Homeostasis of exercise hyperpnea and optimal sensorimotor integration: The internal model paradigm
Abstract Homeostasis is a basic tenet of biomedicine and an open problem for many physiological control systems. Among them, none has been more extensively studied and intensely debated than the dilemma of exercise hyperpnea – a paradoxical homeostatic increase of respiratory ventilation that is gea...
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description | Abstract Homeostasis is a basic tenet of biomedicine and an open problem for many physiological control systems. Among them, none has been more extensively studied and intensely debated than the dilemma of exercise hyperpnea – a paradoxical homeostatic increase of respiratory ventilation that is geared to metabolic demands instead of the normal chemoreflex mechanism. Classical control theory has led to a plethora of “feedback/feedforward control” or “set point” hypotheses for homeostatic regulation, yet so far none of them has proved satisfactory in explaining exercise hyperpnea and its interactions with other respiratory inputs. Instead, the available evidence points to a far more sophisticated respiratory controller capable of integrating multiple afferent and efferent signals in adapting the ventilatory pattern toward optimality relative to conflicting homeostatic, energetic and other objectives. This optimality principle parsimoniously mimics exercise hyperpnea, chemoreflex and a host of characteristic respiratory responses to abnormal gas exchange or mechanical loading/unloading in health and in cardiopulmonary diseases – all without resorting to a feedforward “exercise stimulus”. Rather, an emergent controller signal encoding the projected metabolic level is predicted by the principle as an exercise-induced ‘mental percept’ or ‘internal model’, presumably engendered by associative learning (operant conditioning or classical conditioning) which achieves optimality through continuous identification of, and adaptation to, the causal relationship between respiratory motor output and resultant chemical-mechanical afferent feedbacks. This internal model self-tuning adaptive control paradigm opens a new challenge and exciting opportunity for experimental and theoretical elucidations of the mechanisms of respiratory control – and of homeostatic regulation and sensorimotor integration in general. |
doi_str_mv | 10.1016/j.resp.2007.02.020 |
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Among them, none has been more extensively studied and intensely debated than the dilemma of exercise hyperpnea – a paradoxical homeostatic increase of respiratory ventilation that is geared to metabolic demands instead of the normal chemoreflex mechanism. Classical control theory has led to a plethora of “feedback/feedforward control” or “set point” hypotheses for homeostatic regulation, yet so far none of them has proved satisfactory in explaining exercise hyperpnea and its interactions with other respiratory inputs. Instead, the available evidence points to a far more sophisticated respiratory controller capable of integrating multiple afferent and efferent signals in adapting the ventilatory pattern toward optimality relative to conflicting homeostatic, energetic and other objectives. This optimality principle parsimoniously mimics exercise hyperpnea, chemoreflex and a host of characteristic respiratory responses to abnormal gas exchange or mechanical loading/unloading in health and in cardiopulmonary diseases – all without resorting to a feedforward “exercise stimulus”. Rather, an emergent controller signal encoding the projected metabolic level is predicted by the principle as an exercise-induced ‘mental percept’ or ‘internal model’, presumably engendered by associative learning (operant conditioning or classical conditioning) which achieves optimality through continuous identification of, and adaptation to, the causal relationship between respiratory motor output and resultant chemical-mechanical afferent feedbacks. This internal model self-tuning adaptive control paradigm opens a new challenge and exciting opportunity for experimental and theoretical elucidations of the mechanisms of respiratory control – and of homeostatic regulation and sensorimotor integration in general.