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Published in: European Journal of Applied Physiology 8/2013

01-08-2013 | Invited Review

Space physiology IV: mathematical modeling of the cardiovascular system in space exploration

Authors: M. Keith Sharp, Jerry Joseph Batzel, Jean-Pierre Montani

Published in: European Journal of Applied Physiology | Issue 8/2013

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Abstract

Mathematical modeling represents an important tool for analyzing cardiovascular function during spaceflight. This review describes how modeling of the cardiovascular system can contribute to space life science research and illustrates this process via modeling efforts to study postflight orthostatic intolerance (POI), a key issue for spaceflight. Examining this application also provides a context for considering broader applications of modeling techniques to the challenges of bioastronautics. POI, which affects a large fraction of astronauts in stand tests upon return to Earth, presents as dizziness, fainting and other symptoms, which can diminish crew performance and cause safety hazards. POI on the Moon or Mars could be more critical. In the field of bioastronautics, POI has been the dominant application of cardiovascular modeling for more than a decade, and a number of mechanisms for POI have been investigated. Modeling approaches include computational models with a range of incorporated factors and hemodynamic sophistication, and also physical models tested in parabolic and orbital flight. Mathematical methods such as parameter sensitivity analysis can help identify key system mechanisms. In the case of POI, this could lead to more effective countermeasures. Validation is a persistent issue in modeling efforts, and key considerations and needs for experimental data to synergistically improve understanding of cardiovascular responses are outlined. Future directions in cardiovascular modeling include subject-specific assessment of system status, as well as research on integrated physiological responses, leading, for instance, to assessment of subject-specific susceptibility to POI or effects of cardiovascular alterations on muscular, vision and cognitive function.
Literature
go back to reference Abram SR, Hodnett BL, Summers RL, Coleman TG, Hester RL (2007) Quantitative Circulatory Physiology: an integrative mathematical model of human physiology for medical education. Adv Physiol Educ 31:202–210PubMedCrossRef Abram SR, Hodnett BL, Summers RL, Coleman TG, Hester RL (2007) Quantitative Circulatory Physiology: an integrative mathematical model of human physiology for medical education. Adv Physiol Educ 31:202–210PubMedCrossRef
go back to reference Agarwal R (2010) Regulation of circadian blood pressure: from mice to astronauts. Curr Opin Nephrol Hypertens 19:51–58PubMedCrossRef Agarwal R (2010) Regulation of circadian blood pressure: from mice to astronauts. Curr Opin Nephrol Hypertens 19:51–58PubMedCrossRef
go back to reference Al-Dahan MI, Leaning MS, Carson ER, Hill DW, Finkelstein L (1985) The validation of complex, unidentifiable models of the cardiovascular system. In: Proceedings of the IFAC Symposium on Identification System Parameter Estimation. Pergamon, New York, pp 1213–1218 Al-Dahan MI, Leaning MS, Carson ER, Hill DW, Finkelstein L (1985) The validation of complex, unidentifiable models of the cardiovascular system. In: Proceedings of the IFAC Symposium on Identification System Parameter Estimation. Pergamon, New York, pp 1213–1218
