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通过高分辨率电标测和计算建模定义的人体胃窦末端的功能生理学

Functional physiology of the human terminal antrum defined by high-resolution electrical mapping and computational modeling.

作者信息

Berry Rachel, Miyagawa Taimei, Paskaranandavadivel Niranchan, Du Peng, Angeli Timothy R, Trew Mark L, Windsor John A, Imai Yohsuke, O'Grady Gregory, Cheng Leo K

机构信息

Auckland Bioengineering Institute, University of Auckland, Aukland, New Zealand.

Department of Biomedical Engineering, Tohoku University, Sendai, Japan.

出版信息

Am J Physiol Gastrointest Liver Physiol. 2016 Nov 1;311(5):G895-G902. doi: 10.1152/ajpgi.00255.2016. Epub 2016 Sep 22.

Abstract

High-resolution (HR) mapping has been used to study gastric slow-wave activation; however, the specific characteristics of antral electrophysiology remain poorly defined. This study applied HR mapping and computational modeling to define functional human antral physiology. HR mapping was performed in 10 subjects using flexible electrode arrays (128-192 electrodes; 16-24 cm) arranged from the pylorus to mid-corpus. Anatomical registration was by photographs and anatomical landmarks. Slow-wave parameters were computed, and resultant data were incorporated into a computational fluid dynamics (CFD) model of gastric flow to calculate impact on gastric mixing. In all subjects, extracellular mapping demonstrated normal aboral slow-wave propagation and a region of increased amplitude and velocity in the prepyloric antrum. On average, the high-velocity region commenced 28 mm proximal to the pylorus, and activation ceased 6 mm from the pylorus. Within this region, velocity increased 0.2 mm/s per mm of tissue, from the mean 3.3 ± 0.1 mm/s to 7.5 ± 0.6 mm/s (P < 0.001), and extracellular amplitude increased from 1.5 ± 0.1 mV to 2.5 ± 0.1 mV (P < 0.001). CFD modeling using representative parameters quantified a marked increase in antral recirculation, resulting in an enhanced gastric mixing, due to the accelerating terminal antral contraction. The extent of gastric mixing increased almost linearly with the maximal velocity of the contraction. In conclusion, the human terminal antral contraction is controlled by a short region of rapid high-amplitude slow-wave activity. Distal antral wave acceleration plays a major role in antral flow and mixing, increasing particle strain and trituration.

摘要

高分辨率(HR) mapping已被用于研究胃慢波激活;然而,胃窦电生理学的具体特征仍未明确界定。本研究应用HR mapping和计算建模来定义功能性人体胃窦生理学。对10名受试者进行HR mapping,使用从幽门到胃体中部排列的柔性电极阵列(128 - 192个电极;16 - 24厘米)。通过照片和解剖标志进行解剖配准。计算慢波参数,并将所得数据纳入胃内流动的计算流体动力学(CFD)模型,以计算对胃混合的影响。在所有受试者中,细胞外mapping显示正常的向口侧慢波传播以及幽门前胃窦中振幅和速度增加的区域。平均而言,高速区域在幽门近端28毫米处开始,激活在距幽门6毫米处停止。在该区域内,速度每毫米组织增加0.2毫米/秒,从平均3.3±0.1毫米/秒增加到7.5±0.6毫米/秒(P < 0.001),细胞外振幅从1.5±0.1毫伏增加到2.5±0.1毫伏(P < 0.001)。使用代表性参数的CFD建模量化了胃窦再循环的显著增加,由于终末胃窦收缩加速,导致胃混合增强。胃混合程度几乎与收缩的最大速度呈线性增加。总之,人类终末胃窦收缩由快速高振幅慢波活动的短区域控制。胃窦远端波加速在胃窦流动和混合中起主要作用,增加颗粒应变和研磨。

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