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Microplastics in Brain Hematomas and Neurological Outcomes After Intracerebral Hemorrhage (PARTENOPE)

2026년 5월 29일 업데이트: Raffaele Marfella, University of Campania Luigi Vanvitelli

Plastic Accumulation in Residual Brain Tissues From Hemorrhagic Events: Neurological Outcomes and Pathogenetic Evidence (PARTENOPE Study)

This observational study investigates the presence of micro- and nanoplastics in surgically removed intracerebral hematomas and their association with neurological outcomes in patients with spontaneous intracerebral hemorrhage.

Microplastics have recently been identified in human tissues and are increasingly recognized as potential contributors to inflammation and vascular dysfunction. However, their role in cerebrovascular diseases, particularly intracerebral hemorrhage, remains unknown.

Patients undergoing surgical hematoma evacuation will be enrolled. Brain tissue and blood samples will be analyzed using advanced spectroscopic and imaging techniques to detect and characterize micro- and nanoplastics.

The study aims to evaluate whether the presence of these particles is associated with increased inflammation, worse neurological outcomes, and higher risk of adverse cerebrovascular events.

This research may provide novel insights into the impact of environmental pollutants on brain vascular disease and patient prognosis.

연구 개요

상태

모집하지 않고 적극적으로

상세 설명

Spontaneous intracerebral hemorrhage is a severe and life-threatening neurological condition representing approximately 10-15% of all strokes worldwide and is associated with high early mortality and substantial long-term disability. Despite significant advances in neuroimaging, neurosurgical techniques, and neurocritical care, clinical outcomes remain poor, and the biological mechanisms underlying hemorrhage initiation, expansion, and secondary brain injury are still incompletely understood.

The pathophysiology of intracerebral hemorrhage is characterized by a complex interplay of vascular, inflammatory, and neurotoxic processes. Structural vascular alterations, endothelial dysfunction, and disruption of the blood-brain barrier contribute to vessel rupture and hematoma formation. Following the initial bleeding event, secondary brain injury is driven by hematoma-induced mechanical damage, oxidative stress, activation of resident and infiltrating immune cells, and release of pro-inflammatory mediators. Microglial activation, macrophage infiltration, and inflammasome-related pathways are recognized as important contributors to neuronal injury and neurological deterioration.

While traditional risk factors such as hypertension and small vessel disease are well established, the contribution of environmental exposures to cerebrovascular vulnerability has been largely overlooked. In recent decades, environmental exposure to micro- and nanoplastics has emerged as a global health concern. The exponential increase in plastic production has resulted in widespread distribution of plastic-derived particles across ecosystems, leading to chronic human exposure through ingestion, inhalation, and dermal contact.

Microplastics and nanoplastics have been detected in multiple biological matrices, including blood, lung tissue, placenta, and cardiovascular structures. Experimental and translational studies suggest that these particles may interact with biological systems by promoting oxidative stress, immune activation, endothelial dysfunction, and tissue inflammation. Microplastics and nanoplastics have also been described in vascular tissues, supporting the rationale for investigating their potential association with cerebrovascular disease.

The central nervous system is particularly susceptible to vascular and inflammatory insults, and preservation of blood-brain barrier integrity plays a critical role in maintaining neural homeostasis. Emerging evidence indicates that nanoscale particles may cross biological barriers and potentially contribute to neuroinflammation, microglial activation, and neuronal dysfunction. However, the presence, distribution, and potential biological impact of microplastics and nanoplastics in cerebrovascular diseases, particularly intracerebral hemorrhage, have not been systematically investigated.

The PARTENOPE study (Plastic Accumulation in Residual Brain Tissues from Hemorrhagic Events: Neurological Outcomes and Pathogenetic Evidence) has been designed to address this knowledge gap. This observational cohort study integrates retrospective and prospective data collection and adopts a translational approach combining clinical characterization, advanced analytical chemistry, and biological investigation.

Study Design and Population

The study includes adult patients diagnosed with spontaneous intracerebral hemorrhage undergoing neurosurgical hematoma evacuation. Both retrospectively identified cases and prospectively enrolled patients are included to capture a broad spectrum of clinical presentations and improve the robustness and generalizability of findings.

Patients with traumatic intracranial hemorrhage, intracranial neoplasms, or vascular malformations are excluded to ensure a homogeneous population focused on primary spontaneous hemorrhagic events.

Biological Sample Collection and Contamination Control

Intracerebral hematoma samples are collected intraoperatively using standardized protocols specifically designed to minimize environmental contamination. Measures include the use of non-plastic surgical instruments, glass collection systems, and controlled laboratory environments to preserve sample integrity and minimize external contamination.

Peripheral blood samples are obtained to assess systemic exposure to microplastics and nanoplastics and to enable comparative analyses between circulating and tissue-associated particle burden.

