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[Cajal interstitial cells identification].

Cajal interstitial cells are cells that are found in the abdominal digestive system wall, between neurons and smooth muscular tissue. They are considered to be pacemakers for slow intestinal waves. The paper discuss about the electron-microscopic identification of Cajal interstitial cells in the rat small intestine wall, cell morphology, placement of these cells in the muscular layer and the relation between Cajal interstitial cells and the components of the nervous plexus. Fragments of rat small intestine have been prepared for electron microscopy examination. Cajal interstitial cells have been found in different locations: in the circular muscular layer, around the nervous nodes and between the muscular layers (longitudinal and circular). The main morphologic characteristic of these cells is the aspect of cytoplasm, with numerous vacuoles and long extensions, some of them very thin, with a tendency to divide. Some Cajal interstitial cells form a network that surrounds the nervous nodes. Other form junctions with the muscular cells and with the interstitial neurons.

Animals↗

Heme oxygenase, carbon monoxide, and interstitial cells of Cajal.

Interstitial cells of Cajal play a central role in the control of gastrointestinal motility. The mechanisms of communication between interstitial cells of Cajal and smooth muscle cells are to a large extent unknown. This article reviews the potential role of carbon monoxide as a messenger molecule between interstitial cells of Cajal and gastrointestinal smooth muscle cells. The machinery required for the formation of carbon monoxide is present in interstitial cells of Cajal and gastrointestinal smooth muscle cells express a target site of action for carbon monoxide, a potassium channel. Carbon monoxide may, therefore, be produced in interstitial cells of Cajal and function as a messenger molecule between interstitial cells of Cajal and gastrointestinal smooth muscle cells.

Animals↗

Disturbed pyloric motility in Ws/Ws mutant rats due to deficiency of c-kit-expressing interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) are believed to initiate the basic contractile activity of the gastrointestinal tract. Interstitial cells of Cajal express c-kit receptor tyrosine kinase and are deficient in Ws/Ws mutant rats with a small deletion of the c-kit gene. As Ws/Ws rats show remarkable bile reflux to the stomach, the contraction pressure of the pylorus was compared between Ws/Ws and control +/+ rats. The contraction pressure of the pylorus was measured using a microtransducer, which was inserted through a pin-hole in the anterior wall of the stomach under anesthesia. The magnitude of bile reflux was estimated by measuring the content of bile acids in the stomach. The c-kit messenger RNA-expressing cells were detected by in situ hybridization. Frequency and the maximum pressure of the contraction were comparable between Ws/Ws and +/+ rats, but the duration of the contraction was significantly shorter in Ws/Ws rats than in +/+ rats. The number of c-kit messenger RNA-expressing ICC in the pylorus of Ws/Ws rats was 1.7% that of +/+ rats. The bile reflux observed in Ws/Ws rats was attributed to the decrease in the duration of the pyloric contraction, which appeared to result from the deficiency of c-kit messenger RNA-expressing ICC.

Animal Feed↗

Protein kinases expressed by interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) are involved in the generation of electrical rhythmicity of intestinal muscle and in the transduction of neural inputs in the gut. Although the expression of receptors for neurotransmitters and hormones and some second messengers have been investigated in ICC, the protein kinases present in these cells have not been well documented. This study has demonstrated the immunohistochemical localisation of PKA, PKC gamma and PKC theta in ICC that were identified by the known ICC marker, c-Kit, in the guinea-pig gut. Other PKCs, PKC alpha, beta, delta, epsilon, eta, iota and lambda, and Ca(2+)-calmodulin-dependent protein kinase II were not localised in ICC. Double labelling studies were conducted on longitudinal muscle-myenteric plexus and external muscle-myenteric plexus preparations of the oesophagus, stomach (fundus, corpus and antrum), duodenum, distal ileum, caecum, proximal and distal colon, and rectum. The three protein kinases were detected in c-Kit-immunoreactive ICC at the level of the myenteric plexus (IC-MY), in the muscle (IC-IM) and at the level of the deep muscular plexus (IC-DMP) in the small intestine. PKA was found in over 90% of IC-IM in all regions examined, and in over 90% of IC-MY in the gastric body and antrum and throughout the small and large intestines. PKC gamma was in the majority of ICC in the gastric body and antrum and in the small intestine, but was largely absent from ICC in the oesophagus, proximal stomach and large intestine. PKC theta occurred in the majority of ICC in all regions except the rectum. The intensity of staining was greatest for PKA, with PKC gamma giving comparatively weak labelling of ICC. PKA was also detected in myenteric neurons, smooth muscle, macrophages and fibroblast-like cells. PKC gamma labelling occurred in large, multipolar neurons throughout the small and large intestine, as well as in lymph vessels and in capillaries. It is concluded that PKA, PKC gamma and PKC theta are all present in ICC, with the differences in their localisations suggesting specific roles for each in ICC function.