go back to reference Alexander DJ, Gibson CR, Hamilton DR, Lee SMC, Mader TH, Otto C, Oubre CM, Pass AF, Platts SH, Scott JM, Smith SM, Stenger MB, Westby CM, Zanello SB (2012) Risk of spaceflight-induced intracranial hypertension and vision alterations. Evidence Report, Human Research Program, Human Health Countermeasures Element, version 1.0, 12 Jul 2012 Alexander DJ, Gibson CR, Hamilton DR, Lee SMC, Mader TH, Otto C, Oubre CM, Pass AF, Platts SH, Scott JM, Smith SM, Stenger MB, Westby CM, Zanello SB (2012) Risk of spaceflight-induced intracranial hypertension and vision alterations. Evidence Report, Human Research Program, Human Health Countermeasures Element, version 1.0, 12 Jul 2012
go back to reference Arbeille P, Fomina G, Roumy J, Alferova I, Tobal N, Herault S (2001) Adaptation of the left heart, cerebral and femoral arteries, and jugular and femoral veins during short- and long-term head-down tilt and spaceflights. Eur J Appl Physiol 86(2):157–168PubMedCrossRef Arbeille P, Fomina G, Roumy J, Alferova I, Tobal N, Herault S (2001) Adaptation of the left heart, cerebral and femoral arteries, and jugular and femoral veins during short- and long-term head-down tilt and spaceflights. Eur J Appl Physiol 86(2):157–168PubMedCrossRef
go back to reference Ataee P, Hahn JO, Dumont GA, Boyce WT (2010) Identification of cardiovascular baroreflex for probing homeostatic stability. Comp Cardiol 37:141–144 Ataee P, Hahn JO, Dumont GA, Boyce WT (2010) Identification of cardiovascular baroreflex for probing homeostatic stability. Comp Cardiol 37:141–144
go back to reference Avula XJ, Oestreicher HL (1978) Mathematical model of the cardiovascular system under acceleration stress. Aviat Space Environ Med 49:279–286PubMed Avula XJ, Oestreicher HL (1978) Mathematical model of the cardiovascular system under acceleration stress. Aviat Space Environ Med 49:279–286PubMed
go back to reference Baisch F, Beck L, Blomqvist G, Wolfram G, Drescher J, Rome J-L, Drummer C (2000) Cardiovascular response to lower body negative pressure stimulation before, during and after space flight. Eur J Clin Invest 30(12):1055–1065PubMedCrossRef Baisch F, Beck L, Blomqvist G, Wolfram G, Drescher J, Rome J-L, Drummer C (2000) Cardiovascular response to lower body negative pressure stimulation before, during and after space flight. Eur J Clin Invest 30(12):1055–1065PubMedCrossRef
go back to reference Banaji M, Tachtsidis I, Delpy D, Baigent S (2005) A physiological model of cerebral blood flow control. Math Biosci 194:125–173PubMedCrossRef Banaji M, Tachtsidis I, Delpy D, Baigent S (2005) A physiological model of cerebral blood flow control. Math Biosci 194:125–173PubMedCrossRef
go back to reference Banks HT, Dediu S, Ernstberger S, Kappel F (2010) Generalized sensitivities and optimal experimental design. J Inverse Ill-posed Probl 18:25–83CrossRef Banks HT, Dediu S, Ernstberger S, Kappel F (2010) Generalized sensitivities and optimal experimental design. J Inverse Ill-posed Probl 18:25–83CrossRef
go back to reference Banks HT, Cintrón-Arias A, Kappel F (2013) Parameter selection methods in inverse problem formulation. In: Batzel JJ, Bachar M, Kappel F (eds) Mathematical modeling and validation in physiology: applications to the cardiovascular and respiratory systems, vol 2064. Springer, Berlin, pp 43–73 Banks HT, Cintrón-Arias A, Kappel F (2013) Parameter selection methods in inverse problem formulation. In: Batzel JJ, Bachar M, Kappel F (eds) Mathematical modeling and validation in physiology: applications to the cardiovascular and respiratory systems, vol 2064. Springer, Berlin, pp 43–73
