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临床试验/NCT07828379
NCT07828379尚未招募不适用

Post-Market Active Surveillance and Health Economic Evaluation of Cerebrovascular Diagnostic and Therapeutic Devices

Changhai Hospital0 个研究点目标入组 2,000 人开始时间: 2026年9月1日最近更新:
适应症
干预措施

试验速览

阶段
不适用
状态
尚未招募
入组人数
2,000
主要终点
Functional Outcome

研究概览

简要总结

The research focuses on "post-market active surveillance and health economic evaluation of non-pharmacological therapies and innovative cerebrovascular diagnostic and therapeutic devices". Partnering with top-tier domestic institutions including the National Medical Administration Center, Regional Drug Evaluation Center, Beijing Tiantan Hospital, Capital Medical University, The First Affiliated Hospital of Naval Medical University, The First Affiliated Hospital of Harbin Medical University, and the School of Public Health, Fudan University, the project intends to:

Establish standards for post-market active surveillance of cerebrovascular diagnostic and therapeutic devices and develop an intelligent surveillance system; Build a nationwide collaborative network covering multi-level medical institutions, and conduct serial cohort studies on cerebrovascular diseases based on the surveillance platform; Carry out safety, effectiveness and health economic evaluations for cerebrovascular diagnostic and therapeutic devices using data collected from the network and platform, so as to provide scientific evidence for the full-life-cycle regulation of such devices.

详细描述

Cerebrovascular disease is the leading cause of disability and adult mortality in China,with a high overall incidence. The rapid advancement and widespread application of neurointerventional techniques have driven an annual increase in the volume of cerebrovascular interventional procedures. Consequently, various cerebrovascular diagnostic and therapeutic devices-including multiple domestically developed innovative devices-have gained market approval following pre-market clinical trials,thereby expanding clinical treatment options. However, pre-market studies are often limited by small sample sizes, restricted population representativeness, short observation periods, and highly controlled clinical environments, making it difficult to fully evaluate device performance in real-world clinical settings. Therefore, strengthening post-market device regulation and establishing a comprehensive post-market active surveillance system are critical. These measures are essential for the timely detection and management of clinical risks,ensuring patient safety, accumulating real-world data (RWD), and supporting the optimization of health policies and healthcare reimbursement decisions. China has long prioritized the post-market surveillance of medical devices. Since initiating a pilot program for medical device adverse event (MDAE) monitoring in 2002, China successively promulgated the Measures for the Monitoring and Re-evaluation of Medical Device Adverse Events (Trial) in 2008 and the revised Measures for the Monitoring and Re-evaluation of Medical Device Adverse Events in 2018 to strengthen device surveillance. Furthermore, the newly revised Regulations on the Supervision and Administration of Medical Devices (State Council Decree No.739 of the People's Republic of China), promulgated in 2021, emphasize full-lifecycle, full-process and full-chain oversight of medical devices. Throughout this progression, China has established the Medical Device Adverse Event Reporting and Management System, anchored by provincial MDAE monitoring centers. This system enables medical institutions and manufacturers that identify adverse events to submit reports, increasing the volume of adverse event submissions and improving risk monitoring and control capacity. However, it is notable that China's existing post-market regulatory framework for medical devices still faces a significant challenge: the lack of an active surveillance system. The current reporting system, which designates medical device registrants as the primary responsible entities, is voluntary rather than mandatory. This inevitably leads to inherent flaws such as low reporting rates, high misreporting rates, the inability to calculate true incidence rates, and delayed signal detection. Consequently, the real-world safety, effectiveness, and health economics of medical devices cannot be comprehensively evaluated, posing potential risks to public health safety and the efficient utilization of healthcare resources. Therefore, it is imperative to transition from a passive surveillance model to an active surveillance paradigm characterized by proactive data collection and active outcome analysis. Although active surveillance takes various forms, conducting real-world active surveillance based on healthcare data has become a prevailing trend. This is driven by the enhanced integration and application of healthcare data, alongside continuous advancements in analytical techniques. For instance, in 2012, the U.S. Food and Drug Administration (FDA) initiated the Medical Device Epidemiology Network (MDEpiNet)-a multi-stakeholder collaborative platform involving healthcare institutions, academic organizations, device manufacturers, and patient advocacy groups. This initiative aims to conduct surveillance research by sharing resources across network members and integrating RWD, including electronic health records (EHR), cohort studies, and healthcare claims data. In recent years, China has initiated pilot programs for active post-market surveillance of medical devices (i.e., the medical device vigilance system) in regions such as Jiangsu, yielding preliminary results. Overall, however, the implementation of real-world evaluation still faces significant challenges: 1. Lack of a unified national surveillance system: Inefficient cross-hospital collaboration hinders standardized data integration and creates isolated information silos. 2. Absence of a multi-center collaborative network: The surveillance framework is solely regulator-led, leaving healthcare institutions (core data providers) with insufficient incentives for active data submission and early risk alerting. 3. Deficient long-term follow-up workflows: Incomplete longitudinal follow-up data limits the availability of health economic evidence to support healthcare policy design. China has unique national conditions: a vast territory, large population, heterogeneous regional epidemiological profiles, and unbalanced socioeconomic and healthcare resources. Combined with the broad clinical adoption of post-market cerebrovascular devices (domestic innovative devices in particular) and the massive volume of real-world data they generate, the above challenges will be further exacerbated when rolling out nationwide active surveillance. Therefore, the successful implementation of active medical device surveillance tailored to China's context relies on several key strategies: First, coordinating inter-hospital collaboration through departments with core advantages in cross-sector coordination to construct a national system and achieve data harmonization across medical institutions.Second, empowering medical institutions as the primary executing entities of active surveillance by leveraging specialized academic influence to build collaborative networks and research-sharing mechanisms, thereby incentivizing institutional participation.Third, establishing research cohorts with standardized disease follow-up protocols to acquire robust long-term follow-up data for comprehensive longitudinal and health economic evaluations.