Animals↗

Direct and indirect innervation of smooth muscle cells of rat stomach, with special reference to the interstitial cells of Cajal.

Interstitial cells of Cajal in the circular (ICC-CM) and longitudinal (ICC-LM) muscle layer of the rat gastric antrum and their innervation were studied ultrastructurally. Both ICC-CM and ICC-LM are characterized by many mitochondria, rough and smooth endoplasmic reticulum, caveolae, and formation of gap junctions with each other and with muscle cells, though ICC-LM tend to show more variable cytoplasmic features depending on section profiles. Close contacts between nerve terminals and both ICC-CM and ICC-LM are observed. These possible synaptic structures are characterized by: (1) accumulation of synaptic vesicles in nerve varicosities, (2) a narrow gap (about 20 nm) between pre- and postjunctional membranes, (3) lack of a basal lamina between pre- and postjunctional membranes, and (4) the presence of an electron-dense lining on the inner aspect of prejunctional membranes. Almost the same characteristics are observed between the nerve terminals and the muscle cells of both circular and longitudinal muscle layers of the same specimens. Therefore, we conclude that the smooth muscle cells of both circular and longitudinal layers of the rat antrum are directly and indirectly innervated via ICC. Their functional significance is discussed.

Animals↗

Severe gastrointestinal dysmotility in a patient with congenital myopathy: causal relationship to decrease of interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) are known to be essential regulators of gastrointestinal (GI) motility. Here, we report the clinical course and abnormalities of intestinal ICC distribution in a 5-year-old patient with congenital fiber type disproportion myopathy who demonstrated long-term GI dismotility. Full thickness biopsies of the small intestine and colon showed a normal enteric muscle layer and myenteric plexus. However, the density of ICC was strikingly decreased around the myenteric plexus compared to that in autopsied cases without GI tract disease. These findings suggest that a decline in ICC may contribute to disturbed GI motility in our patient with congenital myopathy.

Child, Preschool↗

Conductances responsible for slow wave generation and propagation in interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) are a fundamental component of the pacemaker apparatus of the gastrointestinal (GI) tract. ICC generate pacemaker currents that are the basis for slow wave activity in GI muscles. ICC form a network of cells connected by gap junctions that run around and along the phasic regions of the GI tract. ICC possess specialized conductances that allow them to generate pacemaker activity and serve as the pathway for active propagation of slow waves. Pacemaker currents are attributed to a Ca(2+)-inhibited, voltage-independent, non-selective cation conductance that has similar properties to the conductance elicited by expression of transient receptor potential-C4. Propagation occurs through a voltage-dependent mechanism, and data suggest that the factor coupling pacemaker units in ICC is Ca(2+) entry. ICC express a dihydropyridine-resistant, voltage-dependent Ca(2+) conductance that is important in slow wave propagation. Work is underway to determine the molecular identities of these conductances.

Calcium Channels↗

Development and plasticity of interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) are the pacemakers in gastrointestinal (GI) muscles, and these cells also mediate or transduce inputs from the enteric nervous system. Different classes of ICC are involved in pacemaking and neurotransmission. ICC express specific ionic conductances that make them unique in their ability to generate and propagate slow waves in GI muscles or transduce neural inputs. Much of what we know about the function of ICC comes from developmental studies that were made possible by the discoveries that ICC express c-kit and proper development of ICC depends upon signalling via the Kit receptor pathway. Manipulating Kit signalling with reagents to block the receptor or downstream signalling pathways or by using mutant mice in which Kit or its ligand, stem cell factor, are defective has allowed novel studies into the specific functions of the different classes of ICC in several regions of the GI tract. Kit is also a surface antigen that can be used to conveniently label ICC in GI muscles. Immunohistochemical studies using Kit antibodies have expanded our knowledge about the ICC phenotype, the structure of ICC networks, the interactions of ICC with other cells in the gut wall, and the loss of ICC in some clinical disorders. Preparations made devoid of ICC have also allowed analysis of the consequences of losing specific classes of ICC on GI motility. This review describes recent advances in our knowledge about the development and plasticity of ICC and how developmental studies have contributed to our understanding of the functions of ICC. We have reviewed the clinical literature and discussed how loss or defects in ICC affect GI motor function.