</description><identifier>ISSN: 1569-9048</identifier><identifier>EISSN: 1878-1519</identifier><identifier>DOI: 10.1016/j.resp.2007.02.020</identifier><identifier>PMID: 17416554</identifier><language>eng</language><publisher>Netherlands: Elsevier B.V</publisher><subject>Adaptation, Physiological ; Animals ; Carbon Dioxide - blood ; Chemoreceptor Cells - physiology ; Chemoreflex ; Control of breathing ; Exercise - physiology ; Exercise hyperpnea ; Homeostasis ; Homeostasis - physiology ; Humans ; Internal model paradigm ; Learning and memory ; Medical Education ; Optimality principle ; Oxygen - blood ; Pulmonary/Respiratory ; Respiratory Physiological Phenomena ; Sensorimotor integration ; Ventilatory load compensation</subject><ispartof>Respiratory physiology & neurobiology, 2007-10, Vol.159 (1), p.1-13</ispartof><rights>Elsevier B.V.</rights><rights>2007 Elsevier B.V.</rights><lds50>peer_reviewed</lds50><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c574t-30d4e37f3338d7d3ed75901a02a1dad0eaa75ac05ff14a7b3ec78a65833f9e213</citedby><cites>FETCH-LOGICAL-c574t-30d4e37f3338d7d3ed75901a02a1dad0eaa75ac05ff14a7b3ec78a65833f9e213</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://www.sciencedirect.com/science/article/pii/S1569904807000857$$EHTML$$P50$$Gelsevier$$H</linktohtml><link.rule.ids>230,314,776,780,881,3536,27903,27904,65309</link.rule.ids><backlink>$$Uhttps://www.ncbi.nlm.nih.gov/pubmed/17416554$$D View this record in MEDLINE/PubMed$$Hfree_for_read</backlink></links><search><creatorcontrib>Poon, Chi-Sang</creatorcontrib><creatorcontrib>Tin, Chung</creatorcontrib><creatorcontrib>Yu, Yunguo</creatorcontrib><title>Homeostasis of exercise hyperpnea and optimal sensorimotor integration: The internal model paradigm</title><title>Respiratory physiology & neurobiology</title><addtitle>Respir Physiol Neurobiol</addtitle><description>Abstract Homeostasis is a basic tenet of biomedicine and an open problem for many physiological control systems. Among them, none has been more extensively studied and intensely debated than the dilemma of exercise hyperpnea – a paradoxical homeostatic increase of respiratory ventilation that is geared to metabolic demands instead of the normal chemoreflex mechanism. Classical control theory has led to a plethora of “feedback/feedforward control” or “set point” hypotheses for homeostatic regulation, yet so far none of them has proved satisfactory in explaining exercise hyperpnea and its interactions with other respiratory inputs. Instead, the available evidence points to a far more sophisticated respiratory controller capable of integrating multiple afferent and efferent signals in adapting the ventilatory pattern toward optimality relative to conflicting homeostatic, energetic and other objectives. This optimality principle parsimoniously mimics exercise hyperpnea, chemoreflex and a host of characteristic respiratory responses to abnormal gas exchange or mechanical loading/unloading in health and in cardiopulmonary diseases – all without resorting to a feedforward “exercise stimulus”. Rather, an emergent controller signal encoding the projected metabolic level is predicted by the principle as an exercise-induced ‘mental percept’ or ‘internal model’, presumably engendered by associative learning (operant conditioning or classical conditioning) which achieves optimality through continuous identification of, and adaptation to, the causal relationship between respiratory motor output and resultant chemical-mechanical afferent feedbacks. This internal model self-tuning adaptive control paradigm opens a new challenge and exciting opportunity for experimental and theoretical elucidations of the mechanisms of respiratory control – and of homeostatic regulation and sensorimotor integration in general.</description><subject>Adaptation, Physiological</subject><subject>Animals</subject><subject>Carbon Dioxide - blood</subject><subject>Chemoreceptor Cells - physiology</subject><subject>Chemoreflex</subject><subject>Control of breathing</subject><subject>Exercise - physiology</subject><subject>Exercise hyperpnea</subject><subject>Homeostasis</subject><subject>Homeostasis - physiology</subject><subject>Humans</subject><subject>Internal model paradigm</subject><subject>Learning and memory</subject><subject>Medical Education</subject><subject>Optimality principle</subject><subject>Oxygen - blood</subject><subject>Pulmonary/Respiratory</subject><subject>Respiratory Physiological Phenomena</subject><subject>Sensorimotor integration</subject><subject>Ventilatory load