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Physiology 57
Duodenal muscle
Pancreatic
of Vater
Sphincter
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Mucosa
of Oddi
Figure6.1 Anatomy of the human sphincter of Oddi at the
junction of the bile and pancreatic ducts with the duodenum.
mucus- secreting glands. The mucosa is thrown into longitudinal folds likened to mucosal valvules [6]. These
folds are least marked proximally and increase distally,
becoming maximal in the common channel. The mucosal
folds may occasionally be seen projecting through the
orifice of the duodenal papilla.
Innervation
The extrahepatic biliary tract is innervated by dense networks of extrinsic and intrinsic nerves that regulate
smooth muscle tone and epithelial cell function of the
extrahepatic biliary tree. The celiac ganglia contribute
both motor and sensory nerves made up of sympathetic
fibers that originate in the T7–T10 spinal segments. The
hepatic plexus is formed by nerve fibers from both vagi
and supplies parasympathetic motor nerves to the extrahepatic biliary system[7].
The wall of the biliary tract is composed of three
namely serosal, muscularis, and mucosal. Ganglionated
nerve plexuses are located in the subserosal and the
subepithelial layers. The sphincter of Oddi has a rich
ganglionic plexus. It has a predominance of cholinergic
ganglia and a smaller number of adrenergic ganglia.
Immunohistochemical studies from our laboratory have
demonstrated the presence of a wide range of peptidergic neurons in the sphincter region, including galanin- ,
Circular
Longitudinal
Papilla
Common
bile duct
duct
Pancreas
layers,
substance P-
, and somatostatin- containing nerves. In
addition, the inhibitory transmitter nitric oxide has been
demonstrated in nerves to the sphincter and is thought
to have an important function in modulating sphincter
relaxation. It has been shown that the nerves in the
sphincter region communicate with the proximal biliary
tract, the gallbladder, and the duodenum[8,9].
Physiology
Bile reaches the sphincter of Oddi via the common
hepatic and common bile ducts. The sphincter of Oddi
not only regulates the flow of bile and pancreatic juice
into the duodenum, it is also the regulatory structure
that prevents reflux of duodenal contents into the pancreatobiliary passages. The role of the common bile duct
in the control of bile flow has been confused due to anatomic differences in species studied. Histologic studies
in humans have demonstrated only thin longitudinally
oriented layers of smooth muscle within the walls of the
common bile duct [10]. The major tissue component
appears to be elastic fibers. However, in other species
such as sheep, the common bile duct is invested with circularly oriented smooth muscle that exhibits peristaltic
activity.
The weight of evidence suggests that the human
common bile duct does not have a primary propulsile
function. However, the elastic fibers and the longitudinally oriented smooth muscle provide a tonic pressure that may help overcome the tonic resistance of
the sphincter of Oddi. The diameter of the human
common bile duct before and after cholecystectomy
has been the subject of controversy. Part of the disagreement is due to the methodology used in determining duct size. It has become evident that duct size as
determined by ultrasonography and magnetic resonance cholangiography (MRC) cannot be equated to
duct size determined by endoscopic retrograde cholangiopancreatography (ERCP) or intraoperative extraluminal measurements. Ultrasound and MRC record
the nondistended lumen, whereas the contrast used
during ERCP produces distension. Intraoperative
measurements include wall thickness. In general, the
normal diameter of the common bile duct as determined by ultrasound is less than 6
than 10 mm, and by intraoperative extraluminal measurements less than 12 mm. What has become clear is
that the common bile duct does not increase in diameter significantly following cholecystectomy [11,12].
The major cause of dilated common bile duct is
increased intraluminal pressure, which generally is
produced by either primary or secondary obstruction
at the sphincter of Oddi.
mm, by ERCP, less

Physiology andPathophysiology ofFunction ofSphincter ofOddi
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58
Motility ofthe Sphincter ofOddi
The primary function of the sphincter of Oddi is to
control the delivery of bile and pancreatic juice into the
duodenum. This is possible because of low pressure
within the bile duct. Approximately 800–1500 mL of bile
flows through the human sphincter of Oddi. Various
studies in animals and humans have tried to evaluate the
mechanism by which the sphincter of Oddi controls the
flow of bile and pancreatic secretions. These studies have
shown that there is anatomic variability between species
and that sphincter of Oddi motility differs from one species to another. Thus, while many commonalities exist,
one needs to be circumspect in comparing animal data
directly with the motility and function of the human
sphincter of Oddi.
