Cholinergic signaling controls immune functions and promotes homeostasis.
暂无分享,去创建一个
[1] F. Torres-Juárez,et al. Nicotine modulates molecules of the innate immune response in epithelial cells and macrophages during infection with M. tuberculosis , 2020, Clinical and experimental immunology.
[2] W. Zang,et al. Regulation of mitochondrial cristae remodelling by acetylcholine alleviates palmitate-induced cardiomyocyte hypertrophy. , 2019, Free radical biology & medicine.
[3] A. Birbrair,et al. THE ROLE OF NEUTROPHILS IN NEURO-IMMUNE MODULATION. , 2019, Pharmacological research.
[4] Sabita Roy,et al. Acetylcholinesterase Inhibitor Pyridostigmine Bromide Attenuates Gut Pathology and Bacterial Dysbiosis in a Murine Model of Ulcerative Colitis , 2019, Digestive Diseases and Sciences.
[5] R. Locksley,et al. Regulation of immune responses by tuft cells , 2019, Nature Reviews Immunology.
[6] N. Dehorter,et al. New Insights Into Cholinergic Neuron Diversity , 2019, Front. Mol. Neurosci..
[7] Ming D. Li,et al. Involvement of Interferon Regulatory Factor 7 in Nicotine’s Suppression of Antiviral Immune Responses , 2019, Journal of Neuroimmune Pharmacology.
[8] J. Abramson,et al. Tuft cells: From the mucosa to the thymus. , 2019, Immunology letters.
[9] K. Kawashima,et al. Distinct Roles of α7 nAChRs in Antigen-Presenting Cells and CD4+ T Cells in the Regulation of T Cell Differentiation , 2019, Front. Immunol..
[10] Yue-chun Li,et al. Eliciting α7‐nAChR exerts cardioprotective effects on ischemic cardiomyopathy via activation of AMPK signalling , 2019, Journal of cellular and molecular medicine.
[11] R. Locksley,et al. Tuft Cells-Systemically Dispersed Sensory Epithelia Integrating Immune and Neural Circuitry. , 2019, Annual review of immunology.
[12] C. Lebrilla,et al. T-cell derived acetylcholine aids host defenses during enteric bacterial infection with Citrobacter rodentium , 2019, PLoS pathogens.
[13] W. Zang,et al. Cholinergic drugs ameliorate endothelial dysfunction by decreasing O‐GlcNAcylation via M3 AChR‐AMPK‐ER stress signaling , 2019, Life Science.
[14] S. Dohgu,et al. Activation of the α7 nicotinic acetylcholine receptor upregulates blood-brain barrier function through increased claudin-5 and occludin expression in rat brain endothelial cells , 2019, Neuroscience Letters.
[15] T. Mak,et al. Choline acetyltransferase–expressing T cells are required to control chronic viral infection , 2019, Science.
[16] D. Larhammar,et al. Evolution of vertebrate nicotinic acetylcholine receptors , 2019, BMC Evolutionary Biology.
[17] Covantes-Rosales Carlos Eduardo,et al. Modulation of the extraneuronal cholinergic system on main innate response leukocytes , 2019, Journal of Neuroimmunology.
[18] J. McIntosh,et al. Conopeptides [V11L;V16D]ArIB and RgIA4: Powerful Tools for the Identification of Novel Nicotinic Acetylcholine Receptors in Monocytes , 2019, Front. Pharmacol..
[19] U. Maskos,et al. Positive allosteric modulators of α7* or β2* nicotinic acetylcholine receptors trigger different kinase pathways in mitochondria. , 2018, The international journal of biochemistry & cell biology.
[20] Theodoros P. Zanos,et al. Identification of cytokine-specific sensory neural signals by decoding murine vagus nerve activity , 2018, Proceedings of the National Academy of Sciences.
[21] V. Pavlov,et al. Molecular and Functional Neuroscience in Immunity. , 2018, Annual review of immunology.
[22] UbertiFrancesca,et al. Highly Diluted Acetylcholine Promotes Wound Repair in an In Vivo Model. , 2018 .
[23] R. Nichols,et al. Beyond the Channel: Metabotropic Signaling by Nicotinic Receptors. , 2018, Trends in pharmacological sciences.
[24] Toshio Takahashi,et al. The Coordinated Activities of nAChR and Wnt Signaling Regulate Intestinal Stem Cell Function in Mice , 2018, International journal of molecular sciences.