compensation</subject><issn>1569-9048</issn><issn>1878-1519</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2007</creationdate><recordtype>article</recordtype><sourceid>EIF</sourceid><recordid>eNp9Ut2L1DAQL6J45-k_4IP0ybeuk6ZpuiIHcqgnHPjg-Rzmkulu1japme7h_vem7uLXgzCQMPl9DPlNUTwXsBIg2le7VSKeVjWAXkGdCx4U56LTXSWUWD_Md9WuqzU03VnxhHkHILTQ8nFxJnQjWqWa88Jex5Eiz8iey9iX9J2S9Uzl9jBRmgJhicGVcZr9iEPJFDgmP8Y5ptKHmTYJZx_D6_J2Sz8bKWTYGB0N5YQJnd-MT4tHPQ5Mz07nRfHl_bvbq-vq5tOHj1dvbyqrdDNXElxDUvdSys5pJ8lptQaBUKNw6IAQtUILqu9Fg_pOktUdtqqTsl9TLeRFcXnUnfZ3IzlLYU44mCnPi-lgInrz90vwW7OJ96auayW7Ngu8PAmk-G1PPJvRs6VhwEBxz6bNVkq1i1N9BNoUmRP1v0wEmCUbszNLNmbJxkCdCzLpxZ_j_aacwsiAN0cA5U-695QMW0_BkvOJ7Gxc9P_Xv_yHbgcfvMXhKx2Id3G_ZMNGGM4E83nZjmU5QANAp7T8AYZouNs</recordid><startdate>20071015</startdate><enddate>20071015</enddate><creator>Poon, Chi-Sang</creator><creator>Tin, Chung</creator><creator>Yu, Yunguo</creator><general>Elsevier B.V</general><scope>CGR</scope><scope>CUY</scope><scope>CVF</scope><scope>ECM</scope><scope>EIF</scope><scope>NPM</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7X8</scope><scope>5PM</scope></search><sort><creationdate>20071015</creationdate><title>Homeostasis of exercise hyperpnea and optimal sensorimotor integration: The internal model paradigm</title><author>Poon, Chi-Sang ; Tin, Chung ; Yu, Yunguo</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c574t-30d4e37f3338d7d3ed75901a02a1dad0eaa75ac05ff14a7b3ec78a65833f9e213</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2007</creationdate><topic>Adaptation, Physiological</topic><topic>Animals</topic><topic>Carbon Dioxide - blood</topic><topic>Chemoreceptor Cells - physiology</topic><topic>Chemoreflex</topic><topic>Control of breathing</topic><topic>Exercise - physiology</topic><topic>Exercise hyperpnea</topic><topic>Homeostasis</topic><topic>Homeostasis - physiology</topic><topic>Humans</topic><topic>Internal model paradigm</topic><topic>Learning and memory</topic><topic>Medical Education</topic><topic>Optimality principle</topic><topic>Oxygen - blood</topic><topic>Pulmonary/Respiratory</topic><topic>Respiratory Physiological Phenomena</topic><topic>Sensorimotor integration</topic><topic>Ventilatory load compensation</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Poon, Chi-Sang</creatorcontrib><creatorcontrib>Tin, Chung</creatorcontrib><creatorcontrib>Yu, Yunguo</creatorcontrib><collection>Medline</collection><collection>MEDLINE</collection><collection>MEDLINE (Ovid)</collection><collection>MEDLINE</collection><collection>MEDLINE</collection><collection>PubMed</collection><collection>CrossRef</collection><collection>MEDLINE - Academic</collection><collection>PubMed Central (Full Participant titles)</collection><jtitle>Respiratory physiology & neurobiology</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Poon, Chi-Sang</au><au>Tin, Chung</au><au>Yu, Yunguo</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Homeostasis of exercise hyperpnea and optimal sensorimotor integration: The internal model paradigm</atitle><jtitle>Respiratory physiology & neurobiology</jtitle><addtitle>Respir Physiol Neurobiol</addtitle><date>2007-10-15</date><risdate>2007</risdate><volume>159</volume><issue>1</issue><spage>1</spage><epage>13</epage><pages>1-13</pages><issn>1569-9048</issn><eissn>1878-1519</eissn><abstract>Abstract Homeostasis is a basic tenet of biomedicine and an open problem for many physiological control systems. 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This optimality principle parsimoniously mimics exercise hyperpnea, chemoreflex and a host of characteristic respiratory responses to abnormal gas exchange or mechanical loading/unloading in health and in cardiopulmonary diseases – all without resorting to a feedforward “exercise stimulus”. Rather, an emergent controller signal encoding the projected metabolic level is predicted by the principle as an exercise-induced ‘mental percept’ or ‘internal model’, presumably engendered by associative learning (operant conditioning or classical conditioning) which achieves optimality through continuous identification of, and adaptation to, the causal relationship between respiratory motor output and resultant chemical-mechanical afferent feedbacks. 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subjects | Adaptation, Physiological Animals Carbon Dioxide - blood Chemoreceptor Cells - physiology Chemoreflex Control of breathing Exercise - physiology Exercise hyperpnea Homeostasis Homeostasis - physiology Humans Internal model paradigm Learning and memory Medical Education Optimality principle Oxygen - blood Pulmonary/Respiratory Respiratory Physiological Phenomena Sensorimotor integration Ventilatory load compensation |
title | Homeostasis of exercise hyperpnea and optimal sensorimotor integration: The internal model paradigm |
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