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J D Huizinga

Publications and source records attributed to J D Huizinga.

At least 37 records · Page 2Linked to original sources

Abnormal response to cholinergic stimulation in the circular muscle layer of the human colon in diverticular disease.

BACKGROUND: Diverticular disease is characterized by the occurrence of small herniations of the colonic mucosa, through the external muscle coats of the colon. The muscle wall is thickened, high intraluminal pressures can be recorded, and often constipation develops. The aim of the present study was to investigate whether an abnormality in the electric myogenic control activity could be found to help explain the etiology and symptoms of the disease. METHODS: Electric activity was studied by extracellular electrodes on tissues from both the circular and the longitudinal muscle of the colon from 12 patients. RESULTS: In tissues from 10 patients a distinctly abnormal response to cholinergic stimulation was observed. A characteristic development of bursts of action potentials did not develop; instead, slow-wave activity of relatively low frequency was maintained throughout the period of stimulation. This slow-wave activity showed a lack of synchronization. CONCLUSIONS: The results indicate that, in diverticular disease, local changes in electric activity occur that change the response to cholinergic stimulation. When this happens, development of periodic bursts of action potentials normally associated with propulsive activity do not develop, favoring segmental contractile activity associated with low-frequency slow-wave activity.

Action Potentials↗

Interstitial cells of Cajal as precursors of gastrointestinal stromal tumors.

Interstitial cells of Cajal (ICC) are implicated in the regulation of gut peristalsis and are immunostained by antibodies against Kit (CD117), a tyrosine kinase receptor. Most gastrointestinal mesenchymal tumors (GIMTs) are of uncertain histogenesis, although many are CD34-positive. CD34 was found to colocalize with vimentin (Vim) and the Kit-positive networks of cells within and around neural plexi, indicating that ICC can be Vim- and CD34-positive. ICCs appear to be the only Kit+CD34+Vim+ cell in the gut. Formalin-fixed, paraffin-embedded tissues from 43 GIMTs were immunostained for Kit, CD34, Vim, PGP 9.5 (PGP, a neural marker), muscle-specific actin (MSA), and other markers including desmin (Des). Eight tumors were myoid (MSA+Des+Vim-Kit-CD34-), and one was a schwannoma (PGP+S100+Vim+Kit-CD34-), but 34 tumors were of uncertain histogenesis (gastrointestinal stromal tumors, GIST), exhibiting neither a complete myoid nor a schwannian immunophenotype. All 34 were Vim+, and 33/34 were either Kit (n = 30) or CD34 (n = 23) immunoreactive. Of these 34 GIST, 24 were negative for all myoid and neural markers, 6 were PGP+S100-, and 4 were MSA+Des-. The Kit+CD34+Vim+ immunophenotype of GIST suggests that they originate from, or have differentiated into, ICC-like cells; the term ICC tumor (ICCT) is suggested. Kit is a more sensitive marker than CD34 for ICCT, but both are required in tumor identification. All clinically malignant GISTs were pathologically malignant (size, mitoses) but also showed loss of either CD34 or Kit. "Blind" examination of electron micrographs in 10 tumors showed them to be heterogeneous. Some had features seen in normal ICC, but cells could not be positively identified as being adult ICC. GIMT may therefore be classifiable into those with pure myoid, schwannian (or neural) differentiation, but the majority are of ICC origin or show ICC differentiation immunophenotypically (ICCT).

Biomarkers, Tumor↗

Generation of slow waves in membrane potential is an intrinsic property of interstitial cells of Cajal.