[25] C. González-Espinosa,et al. Stimulation of nAchRα7 Receptor Inhibits TNF Synthesis and Secretion in Response to LPS Treatment of Mast Cells by Targeting ERK1/2 and TACE Activation , 2018, Journal of Neuroimmune Pharmacology.
[26] Shengyong Xu,et al. Phenomena of synchronized response in biosystems and the possible mechanism. , 2018, Biochemical and biophysical research communications.
[27] S. Mahata,et al. &agr;7-Nicotinic Acetylcholine Receptor Agonist Ameliorates Nicotine Plus High-Fat Diet–Induced Hepatic Steatosis in Male Mice by Inhibiting Oxidative Stress and Stimulating AMPK Signaling , 2018, Endocrinology.
[28] F. Huang,et al. Nicotinic acetylcholine receptor α7 subunit improves energy homeostasis and inhibits inflammation in nonalcoholic fatty liver disease. , 2018, Metabolism: clinical and experimental.
[29] J. Wess,et al. Muscarinic receptors 2 and 5 regulate bitter response of urethral brush cells via negative feedback , 2018, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[30] D. Hoover. Cholinergic modulation of the immune system presents new approaches for treating inflammation , 2017, Pharmacology & therapeutics.
[31] K. Kawashima,et al. Expression and Function of the Cholinergic System in Immune Cells , 2017, Front. Immunol..
[32] W. Padberg,et al. Canonical and Novel Non-Canonical Cholinergic Agonists Inhibit ATP-Induced Release of Monocytic Interleukin-1β via Different Combinations of Nicotinic Acetylcholine Receptor Subunits α7, α9 and α10 , 2017, Front. Cell. Neurosci..
[33] I. Chiu,et al. Sensory neuron regulation of gastrointestinal inflammation and bacterial host defence , 2017, Journal of internal medicine.
[34] Kevin J Tracey,et al. Mechanisms and Therapeutic Relevance of Neuro-immune Communication. , 2017, Immunity.
[35] W. Kummer,et al. Brush cells, the newly identified gatekeepers of the urinary tract , 2017, Current opinion in urology.
[36] J. Fadel,et al. Cholinergic regulation of fear learning and extinction , 2017, Journal of neuroscience research.
[37] M. Tortora,et al. Nicotinic receptors modulate the onset of reactive oxygen species production and mitochondrial dysfunction evoked by glutamate uptake block in the rat hypoglossal nucleus , 2017, Neuroscience Letters.
[38] W. Kummer,et al. Chemosensory epithelial cells in the urethra: sentinels of the urinary tract , 2016, Histochemistry and Cell Biology.
[39] P. E. Leite,et al. The Involvement of Parasympathetic and Sympathetic Nerve in the Inflammatory Reflex , 2016, Journal of cellular physiology.
[40] W. Zang,et al. Vagal nerve stimulation improves mitochondrial dynamics via an M3 receptor/CaMKKβ/AMPK pathway in isoproterenol‐induced myocardial ischaemia , 2016, Journal of cellular and molecular medicine.
[41] W. Padberg,et al. Phosphocholine – an agonist of metabotropic but not of ionotropic functions of α9-containing nicotinic acetylcholine receptors , 2016, Scientific Reports.
[42] W. Garrett,et al. Tuft cells, taste-chemosensory cells, orchestrate parasite type 2 immunity in the gut , 2016, Science.
[43] Marco Bruschi,et al. Intestinal epithelial tuft cells initiate type 2 mucosal immunity to helminth parasites , 2016, Nature.
[44] R. Locksley,et al. Tuft-cell-derived IL-25 regulates an intestinal ILC2–epithelial response circuit , 2015, Nature.
[45] Xi He,et al. Novel strategies and underlying protective mechanisms of modulation of vagal activity in cardiovascular diseases , 2015, British journal of pharmacology.
[46] S. Tzartos,et al. Inflammation decreases the level of alpha7 nicotinic acetylcholine receptors in the brain mitochondria and makes them more susceptible to apoptosis induction. , 2015, International immunopharmacology.
[47] C. Kirkpatrick,et al. pH-dependent hydrolysis of acetylcholine: Consequences for non-neuronal acetylcholine. , 2015, International immunopharmacology.