go back to reference Batzel JJ, Kappel F (2011) Time delay in physiological systems: analyzing and modeling its impact. Math Biosc 234:61-74CrossRef Batzel JJ, Kappel F (2011) Time delay in physiological systems: analyzing and modeling its impact. Math Biosc 234:61-74CrossRef
go back to reference Batzel JJ, Kappel F, Schneditz D, Tran HT (2006) Cardiovascular and respiratory systems: modeling, analysis, and control. SIAM Press (Frontiers in Applied Mathematics), Philadelphia Batzel JJ, Kappel F, Schneditz D, Tran HT (2006) Cardiovascular and respiratory systems: modeling, analysis, and control. SIAM Press (Frontiers in Applied Mathematics), Philadelphia
go back to reference Batzel J, Baselli G, Mukkamala R, Chon KH (2009a) Modelling and disentangling physiological mechanisms: linear and nonlinear identification techniques for analysis of cardiovascular regulation. Philos Trans A Math Phys Eng Sci 367:1377–1391PubMedCrossRef Batzel J, Baselli G, Mukkamala R, Chon KH (2009a) Modelling and disentangling physiological mechanisms: linear and nonlinear identification techniques for analysis of cardiovascular regulation. Philos Trans A Math Phys Eng Sci 367:1377–1391PubMedCrossRef
go back to reference Batzel JJ, Goswami N, Lackner HK, Roessler A, Bachar M, Kappel F, Hinghofer-Szalkay H (2009b) Patterns of cardiovascular control during repeated tests of orthostatic loading. Cardiovasc Eng 9:134–143PubMed Batzel JJ, Goswami N, Lackner HK, Roessler A, Bachar M, Kappel F, Hinghofer-Szalkay H (2009b) Patterns of cardiovascular control during repeated tests of orthostatic loading. Cardiovasc Eng 9:134–143PubMed
go back to reference Batzel JJ, Hinghofer-Szalkay H, Kappel F, Schneditz D, Kenner T, Goswami N (2012) Bridging different perspectives of the physiological and mathematical disciplines. Adv Physiol Educ 36(4):265–274PubMedCrossRef Batzel JJ, Hinghofer-Szalkay H, Kappel F, Schneditz D, Kenner T, Goswami N (2012) Bridging different perspectives of the physiological and mathematical disciplines. Adv Physiol Educ 36(4):265–274PubMedCrossRef
go back to reference Batzel JJ, Bachar M, Kappel F (eds) (2013) Mathematical modeling and validation in physiology: applications to the cardiovascular and respiratory systems. Springer lecture Notes in Applied Mathematics (LNM BIOS), vol 2064, Springer, Heidelberg Batzel JJ, Bachar M, Kappel F (eds) (2013) Mathematical modeling and validation in physiology: applications to the cardiovascular and respiratory systems. Springer lecture Notes in Applied Mathematics (LNM BIOS), vol 2064, Springer, Heidelberg
go back to reference Belin de Chantemele E, Pascaud L, Custaud M-A, Capri A, Louisy F, Ferretti G, Gharib C, Arbeille P (2004) Calf venous volume during stand test after a 90-day bed-rest study with or without exercise countermeasure. J Physiol 561(2):611–622PubMedCrossRef Belin de Chantemele E, Pascaud L, Custaud M-A, Capri A, Louisy F, Ferretti G, Gharib C, Arbeille P (2004) Calf venous volume during stand test after a 90-day bed-rest study with or without exercise countermeasure. J Physiol 561(2):611–622PubMedCrossRef
go back to reference Bellu G, Saccomani MP, Audoly S, D’Angio L (2007) Daisy: a new software tool to test global identifiability of biological and physiological systems. Comput Methods Programs Biomed 88:52–61PubMedCrossRef Bellu G, Saccomani MP, Audoly S, D’Angio L (2007) Daisy: a new software tool to test global identifiability of biological and physiological systems. Comput Methods Programs Biomed 88:52–61PubMedCrossRef