To reveal the unique intrinsic properties of interstitial cells of Cajal (ICC), morphological and electrophysiological characteristics of isolated ICC from the adult mouse small intestine were investigated and compared with those of smooth muscle cells. All typical ultrastructural features of in situ ICC were evident in isolated ICC throughout the isolation procedure and short-term culture. With the use of the nystatin perforated patch-clamp technique, ICC demonstrated spontaneous voltage oscillations that were not abolished by hyperpolarization nor by L-type calcium channel blockers. This rhythmic activity occurred at room temperature at a frequency of 13.9 +/- 11.2 cycles/min, with an amplitude of 13.4 +/- 11.2 mV at membrane potentials from -20 to -70 mV. Smooth muscle cells from the same culture only generated voltage-sensitive action potentials above the threshold potential of -35 mV. Hyperpolarization as well as the addition of L-type calcium channel blockers abolished the action potentials. In whole cell voltage-clamp recordings from ICC, a large noninactivating outward current was observed to be activated (5% threshold) at -49.6 mV with a half-activation voltage of -18.7 mV and slope factor of 9.9 mV. In contrast, in smooth muscle cells, smaller outward currents with distinctive transient outward currents were present. In conclusion, the generation of L-type calcium channel blocker-insensitive slow waves in membrane potential is a unique intrinsic property of ICC.

Animals↗

Co-operation between neural and myogenic mechanisms in the control of distension-induced peristalsis in the mouse small intestine.

1. Myogenic and neural control of intestinal transit were investigated in a model of distension-induced peristalsis. A comparison was made between the electrical and mechanical activities and outflow of contents observed in control mice and in W/Wv mice, which lack the interstitial cells of Cajal associated with Auerbach's plexus. 2. Distension caused a periodic appearance of increased motor activity due to stimulation of enteric nerves in both control and W/Wv mice. Excitation was primarily delivered by cholinergic nerves, whereas periodic inhibition was mediated by neuronal nitric oxide. 3. In control mice, outflow was driven by propagating slow-wave activity and was only in the aboral direction. Outflow only occurred when slow waves carried sufficient action potentials to cause phasic intraluminal pressure increases of > or = 1 cm H2O through direct stimulation of the musculature or by distension-induced neurally mediated activation. 4. In W/Wv mice, outflow was associated with propagating action potentials that occurred due to either neural stimulation or direct muscle stimulation. Action potential propagation and outflow occurred in both oral and aboral directions. 5. In summary, in both control and W/Wv mice, distension induced periodic motor activity through stimulation of the enteric nervous system. Intraluminal contents were not moved in front of such motor activity. Rather, within such periods of activity that occurred concurrently throughout an entire segment, pulsatile outflow was directed by individual propagating slow waves with superimposed action potentials in control tissue, and by propagating action potentials in W/Wv mice, which lack interstitial cells of Cajal.

Action Potentials↗

Developmental origin and Kit-dependent development of the interstitial cells of cajal in the mammalian small intestine.

Interstitial cells of Cajal (ICCs) form a network of cells between the external longitudinal and circular muscle layers at the level of the Auerbach's plexus in the mammalian small intestine. These cells express the Kit receptor tyrosine kinase and are essential for intestinal pacemaker activity. W mutant mice carrying structural mutations in the Kit gene lack both the network of ICCs and intestinal pacemaker activity. We were interested in the developmental origin of the cells that make up the network of ICCs. In addition, the specific stages of ICC development that require a functional Kit receptor have not been characterized. We show that ICCs originate from mesenchymal progenitor cells that coexpress both Kit and smooth muscle myosin heavy chain, a marker specific for smooth muscle, during embryogenesis. ICC and longitudinal smooth muscle lineages begin to diverge late in gestation. Embryos homozygous for the regulatory Wbanded (Wbd) mutation do not express Kit in these mesenchymal progenitor cells. Nevertheless, Wbd/Wbd mice display a normal network of ICCs and normal smooth muscle layers at postnatal day 5 (p5). Adult Wbd/Wbd mice lack a functional ICC network and intestinal pacemaker activity due to a failure of the ICCs to increase in numbers after p5. These data suggest a common developmental origin of the ICCs and the longitudinal smooth muscle layers in the mammalian small intestine and show that Kit expression is necessary for the postnatal development and proliferation of ICCs but not for the initial cell lineage decision toward an ICC fate during embryogenesis or for smooth muscle development.

Animals↗

Development of pacemaker activity and interstitial cells of Cajal in the neonatal mouse small intestine.