Animals↗

Characterization of depolarization-evoked ERG K currents in interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) harbour the ether-a-go-go related gene (ERG) channel as shown by its characteristic rapidly deactivating current upon hyperpolarization. This property, however, does not explain the marked increase in cell excitability by ERG channel blockers, namely an increase in slow wave plateau duration and action potential generation. The objective of the present study was to characterize the depolarization-activated, E4031-sensitive ERG currents in murine ICC within a range of physiologically relevant membrane potentials. Whole cell currents were recorded from ICC isolated from murine neonatal jejunum, superfused with a physiological salt solution and with high intracellular Cs(+) to block most other K(+) currents. Upon depolarizing the cell from the resting membrane potential (approximately -60 mV) towards the region of the slow wave plateau (approximately -30 mV), significant sustained (window) current was generated between the potentials of -40 to 0 mV (maximal at -30 mV) and inhibited by the ERG specific blocker E4031. Channel activation followed by rapid inactivation produced a steady state conductance at -30 mV which was 51.6 +/- 11% of the hyperpolarization-evoked peak conductance value at -100 mV. When the cell repolarized from -30 mV, again, significant currents were generated, indicating recovery from inactivation, a typical characteristic of ERG channels. These data provide evidence that the ERG channel is of significance in the regulation of ICC excitability and provide the mechanism by which ERG channel blockade increases the slow wave duration.

Animals↗

A Ca(2+)-inhibited non-selective cation conductance contributes to pacemaker currents in mouse interstitial cell of Cajal.

Interstitial cells of Cajal (ICC) provide pacemaker activity in some smooth muscles. The nature of the pacemaker conductance is unclear, but studies suggest that pacemaker activity is due to a voltage-independent, Ca(2+)-regulated, non-selective cation conductance. We investigated Ca(2+)-regulated conductances in murine intestinal ICC and found that reducing cytoplasmic Ca(2+) activates whole-cell inward currents and single-channel currents. Both the whole-cell currents and single-channel currents reversed at 0 mV when the equilibrium potentials of all ions present were far from 0 mV. Recordings from on-cell patches revealed oscillations in unitary currents at the frequency of pacemaker currents in ICC. Voltage-clamping cells to -60 mV did not change the oscillatory activity of channels in on-cell patches. Depolarizing cells with high external K(+) caused loss of resolvable single-channel currents, but the oscillatory single-channel currents were restored when the patches were stepped to negative potentials. Unitary currents were also resolved in excised patches. The single-channel conductance was 13 pS, and currents reversed at 0 mV. The channels responsible were strongly activated by 10(-7) M Ca(2+), and 10(-6) M Ca(2+) reduced activity. The 13 pS channels were strongly activated by the calmodulin inhibitors calmidazolium and W-7 in on-cell and excised patches. Calmidazolium and W-7 also activated a persistent inward current under whole-cell conditions. Murine ICC express Ca(2+)-inhibited, non-selective cation channels that are periodically activated at the same frequency as pacemaker currents. This conductance may contribute to the pacemaker current and generation of electrical slow waves in GI muscles.

Analgesics↗

Ca2+ signalling in urethral interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) in the urethra have been proposed as specialized pacemakers that are involved in the generation of urethral tone and therefore the maintenance of urinary continence. Recent studies on freshly dispersed ICC from the urethra of rabbits have demonstrated that pacemaker activity in urethra ICC is characterized by spontaneous transient depolarizations (STDs) under current clamp and spontaneous transient inward currents (STICs) under voltage clamp. When these events were simultaneously recorded with changes in intracellular Ca(2+) (using a Nipkow spinning disk confocal microscope) they were found to be associated with global Ca(2+) oscillations. In this short review we will consider some of these recent findings regarding the contribution of intracellular Ca(2+) stores and Ca(2+) influx to the generation of pacemaker activity in urethral ICC with particular emphasis on the contribution of reverse Na(+)/Ca(2+) exchange (NCX).