Sphincter ofOddi Motility Studies
inAnimals
Invivo studies in dogs, cats, rabbits, and monkeys have
demonstrated that the sphincter of Oddi exhibits muscle contractions that are independent of duodenal
activity. The common bile duct and pancreatic duct
proximal to the sphincter do not demonstrate spontaneous motor activity. Results from the dog studies have
suggested that the sphincter of Oddi has a milking
effect on bile, thus propelling small volumes of fluid
from the common bile duct into the duodenum[13].
Manometric and electromyographic studies of the
opossum sphincter of Oddi have demonstrated that the
predominant mechanism of common bile duct emptying in the opossum is the antegrade sphincter of Oddi
phasic contractions that propagate the entire length
from the cephalic to the caudal end[14,15]. However,
the frequency of the phasic contractions varies periodically during fasting. In cats, cholecystokinin (CCK)
inhibits the sphincter phasic contractions and produces
a fall in sphincter tone by stimulation of nonadrenergic
noncholinergic inhibitory neurons— this effect overriding a lesser, direct smooth muscle stimulatory action of
the hormone[16].
Recent studies have shown that the sphincter may act
as a pump or a resistor and that bile duct pressure influences it[17]. This intrinsic activity is controlled by interstitial nerves of Cajal and is modulated by hormones[16],
ATP and adenosine[18], and nitric oxide[19].
Neurohistochemical studies have demonstrated both
adrenergic and cholinergic neurons within the sphincter
of Oddi and experiments in animals have determined the
pharmacologic effects of histaminergic, cholinergic, and
adrenergic stimulation on the sphincter muscle [14].
However, the physiologic significance of these drug
actions on the sphincter of Oddi requires further
investigation.
The function of the vagus nerve in sphincter of Oddi
physiology remains obscure. Sphincter of Oddi neurons
likely receive vagal input and their activity is modulated
by release of neuropeptides from sensory fibers, a significant source of excitatory synaptic input to these
cells arising from the duodenum. This duodenum–
sphincter of Oddi circuit is likely to play an important
role in the coordination of sphincter of Oddi tone with
gallbladder motility in the process of gallbladder emptying[20]. Studies in dogs have suggested that following
vagal transection the resistance to flow across the
sphincter of Oddi is decreased [21]. However, in
theprairie dog increased resistance to flow through the
sphincter of Oddi occurs after truncal vagotomy.
Results from vagal stimulation studies have failed to
define clearly the role of the vagus in biliary dynamics.
The Australian possum sphincter of Oddi demonstrates activity similar to that of the human sphincter. In
this species, inhibition of sphincter phasic contractions
promotes flow of bile. It has been shown that this inhibition is mediated by neural release of nitric oxide [16].
There is evidence that nitric oxide mediates the ceruleinand CCK octapeptide- mediated relaxation of the canine
sphincter of Oddi[22]. The neuropeptide, galanin, selectively stimulates longitudinally oriented sphincter of
Oddi smooth muscle via a direct mechanism, leading to
a moderate reduction in trans- sphincteric flow [23].
Table6.1 illustrates the effects of various bioactive agents
on the sphincter of Oddi.
Table6.1 Effects ofvarious bioactive agents onthe sphincter
ofOddi.
Stimulators
Morphine met-
Galanin
Substance P
Cholecystokinin
Neuropeptide Y
Nitric oxide
Inhibitors
Tramadol
Glucagon
Calcitonin gene-
Cholecystokinin
Peptide YY
Somatostatin
enkephalin
related peptide

Sphincter ofOddi Motility inHumans 59
mmHg
SO
SO
SO
Time in seconds
Manometric procedure
Duodenal
Triple lumen catheter
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Sphincter ofOddi Motility
inHumans
Cineradiographic studies of the human sphincter of
Oddi exhibit rhythmic contractions that propel contrast
into the duodenum [24]. Sphincter of Oddi pressure
studies conducted at the time of biliary tract surgery
have demonstrated variations in pressure thought to be
the manometric equivalent of the cineradiographic contractions [25]. Resistance to outflow of fluid from the
common bile duct into the duodenum has also been
demonstrated by the intraoperative studies. This resistance was reduced after administration of CCK octapeptide or smooth muscle relaxants such as amyl nitrite[26].