go back to reference Beneken J, DeWitt B (1967) A physical approach to hemodynamic aspects of the human cardiovascular system. In: Reeve E, Guyton AC (eds) Physical bases of circulatory transport: regulation and exchange. Saunders, Philadelphia, pp 1–45 Beneken J, DeWitt B (1967) A physical approach to hemodynamic aspects of the human cardiovascular system. In: Reeve E, Guyton AC (eds) Physical bases of circulatory transport: regulation and exchange. Saunders, Philadelphia, pp 1–45
go back to reference Berger MP, Wong WK (eds) (2005) Applied optimal design. Wiley, Chichester Berger MP, Wong WK (eds) (2005) Applied optimal design. Wiley, Chichester
go back to reference Blaber AP, Goswami N, Bondar RL, Kassam MS (2011) Impairment of cerebral blood flow regulation in astronauts with post flight orthostatic intolerance. Stroke 42:1844–1850PubMedCrossRef Blaber AP, Goswami N, Bondar RL, Kassam MS (2011) Impairment of cerebral blood flow regulation in astronauts with post flight orthostatic intolerance. Stroke 42:1844–1850PubMedCrossRef
go back to reference Blaber AP, Zuj KA, Goswami N (2012) Cerebrovascular autoregulation: lessons learned from spaceflight research. Eur J Appl Physiol (Epub ahead of print) Blaber AP, Zuj KA, Goswami N (2012) Cerebrovascular autoregulation: lessons learned from spaceflight research. Eur J Appl Physiol (Epub ahead of print)
go back to reference Bonde-Petersen F, Suzuki Y, Kawakubo K, Gunji A (1994) Effect of 20 days bed rest upon peripheral capillary filtration rate, venous compliance and blood flow in arms and legs. Acta Physiol Scand Suppl 616:65–69PubMed Bonde-Petersen F, Suzuki Y, Kawakubo K, Gunji A (1994) Effect of 20 days bed rest upon peripheral capillary filtration rate, venous compliance and blood flow in arms and legs. Acta Physiol Scand Suppl 616:65–69PubMed
go back to reference Bonjour J, Bringard A, Antonutto G, Capelli C, Linnarsson D, Pendergast DR, Ferretti G (2011) Effects of acceleration in the Gz axis on human cardiopulmonary responses to exercise. Eur J Appl Physiol 111:2907–2917PubMedCrossRef Bonjour J, Bringard A, Antonutto G, Capelli C, Linnarsson D, Pendergast DR, Ferretti G (2011) Effects of acceleration in the Gz axis on human cardiopulmonary responses to exercise. Eur J Appl Physiol 111:2907–2917PubMedCrossRef
go back to reference Boyers DG, Cuthbertson JG, Luetscher JA (1972) Simulation of the human cardiovascular system: a model with normal responses to change of posture, blood loss, transfusion, and automatic blockade. Simulation 18:197–205CrossRef Boyers DG, Cuthbertson JG, Luetscher JA (1972) Simulation of the human cardiovascular system: a model with normal responses to change of posture, blood loss, transfusion, and automatic blockade. Simulation 18:197–205CrossRef
go back to reference Broskey J, Sharp MK (2007) Evaluation of mechanisms of postflight orthostatic intolerance with a simple cardiovascular system model. Ann Biomed Eng 35:1800–1811PubMedCrossRef Broskey J, Sharp MK (2007) Evaluation of mechanisms of postflight orthostatic intolerance with a simple cardiovascular system model. Ann Biomed Eng 35:1800–1811PubMedCrossRef
go back to reference Brown CM, Hainsworth R (1999) Assessment of capillary fluid shifts during orthostatic stress in normal subjects and subjects with orthostatic intolerance. Clin Auton Res 9(2):69–73PubMedCrossRef Brown CM, Hainsworth R (1999) Assessment of capillary fluid shifts during orthostatic stress in normal subjects and subjects with orthostatic intolerance. Clin Auton Res 9(2):69–73PubMedCrossRef