Intestinal motor patterns are not well developed in premature infants. Similarly, in neonatal mice, irregular motor patterns were observed. Pacemaker cells, identified in the small intestine as interstitial cells of Cajal (ICCs) associated with Auerbach's plexus (ICC-APs), contribute to the generation of peristaltic movements. The objective of the present study was to assess the hypothesis that abnormal gut motor activity in (preterm) newborns can be associated with underdeveloped ICCs. Specifically, the aim was to identify at which point the electrical pacemaker activity is fully developed and whether or not the development of pacemaker activity has a structural correlation with the developmental stage of ICCs. Pacemaker activity was identified as that component of the slow wave that is insensitive to L-type calcium (Ca2+) channel blockers and displays a characteristic reduction in frequency in the presence of cyclopiazonic acid (CPA), a specific inhibitor of the endoplasmic reticulum Ca2+ pump. In newborn, unfed neonates, action potentials occurred that were irregular in frequency and amplitude and sensitive to verapamil. CPA (5 microM) abolished all action potentials. Quiescent spots were observed in approximately 50% of impalements. Six hours after birth, slow-wave activity appeared at a regular frequency and amplitude, and a well-defined plateau phase was observed. Verapamil did not affect the frequency, 5 microM CPA decreased it. The effect of CPA on the pacemaker frequency 2 days after birth was identical to that observed in adult mice. In 2-hr-old neonates, ICCs could be identified through selective uptake of methylene blue, but ultrastructural features were not fully developed. At 48 hr, a complete ICC network covering Auerbach's plexus was formed, confirmed by electron microscopy. In summary, the pacemaker component of the slow waves can be identified in neonates as early as 6 hr after birth. The pacemaker component was fully developed 2 days after birth. These electrophysiological observations correlated with the development of full network characteristics of ICC-APs and the development of fully differentiated ICC-APs from "blast-like" cells.

Animals↗

Interstitial cells of Cajal: mediators of communication between circular and longitudinal muscle layers of canine colon.

The network of interstitial cells of Cajal associated with Auerbach's (myenteric) plexus in the canine colon was investigated to determine its role in facilitating communication between circular and longitudinal muscle layers. Electrical coupling between the muscle layers was demonstrated by propagating extracellularly evoked electrotonic pulses from circular muscle cells to nearby longitudinal muscle cells. The likelihood of cytoplasmic continuity across Auerbach's plexus was further demonstrated by the ability of neurobiotin to spread between the interstitial cells and the circular and longitudinal muscle cells. Importantly, direct neurobiotin spread between circular and longitudinal muscle cells was not observed even when they were in close proximity as determined by confocal microscopy. When neurobiotin did spread across the two muscle layers, the intervening interstitial cells were always neurobiotin-positive. In regions where circular and longitudinal muscle cells approach each other closely, electron microscopy revealed the presence of close appositions between interstitial cells and smooth muscle cells. Gap junctions between interstitial cells and smooth muscle cells of both layers, as judged by electron microscopy, were extremely rare. Neither gap junctions nor close appositions were observed between longitudinal and circular muscle cells. The special arrangement for electrotonic coupling across Auerbach's plexus through interstitial cells of Cajal suggests controlled coupling between the two muscle layers, explaining the preservation of their distinct electrical activities.

Animals↗

Interstitial cells of cajal direct normal propulsive contractile activity in the mouse small intestine.

BACKGROUND & AIMS: Interstitial cells of Cajal (ICC) have been linked to the generation of intestinal pacemaker activity, but their role in in vivo motor dysfunction is unclear. In this study, we investigated the hypothesis that ICC play a role in the generation of distention-induced peristalsis using W/Wv mice that lack ICC associated with Auerbach's plexus. METHODS: Radiological observations were made of the movement of contrast fluid through the proximal small intestine. Electrical activities were recorded in the external muscle layers. In addition, intraluminal pressure changes were recorded in isolated intestinal segments. RESULTS: In control mice, after gavage of 0.5 mL of barium sulfate in the stomach, the contrast fluid moved through the proximal small intestine in peristaltic waves at approximately 47 times a minute, propagating aborally at approximately 2 cm/s. Electrical slow waves and intraluminal pressure waves were synchronized at similar frequencies and propagation velocities. In W/Wv mice, such regular peristaltic waves were not observed. Action potentials and contractions appeared random, and contents moved back and forth in an irregular manner. The net propulsive effect of contractile activity in W/Wv mutant mice was much weaker than that in controls. CONCLUSIONS: Slow wave controlled peristalsis occurs in the normal proximal small intestine upon gastric emptying of a semiliquid. This motor pattern is absent in W/Wv mice that lack ICC.