Analytical Characterization of Microplastics and Nanoplastics

Identification and characterization of microplastics and nanoplastics are performed using a multimodal analytical platform integrating advanced spectroscopic and imaging techniques. These techniques include scanning electron microscopy with energy-dispersive X-ray spectroscopy, Fourier-transform infrared spectroscopy, Raman spectroscopy, and pyrolysis gas chromatography-mass spectrometry.

This integrated analytical approach enables high-resolution characterization of particle size, morphology, and polymer composition. Quantitative analyses provide estimates of particle burden within hematoma tissue, while qualitative analyses identify polymer types and potential environmental sources.

Spatial mapping analyses are also conducted to determine localization of particles within the hematoma matrix, including their presence in extracellular compartments and their potential interaction with inflammatory cells such as macrophages.

Clinical and Radiological Characterization

Comprehensive clinical data are collected, including demographic variables, cardiovascular risk factors, medication exposure, and comorbid conditions. Radiological assessment includes hematoma volume, location, and imaging characteristics derived from computed tomography and magnetic resonance imaging.

Perioperative variables, surgical techniques, and postoperative management are also recorded to enable integrated analysis of clinical and biological determinants of outcome.

Outcome Assessment

Patients are followed longitudinally to evaluate neurological and clinical outcomes using standardized clinical, radiological, and biological assessments.

Primary and Secondary Objectives

The primary objective of the study is to evaluate the presence and burden of microplastics and nanoplastics in intracerebral hematoma tissue and to investigate their association with neurological and cerebrovascular outcomes.

Secondary objectives include:

  • evaluating the relationship between circulating and tissue-associated particle levels
  • assessing the association between particle burden and inflammatory responses
  • exploring the potential contribution of microplastics and nanoplastics to hematoma progression and recurrence
  • characterizing the physicochemical properties and distribution of detected particles

Mechanistic and Exploratory Analyses

Exploratory analyses aim to investigate potential mechanistic pathways linking microplastic and nanoplastic exposure to neurovascular injury. These include evaluation of oxidative stress pathways, immune cell activation, endothelial dysfunction, and inflammatory signaling cascades.

Particular attention is given to macrophage activation, microglial response, and inflammasome-related pathways that may contribute to secondary brain injury after hemorrhage. The interaction between microplastics and nanoplastics and the blood-brain barrier is also explored, including their potential contribution to barrier dysfunction and increased vascular permeability.

Scientific and Clinical Implications

The PARTENOPE study represents one of the first systematic investigations of microplastics and nanoplastics in intracerebral hemorrhage. By integrating environmental exposure science with clinical neurology and advanced analytical techniques, this study aims to provide novel insights into the potential role of environmental pollutants in cerebrovascular disease.

If an association between microplastic and nanoplastic accumulation and adverse clinical outcomes is identified, these findings may have important implications for risk stratification, prevention strategies, and future research on environmental determinants of neurological disease.

Ultimately, this study seeks to contribute to a more comprehensive understanding of the factors influencing cerebrovascular health and disease progression.

연구 유형

관찰

등록 (실제)

150

연락처 및 위치

이 섹션에서는 연구를 수행하는 사람들의 연락처 정보와 이 연구가 수행되는 장소에 대한 정보를 제공합니다.

연구 장소

      • Naples, 이탈리아, 80138
        • University Hospital Luigi Vanvitelli

참여기준

연구원은 적격성 기준이라는 특정 설명에 맞는 사람을 찾습니다. 이러한 기준의 몇 가지 예는 개인의 일반적인 건강 상태 또는 이전 치료입니다.

자격 기준

공부할 수 있는 나이

  • 성인
  • 고령자

건강한 자원 봉사자를 받아들입니다

아니

샘플링 방법

비확률 샘플

연구 인구

Adult patients with spontaneous intracerebral hemorrhage undergoing surgical hematoma evacuation at a tertiary care hospital. The cohort includes both retrospective and prospective cases, enabling integrated clinical, radiological, and biological analyses.

설명

Inclusion Criteria:

  • Age ≥18 years
  • Diagnosis of spontaneous intracerebral hemorrhage confirmed by CT or MRI
  • Indication for surgical hematoma evacuation
  • Availability of intracerebral hematoma tissue sample
  • Ability to provide informed consent (patient or legal representative)

Exclusion Criteria:

  • Traumatic intracerebral hemorrhage
  • Intracranial neoplasms
  • Known vascular malformations (e.g., arteriovenous malformations, aneurysms)
  • Severe systemic infection or sepsis at admission
  • Inadequate or contaminated biological samples
  • Refusal or inability to provide informed consent

공부 계획

이 섹션에서는 연구 설계 방법과 연구가 측정하는 내용을 포함하여 연구 계획에 대한 세부 정보를 제공합니다.

연구는 어떻게 설계됩니까?

