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The Enteric Nervous System

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Cover of 'The Enteric Nervous System'

Table of Contents

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    Book Overview
  2. Altmetric Badge
    Chapter 1 Memories and Promises of the Enteric Nervous System and Its Functions
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    Chapter 2 A Personal Perspective on the Development of Our Understanding of the Myogenic Control Mechanisms of Gut Motor Function
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    Chapter 3 The Enteric Nervous System
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    Chapter 4 Spatio-Temporal Mapping and the Enteric Nervous System
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    Chapter 5 Development of Neural Activity in the Enteric Nervous System: Similarities and Differences to Other Parts of the Nervous System
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    Chapter 6 The Enteric Nervous System
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    Chapter 7 Extrinsic Sensory Innervation of the Gut: Structure and Function
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    Chapter 8 The Enteric Nervous System
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    Chapter 9 The Enteric Nervous System
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    Chapter 10 The Enteric Nervous System
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    Chapter 11 Is There a Role for Endogenous 5-HT in Gastrointestinal Motility? How Recent Studies Have Changed Our Understanding
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    Chapter 12 Enteric neuropathies: Yesterday, Today and Tomorrow
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    Chapter 13 The Enteric Nervous System
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    Chapter 14 G Protein-Coupled Receptor Trafficking and Signalling in the Enteric Nervous System: The Past, Present and Future
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    Chapter 15 The Intrinsic Reflex Circuitry of the Inflamed Colon
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    Chapter 16 The Enteric Nervous System
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    Chapter 17 The Enteric Nervous System
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    Chapter 18 Advanced 3D Optical Microscopy in ENS Research
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    Chapter 19 The Enteric Nervous System
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    Chapter 20 Recording In Vivo Human Colonic Motility: What Have We Learnt Over the Past 100 Years?
Attention for Chapter 16: The Enteric Nervous System
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Chapter title
The Enteric Nervous System
Chapter number 16
Book title
The Enteric Nervous System
Published in
Advances in experimental medicine and biology, July 2016
DOI 10.1007/978-3-319-27592-5_16
Pubmed ID
Book ISBNs
978-3-31-927590-1, 978-3-31-927592-5
Authors

Furness, John B, Furness, John B., John B. Furness

Abstract

The activity of the digestive system is dynamically regulated by external factors, including body nutritional and activity states, emotions and the contents of the digestive tube. The gut must adjust its activity to assimilate a hugely variable mixture that is ingested, particularly in an omnivore such as human for which a wide range of food choices exist. It must also guard against toxins and pathogens. These nutritive and non-nutritive components of the gut contents interact with the largest and most vulnerable surface in the body, the lining of the gastrointestinal tract. This requires a gut sensory system that can detect many classes of nutrients, non-nutrient components of food, physicochemical conditions, toxins, pathogens and symbionts (Furness et al., Nat Rev Gastroenterol Hepatol 10:729-740, 2013). The gut sensors are in turn coupled to effector systems that can respond to the sensory information. The responses are exerted through enteroendocrine cells (EEC), the enteric nervous system (ENS), the central nervous system (CNS) and the gut immune and tissue defence systems. It is apparent that the control of the digestive organs is an integrated function of these effectors. The peripheral components of the EEC, ENS and CNS triumvirate are extensive. EEC cells have traditionally been classified into about 12 types (disputed in this review), releasing about 20 hormones, together making the gut endocrine system the largest endocrine organ in the body. Likewise, in human the ENS contains about 500 million neurons, far more than the number of neurons in the remainder of the peripheral autonomic nervous system. Together gut hormones, the ENS and the CNS control or influence functions including satiety, mixing and propulsive activity, release of digestive enzymes, induction of nutrient transporters, fluid transport, local blood flow, gastric acid secretion, evacuation and immune responses. Gut content receptors, including taste, free fatty acid, peptide and phytochemical receptors, are primarily located on EEC. Hormones released by EEC act via both the ENS and CNS to optimise digestion. Toxic chemicals and pathogens are sensed and then avoided, expelled or metabolised. These defensive activities also involve the EEC and signalling from EEC to the ENS and the CNS. A major challenge is to develop a comprehensive understanding of the integrated responses of the gut, via its effector systems, the ENS, extrinsic innervation, EEC and the gut immune system, to the sensory information it receives.

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Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 60 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 60 100%

Demographic breakdown

Readers by professional status Count As %
Researcher 10 17%
Student > Ph. D. Student 9 15%
Student > Bachelor 8 13%
Student > Master 6 10%
Student > Doctoral Student 4 7%
Other 13 22%
Unknown 10 17%
Readers by discipline Count As %
Medicine and Dentistry 12 20%
Agricultural and Biological Sciences 10 17%
Biochemistry, Genetics and Molecular Biology 4 7%
Neuroscience 4 7%
Nursing and Health Professions 2 3%
Other 13 22%
Unknown 15 25%
Attention Score in Context

Attention Score in Context

This research output has an Altmetric Attention Score of 1. This is our high-level measure of the quality and quantity of online attention that it has received. This Attention Score, as well as the ranking and number of research outputs shown below, was calculated when the research output was last mentioned on 19 November 2023.
All research outputs
#22,255,202
of 24,836,260 outputs
Outputs from Advances in experimental medicine and biology
#4,241
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Outputs of similar age
#320,091
of 363,454 outputs
Outputs of similar age from Advances in experimental medicine and biology
#77
of 94 outputs
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