Nociception (also nocioception or nociperception, from Latin nocere 'to harm or hurt') is the sensory nervous system's response to certain harmful or potentially harmful stimuli. In nociception, intense chemical (e.g., chilli powder in the eyes), mechanical (e.g., cutting, crushing) or thermal (heat and cold) stimulation of sensory nerve cells called nociceptors produces a signal that travels along a chain of nerve fibers via the spinal cord to the brain. Nociception triggers a variety of physiological and behavioral responses and usually results in a subjective experience of pain in sentient beings.
Detection of noxious stimuli
Potentially damaging mechanical, thermal, and chemical stimuli are detected by nerve endings called nociceptors, which are found in the skin, on internal surfaces such as the periosteum, joint surfaces, and in some internal organs. The concentration of nociceptors varies throughout the body; they are found in greater numbers in the skin than in deep internal surfaces. Some nociceptors are unspecialized free nerve endings that have their cell bodies outside the spinal column in the dorsal root ganglia. Nociceptors are categorized according to the axons which travel from the receptors to the spinal cord or brain.
Nociceptors have a certain threshold; that is, they require a minimum intensity of stimulation before they trigger a signal. Once this threshold is reached a signal is passed along the axon of the neuron into the spinal cord.
Nociceptive threshold testing deliberately applies a noxious stimulus to a human or animal subject in order to study pain. In animals, the technique is often used to study the efficacy of analgesic drugs and to establish dosing levels and period of effect. After establishing a baseline, the drug under test is given and the elevation in threshold recorded at specified time points. When the drug wears off, the threshold should return to the baseline (pre-treatment) value.
In some conditions, excitation of pain fibers becomes greater as the pain stimulus continues, leading to a condition called hyperalgesia.
The gate control theory of pain, proposed by Patrick David Wall and Ronald Melzack, postulates that nociception (pain) is "gated" by non-nociception stimuli such as vibration. Thus, rubbing a bumped knee seems to relieve pain by preventing its transmission to the brain. Pain is also "gated" by signals that descend from the brain to the spinal cord to suppress (and in other cases enhance) incoming nociception (pain) information.
Proprioception is determined by using standard mechanoreceptors (especially ruffini corpuscles (stretch) and transient receptor potential (TRP) channels). Proprioception is completely covered within the somatosensory system as the brain processes them together.
Thermoception refers to stimuli of moderate temperatures (~24-28C), as anything beyond that range is considered pain and moderated by nociceptors. TRP and potassium channels [TRPM (1-8), TRPV (1-6), TRAAK, and TREK] each respond to different temperatures (among other stimuli) which create action potentials in nerves which join the mechano (touch) system in the posterolateral tract. Thermoception, like proprioception, is then covered by the somatosensory system.
TRP channels that detect noxious stimuli (mechanical, thermal, and chemical pain) relay that info to nociceptors that generate an action potential. Mechanical TRP channels react to depression of their cells (like touch), thermal TRP change shape in different temperatures, and chemical TRP act like taste buds, signalling if their receptors bond to certain elements/chemicals.
Aδ fibers are the fastest, Ab are second, and C are slowest at 1/10th (2 m/s:20 m/s) Ao fiber’s speed. A fibers signal initial pain while C fibers signal deep, lasting pain. These fibers synapse on different spinal laminae (1-5).
Laminae 3-5 make up nucleus proprius in spinal grey matter.
Lamina 2 makes up substantia gelatinosa of Rolando, unmyelinated spinal grey matter. Substantia receives input from nucleus proprius and conveys intense, poorly localized pain.
Lamina 1 primarily project to the parabrachial area and periaqueductal grey, which begins the suppression of pain via neural and hormonal inhibition. Lamina 1 receive input from thermoreceptors via the posterolateral tract. Marginal nucleus of the spinal cord are the only unsuppressible pain signals.
The parabrachial area integrates taste and pain info then relays it. Parabrachial checks if the pain is being received in normal temperatures and if the gustatory system is active; if both are so the pain is assumed to be due to poison.