[48] T. Gudermann,et al. A novel cholinergic epithelial cell with chemosensory traits in the murine conjunctiva. , 2015, International immunopharmacology.
[49] R. León,et al. Anti-inflammatory role of microglial alpha7 nAChRs and its role in neuroprotection. , 2015, Biochemical pharmacology.
[50] W. Wier,et al. Reduction of Mitochondria–Endoplasmic Reticulum Interactions by Acetylcholine Protects Human Umbilical Vein Endothelial Cells From Hypoxia/Reoxygenation Injury , 2015, Arteriosclerosis, thrombosis, and vascular biology.
[51] Nadine Kabbani,et al. Identification and Characterization of a G Protein-binding Cluster in α7 Nicotinic Acetylcholine Receptors* , 2015, The Journal of Biological Chemistry.
[52] X. Cong,et al. Claudin-4 is required for modulation of paracellular permeability by muscarinic acetylcholine receptor in epithelial cells , 2015, Journal of Cell Science.
[53] T. Gudermann,et al. Chemical coding and chemosensory properties of cholinergic brush cells in the mouse gastrointestinal and biliary tract , 2015, Front. Physiol..
[54] William W. Agace,et al. Regional specialization within the intestinal immune system , 2014, Nature Reviews Immunology.
[55] S. Guatimosim,et al. Cholinergic Activity as a New Target in Diseases of the Heart , 2014, Molecular medicine.
[56] S. Komisarenko,et al. Mitochondria express several nicotinic acetylcholine receptor subtypes to control various pathways of apoptosis induction. , 2014, The international journal of biochemistry & cell biology.
[57] C. Oliver,et al. Mast Cell Function , 2014, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[58] Changwei Li,et al. Prediction of heart rate variability on cardiac sudden death in heart failure patients: a systematic review. , 2014, International journal of cardiology.
[59] T. Gudermann,et al. Bitter triggers acetylcholine release from polymodal urethral chemosensory cells and bladder reflexes , 2014, Proceedings of the National Academy of Sciences.
[60] M. Mckinley,et al. The cholinergic anti-inflammatory pathway: A critical review , 2014, Autonomic Neuroscience.
[61] T. Finger,et al. Cholinergic neurotransmission links solitary chemosensory cells to nasal inflammation , 2014, Proceedings of the National Academy of Sciences.
[62] S. Komisarenko,et al. α7 nicotinic acetylcholine receptors control cytochrome c release from isolated mitochondria through kinase-mediated pathways. , 2014, The international journal of biochemistry & cell biology.
[63] P. Berggren,et al. Control of Insulin Secretion by Cholinergic Signaling in the Human Pancreatic Islet , 2014, Diabetes.
[64] J. Palmer,et al. Bitter and sweet taste receptors regulate human upper respiratory innate immunity. , 2014, The Journal of clinical investigation.
[65] James D. Thomas,et al. Impact of Vagal Nerve Stimulation on Left Atrial Structure and Function in a Canine High-Rate Pacing Model , 2014, Circulation. Heart failure.
[66] Amarda Shehu,et al. Are nicotinic acetylcholine receptors coupled to G proteins? , 2013, BioEssays : news and reviews in molecular, cellular and developmental biology.
[67] R. Resende,et al. Cardiomyocyte‐secreted acetylcholine is required for maintenance of homeostasis in the heart , 2013, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[68] L. Bosquet,et al. High-intensity interval exercise improves vagal tone and decreases arrhythmias in chronic heart failure. , 2013, Medicine and science in sports and exercise.
[69] B. Weimer,et al. Microbiota-liberated host sugars facilitate post-antibiotic expansion of enteric pathogens , 2013, Nature.
[70] Jian-guo Li,et al. Vagus Nerve Stimulation Attenuates Intestinal Epithelial Tight Junctions Disruption in Endotoxemic Mice Through &agr;7 Nicotinic Acetylcholine Receptors , 2013, Shock.
[71] Alexander Thiele,et al. Muscarinic signaling in the brain. , 2013, Annual review of neuroscience.
[72] W. Zang,et al. Cardioprotection by acetylcholine: A novel mechanism via mitochondrial biogenesis and function involving the PGC‐1α pathway , 2013, Journal of cellular physiology.