Manometric recordings from within the sphincter of
Oddi segment have been made via a pressure- sensitive
catheter introduced into the sphincter of Oddi via a duodenoscope (Fig.6.2)[27].
The manometric recordings have demonstrated that the
human sphincter of Oddi is characterized by prominent
phasic contractions superimposed on a basal sphincter of
Oddi pressure 3
bile duct and pancreatic duct (Fig.6.3). The amplitude of
the phasic contractions is approximately 130 mmHg and
the mean frequency is 4/min. Analysis of the direction of
propagation of the phasic contractions during a continuous 3- min period demonstrated that the majority of contractions (60%) are oriented in an antegrade direction
from the common bile duct toward the duodenum. A
smaller number of contractions occurred either simultaneously (24%) or had a retrograde orientation (15%).
mmHg above the pressure in the common
Intravenous bolus injection of CCK octapeptide (20 ng/
kg) normally produces inhibition of the phasic contractions and a fall in the basal sphincter of Oddi pressure.
Table 6.2 shows the pressures recorded from the
sphincter of Oddi of normal subjects. Studies from
patients with T- tubes inserted in the common bile duct
following bile duct exploration[28] have shown that the
frequency of sphincter of Oddi phasic contractions
CBD
catheter
PD
Duodenum
Figure6.2 Manometric recording from the human sphincter of
Oddi. A triple- lumen pressure- sensitive catheter is positioned in
the sphincter via the biopsy channel of the duodenoscope. A
separate catheter records duodenal pressure. CBD: common bile
duct; PD: pancreatic duct.
Figure6.3 Manometric recording from the
human sphincter of Oddi (SO) showing
prominent phasic contractions, which are
inhibited after injection of cholecystokinin
octapeptide (CCK-
OP).
200
100
0
Cephalad
200
100
Middle
0
200
100
Caudad
0
200
100
0
Duodenum
CCK-OP 20 ng/kg

Physiology andPathophysiology ofFunction ofSphincter ofOddi
SO frequency
Contractions/minute
Phase III Phase IV Phase I Phase II Phase III
12
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60
during fasting exhibits a periodicity in relation to duodenal migrating motor complexes, similar to that demonstrated in the opossum (Fig.6.4).
Following the ingestion of a meal, bile flow across the
sphincter of Oddi is promoted by inhibition or reduction
in the amplitude of the phasic contractions and a fall in
the sphincter of Oddi basal pressure. This effect on the
human sphincter of Oddi is similar to that following
intravenous injection of CCK octapeptide. In humans,
bile flow occurs mainly between sphincter of Oddi phasic
contractions during the period of diastole. The phasic
contractions do propel small volumes of bile into the duodenum, but this is not the major means by which bile flow
occurs. The phasic contractions in humans may function
to prevent reflux of duodenal contents into either the bile
Table6.2 Pressures recorded fromthe sphincter ofOddi
ofnormal subjects.
Normal
AbnormalMedian Range
Basal pressure (mmHg) 15 3–35 >40
Amplitude (mmHg) 135 95–195 >300
Frequency (/min) 4
Sequences
Antegrade (%) 80 12–100
Simultaneous (%) 13 0–50
Retrograde (%) 9 0–50
2–6 >7
or the pancreatic ducts, and to maintain the ducts free of
small debris. In order to promote flow across the human
sphincter of Oddi, inhibition or reduction of the phasic
contractions and a fall in basal pressure is necessary.
Pathophysiology of the Sphincter of
Oddi Dysfunction (SOD)
The terminology SOD implies motility abnormalities of
the sphincter of Oddi associated with pain, elevations of
liver or pancreatic enzymes, common bile duct dilatation, or episodes of pancreatitis. The most common
presentations of this symptom complex include persistent or recurrent “biliary” symptoms postcholecystectomy (10–20%)[29] or features consistent with idiopathic
recurrent acute pancreatitis (abnormal sphincter of Oddi
manometry has been recorded in 30.5%[30]).
