An Efficacy and Feasibility Trial of a Portable Near Infra-Red Hematoma Imager for Detection of Intracranial Hemorrhage in the Acute Care Setting
试验速览
- 阶段
- 不适用
- 状态
- 尚未招募
- 入组人数
- 80
- 试验地点
- 2
- 主要终点
- Diagnostic Performance
研究概览
简要总结
Traumatic Brain Injury (TBI) is a leading cause of death and disability among military personnel, Veterans, and civilians. One of the most dangerous complications of moderate-to-severe TBI is intracranial hemorrhage (ICH). If not identified and treated promptly, ICH can rapidly lead to worsening neurological damage or death. Current diagnostic tools, such as CT scans, are highly effective but impractical for battlefield or resource-limited environments due to their large size and infrastructure dependency.
The Near-Infrared Detection-Head Imaging (NIRD-HI) system is an innovative, noninvasive device using Near-Infrared Spectroscopy (NIRS) to identify abnormal blood accumulation. Unlike traditional tools, NIRD-HI is compact, lightweight, and portable, making it suitable for remote or austere settings. By dynamically imaging the brain, it generates 3D visualizations that pinpoint the size and location of bleeds, including complex bilateral injuries. This offers a significant improvement over current point-of-injury technologies that lack the resolution to reliably diagnose all forms of ICH.
This study supports the FY24 Combat Readiness Medical Research Program by advancing battlefield diagnostic and triage capabilities. The research will:
- Evaluate NIRD-HI's accuracy compared to CT imaging.
- Assess feasibility in real-world acute care settings.
- Investigate its ability to monitor changes in ICH over time.
These objectives address the military's need for tools that improve rapid diagnosis and decision-making during emergencies. Implementing this research can revolutionize TBI management. For Service Members, NIRD-HI promises a field-ready solution for early detection, enabling faster intervention and more effective triage. By reducing diagnostic delays, it could save lives and prevent long-term complications. Furthermore, the system supports prolonged field care by providing continuous monitoring of evolving injuries.
The benefits extend to civilian healthcare, particularly in rural or underserved areas lacking advanced imaging. This accessibility can improve trauma care outcomes for millions, reduce the burden on healthcare systems, and provide equitable distribution of life-saving technology. By addressing gaps in battlefield medicine, this project aims to enhance medical readiness and improve survivability in the most challenging environments.
详细描述
Traumatic Brain Injury [TBI] has become the hallmark injury of modern warfare and remains one of the most challenging conditions to diagnose in forward-deployed care settings. One of the primary obstacles in diagnosing TBI on the battlefield is the "silent" or delayed onset of neurological symptoms, which can mask the severity of the injury. A key contributor to poor outcomes in moderate to severe TBI is the presence of acute intracranial bleeding, which can swell rapidly, leading to secondary brain damage or death. Early identification of such bleeds is critical for improving patient survival and neurological recovery.
Currently, CT is the gold standard for diagnosing intracranial hemorrhage [ICH], providing the accuracy needed to detect and evaluate brain bleeds. However, the logistical requirements of CT imaging pose significant challenges in deployed or resource-limited environments. These demands render CT impractical for field use, leaving forward-operating medical personnel without a reliable imaging solution for rapid TBI diagnosis. Consequently, there is a pressing need for portable, point-of-injury [POI] diagnostic tools that can effectively detect brain injuries in austere settings.
In both military and civilian contexts, there is an unmet need for a diagnostic device that can alert medical personnel to changes in ICH status without relying on resource-intensive serial imaging or neurological monitoring. Such a tool could enable timely triage and inform critical medical evacuation decisions, improving outcomes for patients with TBI. Existing POI technologies, however, predominantly rely on functional assessments and indirect measures of TBI, which are inherently subjective and often lack specificity. The reliance on such methods can result in false positives or negatives, particularly in low-incidence injuries, where positive predictive value [PPV] tends to fall below 50%. In military medicine, ensuring high sensitivity and specificity is crucial, as initiating unnecessary treatment or evacuations can impose significant operational risks and resource costs. A field-ready diagnostic tool capable of accurately identifying ICH and other TBI complications is therefore essential for improving care in both military and civilian emergency settings.
Existing POI technologies, however, predominantly rely on functional assessments and indirect measures of TBI, which are inherently subjective and often lack specificity. The reliance on such methods can result in false positives or negatives, particularly in low-incidence injuries, where positive predictive value [PPV] tends to fall below 50%. In military medicine, ensuring high sensitivity and specificity is crucial, as initiating unnecessary treatment or evacuations can impose significant operational risks and resource costs. A field-ready diagnostic tool capable of accurately identifying ICH and other TBI complications is therefore essential for improving care in both military and civilian emergency settings.
