clinical trials suggest an improvement in mortality and neurological function with hypothermia after cardiac arrest. However, the accrued evidence is inconclusive and associated with risks of systematic error, design error and random error. Elevated body temperature after cardiac arrest is associated with a worse outcome. Previous trials did not treat elevated body temperature in the control groups. The optimal target temperature for post-resuscitation care is not known. The primary purpose with the TTM-trial is to evaluate if there are differences in all-cause mortality, neurological function and adverse events between a target temperature management at 33°C and 36°C for 24 hours following return of spontaneous circulation after cardiac arrest.
Looking for future studies?
Notify Me18 year and older
All sexes
Interventional
Not applicable
Liverpool Hospital, Sydney, Australia
Detailed statistical analysis plan for the Target Temperature Management after Out-of-hospital Cardiac Arrest trial
To prevent outcome reporting bias and data driven analysis results, the International Conference on Harmonisation of Good Clinical Practice and others have recommended that clinical trials should be analysed according to a pre-specified plan [1]. Leading experts in the critical care community have advocated that this should not only be a recommendation but rather a prerequisite [2]. Here we describe the statistical analysis plan that has been finalised while data collection in the TTM-trial still is on going, and to which all data analyses in the main publication of the TTM-trial results will adhere. The steering group of the TTM-trial unanimously approved the statistical analysis plan December 3rd 2012, patient recruitment at 950 patients was completed January 10th 2013, and the final follow-up is predicted to occur in the beginning of July 2013, after which the database will be locked and then analysed.
Primary outcome The primary outcome is survival until end of trial, which will be 180 days from randomisation of the last patient.
Secondary outcomes including adverse events The main secondary outcomes are the composite outcomes of
evaluated at 180 days (+/- 14 days) from randomisation.
The number of study participants in each category of CPC and mRS will be reported separately.
The following adverse events are included in the secondary outcomes: bleeding, pneumonia, electrolyte disorders, hyperglycemia, hypoglycaemia, cardiac arrhythmia, myoclonic or tonic-clonic seizures, renal replacement therapy. Definitions for the adverse events have been described earlier [4].
Other secondary outcomes are Cerebral Performance Category at intensive care unit and hospital discharge, and best Cerebral Performance Category during entire trial period.
Exploratory outcomes Neurological function at 180 days defined with CPC, mRS, Informant Questionnaire on Cognitive Decline in the Elderly (IQCODE), Mini mental state exam (MMSE) and two simple questions: 1a. In the last two weeks, did you require help from another person for your every day activities? (If yes: 1b. Is this a new situation following the heart arrest?), and 2. Do you feel you have made a complete mental recovery after your heart arrest? [4].
Quality of life defined with Short-Form 36.
Intervention period variables Core temperature primarily measured in the urinary bladder will be reported per hour during the 36 hours of the intervention period.
Neurological prognostication and withdrawal of care Number and proportion of patients still comatose at 72 hours after the end of the intervention period that underwent neurological prognostication by a blinded physician. Number of patients, who did not survive until neurological prognostication and their presumed cause of death, including limitations in care and reasons for that. Number of patients with electroencephalogram, somatosensory evoked potentials, magnetic resonance imaging, computed tomography of the head.
Concomitant cardiological treatments Number of patients receiving coronary angiography, percutaneous coronary intervention and coronary bypass grafting, divided in three time groups (immediately after admission, during intervention or when sedated in the intensive care unit, and after regaining consciousness. Number of patients receiving intra aortic balloon pump, other mechanical assist device, temporary pacemaker, permanent pacemaker and implantable cardioverter-defibrillator.
Other descriptive variables Number of days in intensive care unit and days on mechanical ventilation during the index ICU-admission and days in hospital within the index admission will be reported.