In 2016, the Rome IV expert consensus[31] updated
the diagnostic criteria for sphincter of Oddi disorders[32]. For biliary pain, the Rome IV expert consensus[31] included the criteria listed in Table6.3, as well as
the presence of elevated liver enzymes or dilated bile
duct (but not both), in the absence of bile duct stones or
other structural abnormalities. The consensus statement
also listed supportive criteria the presence of one or
more of which, in association with the pain, may help in
arriving at the diagnosis. These include abnormal amylase/lipase, abnormal sphincter of Oddi manometry, and
abnormal hepatobiliary scintigraphy.
The clinical diagnostic system for SOD is the Modified
Milwaukee Classification described for both biliary[33]
9
6
3
0
20
% Interdigestive cycle
Figure6.4 Manometric recordings of the human
sphincter of Oddi showing changes in frequency of
contraction in relation to the duodenal interdigestive
motility pattern.
40 60 80 100

Pathophysiology of the Sphincter of Oddi Dysfunction (SOD) 61
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and pancreatic [34] disorders (Table 6.4). These have
been modified f rom the original Milwaukee Classif ication
proposed by Hogan and Geenen [35]. Pancreatic SOD
may be considered in patients with documented acute
recurrent pancreatitis, after exclusion of known etiologies for pancreatitis, and documenting elevated pancreatic sphincter of Oddi pressures on manometry[31].
An alternate classification of SOD may be based on
manometric recordings. We have previously subdivided
SOD into two groups [36], namely, those exhibiting a
stenotic pattern (abnormally raised basal sphincter pressure >40 mmHg) and those displaying a dyskinetic pattern including paradoxical response to CCK injection,
rapid contraction frequency, high percentage of retrograde contractions, or short periods of raised basal pressure[37]. These patients display an abnormal response
to morphine or a fatty meal stimulus. In addition it has
been postulated that SOD characterized by a manometric stenosis may contribute to the development of adult
choledochal cysts[38,39].
The stenotic subtype of SOD is characterized by
pathomorphological changes evident on histological
Table6.3 Rome IV diagnostic criteria for biliary- type pain
Adapted from[31].
Pain located in the epigastrium and/or right upper quadrant
and all of the following:
1) Builds up to a steady level and lasting 30minutes, or longer
2) Occurring at different intervals (not daily)
3) Severe enough to interrupt daily activities or lead to an
emergency department visit
4) Not significantly (<20%) related to bowel movements
5) Not significantly (<20%) relieved by postural change or acid
suppression
Supportive criteria: Nausea and vomiting, radiation to the back and/
or right subscapular region, and waking from sleep.
examination of sphincter complexes resected at the time
of transduodenal sphincteroplasty for patients with
severe postcholecystectomy pain. The changes contributing to the high basal pressure include inflammation of
the papilla and its transampullary septum or fibrosis
with or without inflammation, papillary cholesterolosis [40], muscle hypertrophy, or mucosal edema [41].
These findings have been reported in 58% of patients
undergoing transduodenal sphincteroplasty and
transampullary septectomy for postcholecystectomy
pain[40] and one possible cause has been postulated to
be due to the chronic passage of small gallstones [40].
Another possible cause may be end- stage dyskinetic
SOD. The stenotic subtype corresponds to the Modified
Milwaukee type 1 and responds best to sphincterotomy
(surgical or endoscopic). We have previously demonstrated that surgical sphincteroplasty and septectomy
when performed for manometrically confirmed sphincter of Oddi stenosis in patients with recurrent pancreatitis resulted in a good clinical outcome in a majority of
patients[42,43].
In a clinical setting, there is no need for manometry
prior to ERCP and sphincterotomy for type 1 SOD of
either biliary or pancreatic type presentation.
The dyskinetic subtype, conversely, is believed to be
the result of a functional or neurohormonal disturbance
in the absence of any pathological reproducible abnormalities [36]. Infections such as Cryptosporidium and
HIV have also been shown to lead to features of SOD[44].
This subtype corresponds to the type 2 and 3 of the
Milwaukee Classification. Sphincter of Oddi manometry
is essential to arrive at the diagnosis. The paradoxical
response to CCK injection noted by us[41] may be the
result of a defect in the enteric nervous system akin to
that described for achalasia of the esophagus[45]. While
sphincterotomy relieves symptoms of type 1 SOD, it is
less effective in alleviating symptoms of this subtype[46]
Table6.4 Modified Milwaukee classification forbiliary andpancreatic sphincter ofOddi dysfunction.
