Effects of Ciprofol on Myocardial Injury After Non-cardiac Surgery in Video-Assisted Thoracoscopic Surgery
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In plain language
An automatic summary of structured registry data. It is an orientation aid, not a substitute for the official protocol or a physician assessment.
- What is being studied
- The protocol lists: Propofol, ciprofol.
- Who it may be relevant to
- Registry conditions: Myocardial Injury, Thoracic Diseases, Thoracoscopic Surgery. Basic parameters: 40 years — 80 years · All.
- What needs checking
- Age, condition and sex are only basic indicators. Prior treatment, laboratory values and other mandatory requirements appear in the eligibility criteria below.
- Where it takes place
- China
- Next step
- Save the trial, show it to the treating physician, and confirm current recruitment with the study center. Costs, documents and travel →
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Official title
Effects of Ciprofol on Myocardial Injury After Non-cardiac Surgery (CP-MINS) in Patients Undergoing Video-Assisted Thoracoscopic Surgery: A Randomized, Double-Blind, Propofol-Controlled, Multicenter Trial
Overview
Myocardial injury after noncardiac surgery (MINS) refers to postoperative elevation of cardiac troponin (cTn) levels caused by underlying ischemic mechanisms (i.e., coronary artery supply-demand imbalance or atherosclerotic thrombosis) without obvious non-ischemic causes (such as pulmonary embolism), with at least one cTn concentration exceeding the 99th percentile of the test reference upper limit, regardless of whether clinical symptoms and ECG changes are present. MINS, including myocardial infarction and ischemic myocardial injury, typically occurs within 30 days after surgery, most commonly within the first 2 postoperative days. It is an independent risk factor for 30-day postoperative mortality and is also closely associated with increased risk of mortality and vascular complications within 2 years . MINS is a common cardiovascular complication after thoracic surgery. Therefore, reducing the incidence of MINS in non-cardiac thoracic surgery to improve patient outcomes is a critical issue in anesthetic management for thoracic surgery. Ciprofol is a Class 1 innovative drug independently developed in China with global intellectual property rights. Currently, Ciprofol has completed Phase III clinical trials in China and the United States; its approved indications in China include sedation or anesthesia for various diagnostic procedures, general anesthesia for surgical operations, and sedation during intensive care unit (ICU) stays. Completed drug clinical trials and published clinical trial data of Ciprofol indicate that it can better maintain circulatory stability and ideal anesthetic depth during anesthesia induction and maintenance, making it a promising intravenous general anesthetic alternative to propofol. Maintaining hemodynamic stability is an important measure to reduce cardiovascular complications during the perioperative period. Given the good circulatory stability and sedative efficacy of Ciprofol, this study aims to investigate the impact of Ciprofol on MINS in non-cardiac thoracic surgery.
Detailed description
Lung cancer ranks first in both incidence and mortality among malignant tumors in China. In 2022, there were 1,060,600 new lung cancer cases, accounting for 22.0% of all malignant tumors, and 733,300 deaths, accounting for 28.5% of all malignant tumor deaths. Radical surgical resection is the recommended preferred treatment for stage I and II non-small cell lung cancer. Video-assisted thoracoscopic surgery (VATS) for anatomic lung resection has better safety and long-term efficacy than traditional surgical methods, with more than 73.7% of lung cancer surgeries in China using thoracoscopic approaches. Thoracic surgery easily induces significant perioperative hemodynamic fluctuations, increasing the risk of perioperative cardiovascular and cerebrovascular complications, thus posing great challenges to perioperative anesthetic safety and long-term patient outcomes.
Myocardial injury after noncardiac surgery (MINS) refers to postoperative elevation of cardiac troponin (cTn) levels caused by underlying ischemic mechanisms (i.e., coronary artery supply-demand imbalance or atherosclerotic thrombosis) without obvious non-ischemic causes (such as pulmonary embolism), with at least one cTn concentration exceeding the 99th percentile of the test reference upper limit, regardless of whether clinical symptoms and ECG changes are present. MINS, including myocardial infarction and ischemic myocardial injury, typically occurs within 30 days after surgery, most commonly within the first 2 postoperative days. It is an independent risk factor for 30-day postoperative mortality and is also closely associated with increased risk of mortality and vascular complications within 2 years. MINS is a common cardiovascular complication after thoracic surgery; the COP-AF study found that the incidence of MINS in non-cardiac thoracic surgery is 20.3% . Therefore, reducing the incidence of MINS in non-cardiac thoracic surgery to improve patient outcomes is a critical issue in anesthetic management for thoracic surgery.