Animals↗

TRPC4 currents have properties similar to the pacemaker current in interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) are the pacemaker cells responsible for the generation and propagation of electrical slow waves in phasic muscles of the gastrointestinal (GI) tract. The pacemaker current that initiates each slow wave derives from a calcium-inhibited, voltage-independent, nonselective cation channel. This channel in ICC displays properties similar to that reported for the transient receptor potential (TRP) family of nonselective cation channels, particularly those seen for TRPC3 and TRPC4. We have identified transcripts for TRPC4 in individually isolated ICC and have cloned the two alternatively spliced forms of TRPC4, TRPC4 alpha and TRPC4 beta, from GI muscles. TRPC4 beta is missing an 84-amino acid segment from the carboxy terminus. Expression of either form using the whole cell patch-clamp technique led to calcium-inhibited, nonselective cation channels as determined by N-methyl-D-glucamine replacement experiments and BAPTA dialysis. Expression of TRPC4 beta channels recorded at the whole cell level had characteristics similar to the nonselective cation current in ICC. The single-channel conductance of TRPC4 beta was determined to be 17.5 pS. Application of calmidazolium to cells expressing TRPC4 beta led to a significant increase in the inward current of these cells at both the whole cell and single-channel level, and currents were sensitive to block by 10 microM lanthanum, niflumic acid, and DIDS. Comparison of the properties reported for the nonselective cation current in ICC and those identified here for TRPC4 beta led us to conclude that a TRPC4-like current encodes the plasmalemmal pacemaker current in murine small intestine.

4,4'-Diisothiocyanostilbene-2,2'-Disulfonic Acid↗

Volume-activated chloride currents in interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) undergo marked morphological changes on contraction of the musculature, making it essential to understand properties of mechanosensitive ion channels. The whole cell patch-clamp technique was used to identify and to characterize volume-activated Cl- currents in ICC cultured through the explant technique. Hypotonic solutions (approximately 210 mosM) activated an outwardly rectifying current, which reversed near the equilibrium potential for Cl-. Time-dependent inactivation occurred only at pulse potentials of +80 mV, with a time constant of 478 +/- 182 ms. The degree of outward rectification was calculated using a rectification index, the ratio between the slope conductances of +65 and -55 mV, which was 13.9 +/- 1.5 at 76 mM initial extracellular Cl- concentration. The sequence of relative anion permeability of the outwardly rectifying Cl- channel was I- > Cl- > aspartate-. The chloride channel blockers, DIDS and 5-nitro-2-(3-phenlypropl-amino)benzoic acid, caused a voltage-dependent block of the outwardly rectifying Cl- current, inhibition occurring primarily at depolarized potentials. On exposure to hypotonic solution, the slope conductance significantly increased at the resting membrane potential (-70 mV) from 1.2 +/- 0.2 to 2.0 +/- 0.4 nS and at the slow-wave plateau potential (-35 mV) from 2.1 +/- 0.3 to 5.0 +/- 1.0 nS. The current was constitutively active in ICC and contributed to the resting membrane potential and excitability at the slow-wave plateau. In conclusion, swelling or volume change will depolarize ICC through activation of outwardly rectifying chloride channels, thereby increasing cell excitability.

4,4'-Diisothiocyanostilbene-2,2'-Disulfonic Acid↗

Sodium current in human intestinal interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) generate the electrical slow wave required for normal gastrointestinal motility. The ionic conductances expressed in human intestinal ICC are unknown. The aim of this study was to determine expression of a Na+ current in human intestinal ICC and to determine the effects of the Na+ current on the slow wave. Visually identified, freshly dissociated, single ICC were verified by the presence of c-kit mRNA by using single-cell RT-PCR. Standard whole cell currents were recorded from patch-clamped ICC held at -100 mV between pulse protocols. A Na+ current was identified in human intestinal ICC. The current activated at -55 mV and peaked at -30 mV. Extracellular N-methyl-d-glucamine abolished and QX-314 (500 microM) blocked the Na+ current, but nifedipine and Ni2+ did not. The Na+ current was activated by shear stress. Single-cell RT-PCR detected mRNA for the Na+ alpha-subunit SCN5A in single human intestinal ICC. Lidocaine (200 microm) and QX-314 (500 microM) decreased slow wave frequency, and stretch increased slow wave frequency. A mechanosensitive Na+ channel current is present in human intestinal ICC and appears to play a role in the control of intestinal motor function.