디자인 세부사항

코호트 및 개입

그룹/코호트
개입 / 치료
Intracerebral Hemorrhage Patients
Patients with spontaneous intracerebral hemorrhage undergoing surgical hematoma evacuation. Micro- and nanoplastics will be measured in hematoma tissue and blood samples, and associations with clinical outcomes will be evaluated.
No intervention is administered as part of the study. All patients receive standard clinical care according to current guidelines for intracerebral hemorrhage. Biological samples, including intracerebral hematoma tissue and peripheral blood, are collected for observational analysis of micro- and nanoplastics and their association with clinical, radiological, and biological outcomes.

연구는 무엇을 측정합니까?

주요 결과 측정

결과 측정
측정값 설명
기간
Concentration of Micro- and Nanoplastics in Intracerebral Hematoma Tissue
기간: Baseline (intraoperative sampling)
Quantification of micro- and nanoplastics in intracerebral hematoma tissue samples collected during surgical evacuation.
Baseline (intraoperative sampling)

2차 결과 측정

결과 측정
측정값 설명
기간
Modified Rankin Scale Score
기간: 12 months
Neurological outcome assessed using the modified Rankin Scale, a 7-point functional outcome scale ranging from 0 (no symptoms) to 6 (death), where higher scores indicate worse neurological disability.micro- and nanoplastic burden.
12 months
Circulating Concentrations of Inflammatory Biomarkers
기간: Baseline
Measurement of circulating inflammatory biomarkers, including interleukin-6 (IL-6) and tumor necrosis factor-alpha (TNF-alpha), and their association with micro- and nanoplastics.hematoma tissue samples collected during surgical evacuation. Neurological outcome will be assessed using the modified Rankin Scale (mRS), a 7-point functional outcome scale ranging from 0 (no symptoms) to 6 (death), where higher scores indicate worse neurological disability.
Baseline
Concentration of Circulating Micro- and Nanoplastics
기간: Baseline
Concentration of circulating micro- and nanoplastics measured in peripheral blood samples and evaluated in relation to micro- and nanoplastic burden in intracerebral hematoma tissue.
Baseline

기타 결과 측정

결과 측정
측정값 설명
기간
Hematoma Volume
기간: Baseline
Measurement of intracerebral hematoma volume assessed by CT imaging and its association with micro- and nanoplastic burden.
Baseline

공동 작업자 및 조사자

여기에서 이 연구와 관련된 사람과 조직을 찾을 수 있습니다.

간행물 및 유용한 링크

연구에 대한 정보 입력을 담당하는 사람이 자발적으로 이러한 간행물을 제공합니다. 이것은 연구와 관련된 모든 것에 관한 것일 수 있습니다.

일반 간행물

연구 기록 날짜

이 날짜는 ClinicalTrials.gov에 대한 연구 기록 및 요약 결과 제출의 진행 상황을 추적합니다. 연구 기록 및 보고된 결과는 공개 웹사이트에 게시되기 전에 특정 품질 관리 기준을 충족하는지 확인하기 위해 국립 의학 도서관(NLM)에서 검토합니다.

연구 주요 날짜

연구 시작 (실제)

2024년 6월 1일

기본 완료 (실제)

2025년 1월 1일

연구 완료 (추정된)

2026년 6월 1일

연구 등록 날짜

최초 제출

2026년 5월 5일

QC 기준을 충족하는 최초 제출

2026년 5월 5일

처음 게시됨 (실제)

2026년 5월 12일

연구 기록 업데이트

마지막 업데이트 게시됨 (실제)

2026년 6월 2일

QC 기준을 충족하는 마지막 업데이트 제출

2026년 5월 29일

마지막으로 확인됨

2026년 5월 1일

추가 정보

이 연구와 관련된 용어

개별 참가자 데이터(IPD) 계획

개별 참가자 데이터(IPD)를 공유할 계획입니까?

IPD 계획 설명

De-identified individual participant data (IPD) will be made available upon reasonable request after publication of the primary results. Data will be shared with qualified researchers for scientific purposes, subject to institutional approval and data sharing agreements.

IPD 공유 기간

De-identified individual participant data and supporting documents will be available beginning 6 months after publication of the primary results and will remain available for at least 5 years.

IPD 공유 액세스 기준

Data will be available to qualified researchers with a scientifically sound research proposal. Requests will be reviewed by the study investigators and the institution. Data will be shared following approval and completion of a data sharing agreement to ensure confidentiality and appropriate use.

IPD 공유 지원 정보 유형

  • 연구_프로토콜
  • 수액

약물 및 장치 정보, 연구 문서

미국 FDA 규제 의약품 연구

아니

미국 FDA 규제 기기 제품 연구

아니

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뇌내출혈에 대한 임상 시험

Observational Analysis에 대한 임상 시험

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