Classification
Type 1 A) Biliary- type pain
Type 2 A) Biliary- type pain with either B or C in
Type 3 A) Biliary- type pain only without other
ALT: alanine aminotransferase; AST: aspartate aminotransferase; ALP: alkaline phosphatase.
Diagnostic criteria
Biliary Pancreatic
A) Pancreatic- type pain
B) Elevated ALT, AST, ALP >1.1 times the
upper limit of normal on one occasion
C) Bile duct diameter ≥9 mm
the criteria mentioned in Type 1
abnormalities
B) Serum amylase or lipase level of 1.1 times the upper limit of
normal on one occasion
C) Duct dilatation of >6 mm in the head and >5 mm in the body of
the pancreas
A) Pancreatic- type pain with either B or C in the criteria
mentioned in Type 1
A) Pancreatic- type pain only without other abnormalities

Physiology andPathophysiology ofFunction ofSphincter ofOddi
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62
and is associated with a risk of early recurrence of
symptoms on follow- up[47]. Following clinical studies
over the last decade there has been a change in our
understanding of the SOD dyskinetic subtype.
The Rome IV consensus postulates that type 3 SOD is
a disorder of “gut–brain interaction”[31]. This view was
largely shaped by the findings of the clinical trial entitled
“Evaluating Predictors and Interventions of SOD
(EPISOD)”[48]. This multicentre randomized controlled
trial conducted in seven centers involved the randomization of 214 patient with postcholecystectomy pain and
without significant abnormalities on imaging or laboratory studies, with no prior sphincter of Oddi treatment
or pancreatitis. Patients either had an endoscopic sphincterotomy or sham therapy irrespective of manometry
findings. A significantly higher proportion of patients in
the sham-
treatment group experienced relief as compared to the sphincterotomy group (37% vs. 23%;
P = 0.01). These findings persisted at 5- years’ follow- up
with patients who received a sphincterotomy faring
worse- off based on the Patients’ Global Impression of
Change (PGIC) criteria[49]. The authors recommended
that ERCP be undertaken only in patients with a dilated
bile duct or significantly deranged liver function
tests[50]. This recommendation has been supported by
the results of the ERCP for Sphincter of Oddi Disorders
(RESPOnD) study[51]. The latter was a prospective longitudinal cohort study that evaluated the benefit of ERCP
with sphincterotomy when performed for SOD.
Type 2 SOD is considered a “functional biliary sphincter disorder” by the Rome IV consensus[31] statement
and includes those patients who have biliary pain
postcholecystectomy with either dilated ducts or elevated liver enzymes. Current data supports the performance of biliary manometry in these patients [46,52]
and there remains a role for sphincterotomy in those
patients who had demonstrable pre- procedure abnormalities in manometry[53]. The response to sphincterotomy in patients with type 2 SOD is not uniform but
demonstrates benefit in a significant number of
individuals.
Management of patients with type 3 SOD and those
patients with type 2 SOD who do not benefit from a
sphincterotomy or in whom manometry findings remain
inconclusive is a challenge. Various pharmacologic
agents have been used with varying success. These
include hyoscine butyl bromide, nifedipine, nitric oxide,
octreotide, gabexate mesylate, ulinastatin, trimebutine,
amitriptyline, and duloxetine[54–57].
The treatment of pancreatic types 2 and 3 SOD remains
speculative. We have elucidated various mechanisms by
which galanin may be involved in the pathogenesis of
acute pancreatitis [58]. Given the action of galanin on
the sphincter of Oddi [23], its contribution to SODinduced acute pancreatitis [59] is worthy of consideration. Use of galanin antagonists [60–63] may offer a
potential therapy in this subgroup of patients.
The causes for pain in SOD remain conjectural.
Mechanisms for production of pain may include relative
obstruction of flow through the sphincter of Oddi resulting in bile duct or pancreatic duct distension, “ischemic”
pain arising from spastic contractions, hypersensitivity of
the papilla, and severance of nerves supplying the sphincter of Oddi during cholecystectomy. Other potential explanations may include duodenal-
specific visceral hyperalgesia
(in type 3 SOD)[64], continuous visceral pain (biliary pain)
caused by local inflammatory/sensitizing processes or persistent hyperexcitability of the nociceptive neurons in the
central nervous system[65], or other functional gastrointestinal disorders including intestinal dysmotility[66], irritable bowel syndrome (IBS), or non- ulcer dyspepsia.
