Neural regulation of slow-wave frequency in the murine gastric antrum

被引:55
|
作者
Forrest, AS [1 ]
Ördög, T [1 ]
Sanders, KM [1 ]
机构
[1] Univ Nevada, Sch Med, Dept Physiol & Cell Biol, Reno, NV 89557 USA
关键词
pacemaker; interstitial cells of Cajal; enteric nervous system; tachy-gastria; functional bowel disorders; gastric emptying;
D O I
10.1152/ajpgi.00349.2005
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
Gastric peristaltic contractions are driven by electrical slow waves modulated by neural and humoral inputs. Excitatory neural input comes primarily from cholinergic motor neurons, but ACh causes depolarization and chronotropic effects that might disrupt the normal proximal-to-distal spread of gastric slow waves. We used intracellular electrical recording techniques to study cholinergic responses in stomach tissues from wild-type and W/W-V mice. Electrical field stimulation (5 Hz) enhanced slow-wave frequency. These effects were abolished by atropine and the muscarinic M-3-receptor antagonist 4-diphenylacetoxyN- methylpiperidine methiodide. ACh released from nerves did not depolarize antral muscles. At higher rates of stimulation ( 10 Hz), chronotropic effects were mediated by ACh and a noncholinergic transmitter and blocked by muscarinic antagonists and neurokinin (NK1 and NK2)-receptor antagonists. Neostigmine enhanced slowwave frequency, suggesting that the frequency of antral pacemakers is kept low by efficient metabolism of ACh. Neostigmine had no effect on slow-wave frequency in muscles of W/W-V mice, which lack intramuscular cells of Cajal (ICC-IM). These muscles also showed no significant chronotropic response to 5-Hz electrical field stimulation or the cholinergic agonist carbachol. The data suggest that the chronotropic effects of cholinergic nerve stimulation occur via ICC-IM in the murine stomach. The capacity of gastric muscles to metabolize ACh released from enteric motor neurons contributes to the maintenance of the proximal-to-distal slow-wave frequency gradient in the murine stomach. ICC-IM play a critical role in neural regulation of gastric motility, and ICC-IM become the dominant pacemaker cells during sustained cholinergic drive.
引用
收藏
页码:G486 / G495
页数:10
相关论文
共 50 条
  • [41] A Novel Method to Obtain the Slow-Wave Dispersion Characteristics of Slow-Wave Structures
    Yuanyuan Wang
    Yanyu Wei
    Dazhi Li
    Wanghe Wei
    Guo Guo
    Luqi Zhang
    Chong Ding
    Yubin Gong
    Jinjun Feng
    Gun-Sik Park
    Journal of Infrared, Millimeter, and Terahertz Waves, 2016, 37 : 1055 - 1060
  • [42] Numerical Study of Slow-wave Instabilities in an Oversized Coaxial Slow-wave Structure
    Ogura, Kazuo
    Abe, Shingo
    Kimura, Hiroki
    Yamamoto, Kazumasa
    Yambe, Kiyoyuki
    Amin, Md Ruhul
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2011, 59 (06) : 3555 - 3559
  • [43] CONTROL OF SLOW-WAVE FREQUENCY IN CAT SMALL INTESTINAL MUSCLE
    RABOVSKY, JL
    MANGEL, AW
    CONNOR, JA
    PROSSER, CL
    FEDERATION PROCEEDINGS, 1979, 38 (03) : 1199 - 1199
  • [44] Spatial and frequency selection of waves in pseudoperiodic slow-wave structures
    Solntsev, V. A.
    Nikonov, D. Yu.
    JOURNAL OF COMMUNICATIONS TECHNOLOGY AND ELECTRONICS, 2006, 51 (08) : 948 - 959
  • [45] THE SLOW-WAVE FREQUENCY PLATEAUS OF THE HUMAN SMALL-INTESTINE
    COREMANS, G
    JANSSENS, J
    VANTRAPPEN, G
    CUCCHIARA, S
    CECCATELLI, P
    DIGESTIVE DISEASES AND SCIENCES, 1985, 30 (08) : 765 - 765
  • [46] An electrical analysis of slow wave propagation in the guinea-pig gastric antrum
    Edwards, FR
    Hirst, GDS
    JOURNAL OF PHYSIOLOGY-LONDON, 2006, 571 (01): : 179 - 189
  • [47] THE TUBE WAVE AS A BIOT SLOW-WAVE
    NORRIS, A
    GEOPHYSICS, 1987, 52 (05) : 694 - 696
  • [48] An Ultrasonically Powered Wireless System for In Vivo Gastric Slow-Wave Recording
    Meng, Miao
    Graybill, Philip
    Ramos, Raddy L.
    Javan-Khoshkholgh, Amir
    Farajidavar, Aydin
    Kiani, Mehdi
    2019 41ST ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY (EMBC), 2019, : 7064 - 7067
  • [49] Development of diurnal organization of EEG slow-wave activity and slow-wave sleep in the rat
    Frank, MG
    Heller, HC
    AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 1997, 273 (02) : R472 - R478
  • [50] Hypnotic Suggestions Increase Slow-Wave Parameters but Decrease Slow-Wave Spindle Coupling
    Beck, Jonas
    Cordi, Maren Jasmin
    Rasch, Bjoern
    NATURE AND SCIENCE OF SLEEP, 2021, 13 : 1383 - 1393