Vectorgastrogram: dynamic trajectory and recurrence quantification analysis to assess slow wave vector movement in healthy subjects.

IF 2.4 4区 医学 Q3 ENGINEERING, BIOMEDICAL Physical and Engineering Sciences in Medicine Pub Date : 2024-06-01 Epub Date: 2024-03-04 DOI:10.1007/s13246-024-01396-y
Gema Prats-Boluda, Jose L Martinez-de-Juan, Felix Nieto-Del-Amor, María Termenon, Cristina Varón, Yiyao Ye-Lin
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Abstract

Functional gastric disorders entail chronic or recurrent symptoms, high prevalence and a significant financial burden. These disorders do not always involve structural abnormalities and since they cannot be diagnosed by routine procedures, electrogastrography (EGG) has been proposed as a diagnostic alternative. However, the method still has not been transferred to clinical practice due to the difficulty of identifying gastric activity because of the low-frequency interference caused by skin-electrode contact potential in obtaining spatiotemporal information by simple procedures. This work attempted to robustly identify the gastric slow wave (SW) main components by applying multivariate variational mode decomposition (MVMD) to the multichannel EGG. Another aim was to obtain the 2D SW vectorgastrogram VGGSW from 4 electrodes perpendicularly arranged in a T-shape and analyse its dynamic trajectory and recurrence quantification (RQA) to assess slow wave vector movement in healthy subjects. The results revealed that MVMD can reliably identify the gastric SW, with detection rates over 91% in fasting postprandial subjects and a frequency instability of less than 5.3%, statistically increasing its amplitude and frequency after ingestion. The VGGSW dynamic trajectory showed a statistically higher predominance of vertical displacement after ingestion. RQA metrics (recurrence ratio, average length, entropy, and trapping time) showed a postprandial statistical increase, suggesting that gastric SW became more intense and coordinated with a less complex VGGSW and higher periodicity. The results support the VGGSW as a simple technique that can provide relevant information on the "global" spatial pattern of gastric slow wave propagation that could help diagnose gastric pathologies.

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矢量胃图:动态轨迹和复发量化分析,用于评估健康受试者的慢波矢量运动。
功能性胃病具有慢性或复发性症状,发病率高,经济负担重。这些疾病并不总是涉及结构异常,由于无法通过常规程序进行诊断,因此有人提出了电胃镜(EGG)作为诊断的替代方法。然而,由于皮肤电极接触电位造成的低频干扰导致难以通过简单的程序获取时空信息来识别胃活动,因此该方法仍未应用于临床实践。这项研究试图通过对多通道 EGG 应用多变量模式分解(MVMD)来稳健地识别胃慢波(SW)的主要成分。另一个目的是从呈 T 形垂直排列的 4 个电极中获取二维 SW 向量胃图 VGGSW,并分析其动态轨迹和复发量化 (RQA),以评估健康受试者的慢波向量运动。结果显示,MVMD 能可靠地识别胃 SW,在空腹餐后受试者中的检出率超过 91%,频率不稳定性小于 5.3%,进食后其振幅和频率在统计学上有所增加。据统计,进食后 VGGSW 动态轨迹显示出更高的垂直位移。RQA 指标(复发率、平均长度、熵和捕获时间)在餐后出现统计学增长,表明胃 SW 变得更加强烈,并与不太复杂的 VGGSW 和更高的周期性相协调。研究结果表明,VGGSW 是一种简单的技术,能提供胃慢波传播的 "全球 "空间模式的相关信息,有助于诊断胃部病变。
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CiteScore
8.40
自引率
4.50%
发文量
110
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