Electric Conductivity↗

Pacemaker cells in the gastrointestinal tract: interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) were described a century ago as primitive neurons in the intestines. Through the years, ICC have been mistaken for neurons, glial cells, fibroblasts, smooth muscle cells, and macrophages. We identified ICC in the musculature of mouse small intestine by their characteristic morphology and topography, and we analysed the relation between ICC, autonomic nerves, and smooth muscle. Subsequent morphological and electrophysiological evidence has strongly supported our hypotheses that some ICC populations are gut pacemakers and may hold other fundamental regulatory functions (coordinative, mechanoreceptive, mediating nervous input). Recognition of common principles of ICC organization (confinement to specific locations in relation to smooth muscle layers; formation of extensive cellular networks through tight coupling of overlapping thin processes; innervation patterns; characteristic patterns of contact with smooth muscle cells) and ultrastructure (myoid features: basal lamina, caveolae, rich in sER and mitochondria, often prominent filament bundles and dense bands/bodies) has allowed the identification of ICC in the GI musculature of all species investigated. However, variation in organization and ultrastructure is significant, between both species and regions of the GI tract. Our studies of ICC in human intestine permit an extension of the above hypotheses to man and provide a basis for further studies of ICC pathology and pathophysiology. The latter may become a fruitful area of research in the coming decades.

Animals↗

CD34+ cells in human intestine are fibroblasts adjacent to, but distinct from, interstitial cells of Cajal.

Interstitial cells of Cajal (ICC) generate the pacemaker component of the gut and play important roles in the control of gut motility. The tyrosine kinase receptor Kit is an established marker for ICC. Recently, it has been reported that immunoreactivity for the sialomucin CD34 may be present on ICC in human intestine. Gastrointestinal stromal tumors express both Kit and CD34, suggesting that these tumors may derive from ICC. We characterized the distribution of CD34 immunoreactivity at the cellular level in the normal human gut, using double immunofluorescence immunohistochemistry and confocal microscopy. CD34 immunoreactivity identified previously unrecognized cells closely adjacent to, but distinct from, the Kit immunoreactive ICC. These CD34 immunoreactive cells expressed the fibroblast marker prolyl 4-hydroxylase-whereas ICC did not-and were also distinct from smooth muscle cells, glial cells, and macrophages. In the human gut, CD34 immunoreactivity is not expressed by ICC but by a population of fibroblasts, likely corresponding to the "fibroblast-like cells" described in previous ultrastructural studies. Our findings also challenge the hypothesis that stromal tumors originate from ICC.

Antigens, CD34↗

[Changes of ultrastructure characteritics of Cajal interstitial cell in intestinal tract of diabetic rats].

OBJECTIVE: This study is to clarify the changes of the ultrastructure characteristic of Cajal interstitial cell of diabetic rats intestinal tract. METHODS: Male SD rats were randomly divided into two groups: group A (diabetic), group B (control). 45 mg/kg Alloxan was injected into the group A, group B was injected with saline instead, after 12 weeks, the tissues of small intestine, colon were observed through electric telescope. RESULTS: The major change of Cajal interstitial cell of diabetic rat were showed as below: the number of the gap junctions between Cajal interstitial cell and neuron cells, between Cajal interstitial cell and myocyte, and between themselves were decreased significantly, and the structure of those gap junctions rested were also damaged; mitochondrion was swelling, vacuoles, dissolving; cytoplasm was dissolving, vacuoles were formed; the organelle were decreased. CONCLUSIONS: The ultrastructure of Cajal interstitial cell of diabetic had striking changes, these changes are closely related with the changes of their function, so it is very possible that these changes are one of the mechanisms of diabetic gastrointestinal dysfunction.

Alloxan↗

Interstitial cells associated with the deep muscular plexus of the guinea-pig small intestine, with special reference to the interstitial cells of Cajal.

Interstitial cells associated with the deep muscular plexus of the guinea-pig small intestine were studied by electron microscopy, and three-dimensional cell models were reconstructed from serial ultrathin sections with a computer graphic system. Three types of cells were recognized. The first type was similar in shape to smooth muscle cells, but did not contain an organized contractile apparatus. Many large gap junctions comprising about 4% of the cell surface were present; they connected cells of the first type to each other, to the second type of cell and to smooth muscle cells of the outer circular layer. The second type of cell had a well-demarcated cell body with long slender processes and was characterized by a large amount of glycogen comprising about 9% of the cell volume. The third type of cell was similar to fibroblasts, and contained well-developed Golgi apparatus and rough endoplasmic reticulum. Some of these fibroblast-like cells (a possible subtype) formed small gap junctions. All three types of cells showed close relationships with nerve varicosities. This cellular network consisting of gap-junction-rich cells, glycogen-rich cells and smooth muscle cells may be involved in the pacemaking activity of intestinal movement.

Animals↗