go back to reference Buckey JC, Lane LD, Levine BD, Watenpaugh DE, Wright SJ, Moore WE, Gaffney FA, Blomqvist CG (1996) Orthostatic intolerance after spaceflight. J Appl Physiol 81(1):7–18PubMed Buckey JC, Lane LD, Levine BD, Watenpaugh DE, Wright SJ, Moore WE, Gaffney FA, Blomqvist CG (1996) Orthostatic intolerance after spaceflight. J Appl Physiol 81(1):7–18PubMed
go back to reference Burrowes KS, Swan AJ, Warren NJ, Tawhai MH (2008) Towards a virtual lung: multi-scale, multi-physics modelling of the pulmonary system. Philos Trans A Math Phys Eng Sci 366(1879):3247–3263PubMedCrossRef Burrowes KS, Swan AJ, Warren NJ, Tawhai MH (2008) Towards a virtual lung: multi-scale, multi-physics modelling of the pulmonary system. Philos Trans A Math Phys Eng Sci 366(1879):3247–3263PubMedCrossRef
go back to reference Burth M, Verghese G, Vélez-Reyes M (1999) Subset selection for improved parameter estimation in on-line identification of a synchronous generator. IEEE Trans Power Syst 14:218–225CrossRef Burth M, Verghese G, Vélez-Reyes M (1999) Subset selection for improved parameter estimation in on-line identification of a synchronous generator. IEEE Trans Power Syst 14:218–225CrossRef
go back to reference Catchpole EA, Morgan BJT (1997) Detecting parameter redundancy. Biometrika 84:187–196CrossRef Catchpole EA, Morgan BJT (1997) Detecting parameter redundancy. Biometrika 84:187–196CrossRef
go back to reference Catchpole EA, Morgan BJT, Freeman SN (1998) Estimation in parameter redundant models. Biometrika 85:462–468CrossRef Catchpole EA, Morgan BJT, Freeman SN (1998) Estimation in parameter redundant models. Biometrika 85:462–468CrossRef
go back to reference Cavalcanti S, Cavani S, Ciandrini A, Avanzolini G (2006) Mathematical modeling of arterial pressure response to hemodialysis-induced hypovolemia. Comput Biol Med 36:128–144PubMedCrossRef Cavalcanti S, Cavani S, Ciandrini A, Avanzolini G (2006) Mathematical modeling of arterial pressure response to hemodialysis-induced hypovolemia. Comput Biol Med 36:128–144PubMedCrossRef
go back to reference Chamney PW, Wabel P, Moissl UM, Műller JM, Bosy-Westphal A, Korth O, Fuller NJ (2007) A whole-body model to distinguish excess fluid from the hydration of major body tissues. Am J Clin Nutr 85:80–89PubMed Chamney PW, Wabel P, Moissl UM, Műller JM, Bosy-Westphal A, Korth O, Fuller NJ (2007) A whole-body model to distinguish excess fluid from the hydration of major body tissues. Am J Clin Nutr 85:80–89PubMed
go back to reference Charles JB, Bungo MW, Fortner GW (1994) Cardiopulmonary function, Chap 14 in: Space Physiology and Medicine, edited by Nicogossian AE, Huntoon CL, Pool SL. Lea & Febiger, Philadelphia Charles JB, Bungo MW, Fortner GW (1994) Cardiopulmonary function, Chap 14 in: Space Physiology and Medicine, edited by Nicogossian AE, Huntoon CL, Pool SL. Lea & Febiger, Philadelphia
go back to reference Cherniack NS, Longobardo GS (2006) Mathematical models of periodic breathing and their usefulness in understanding cardiovascular and respiratory disorders. Exp Physiol 91:295–305PubMedCrossRef Cherniack NS, Longobardo GS (2006) Mathematical models of periodic breathing and their usefulness in understanding cardiovascular and respiratory disorders. Exp Physiol 91:295–305PubMedCrossRef