[73] Xiao-Jiang Yu,et al. Acetylcholine Attenuates Hypoxia/ Reoxygenation-Induced Mitochondrial and Cytosolic ROS Formation in H9c2 Cells via M2 Acetylcholine Receptor , 2013, Cellular Physiology and Biochemistry.
[74] G D Pinna,et al. Clinical value of baroreflex sensitivity , 2013, Netherlands Heart Journal.
[75] Y. Kakinuma,et al. Heart‐Specific Overexpression of Choline Acetyltransferase Gene Protects Murine Heart Against Ischemia Through Hypoxia‐Inducible Factor‐1α–Related Defense Mechanisms , 2013, Journal of the American Heart Association.
[76] T. Mak,et al. Lymphocyte-derived ACh regulates local innate but not adaptive immunity , 2013, Proceedings of the National Academy of Sciences.
[77] W. Kummer,et al. Cholinergic brush cells in the trachea mediate respiratory responses to quorum sensing molecules. , 2012, Life sciences.
[78] W. Zang,et al. Protection against Ischemia-Induced Oxidative Stress Conferred by Vagal Stimulation in the Rat Heart: Involvement of the AMPK-PKC Pathway , 2012, International journal of molecular sciences.
[79] W. März,et al. Routinely available biomarkers improve prediction of long-term mortality in stable coronary artery disease: the Vienna and Ludwigshafen Coronary Artery Disease (VILCAD) risk score. , 2012, European heart journal.
[80] M. Krzyżaniak,et al. Targeting -7 Nicotinic Acetylcholine Receptor in the Enteric Nervous System A Cholinergic Agonist Prevents Gut Barrier Failure after Severe Burn Injury , 2012 .
[81] C. Guatimosim,et al. Non-neuronal cholinergic machinery present in cardiomyocytes offsets hypertrophic signals. , 2012, Journal of molecular and cellular cardiology.
[82] W. Kummer,et al. “Tasting” the airway lining fluid , 2012, Autonomic Neuroscience.
[83] O. Wagner,et al. Butyrylcholinesterase activity predicts long-term survival in patients with coronary artery disease. , 2012, Clinical chemistry.
[84] C. Lightdale,et al. Bile acid and inflammation activate gastric cardia stem cells in a mouse model of Barrett-like metaplasia. , 2012, Cancer cell.
[85] Laura Calvillo,et al. Vagal Stimulation, Through its Nicotinic Action, Limits Infarct Size and the Inflammatory Response to Myocardial Ischemia and Reperfusion , 2011, Journal of cardiovascular pharmacology.
[86] Tak W. Mak,et al. Acetylcholine-Synthesizing T Cells Relay Neural Signals in a Vagus Nerve Circuit , 2011, Science.
[87] E. Zee,et al. The cholinergic system, circadian rhythmicity, and time memory , 2011, Behavioural Brain Research.
[88] W. Kummer,et al. Cholinergic chemosensory cells in the trachea regulate breathing , 2011, Proceedings of the National Academy of Sciences.
[89] C. Ricordi,et al. Alpha cells secrete acetylcholine as a non-neuronal paracrine signal priming human beta cell function , 2011, Nature Medicine.
[90] N. Salzman,et al. Paneth cells, antimicrobial peptides and maintenance of intestinal homeostasis , 2011, Nature Reviews Microbiology.
[91] W. Zang,et al. Tumour necrosis factor‐α and its receptors in the beneficial effects of vagal stimulation after myocardial infarction in rats , 2011, Clinical and experimental pharmacology & physiology.
[92] Lan Zhang,et al. Chemoreception Regulates Chemical Access to Mouse Vomeronasal Organ: Role of Solitary Chemosensory Cells , 2010, PloS one.
[93] B. A. Evans,et al. The M3-muscarinic acetylcholine receptor stimulates glucose uptake in L6 skeletal muscle cells by a CaMKK-AMPK-dependent mechanism. , 2010, Cellular signalling.
[94] T. Finger,et al. Nasal chemosensory cells use bitter taste signaling to detect irritants and bacterial signals , 2010, Proceedings of the National Academy of Sciences.
[95] Zoran B. Popović,et al. Chronic Vagus Nerve Stimulation Improves Autonomic Control and Attenuates Systemic Inflammation and Heart Failure Progression in a Canine High-Rate Pacing Model , 2009, Circulation. Heart failure.
[96] Yehuda Ben-Shahar,et al. Motile Cilia of Human Airway Epithelia Are Chemosensory , 2009, Science.