Severe hemodynamic fluctuations are one of the important causes of perioperative induction of MINS, thus maintaining hemodynamic stability is a critical step to reduce MINS. Propofol is the most commonly used drug for anesthesia induction and maintenance in clinical practice, with advantages such as rapid onset, strong sedative efficacy, and quick recovery. However, due to its significant circulatory inhibitory effects, the incidence of intraoperative hypotension induced and maintained by propofol in patients without cardiovascular diseases is 25%-40%, increasing the risk of perioperative hypotension and adverse cardiovascular events, which poses great challenges to anesthetic management. Additionally, 80% of patients receiving propofol experience injection pain of varying degrees, which also reduces patient comfort during treatment. Therefore, developing a sedative with both good sedative efficacy and no or low circulatory inhibition has long been a desirable goal for anesthesiologists.
Ciprofol is a Class 1 innovative drug independently developed in China with global intellectual property rights. Its molecular structure is an analog of propofol (2,6-diisopropylphenol). Both Ciprofol and propofol act on γ-aminobutyric acid type A (GABA-A) receptors, causing hyperpolarization of GABAergic neurons, reducing the success rate of action potential generation, and achieving inhibition of the central nervous system to produce short and rapid sedative or anesthetic effects. Pharmacologically, Ciprofol not only retains the characteristics of propofol such as rapid onset, rapid elimination, and high sedative efficacy but also has a higher drug cost-effectiveness ratio and therapeutic index (in mouse experiments, the median effective dose for sedation of Ciprofol is 1.5 mg/kg, the median lethal dose is 9.9 mg/kg, and the therapeutic index is 6.6, while that of propofol is only 2.8). Furthermore, due to the lower drug concentration in the aqueous phase of the Ciprofol emulsion, the risk of injection pain is much lower than that of propofol, improving treatment comfort. Currently, Ciprofol has completed Phase III clinical trials in China and the United States; its approved indications in China include sedation or anesthesia for various diagnostic procedures, general anesthesia for surgical operations, and sedation during intensive care unit (ICU) stays. Completed drug clinical trials and published post-marketing clinical trial data of Ciprofol indicate that it can better maintain circulatory stability and ideal anesthetic depth during anesthesia induction and maintenance, making it a promising intravenous general anesthetic alternative to propofol.
Maintaining hemodynamic stability is an important measure to reduce cardiovascular complications during the perioperative period. Given the good circulatory stability and sedative efficacy of Ciprofol, this study aims to investigate the impact of Ciprofol on MINS in non-cardiac thoracic surgery.
After data collection, full Analysis Set (FAS): A population derived by minimally and reasonably excluding certain cases under the principle of Intention-to-Treat (ITT), where cases included in the FAS should not seriously violate the inclusion criteria. FAS will be used for the analysis of baseline data and primary efficacy endpoints.
Per-Protocol Set (PPS): All cases that comply with the trial protocol, are well-tolerated (patients who completed PED procedures), and have completed the content specified in the case report form. PPS is used for the analysis of primary efficacy endpoints.
Safety Set (SS): Refers to the actual data of subjects who received at least one dose of treatment after randomization and have recorded safety indicators.
Interventions
- Drug Propofol
Using as sedative agents in the total intravenous anesthesia in video-assisted thoracoscopic aurgery in propofol group. - Drug ciprofol
Using as sedative agents in the total intravenous anesthesia in video-assisted thoracoscopic aurgery in ciprofol group.
Primary outcome measures
- the incidence of myocardial Injury after non-cardiac surgery [Time frame: Within the first 30 days after surgery]
Secondary outcome measures (6)
- The proportion of new-onset atrial fibrillation [Time frame: within hospitalized stay after anesthesia induction]
- The proportion of new-onset atrial fibrillation [Time frame: perioperatively]
- The proportion of new-onset non-atrial fibrillation arrhythmia [Time frame: perioperatively]
- The incidence and duration of perioperative hypotension [Time frame: between anesthesia induction and postoperative first 24 hour]
- 30-day postoperative mortality rate [Time frame: Within the first 30 days after surgery]
- New-onset myocardial infarction [Time frame: Within the first 30 days after surgery]
Eligibility criteria
Inclusion criteria
- Scheduled for elective video-assisted thoracoscopic (VATS)-assisted thoracic surgery (lobectomy, segmentectomy, wedge resection of two or more lung tissues, mediastinal tumor resection) under general anesthesia;
- Aged 45 to 80 years (inclusive) at the time of randomization;
- Expected postoperative hospital stay of ≥3 days;
- Signed a written informed consent to participate in the study.