Animals↗

Interstitial cells of Cajal generate a rhythmic pacemaker current.

Networks of interstitial cells of Cajal embedded in the musculature of the gastrointestinal tract are involved in the generation of electrical pacemaker activity for gastrointestinal motility. This pacemaker activity manifests itself as rhythmic slow waves in membrane potential, and controls the frequency and propagation characteristics of gut contractile activity. Mice that lack a functional Kit receptor fail to develop the network of interstitial cells of Cajal associated with Auerbach's plexus in the mouse small intestine and do not generate slow wave activity. These cells could provide an essential component of slow wave activity (for example, a biochemical trigger that would be transferred to smooth muscle cells), or provide an actual pacemaker current that could initiate slow waves. Here we provide direct evidence that a single cell, identified as an interstitial cell of Cajal by light microscopy, electron microscopy and expression of Kit mRNA, generates spontaneous contractions and a rhythmic inward current that is insensitive to L-type calcium channel blockers. Identification of the pacemaker of gut motility will aid in the elucidation of the pathophysiology of intestinal motor disorders, and provide a target cell for pharmacological treatment.

Animals↗

Action potential generation, Kit receptor immunohistochemistry and morphology of steel-Dickie (Sl/Sld) mutant mouse small intestine.

In contrast to wild-type mice, homozygotes with mutations of the W locus do not express the functional Kit receptor and are severely deficient in the Auerbach's plexus (AP)-associated subtype of interstitial cells of Cajal (ICC-AP). With a morphologically intact neural and muscular structure, the absence in these mutants of both small-intestinal slow waves and ICC-AP constitutes strong evidence for a key role of ICC-AP as pacemaker cells. In steel-Dickie mutant mice (Sl/Sld), the gene coding for the Kit ligand (stem cell factor) is defective. We examined Sl/Sld mutants and controls with intracellular microelectrode techniques, combined with light and electron microscopy. The absence of the normal Kit ligand (Sl/Sld mice) had very similar effects as the absence of the Kit receptor in viable mice, mutated at the White spotting, W, locus (W/Wv mice), in that neither slow waves, nor Kit receptor immunoreactivity in the region of Auerbach's plexus nor ICC-AP were present in the small intestine. In the Sl/Sld mouse, the smooth muscle cells generated action potentials at variable frequencies from a depolarized cell membrane of -40 to -55 mV. Increasing excitability by K channel blockers created many different patterns of action potential generation and the frequency increased from approximately 16 cpm to 66 cpm. This was in sharp contrast to control mice where action potentials were always restricted to the plateau phase of the slow waves and the slow wave frequency remained constant at approximately 39 cpm. Our data provide further strong support for the identification of ICC-AP as small-intestinal pacemaker cells. In addition, they provide a basis for the understanding of intestinal motor function without pacemaker activity.

Action Potentials↗

Neural injury, repair, and adaptation in the GI tract. IV. Pathophysiology of GI motility related to interstitial cells of Cajal.

Our understanding of the physiological roles played by interstitial cells of Cajal (ICC) in relation to gastrointestinal (GI) motility is still rudimentary. Nevertheless, studies into the pathophysiology of ICC are emerging at a rapid pace. Caution should be exercised, however, in assuming correlations between changes in Kit immunoreactivity, findings of ultrastructural abnormalities in ICC, and the pathophysiology and symptoms of the patients. Recent studies have revealed reduced numbers or the absence of ICC in small intestine and colon that do not exhibit normal peristaltic activity. Furthermore, important evidence is emerging that motor abnormalities in newborns may be associated with delayed maturation of the ICC network. These preliminary clinical studies provide plausible hypotheses toward the pathophysiology of certain motor disorders and strongly encourage basic scientific studies directed toward discovering the intrinsic properties of ICC as well as obtaining a deeper understanding of the physiological roles played by these cells.