[97] K. Tracey,et al. Cholinergic control of inflammation , 2009, Journal of internal medicine.
[98] Roberto Maestri,et al. Prognostic implications of baroreflex sensitivity in heart failure patients in the beta-blocking era. , 2009, Journal of the American College of Cardiology.
[99] T. van der Poll,et al. Stimulation of acetylcholine receptors impairs host defence during pneumococcal pneumonia , 2008, European Respiratory Journal.
[100] T. van der Poll,et al. Deficiency of alpha7 cholinergic receptors facilitates bacterial clearance in Escherichia coli peritonitis. , 2008, The Journal of infectious diseases.
[101] Kevin J. Tracey,et al. Splenic nerve is required for cholinergic antiinflammatory pathway control of TNF in endotoxemia , 2008, Proceedings of the National Academy of Sciences.
[102] C. Kirkpatrick,et al. Acetylcholine beyond neurons: the non‐neuronal cholinergic system in humans , 2008, British journal of pharmacology.
[103] W. Kummer,et al. The epithelial cholinergic system of the airways , 2008, Histochemistry and Cell Biology.
[104] K. Tracey,et al. From CNI‐1493 to the immunological homunculus: physiology of the inflammatory reflex , 2008, Journal of leukocyte biology.
[105] R. Langley,et al. T Cells Express α7-Nicotinic Acetylcholine Receptor Subunits That Require a Functional TCR and Leukocyte-Specific Protein Tyrosine Kinase for Nicotine-Induced Ca2+ Response1 , 2007, The Journal of Immunology.
[106] C. Kirkpatrick,et al. The non-neuronal cholinergic system in peripheral blood cells: effects of nicotinic and muscarinic receptor antagonists on phagocytosis, respiratory burst and migration. , 2007, Life sciences.
[107] K. Tracey. Physiology and immunology of the cholinergic antiinflammatory pathway. , 2007, The Journal of clinical investigation.
[108] A. Chorvatova,et al. Effects of postconditioning of adenosine and acetylcholine on the ischemic isolated rat ventricular myocytes. , 2006, European journal of pharmacology.
[109] Joseph H Abramson,et al. Butyrylcholinesterase activity, cardiovascular risk factors, and mortality in middle-aged and elderly men and women in Jerusalem. , 2006, Clinical chemistry.
[110] Y. Wu,et al. Effects of exercise training on heart rate variability after coronary angioplasty. , 2006, Physical therapy.
[111] J. Wess,et al. Role of acetylcholine and polyspecific cation transporters in serotonin-induced bronchoconstriction in the mouse , 2006, Respiratory research.
[112] H. Kilbinger,et al. In vivo release of non‐neuronal acetylcholine from the human skin as measured by dermal microdialysis: effect of botulinum toxin , 2006, British journal of pharmacology.
[113] J. Wess,et al. Novel signaling pathways mediating reciprocal control of keratinocyte migration and wound epithelialization through M3 and M4 muscarinic receptors , 2004, The Journal of cell biology.
[114] R. Blakely,et al. Acetylcholine is an autocrine or paracrine hormone synthesized and secreted by airway bronchial epithelial cells. , 2004, Endocrinology.
[115] E. Bellavance,et al. Nicotine Induces Mononuclear Leukocyte Adhesion and Expression of Adhesion Molecules,VCAM and ICAM, in Endothelial Cells In Vitro , 2004, Annals of vascular surgery.
[116] Masaru Sugimachi,et al. Vagal Nerve Stimulation Markedly Improves Long-Term Survival After Chronic Heart Failure in Rats , 2003, Circulation.
[117] J. Downey,et al. Acetylcholine-induced production of reactive oxygen species in adult rabbit ventricular myocytes is dependent on phosphatidylinositol 3- and Src-kinase activation and mitochondrial K(ATP) channel opening. , 2003, Journal of molecular and cellular cardiology.
[118] H. Kilbinger,et al. The non-neuronal cholinergic system in humans: expression, function and pathophysiology. , 2003, Life sciences.
[119] Yasushi Kobayashi,et al. Sensory-motor gating and cognitive control by the brainstem cholinergic system , 2002, Neural Networks.
[120] P. Speer,et al. Effects of nicotine on intercellular adhesion molecule expression in endothelial cells and integrin expression in neutrophils in vitro. , 2002, American journal of obstetrics and gynecology.