Exclusion criteria
- Patients allergic to propofol, Ciprofol, or analogs of drug excipient components (soybeans, eggs, milk);
- Patients with unstable angina;
- Patients with congestive heart failure or hemodynamic instability requiring vasopressor agents;
- Patients with severe COPD (FEV1 < 1 L);
- Glomerular filtration rate \[eGFR\] < 30 mL/min/1.73m²;
- Patients with severe hepatic dysfunction (ALT or AST elevation exceeding 1.5 times the upper limit of normal);
- Male or female patients planning to conceive within the next 3 months;
- Pregnant or lactating female patients;
Criteria are shown verbatim from the registry (in English). Final eligibility is always assessed by the study center.
Healthy volunteers: No
Study design
- Allocation
- Randomized
- Model
- Parallel assignment
- Masking
- Double blind
- Primary purpose
- Prevention
Study locations
China · 1 center
- Tongji hospital — Wuhan
Publications
- Thygesen K, Alpert JS, Jaffe AS, Chaitman BR, Bax JJ, Morrow DA, White HD; Executive Group on behalf of the Joint European Society of Cardiology (ESC)/American College of Cardiology (ACC)/American Heart Association (AHA)/World Heart Federation (WHF) Task Force for the Universal Definition of Myocardial Infarction. Fourth Universal Definition of Myocardial Infarction (2018). Circulation. 2018 Nov 1 PMID 30571511
- Lopez J, Borzak S. In noncardiac thoracic surgery, low-dose colchicine did not reduce AF or myocardial injury after noncardiac surgery at 14 d. Ann Intern Med. 2024 Jan;177(1):JC3. doi: 10.7326/J23-0103. Epub 2024 Jan 2. PMID 38163371
- Conen D, Ke Wang M, Popova E, Chan MTV, Landoni G, Cata JP, Reimer C, McLean SR, Srinathan SK, Reyes JCT, Grande AM, Tallada AG, Sessler DI, Fleischmann E, Kabon B, Voltolini L, Cruz P, Maziak DE, Gutierrez-Soriano L, McIntyre WF, Tandon V, Martinez-Tellez E, Guerra-Londono JJ, DuMerton D, Wong RHL, McGuire AL, Kidane B, Roux DP, Shargall Y, Wells JR, Ofori SN, Vincent J, Xu L, Li Z, Eikelboom JW, PMID 37640035
- Zucker M, Kagan G, Adi N, Ronel I, Matot I, Zac L, Goren O. Changes in mean systemic filling pressure as an estimate of hemodynamic response to anesthesia induction using propofol. BMC Anesthesiol. 2022 Jul 22;22(1):234. doi: 10.1186/s12871-022-01773-8. PMID 35869445
- de Wit F, van Vliet AL, de Wilde RB, Jansen JR, Vuyk J, Aarts LP, de Jonge E, Veelo DP, Geerts BF. The effect of propofol on haemodynamics: cardiac output, venous return, mean systemic filling pressure, and vascular resistances. Br J Anaesth. 2016 Jun;116(6):784-9. doi: 10.1093/bja/aew126. PMID 27199311
- Jalota L, Kalira V, George E, Shi YY, Hornuss C, Radke O, Pace NL, Apfel CC; Perioperative Clinical Research Core. Prevention of pain on injection of propofol: systematic review and meta-analysis. BMJ. 2011 Mar 15;342:d1110. doi: 10.1136/bmj.d1110. PMID 21406529
- Gan TJ, Bertoch T, Habib AS, Yan P, Zhou R, Lai YL, Liu X, Essandoh M, Daley WL, Gelb AW. Comparison of the Efficacy of HSK3486 and Propofol for Induction of General Anesthesia in Adults: A Multicenter, Randomized, Double-blind, Controlled, Phase 3 Noninferiority Trial. Anesthesiology. 2024 Apr 1;140(4):690-700. doi: 10.1097/ALN.0000000000004886. PMID 38150544
- Qin L, Ren L, Wan S, Liu G, Luo X, Liu Z, Li F, Yu Y, Liu J, Wei Y. Design, Synthesis, and Evaluation of Novel 2,6-Disubstituted Phenol Derivatives as General Anesthetics. J Med Chem. 2017 May 11;60(9):3606-3617. doi: 10.1021/acs.jmedchem.7b00254. Epub 2017 Apr 28. PMID 28430430
Identifiers
NCT: NCT07028593 · TJ-IRB202502133