go back to reference Cirovic S, Walsh C, Fraser WD (2001) A mathematical model of cerebral perfusion subjected to Gz acceleration. Aviat Space Environ Med 71:514–521 Cirovic S, Walsh C, Fraser WD (2001) A mathematical model of cerebral perfusion subjected to Gz acceleration. Aviat Space Environ Med 71:514–521
go back to reference Cirovic S, Bhola RM, Hose DR, Howard IC, Lawford PV, Marr JE, Parsons MA (2006) Computer modelling study of the mechanism of optic nerve injury in blunt trauma. Br J Ophthalmol 90:778–783PubMedCrossRef Cirovic S, Bhola RM, Hose DR, Howard IC, Lawford PV, Marr JE, Parsons MA (2006) Computer modelling study of the mechanism of optic nerve injury in blunt trauma. Br J Ophthalmol 90:778–783PubMedCrossRef
go back to reference Coats BW, Sharp MK (2010) Simulated stand tests and centrifuge training to prevent orthostatic intolerance on Earth, Moon and Mars. Ann Biomed Eng 38(3):1119–1131PubMedCrossRef Coats BW, Sharp MK (2010) Simulated stand tests and centrifuge training to prevent orthostatic intolerance on Earth, Moon and Mars. Ann Biomed Eng 38(3):1119–1131PubMedCrossRef
go back to reference Convertino VA (2002) Mechanisms of microgravity induced orthostatic intolerance: implications for effective countermeasures. J Gravit Physiol 9:1–13PubMed Convertino VA (2002) Mechanisms of microgravity induced orthostatic intolerance: implications for effective countermeasures. J Gravit Physiol 9:1–13PubMed
go back to reference Convertino VA (2009) Status of cardiovascular issues related to space flight: implications for future research directions. Resp Physiol Neurobiol 169S:S34–S37CrossRef Convertino VA (2009) Status of cardiovascular issues related to space flight: implications for future research directions. Resp Physiol Neurobiol 169S:S34–S37CrossRef
go back to reference Convertino VA, Cooke WH (2005) Evaluation of cardiovascular risks of spaceflight does not support the NASA bioastronautics critical path roadmap. Aviat Space Environ Med 76:869–876PubMed Convertino VA, Cooke WH (2005) Evaluation of cardiovascular risks of spaceflight does not support the NASA bioastronautics critical path roadmap. Aviat Space Environ Med 76:869–876PubMed
go back to reference Costa MD, Moody GB, Henry I, Goldberger AL (2003) PhysioNet: an NIH research resource for complex signals. J Electrocardiol 36 Suppl:139–144PubMedCrossRef Costa MD, Moody GB, Henry I, Goldberger AL (2003) PhysioNet: an NIH research resource for complex signals. J Electrocardiol 36 Suppl:139–144PubMedCrossRef
go back to reference Costa MD, Peng CK, Goldberger AL (2008) Multiscale analysis of heart rate dynamics: entropy and time irreversibility measures. Cardiovasc Eng 8:88–93PubMed Costa MD, Peng CK, Goldberger AL (2008) Multiscale analysis of heart rate dynamics: entropy and time irreversibility measures. Cardiovasc Eng 8:88–93PubMed
go back to reference Croston RC, Fitzjerrell DG (1974) Cardiovascular model for the simulation of exercise, lower body negative pressure, and tilt experiments. Model Simul 5:471–476 Croston RC, Fitzjerrell DG (1974) Cardiovascular model for the simulation of exercise, lower body negative pressure, and tilt experiments. Model Simul 5:471–476
go back to reference De Cecco M, Angrilli A (1998) Measurement of human baroreceptor reflex sensitivity by means of parametric identification. Measurement 24:187–196CrossRef De Cecco M, Angrilli A (1998) Measurement of human baroreceptor reflex sensitivity by means of parametric identification. Measurement 24:187–196CrossRef