[121] H. Kilbinger,et al. Release of non‐neuronal acetylcholine from the isolated human placenta is mediated by organic cation transporters , 2001, British journal of pharmacology.
[122] I. Wessler,et al. Muscarinic control of histamine release from airways. Inhibitory M1-receptors in human bronchi but absence in rat trachea. , 2000, American journal of respiratory and critical care medicine.
[123] K. Tracey,et al. Vagus nerve stimulation attenuates the systemic inflammatory response to endotoxin , 2000, Nature.
[124] K. Kawashima,et al. Extraneuronal cholinergic system in lymphocytes. , 2000, Pharmacology & therapeutics.
[125] C. Kirkpatrick,et al. THE CHOLINERGIC ‘PITFALL’: ACETYLCHOLINE, A UNIVERSAL CELL MOLECULE IN BIOLOGICAL SYSTEMS, INCLUDING HUMANS , 1999, Clinical and experimental pharmacology & physiology.
[126] K. Racké,et al. Mammalian glial cells in culture synthesize acetylcholine , 1997, Naunyn-Schmiedeberg's Archives of Pharmacology.
[127] I. Izquierdo,et al. Cholinergic Neurotransmission and Synaptic Plasticity Concerning Memory Processing , 1997, Neurochemical Research.
[128] C. Kirkpatrick,et al. Day-night rhythm of acetylcholine in the rat pineal gland , 1997, Neuroscience Letters.
[129] C. Kirkpatrick,et al. Non-neuronal acetylcholine, a signalling molecule synthezised by surface cells of rat and man , 1997, Naunyn-Schmiedeberg's Archives of Pharmacology.
[130] K. Racké,et al. Acetylcholine in isolated airways of rat, guinea pig, and human: species differences in role of airway mucosa. , 1996, The American journal of physiology.
[131] M. Acevedo. Effect of acetyl choline on ion transport in sheep tracheal epithelium , 1994, Pflügers Archiv.
[132] R. Nelson,et al. Nicotine-induced release of elastase and eicosanoids by human neutrophils , 1994, Inflammation.
[133] D. Adriaensen,et al. Neuroendocrine cells and nerves of the lung , 1993, The Anatomical record.
[134] H. Fibiger. Cholinergic mechanisms in learning, memory and dementia: a review of recent evidence , 1991, Trends in Neurosciences.
[135] H. Kilbinger,et al. Inhibition by acetylcholine of the stimulation-evoked release of [3H]acetylcholine from the guinea-pig myenteric plexus , 1980, Neuroscience.
[136] R. Specian,et al. Mechanism of rapid mucus secretion in goblet cells stimulated by acetylcholine , 1980, The Journal of cell biology.
[137] J. Richardson. Nerve supply to the lungs. , 1979, The American review of respiratory disease.
[138] B. Sastry,et al. Cholinergic systems in non-nervous tissues. , 1978, Pharmacological reviews.
[139] S. Aquilonius,et al. A simple radioenzymatic procedure for the determination of choline and acetylcholine in brain regions of rats sacrificed by microwave irradiation. , 1977, Acta physiologica Scandinavica.
[140] A. Ewins. Acetylcholine, a New Active Principle of Ergot. , 1914, The Biochemical journal.
[141] E. P. van der Zanden,et al. The vagus nerve as a modulator of intestinal inflammation. , 2009, Neurogastroenterology and motility : the official journal of the European Gastrointestinal Motility Society.
[142] Y. Kakinuma,et al. Vagal nerve stimulation prevents reperfusion injury through inhibition of opening of mitochondrial permeability transition pore independent of the bradycardiac effect. , 2009, The Journal of thoracic and cardiovascular surgery.
[143] K. Kunzelmann,et al. Electrolyte transport in the mammalian colon: mechanisms and implications for disease. , 2002, Physiological reviews.
[144] C. Kirkpatrick,et al. Non-neuronal acetylcholine, a locally acting molecule, widely distributed in biological systems: expression and function in humans. , 1998, Pharmacology & therapeutics.
[145] T. Robbins,et al. Central cholinergic systems and cognition. , 1997, Annual review of psychology.
[146] S. Grando. Biological functions of keratinocyte cholinergic receptors. , 1997, The journal of investigative dermatology. Symposium proceedings.