Summary
The sphincter of Oddi is a small but important complex
muscle that modulates flow of bile and pancreatic juice
across one of the busiest anatomic junctions of the body. Its
motor activity is controlled by an interaction of neuronal
and hormonal modulators. In such a complex structure it
is not surprising that at times disorders in motility arise
and these disorders lead to significant clinical syndromes.
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7
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https://t.me/medicina_free
Neurohormonal andHormonal Control ofPancreatic Secretion
Chung Owyang and Matthew J. DiMagno
Division of Gastroenterology, Department of Internal Medicine, University of Michigan, Ann Arbor, MI, USA
65
Introduction
The pancreas, one of the most important organs in the
digestive tract, has both exocrine and endocrine functions. The exocrine pancreas secretes digestive enzymes
and HCO
–
to facilitate digestion and absorption of
3
nutrients. The endocrine pancreas releases hormones
that regulate metabolism and the disposition of the
breakdown products of food.
The human pancreas secretes about 1 liter of juice
daily, containing mostly water, electrolytes, and digestive
enzymes. Mediation of postprandial pancreatic secretion has been ascribed mainly to the hormones secretin
and cholecystokinin (CCK) and to vagovagal reflexes
that activate cholinergic postganglionic neurons in the
pancreas. In addition to these classical pathways, other
regulatory peptide hormones and neurotransmitters
may be involved.
Stimulation ofPancreatic Secretion
Hormonal Mechanisms
Secretin
Secretin is the most potent and efficacious stimulant of
pancreatic fluid and HCO
other species tested. It is synthesized by small intestine
S- type enteroendocrine cells and is released postprandially. Duodenal pH is the major regulator of secretin
release. A threshold pH of 4.5 triggers secretin release
and stimulates pancreatic HCO
this pH, pancreatic HCO
amount of titratable acid presented to the duodenum.
Secretin levels in humans increase only a few picomolars
postprandially because food buffers much of the gastric
–
secretion in humans and all
3
–
secretion[1,2]. Below
3
–
output is related to the total
3
acid and pancreaticobiliary secretion neutralizes the
remaining acid entering the duodenum by [3]. The
mechanism by which acid stimulates secretin release is
unclear. In rodents it was shown that H
+
may release a
secretin- releasing factor into the proximal intestinal
lumen to stimulate secretin release [4]. Secretinproducing cells appear to have acid- sensing ion channels
belonging to the TRP (transient receptor potential)
channel family. Hence, luminal acid likely stimulates
secretin release by more than one mechanism.
Nonacid factors may influence postprandial secretin
release. Nutrients such as oleic acid and other digestive
products of fat can increase plasma secretin levels and
pancreatic HCO
–
secretion[3,5]. Bile in the upper gut
3
can also stimulate secretin release [6]. However, the
physiological importance of these nonacid factors in
postprandial secretin release is questionable, as the postprandial plasma secretin level does not increase in achlorhydria or in health if meal- induced acid secretion is
neutralized with NaHCO
–
.
3
The pancreas appears highly sensitive to the small
amounts of secretin released into the circulation postprandially[3,6]. Invitro animal models show that secretin stimulates HCO
fragments [7,8].
–
secretion by isolated ducts or duct
3
125
I- labeled secretin and autoradiography revealed a secretin- binding site on pancreatic acini
and duct cells[3], suggesting that secretin acts directly
on the pancreas to stimulate pancreatic secretion.
Conversely, invivo studies have shown that the effect of
secretin at physiological doses is highly sensitive to atropine[3]. Receptor autoradiography, immunocytochemistry, and electrophysiology demonstrate the presence of
secretin receptors in vagal afferent fibers[3,9,10]. Vagal
nodose ganglia also contain high- affinity CCK
recep-
1
tors [3]. Injection of a subthreshold dose of CCK- 8
(5 pM) significantly enhances the neural response to
The Pancreas: An Integrated Textbook of Basic Science, Medicine, and Surgery, Fourth Edition. Edited by Hans G. Beger, Markus W. Büchler,
RalphH. Hruban, Julia Mayerle, John P. Neoptolemos, Tooru Shimosegawa, Andrew L. Warshaw, David C. Whitcomb, and Yupei Zhao.