Primarily the observed P-values of the primary and five secondary outcomes will be presented. However, multiplicity, a possibly reason for spurious statistically significant P-values, may be a problem when the result of several outcomes are presented. We therefore want to present a supplemental analysis being the result with P-values adjusted for multiplicity according to the fall-back procedure [7]. The P-values adjusted for multiplicity will be presented and discussed in relation to the unadjusted P-values. This adjustment may be needed to control the overall probability of a type 1 error (rejection of a null hypothesis that is actually true) and keep the family wise error rate below 0.05 as required by most regulatory agencies. This will be done by specifying the weights of the hypotheses assigned to them according to their importance. The sequence in which the hypotheses will be tested and their individual weights (in parentheses) will be: the primary outcome (0.50), first secondary outcome (0.25), second secondary outcome (0.0625), third secondary outcome (0.0625), fourth secondary outcome (0.0625), and fifth secondary outcome (0.0625). The multiplicity problem is further illuminated in the Discussion section.
Primary outcome Frequencies and percentages per group, as well as hazard ratios with 95% CI will be reported. The primary outcome will be analysed using Cox-regression with adjusting variables indicated below. The proportional hazard assumption across treatment groups will be checked by testing if there is an interaction between intervention and time and by plotting cumulative hazard functions for intervention groups.
Secondary outcomes including adverse events Frequencies and percentages per group, as well as risk ratios with 95% CI will be reported. A standard Chi2-test will be used to assess the effect of treatment on binary and categorical outcomes. For the adjusted primary analyses logistic regression analysis will be used. Wilcoxon-Mann-Whitney's test will be used for continuous outcomes. There will only be reported significance testing on the composite outcomes mortality and poor neurological outcome versus survival with good neurological outcome; not on the individual sub-scores of CPC and mRS. For adverse events there will be a Chi2-test on having one or more adverse events versus having no adverse events. If there is a significant difference between treatment groups in occurrence of adverse events we will try to delineate which of the events that drive this difference. However we acknowledge the low power for performing analyses in this case.
Characteristics of patients with baseline comparisons Description of baseline characteristics listed above will be presented by treatment group. Discrete variables will be summarized by frequencies and percentages. Percentages will be calculated according to the number of patients where data are available. Where values are missing, the actual denominator will be stated.
Continuous variables will be summarised using standard measures of central tendency and dispersion, either using mean +/- standard deviation for data with normal distribution or median and inter quartile range for non-normally distributed data.
Intervention period variables The mean values of the actual measured temperature in the two intervention groups will be displayed in a graph with mean, +/- 2 standard deviations.
Neurological prognostication and withdrawal of care, concomitant cardiological treatments and other descriptive variables
Description of baseline characteristics listed above will be presented by treatment group without significance testing. Discrete variables will be summarized by frequencies and percentages. Percentages will be calculated according to the number of patients where data are available. Where values are missing, the actual denominator will be stated.
Continuous variables will be summarised using standard measures of central tendency and dispersion, either using mean +/- standard deviation for data with normal distribution or median and inter quartile range for non-normally distributed data.
Figure 3 will be a Kaplan-Meier plot of survival in the two groups during the trial period (32 months).
Figure 4 will be a Forest plot of intervention effects stratified for the design variables: age dichotomised around the median, gender, duration of cardiac arrest dichotomised around the median, initial cardiac rhythm shockable or non-shockable, and presence or absence of cardiogenic shock at admission to hospital.
All tables will report variable according to randomisation groups:
Table 1 and 2 will report background variables. Table 3 will report intensive care unit and hospital stay variables. Table 4 will report adverse events. Table 5 will report 180-day outcomes for survival/mortality and neurological function with CPC and mRS.
We would like to emphasise that the main secondary outcome being the composite outcome of poor neurological function and mortality at 180 days after cardiac arrest will be of great importance in a situation of a neutral outcome in the primary outcome, when interpreting the results and deriving clinical implications from the TTM-trial. As survival is an outcome with low risk of bias, not prone to competing risks, and earlier trials and registry data indicate a lower sample size needed to show the same risk reduction when the composite outcome of mortality and poor neurological function is used (compared to mortality/survival), this was the fundament for the order of the outcomes. The composite outcome of poor neurological function and mortality will hopefully benefit by an increased power with respect to the possibility of finding or rejecting a significant signal when the trial is powered for survival, which would require a larger sample size.