研究设计

研究类型
Observational
观察模型
Cohort
时间视角
Prospective

入排标准

年龄范围
18 Years 至 80 Years(Adult, Older Adult)
性别
All
接受健康志愿者

入选标准

  • Acute Ischemic Stroke Cohort
  • Inclusion Criteria:
  • Age ≥18 years; patients with ischemic stroke receiving acute reperfusion therapy (i.e., endovascular thrombectomy with or without intravenous thrombolysis); informed consent signed by the patient or their legal representative, and availability for follow-up.

排除标准

  • Participation in another clinical trial of drugs or devices within the past 3 months or ongoing participation in such trials.
  • Intracranial Arterial Stenosis Cohort
  • Inclusion Criteria:
  • Aged 35-80 years; symptomatic moderate-to-severe intracranial arterial stenosis (50-99%, confirmed by DSA) with contralateral intracranial arterial stenosis <50%. Symptomatic stenosis is defined as transient ischemic attack (TIA), stroke or other relevant neurological symptoms caused by internal carotid artery stenosis within the preceding 6 months; informed consent signed by the patient or their legal representative, and availability for follow-up.
  • Exclusion Criteria:
  • Contraindications to stenting; participation in another clinical trial of drugs or devices within the past 6 months or ongoing participation in such trials.
  • Extracranial Arterial Stenosis Cohort
  • Inclusion Criteria:
  • Aged 35-80 years; symptomatic moderate-to-severe stenosis (50-99%) of the origin of the internal carotid artery or vertebral artery confirmed by ultrasound, CTA or DSA. Symptomatic stenosis is defined as transient ischemic attack (TIA), stroke or other relevant neurological symptoms caused by stenosis of the internal carotid artery or vertebral artery within the preceding 6 months; asymptomatic severe stenosis (70%-99%) of the origin of the internal carotid artery or vertebral artery; informed consent signed by the patient or their legal representative, and availability for follow-up.
  • Exclusion Criteria:
  • Contraindications to interventional therapy including stenting or balloon angioplasty; participation in another clinical trial of drugs or devices within the past 6 months or ongoing participation in such trials.
  • Intracranial Aneurysm Cohort
  • Inclusion Criteria:
  • Age ≥18 years; ruptured or unruptured intracranial aneurysm diagnosed by digital subtraction angiography; meeting the surgical indications for flow-diverting devices, intracranial stents or coil embolization; patients who provide informed consent for this study and agree to follow-up imaging examinations.
  • Exclusion Criteria:
  • Coexistence of other cerebrovascular diseases; severe systemic disease with an expected survival time of less than 2 years; history of contrast medium allergy; patients refusing or unable to complete follow-up.
  • Chronic Subdural Hematoma Cohort
  • Inclusion Criteria:
  • Age >18 years; chronic subdural hematoma confirmed by CT and meeting the indications for middle meningeal artery embolization; patients who provide informed consent for this study and agree to follow-up imaging examinations.
  • Exclusion Criteria:
  • Indications for craniotomy or urgent subdural hematoma evacuation; severe systemic disease with an expected survival time of less than 1 year; history of contrast medium allergy, etc.

研究组 & 干预措施

Acute Ischemic Stroke

In the acute large-vessel occlusion stroke cohort, full-life-cycle surveillance will be conducted for thrombectomy stents, aspiration catheters and other devices. This meets the guideline requirement that "the surveillance platform should include hospitals representative of regions, diseases and device usage". Data generated from the use of the above-mentioned devices will be analyzed to implement active surveillance.

干预措施: Endovascular Treatment for Acute Ischemic Stroke (Procedure)

Intracranial Arterial Stenosis ICAS

In the intracranial arterial stenosis cohort, full-life-cycle surveillance will be performed for balloons, intracranial stents and other devices. This satisfies the guideline requirement that "the surveillance platform should include hospitals representative of regions, diseases and device usage". Data from the use of the above-mentioned devices will be analyzed to implement active surveillance.

Extracranial Arterial Stenosis ECAS

In the extracranial arterial stenosis cohort, full-life-cycle surveillance will be conducted for optical coherence tomography (OCT) scanners, vertebral artery orifice drug-eluting stents and other related devices. This complies with the guideline requirement that the surveillance platform covers hospitals representative of regional distribution, disease types and device application scenarios. Data related to the clinical use of the above devices will be analyzed to complete active surveillance.

Intracranial Aneurysm IA

In the intracranial aneurysm cohort, full-life-cycle surveillance will be conducted for flow-diverter devices, adjunctive embolization stents and other interventional devices. This complies with the guideline requirement that "the surveillance platform should include hospitals representative of regions, diseases and device usage". Data generated from the use of the above-mentioned devices will be analyzed to implement active surveillance.

Chronic Subdural Hematoma CSDH

In the chronic subdural hematoma cohort, full-life-cycle surveillance will be conducted for middle meningeal artery embolization materials and related devices. This complies with the guideline requirement that "the surveillance platform should include hospitals representative of regions, diseases and device usage". Data generated from the use of the above-mentioned devices will be analyzed to implement active surveillance.

结局指标

主要结局

Functional Outcome

时间窗: From enrollment to the end of treatment at 90 days

Functional Outcome: Modified Rankin Scale (mRS) score at 90 days.

Successful Vascular Recanalization Rate

时间窗: From enrollment to the end of treatment at 90 days

Successful Vascular Recanalization Rate: eTICI grade of target vessel reperfusion after thrombectomy.

次要结局

未报告次要终点

研究者

申办方类型
Other
责任方
Sponsor

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