© 2023 John Wiley & Sons Ltd. Published 2023 by John Wiley & Sons Ltd.
Companion website: www.wiley.com/go/beger/thepancreas4e

Neurohormonal andHormonal Control ofPancreatic Secretion
Acetylcholine
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https://t.me/medicina_free
66
5 pM secretin. This synergistic interaction helps to
explain the robust postprandial pancreatic HCO
–
3
and
enzyme secretion despite a modest postprandial increase
in plasma CCK and secretin.
Cholecystokinin
CCK is the other gut hormone that plays an important
role in pancreatic secretion. It is synthesized in specific
enteroendocrine I cells in the proximal intestine and
released by hydrolytic products of digestion such as
amino acids and fatty acids[11]. Undigested fat is ineffective, but products of lipolysis such as fatty acids are
the most potent stimulants of CCK release [12]. The
CCK response to fatty acids is influenced by chain length,
saturation, concentration, and total load[13].
Fasting plasma CCK levels are low, averaging about
pM in humans [14–16]. Postprandially, plasma CCK
1
concentration increases to 6–8 pM within 10–30 min,
then gradually declines to basal levels during the ensuing
3 h[15,16]. Several molecular forms of CCK appear to be
released into the circulation postprandially, including
CCK- 58, CCK- 33, CCK- 22, CCK- 12, and CCK- 8 [17];
CCK- 58 being predominant in dogs and humans and the
only form detected in rats[16–19].
Nutrients may stimulate CCK secretion by a number
of mechanisms. In species such as the rat, in which feedback inhibition of pancreatic enzyme secretion occurs,
CCK release is mediated by a trypsin- sensitive CCKreleasing peptide [20]. Duodenal peptone stimulates
serotonin (5- HT) release from intestinal enterochromaffin cells, which in turn activates submucosal sensory
substance P neurons. Signals are then transmitted to
cholinergic interneurons and to epithelial CCK- releasing
peptide- containing cells by way of cholinergic secretomotor neurons[20]. CCK release may be controlled by
the level of active intraluminal proteases [16]. Protein,
the major food stimulant of CCK secretion in rats, may
bind or inhibit intraluminal endopeptidases, which
would otherwise inactivate the CCK- releasing peptide[21] (Fig. 7.1). The mechanisms responsible for the
actions of CCK- releasing peptide in humans are unclear,
but may be similar to rats as feedback regulation of CCK
release by proteases also occurs in humans. Study of
CCK secretion from purified CCK- producing cells shows
that amino acids stimulate CCK release by binding to the
2+
Ca
- sensing receptor [22], whereas fatty acids bind to
specific G- protein–coupled fatty acid receptors [23].
Thus CCK secretion may be mediated by more than one
mechanism.
CCK plays an important role in the stimulation of
postprandial pancreatic enzyme secretion. The infusion
of physiological doses of CCK produces the same level of
pancreatic enzyme secretion as during the postprandial
state [24]. Furthermore, administration of the potent
CCK antagonist lorglumide or MK- 329 produces a
50–60% inhibition of meal- stimulated pancreatic secretion in dogs[25] and humans[26]. CCK can also stimulate fluid and HCO
HCO
–
secretion is weak but physiologically relevant
3
–
secretion [27]. The effect on
3
because CCK potentiates the action of secretin on the
pancreas [28]. In intact dogs and humans, CCKstimulated pancreatic enzyme secretion is not potentiated by secretin [24,29,30]. The mechanisms by which
CCK stimulates pancreatic enzyme secretion remain
Atropine
Protein
Trypsin-protein
Duodenum
CCK-RP
Trypsin
complex
CCK
Pancreas
CCK-RP cell
CCK cell
Enterocytes
Figure7.1 Cholecystokinin (CCK)- releasing peptide
(CCK- RP) stimulation of postprandial secretion.
CCK- RP is secreted into the proximal small intestine
under the influence of cholinergic pathway and
inactivated by trypsin. When food enters the
duodenum postprandially, protein binds to trypsin
and prevents the inactivation of CCK- RP. CCK- RP
stimulates CCK cells in the duodenum to release CCK
into the bloodstream. CCK, in turn, stimulates
pancreatic enzyme secretion.
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