Near-Infrared Spectroscopy [NIRS] can be used to interrogate tissue. It has been well studied over the years and it can be shown that the principal components of variation in intensity response from tissue can be ascribed to blood volume and oxygenation. The reflected light from the NIR source is used to determine the presence of blood volume in the tissue beneath the sensor. By comparing tissues from different locations within the brain the presence of large volumes of blood that represent a pathological event can be detected. The use of near infra-red [NIR] to estimate the presence of intracranial bleeding spectroscopically has been previously demonstrated, with high agreement with traditional head CT. Though effective for detection of a statichemorrhagic event, there are no currently available NIR-based technology that employs dynamic structural imaging. Moreover, current tools cannot reliably diagnose all types of hematomas, particularly bilateral head injuries.
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 89 Years(Adult, Older Adult)
- 性别
- All
- 接受健康志愿者
- 是
入选标准
- •18 to 89 years of age
- •Able to provide written informed consent either by self or legally authorized representative
- •Received head CT imaging on admission
- •Able to complete at least one NIRD-HI scan within 4 hours of head CT
- •Non-operative management planned
排除标准
- •Presence of penetrating or non-survivable injuries
- •Hemorrhagic shock or large volume transfusion [>3 units of any blood product within
- •1 hour of scan]
- •Large open skull wounds, scalp lacerations or surface hematomas prohibiting safe or comfortable sensor placement
- •Presence of heat tattoos or intracranial metal fixtures
- •Cervical injury prolonging C-spine collar
- •Known prisoners or wards of state
- •Any condition or finding that makes the patient unsuitable for image acquisition in the Investigator's opinion
研究组 & 干预措施
40 participants with positive head bleed on CT report
Subjects with positive head CT reports that may have a diagnosis of TBI or intracranial hemorrhage
干预措施: NIRD-HI scan at the time of enrollment (Diagnostic Test)
40 participants with positive head bleed on CT report
Subjects with positive head CT reports that may have a diagnosis of TBI or intracranial hemorrhage
干预措施: Secondary NIRD-HI scan when a planned repeat CT is performed (Diagnostic Test)
40 participants with negative head bleed on CT report
Subjects without positive head CT reports that may have a diagnosis of TBI or intracranial hemorrhage
干预措施: NIRD-HI scan at the time of enrollment (Diagnostic Test)
40 participants with negative head bleed on CT report
Subjects without positive head CT reports that may have a diagnosis of TBI or intracranial hemorrhage
干预措施: Secondary NIRD-HI scan when a planned repeat CT is performed (Diagnostic Test)
结局指标
主要结局
Diagnostic Performance
时间窗: Baseline, at time of NIRD-HI testing administered
Diagnostic Performance. Establish the sensitivity, specificity, PPV, and NPV of the NIRD-HI system for detecting ICH in TBI patients, with a target sensitivity and specificity exceeding 90%.
Feasibility Assessment - Scan Time
时间窗: Enrollment through study completion, an average of 1 year
Time in minutes to complete scans in acute care setting recorded on a templated study log including scan start/stop time, interruptions and reasons for interruptions, technical errors and unanticipated device adverse events.
Feasibility Assessment - Operator Usability
时间窗: Near the end of recruitment period, an average of 1 year
Operator usability near the end of the recruitment period, 4-6 blinded clinicians (physicians and/or mid-level practritioners) will make a determination of criteria positive or negative research scans assigned in random order to establish statistics for inter-reader agreement. Blinded readers will assign a likelihood score using a Visual Analog Scale \[VAS\] to indicate how confident they are in their read.
Feasibility Assessment - Device Integration
时间窗: Enrollment through study completion, an average of 1 year
Device integration, through operator feedback questionnaire regarding ease of use.
Monitoring of ICH Progression
时间窗: Baseline, at time of NIRD-HI testing administered
NIRD-HI readouts for the presence/absence of ICH and region of detection \[if positive\] as determined by the research device. NIRD-HI readouts will be correlated with Head CT results after each scan.
次要结局
- Diagnostic Performance - Time Detection of ICH(Baseline, at time of NIRD-HI testing administered)
- Diagnostic Performance - Operator Performance(Baseline, at time of NIRD-HI testing administered)
- Accuracy of evolution testing [first NIRD HI scan vs. second NIRD HI](Baseline, at time of NIRD-HI testing administered)