Comments on the multiplicity problem
There are one primary and 5 secondary outcomes to be assessed:
An alternative (the fixed sequence procedure) would be to specify the sequence of the hypotheses testing in advance. (Primary outcome, first secondary outcome, second secondary outcome, - - -, fifth secondary outcome.) In this latter case no multiplicity adjustment will be needed. Then each test will be done at the 0.05 level of significance in the specified order. However, as soon as a test is non-significant the remaining null hypotheses will be accepted without test.
For instance if the primary outcome and the first secondary outcome are significant at the 0.05 level and the second secondary outcome (neurological function measured with mRS) is insignificant, the null hypotheses corresponding to the secondary outcomes 3, 4 and 5 will be accepted without test.
A third approach is the so-called fall back procedure where the fixed hypothesis testing sequence is also used. However, if a test is insignificant, the procedure does not stop but the next hypothesis is tested at a reduced level of significance. This procedure also allows one to weight the hypotheses according to their importance and likelihood of being rejected.
Hommel's procedure is sensitive to the P-values of the last three tests while the fall back procedure is not. Since the first and second of the secondary outcomes probably will produce similar P-values it appears logical to place most of the weights on the primary and the first secondary outcome.
Based on these considerations the analyses in the TTM-trial will be presented with unadjusted P-values as well as adjusted for multiplicity using the fall back procedure.
References
Healthy volunteers accepted: No
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
In hospital target temperature management to achieve a core body temperature of 36°C for 24 hours
In hospital target temperature management to achieve a core body temperature of 33°C for 24 hours
Time frame: Maximum follow-up with a minimum of 180 days
Time frame: 180 days
Time frame: During day 1-7 of intensive care treatment
Time frame: 180 days
Cerebral Performance Category, Modified Rankin Scale
Time frame: During day 1-7 of intensive care treatment
Time frame: During day 1-7 of intensive care treatment
Time frame: During day 1-7 of intensive care treatment
Time frame: During day 1-7 of intensive care treatment
Time frame: During day 1-7 of intensive care treatment
Time frame: During day 1-7 of intensive care treatment
Time frame: 180 days
Time frame: 180 days
CPC 1,2,3,4,5
Time frame: 180 days
mRS 1,2,3,4,5,6
Time frame: 180 days
SF-36
Time frame: 180 days
Mini mental state exam (MMSE), Informant Questionnaire on Cognitive Decline in the Elderly (IQCODE) and two questions*
*Survivors with complete recovery defined by: MMSE ≥27 (or ≥19 on MMSE-Adult Lifestyle Functioning Interview by telephone interview), modified IQCODE ≤78, answer "No" to question 1a or "No" to question 1b, answer "Yes" to question 2.
1a. "In the last 2 weeks, did you require help from another person for your every day activities?" (If yes, 1b. "Is this a new situation following the heart arrest?") and 2. "Do you feel that you have made a complete mental recovery after your heart arrest?
Time frame: Hospital discharge and 1-180 days
CPC at hospital discharge and best CPC during the first 180 days after cardiac arrest
Niklas Nielsen
Other
Target Temperature Management 33°C Versus 36°C After Out-of-hospital Cardiac Arrest, a Randomised, Parallel Groups, Assessor Blinded Clinical Trial
Acronym: TTM
OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.
View the official ClinicalTrials.gov record (opens in a new tab)This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.
Published trials that share one or more normalized conditions with this study.
NCT04988906
Cardiovascular Diseases, Heart Arrest
Toronto, Ontario, Canada
View Trial DetailsNCT03872960
Cardiovascular Diseases, Heart Arrest
Dartford, United Kingdom
View Trial DetailsNCT03881865
Cardiovascular Diseases, Heart Arrest
Plymouth, Devon, United Kingdom
View Trial DetailsNCT02908308
Cardiovascular Diseases, Heart Arrest
Rochester, New York, United States
View Trial Details