Adaptation, Physiological↗

Interstitial cells of Cajal as targets for pharmacological intervention in gastrointestinal motor disorders.

Interstitial cells of Cajal (ICCs) have recently been identified as the pacemaker cells for contractile activity of the gastrointestinal tract. These cells generate the electrical 'slow-wave' activity that determines the characteristic frequency of phasic contractions of the stomach, intestine and colon. Slow waves also determine the direction and velocity of propagation of peristaltic activity, in concert with the enteric nervous system. Characterization of receptors and ion channels in the ICC membrane is under way, and manipulation of slow-wave activity markedly alters movement of contents through the gut organs. Here Jan Huizinga, Lars Thuneberg, Jean-Marie Vanderwinden and Jüri Rumessen, suggest that, as ICCs are unique to the gut, they might be ideal targets for pharmacological intervention in gastrointestinal motility disorders, which are very common and costly.

Animals↗

Pinaverium acts as L-type calcium channel blocker on smooth muscle of colon.

The effect of pinaverium was electrophysiologically characterized and compared with the established L-type calcium channel blockers diltiazem, D600, and nitrendipine on canine colonic circular smooth muscle. Effects were studied on the electrical activity of the smooth muscle cells, in particular the spontaneously occurring slow wave. In addition, effects were examined on spontaneous contraction patterns and contractile activities generated by stimulation of cholinergic nerves or directly by stimulating muscarinic receptors. Effects were also examined on excitation of NO-releasing intrinsic nerves. Pinaverium bromide affected the slow wave by selectively inhibiting the plateau potential that is associated with generation of contractile activity. Pinaverium, similar to diltiazem and D600, produced reductions in cholinergic responses as well as spontaneous contractions. The IC50 values for inhibition of cholinergic responses for pinaverium, diltiazem, and D600 were 1.0 x 10(-6), 4.1 x 10(-7), and 5.3 x 10(-7) M, respectively. The IC50 values for inhibition of spontaneous contractile activity for pinaverium, diltiazem, and D600 were 3.8 x 10(-6), 9.7 x 10(-7), and 8.0 x 10(-7) M, respectively. Increases in contractility by carbachol were abolished by pretreatment with either pinaverium or D600. In addition, neither pinaverium nor D600 had any effects on the inhibitory NO-mediated relaxations. These data provide a rationale for the use of pinaverium in the treatment of colonic motor disorders where excessive contraction has to be suppressed.

Animals↗

Inflammation modulates in vitro colonic myoelectric and contractile activity and interstitial cells of Cajal.

Inflammation suppresses phasic contractile activity in vivo. We investigated whether inflammation also suppresses in vitro phasic contractile activity and, if so, whether this could in part be due to the alteration of specific slow wave characteristics and morphology of the interstitial cells of Cajal (ICC). Circular muscle strips were obtained from normal and inflamed distal canine colon. Inflammation was induced by mucosal exposure to ethanol and acetic acid. The amplitudes of spontaneous, methacholine-induced, substance P-induced, and electrical field stimulation-induced contractions were smaller in inflamed muscle strips than in normal muscle strips. Inflammation reduced the resting membrane potential and the amplitude and duration of slow waves in circular muscle cells. Inflammation did not affect the amplitude of inhibitory junction potentials but did decrease their duration. Ultrastructural studies showed expansion of the extracellular space between circular muscle cells, reduction in the density of ICC and associated neural structures, damage to ICC processes, vacuolization of their cytoplasm, and blebbings of the plasma membrane. We conclude that inflammation-induced alterations of slow wave characteristics contribute to the suppression of phasic contractions. These alterations may, in part, be due to the damage to ICC. Inflammation impairs both the myogenic and neural regulation of phasic contractions.

Acetic Acid↗

Circular muscle lamellae of canine colon are electrically isolated functional units.