The amygdala and hippocampus create and encode the memory and emotion due to pain stimuli.
The hypothalamus signals for the release of hormones that make pain suppression more effective, some of these include sex hormones.
Periaqueductal grey (with hypothalamic hormone aid) hormonally signals reticular formation’s raphe nuclei to produce serotonin that inhibits laminae pain nuclei.
Lateral spinothalamic tract aids in localization of pain.
Spinoreticular and spinotectal tracts are merely relay tracts to the thalamus that aid in the perception of pain and alertness towards it. Fibers cross over (left becomes right) via the spinal anterior white commissure.
Lateral lemniscus is the first point of integration of sound and pain information.
Inferior colliculus (IC) aids in sound orienting to pain stimuli.
Inferior cerebellar peduncle integrates proprioceptive info and outputs to the vestibulocerebellum. The peduncle is not part of the lateral-spinothalamic-tract-pathway; the medulla receives the info and passes it onto the peduncle from elsewhere (see somatosensory system).
The thalamus is where pain is thought to be brought into perception; it also aids in pain suppression and modulation, acting like a bouncer allowing certain intensities through to the cerebrum and rejecting others.
The somatosensory cortex decodes nociceptor info to determine the exact location of pain and is where proprioception is brought into consciousness; inferior cerebellar peduncle is all unconscious proprioception.
Cingulate cortex is presumed to be the memory hub for pain.
In non-mammalian animals
Nociception has been documented in non-mammalian animals, including fish and a wide range of invertebrates, including leeches, nematode worms, sea slugs, and fruit flies. As in mammals, nociceptive neurons in these species are typically characterized by responding preferentially to high temperature (40° Celsius or more), low pH, capsaicin, and tissue damage.
History of term
The term "nociception" was coined by Charles Scott Sherrington to distinguish the physiological process (nervous activity) from pain (a subjective experience). It is derived from the Latin verb "nocēre", which means "to harm".
- Portenoy, Russell K.; Brennan, Michael J. (1994). "Chronic Pain Management". In Good, David C.; Couch, James R. Handbook of Neurorehabilitation. Informa Healthcare. ISBN 0-8247-8822-2.
- "Assessing Pain and Distress: A Veterinary Behaviorist's Perspective by Kathryn Bayne". Definition of Pain and Distress and Reporting Requirements for Laboratory Animals (Proceedings of the Workshop Held June 22, 2000). 2000.
- Purves, D. (2001). "Nociceptors". In Sunderland, MA. Neuroscience. Sinauer Associates.
- Feinstein, B.; Langton, J.; Jameson, R.; Schiller, F. (1954). "Experiments on pain referred from deep somatic tissues". J Bone Joint Surg 36–A (5): 981–97. PMID 13211692. Retrieved 2007-01-06.
- Tillotson, Joanne. McCann, Stephanie. Kaplan’s Medical Flashcards. Apr. 02. 2013.
- Albertine, Kurt. Barron’s Anatomy Flash Cards
- Hofmann, Thomas, and Michael Schaefer. "Subunit Composition of Mammalian Transient Receptor Potential Channels in Living Cells." PNAS. 21 Mar. 2002. Web. 28 Mar. 2016.
- Noel, Jacques, and Katharina Zimmermann. "The Mechano‐activated K Channels TRAAK and TREK‐1 Control Both Warm and Cold Perception." EMBO Press. 11 Feb. 2009. Web. 28 Mar. 2016.
- Scholz, Joachim, and Clifford J. Woolf. "Can We Conquer Pain?" Nature Neuroscience. 28 Oct. 2002. Web. 28 Mar. 2016.
- Braz, Joao M., and Mohammed A. Nassar. "Parallel “Pain” Pathways Arise from Subpopulations of Primary Afferent Nociceptor." Science Direct. 15 Sept. 2005. Web. 28 Mar. 2016.