go back to reference Diehl RR (2005) Continuous progression of orthostatic tachycardia as a further feature of the postural tachycardia syndrome. PACE 28:975–979PubMedCrossRef Diehl RR (2005) Continuous progression of orthostatic tachycardia as a further feature of the postural tachycardia syndrome. PACE 28:975–979PubMedCrossRef
go back to reference Donovan FM Jr (1975) Design of a hydraulic analog of the circulatory system for evaluating artificial hearts. Biomater Med Devices Artif Organs 3:439PubMed Donovan FM Jr (1975) Design of a hydraulic analog of the circulatory system for evaluating artificial hearts. Biomater Med Devices Artif Organs 3:439PubMed
go back to reference Ellwein LM, Tran HT, Zapata C, Novak V, Olufsen MS (2008) Sensitivity analysis and model assessment: mathematical models for arterial blood flow and blood pressure. Cardiovasc Eng 8:94–108PubMed Ellwein LM, Tran HT, Zapata C, Novak V, Olufsen MS (2008) Sensitivity analysis and model assessment: mathematical models for arterial blood flow and blood pressure. Cardiovasc Eng 8:94–108PubMed
go back to reference Etter K, Goswami N, Sharp MK (2011) Modelling of cardiovascular response to graded orthostatic stress: role of capillary filtration. Eur J Clin Invest 41:807–819PubMedCrossRef Etter K, Goswami N, Sharp MK (2011) Modelling of cardiovascular response to graded orthostatic stress: role of capillary filtration. Eur J Clin Invest 41:807–819PubMedCrossRef
go back to reference Faes L, Nollo G, Chon KH (2008) Assessment of Granger causality by nonlinear model identification: application to short-term cardiovascular variability. Ann Biomed Eng 36:281–295CrossRef Faes L, Nollo G, Chon KH (2008) Assessment of Granger causality by nonlinear model identification: application to short-term cardiovascular variability. Ann Biomed Eng 36:281–295CrossRef
go back to reference Fan H, Khoo MCK (2002) (PNEUMA) a comprehensive cardiorespiratory model. In: Proceedings of 2nd EMBS/BMES Joint Conference, Houston, Texas, pp 1533–1534 Fan H, Khoo MCK (2002) (PNEUMA) a comprehensive cardiorespiratory model. In: Proceedings of 2nd EMBS/BMES Joint Conference, Houston, Texas, pp 1533–1534
go back to reference Ferrari G, Kozarski M, De Lazzari C, Gorczynska K, Tosti G, Darowski M (2005) Development of a hybrid (numerical-hydraulic) circulatory model: prototype testing and its response to IABP assistance. Int J Artif Organs 28:750–759PubMed Ferrari G, Kozarski M, De Lazzari C, Gorczynska K, Tosti G, Darowski M (2005) Development of a hybrid (numerical-hydraulic) circulatory model: prototype testing and its response to IABP assistance. Int J Artif Organs 28:750–759PubMed
go back to reference Fink M, Batzel JJ, Tran H (2008) A respiratory system model: parameter estimation and sensitivity analysis. Cardiovasc Eng Int J 8:120–134CrossRef Fink M, Batzel JJ, Tran H (2008) A respiratory system model: parameter estimation and sensitivity analysis. Cardiovasc Eng Int J 8:120–134CrossRef
go back to reference Fitts RH, Trappe SW, Costill DL, Gallagher PM, Creer AC, Colloton PA, Peters JR, Romatowski JG, Bain JL, Riley DA (2010) Prolonged space flight-induced alterations in the structure and function of human skeletal muscle fibres. J Physiol 588(18):3567–3592PubMedCrossRef Fitts RH, Trappe SW, Costill DL, Gallagher PM, Creer AC, Colloton PA, Peters JR, Romatowski JG, Bain JL, Riley DA (2010) Prolonged space flight-induced alterations in the structure and function of human skeletal muscle fibres. J Physiol 588(18):3567–3592PubMedCrossRef