The circular muscle (CM) layer of canine colon consists of circumferentially oriented lamellae separated by connective tissue septa. These lamellae facilitate circumferential ring contractions. Communication between CM lamellae is necessary to generate coordinated, propulsive phasic contractions to create peristaltic movement. Potential roles of the submuscular network of interstitial cells of Cajal and branching smooth muscle cells (ICC-bSM), the myenteric interstitial cells of Cajal network (ICC-AP), and the longitudinal muscle (LM) layer in mediating communication between the CM lamellae were studied by simultaneously recording with three surface electrodes, using different types of muscle strip preparations. When the ICC-bSM network was intact, slow waves were observed to be entrained both along and across CM lamellae. In contrast, the CM layer devoid of the ICC-bSM network, the myenteric plexus, and the longitudinal muscle (CM preparation) was spontaneously quiescent. Spike-like action potentials, evoked in the CM preparations by Ba2+ (0.5 mM), were entrained within CM lamellae but were not coordinated between the CM lamellae. In the LM-CM preparations, in which the longitudinal muscle and the ICC-AP network were intact, the Ba(2+)-evoked action potentials were again not coordinated across septa but entrained within CM lamellae. In a step preparation, in which the ICC-bSM network was removed from part of the muscle strip, slow waves were observed to be entrained in areas with and without the ICC-bSM network when electrodes were positioned along septa. When electrodes were positioned across CM lamellae, synchronized slow wave activity was observed only in areas with the intact ICC-bSM network and quiescent activity was recorded in areas devoid of the ICC-bSM network. These results demonstrate that CM cells are electrically coupled within a CM lamella, but not between CM lamellae. The submuscular ICC-bSM network, but not longitudinal or circular muscle cells, nor the ICC-AP, mediates communication between CM lamellae.

Animals↗

P2x-purinoceptors of myenteric neurones from the guinea-pig ileum and their unusual pharmacological properties.

1. Whole-cell and outside-out patch clamp recordings were used to characterize the physiological and pharmacological properties of the P2x-purinoceptors of myenteric neurones from the guinea-pig ileum. 2. Adenosine 5'-triphosphate (ATP) and analogues (1-3000 microM) evoked a rapid inward current in > 90% of all recorded neurones. The reversal potential of this current was dependent on the extracellular sodium concentration, at +14 +/- 1.9, 0 +/- 1.6 and -12 +/- 1 mV for 166, 83 and 42 mM of sodium, respectively. The fast activation and inactivation of this current occurred even when guanosine 5'-triphosphate (GTP) was omitted from the pipette solution or substituted with an equimolar concentration of guanosine 5'-o-[2-thiotriphosphate] (GTP-gamma-S). Single channel currents were observed when these outside-out membrane patches were exposed to ATP (10-30 microM). These channels have a unitary conductance of about 17 picosiemens. 3. The rank-order of potency of the agonists used to induce the whole-cell currents was: ATP-gamma-S = ATP = 2-methylthio-ATP (2-Me-S-ATP) > > alpha, beta-methylene ATP = beta, gamma-methylene ATP; adenosine and uridine 5'-triphosphate (UTP) (up to 1 mM) were inactive. 4. Pyridoxalphosphate-6-azophenyl-2',4'-disulphonic acid (PPADS) (1-30 microM) antagonized the effects of ATP (1 mM) with an IC50 of 4 microM. alpha, beta-Methylene ATP (100 microM) did not affect the ATP (30 microM)-induced current. Cibacron Blue 3GA increased the ATP activated cationic current whereas Basilen Blue E-3G had a very weak antagonistic effect (IC50 > or = 3 mM). Suramin potentiated the currents induced by ATP through a mechanism that was independent of its inhibitory effect on ectonucleotidase activity, as suramin also potentiated the effect of alpha, beta-methylene ATP (an ATP analogue that is resistant to nucleotidases). 5. In conclusion, the myenteric P2x-purinoceptor shares some properties with other purinoceptors in particular with the P2x4- and P2x6-purinoceptors. This receptor has also some unusual pharmacological properties suggesting that myenteric neurones express a novel subtype of P2x-purinoceptors. The properties of this receptor, however, might be a result of the combination of two or more of the homomeric purinoceptors so far characterized.

Adenosine Triphosphate↗