- Brown, A. G. "Organization in the Spinal Cord: The Anatomy and Physiology of Identified Neurones." Google Books. Springer, 06 Dec. 2012. Web. 28 Mar. 2016.
- Van Den Pol, Anthony D. "Hypothalamic Hypocretin (Orexin): Robust Innervation of the Spinal Cord." JNeurosci. 15 Apr. 1999. Web. 28 Mar. 2016.
- Bajo, Victoria M., and Miguel A. Merchan. "Topographic Organization of the Dorsal Nucleus of the Lateral Lemniscus in the Cat." Wiley Online Library. 10 May 1999. Web. 27 Mar. 2016.
- Oliver, Douglas M. "Neuronal Organization in the Inferior Colliculus." Springer. 2005. Web. 27 Mar. 2016.
- Corneil, Brian D., and Etienne Olivier. "Neck Muscle Responses to Stimulation of Monkey Superior Colliculus. I. Topography and Manipulation of Stimulation Parameters." ARTICLES. 01 Oct. 2002. Web. 28 Mar. 2016.
- May, Paul J. "The Mammalian Superior Colliculus: Laminar Structure and Connections." Science Direct. 2006. Web. 28 Mar. 2016.
- Benevento, Louis A., and Gregg P. Strandage. "The Organization of Projections of the Retinorecipient and Nonretinorecipient Nuclei of the Pretectal Complex and Layers of the Superior Colliculus to the Lateral Pulvinar and Medial Pulvinar in the Macaque Monkey." Wiley Online Library. 01 Jul. 1983. Web. 27 Mar. 2016.
- Sawamoto, Nobukatsu, and Manabu Honda. "Expectation of Pain Enhances Responses to Nonpainful Somatosensory Stimulation in the Anterior Cingulate Cortex and Parietal Operculum/Posterior Insula: An Event-Related Functional Magnetic Resonance Imaging Study." JNeurosci. 01 Oct. 2000. Web. 28 Mar. 2016.
- Menon, Vinod, and Lucina Q. Uddin. "Saliency, Switching, Attention and Control: A Network Model of Insula." Springer. 29 May 2010. Web. 28 Mar. 2016.
- Shackman, Alexander J., and Tim V. Salomons. "The Integration of Negative Affect, Pain and Cognitive Control in the Cingulate Cortex." Nature.com. Nature Publishing Group, Mar. 2011. Web. 28 Mar. 2016.
- Sneddon, L. U.; Braithwaite, V. A.; Gentle, M. J. (2003). "Do fishes have nociceptors? Evidence for the evolution of a vertebrate sensory system". Proceedings of the Royal Society B 270 (1520): 1115–1121. doi:10.1098/rspb.2003.2349.
- Jane A. Smith (1991). "A Question of Pain in Invertebrates". Institute for Laboratory Animals Journal 33 (1–2).
- Pastor, J.; Soria, B.; Belmonte, C. (1996). "Properties of the nociceptive neurons of the leech segmental ganglion". Journal of Neurophysiology 75 (6): 2268–2279. PMID 8793740.
- Wittenburg, N.; Baumeister, R. (1999). "Thermal avoidance in Caenorhabditis elegans: an approach to the study of nociception". PNAS 96 (18): 10477–10482. doi:10.1073/pnas.96.18.10477.
- Illich, P. A.; Walters, E. T. (1997). "Mechanosensory neurons innervating Aplysia siphon encode noxious stimuli and display nociceptive sensitization". Journal of Neuroscience 17 (1): 459–469. PMID 8987770.
- Tracey, J.; Daniel, W.; Wilson, R. I.; Laurent, G.; Benzer, S. (2003). "painless, a Drosophila gene essential for nociception". Cell 113 (2): 261–273. doi:10.1016/S0092-8674(03)00272-1. PMID 12705873.
- Sherrington, C. (1906). The Integrative Action of the Nervous System. Oxford: Oxford University Press.