Electromechanical coupling and anatomy of the in vivo gastroduodenal junction.

IF 3.9 3区 医学 Q1 GASTROENTEROLOGY & HEPATOLOGY American journal of physiology. Gastrointestinal and liver physiology Pub Date : 2024-07-01 Epub Date: 2024-05-21 DOI:10.1152/ajpgi.00018.2024
Sam Simmonds, Ashton Matthee, Jarrah M Dowrick, Andrew J Taberner, Peng Du, Timothy R Angeli-Gordon
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引用次数: 0

Abstract

Few biomarkers support the diagnosis and treatment of disorders of gut-brain interaction (DGBI), although gastroduodenal junction (GDJ) electromechanical coupling is a target for novel interventions. Rhythmic "slow waves," generated by interstitial cells of Cajal (ICC), and myogenic "spikes" are bioelectrical mechanisms underpinning motility. In this study, simultaneous in vivo high-resolution electrophysiological and impedance planimetry measurements were paired with immunohistochemistry to elucidate GDJ electromechanical coupling. Following ethical approval, the GDJ of anaesthetized pigs (n = 12) was exposed. Anatomically specific, high-resolution electrode arrays (256 electrodes) were applied to the serosa. EndoFLIP catheters (16 electrodes; Medtronic, MN) were positioned luminally to estimate diameter. Postmortem tissue samples were stained with Masson's trichrome and Ano1 to quantify musculature and ICC. Electrical mapping captured slow waves (n = 512) and spikes (n = 1,071). Contractions paralleled electrical patterns. Localized slow waves and spikes preceded rhythmic contractions of the antrum and nonrhythmic contractions of the duodenum. Slow-wave and spike amplitudes were correlated in the antrum (r = 0.74, P < 0.001) and duodenum (r = 0.42, P < 0.001). Slow-wave and contractile amplitudes were correlated in the antrum (r = 0.48, P < 0.001) and duodenum (r = 0.35, P < 0.001). Distinct longitudinal and circular muscle layers of the antrum and duodenum had a total thickness of (2.8 ± 0.9) mm and (0.4 ± 0.1) mm, respectively. At the pylorus, muscle layers merged and thickened to (3.5 ± 1.6) mm. Pyloric myenteric ICC covered less area (1.5 ± 1.1%) compared with the antrum (4.2 ± 3.0%) and duodenum (5.3 ± 2.8%). Further characterization of electromechanical coupling and ICC biopsies may generate DGBI biomarkers.NEW & NOTEWORTHY This study applies electrical mapping, impedance planimetry, and histological techniques to the gastroduodenal junction to elucidate electromechanical coupling in vivo. Contractions of the terminal antrum and pyloric sphincter were associated with gastric slow waves. In the duodenum, bursts of spike activity triggered oscillating contractions. The relative sparsity of myenteric interstitial cells of Cajal in the pylorus, compared with the adjacent antrum and duodenum, is hypothesized to prevent coupling between antral and duodenal slow waves.

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体内胃十二指肠交界处的机电耦合和解剖结构
简介:尽管胃十二指肠交界处(GDJ)的机电耦合是新型干预措施的目标,但很少有生物标志物支持肠脑交互作用(DGBI)紊乱的诊断和治疗。卡贾尔间质细胞(ICC)产生的节律性 "慢波 "和肌源性 "尖峰 "是支持运动的生物电机制。在这项研究中,体内高分辨率电生理学测量和阻抗平面测量与免疫组织化学相结合,阐明了 GDJ 的机电耦合:在获得伦理批准后,暴露了麻醉猪(N=12)的 GDJ。将解剖特异性高分辨率电极阵列(256 个电极)应用于血清膜。将 EndoFLIP 导管(16 个电极;美敦力,美国明尼苏达州)置于内腔以估算直径。用 Masson's trichrome 和 Ano1 对死后组织样本进行染色,以量化肌肉组织和 ICC:结果:电图捕捉到了慢波(N=512)和尖峰(N=1071)。收缩与电模式一致。局部慢波和尖峰出现在胃窦节律性收缩和十二指肠非节律性收缩之前。在窦口,慢波和尖峰振幅是相关的(r=0.74,p结论:进一步鉴定机电耦合和 ICC 活检可能会产生 DGBI 生物标记物。
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来源期刊
CiteScore
9.40
自引率
2.20%
发文量
104
审稿时长
1 months
期刊介绍: The American Journal of Physiology-Gastrointestinal and Liver Physiology publishes original articles pertaining to all aspects of research involving normal or abnormal function of the gastrointestinal tract, hepatobiliary system, and pancreas. Authors are encouraged to submit manuscripts dealing with growth and development, digestion, secretion, absorption, metabolism, and motility relative to these organs, as well as research reports dealing with immune and inflammatory processes and with neural, endocrine, and circulatory control mechanisms that affect these organs.
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