go back to reference Fortrat J-O, Schang D, Bellard E, Victor J, Lefthériotis G (2007) Cardiovascular variables do not predict head-up tilt test outcome better than body composition. Clin Auton Res 17:206–210PubMedCrossRef Fortrat J-O, Schang D, Bellard E, Victor J, Lefthériotis G (2007) Cardiovascular variables do not predict head-up tilt test outcome better than body composition. Clin Auton Res 17:206–210PubMedCrossRef
go back to reference Freeman R, Lirofonis V, Farquhar WB, Risk M (2002) Limb venous compliance in patients with idiopathic orthostatic intolerance and postural tachycardia. J Appl Physiol 93:636–644PubMed Freeman R, Lirofonis V, Farquhar WB, Risk M (2002) Limb venous compliance in patients with idiopathic orthostatic intolerance and postural tachycardia. J Appl Physiol 93:636–644PubMed
go back to reference Fritsch-Yelle JM, Charles JB, Jones MM, Breightol LA, Eckberg DL (1994) Space flight alters autonomic regulation of arterial pressure in humans. J Appl Physiol 77:1776–1783PubMed Fritsch-Yelle JM, Charles JB, Jones MM, Breightol LA, Eckberg DL (1994) Space flight alters autonomic regulation of arterial pressure in humans. J Appl Physiol 77:1776–1783PubMed
go back to reference Fritsch-Yelle JM, Whitson PA, Bondar RL, Brown TE (1996) Subnormal norepinephrine release relates to presyncope in astronauts after spaceflight. J Appl Physiol 81(5):2134–2141PubMed Fritsch-Yelle JM, Whitson PA, Bondar RL, Brown TE (1996) Subnormal norepinephrine release relates to presyncope in astronauts after spaceflight. J Appl Physiol 81(5):2134–2141PubMed
go back to reference Fu Q, Arbab-Zadeh A, Perhonen MA, Zhang R, Zuckerman JH, Levine BD (2004a) Hemodynamics of orthostatic intolerance: implications for gender differences. Am J Physiol Heart Circ Physiol 286:H449–H457PubMedCrossRef Fu Q, Arbab-Zadeh A, Perhonen MA, Zhang R, Zuckerman JH, Levine BD (2004a) Hemodynamics of orthostatic intolerance: implications for gender differences. Am J Physiol Heart Circ Physiol 286:H449–H457PubMedCrossRef
go back to reference Fu Q, Witkowski S, Levine BD (2004b) Vasoconstrictor reserve and sympathetic neural control of orthostasis. Circulation 110:2931–2937PubMedCrossRef Fu Q, Witkowski S, Levine BD (2004b) Vasoconstrictor reserve and sympathetic neural control of orthostasis. Circulation 110:2931–2937PubMedCrossRef
go back to reference Furlani EP, Nunez A, Vizzeri G (2012) Modeling fluid-structure interactions for biomechanical analysis of the human eye. Nanotech Conference & Expo, Santa Clara, 18–21 June 2012 Furlani EP, Nunez A, Vizzeri G (2012) Modeling fluid-structure interactions for biomechanical analysis of the human eye. Nanotech Conference & Expo, Santa Clara, 18–21 June 2012
go back to reference Galie P, Spilker RL (2009) A two-dimensional computational model of lymph transport across primary lymphatic valves. J Biomech Eng 131(11):111004PubMedCrossRef Galie P, Spilker RL (2009) A two-dimensional computational model of lymph transport across primary lymphatic valves. J Biomech Eng 131(11):111004PubMedCrossRef
go back to reference Giannessi M, Ursino M, Murray WB (2008) The design of a digital cerebrovascular simulation model for teaching and research. Anesth Analg 107:1997–2008PubMedCrossRef Giannessi M, Ursino M, Murray WB (2008) The design of a digital cerebrovascular simulation model for teaching and research. Anesth Analg 107:1997–2008PubMedCrossRef
go back to reference Gillingham KK, Freeman JJ, McNee RC (1977) Transfer functions for eye level blood pressure during +Gz stress. Aviat Space Environ Med 48:1026–1034PubMed Gillingham KK, Freeman JJ, McNee RC (1977) Transfer functions for eye level blood pressure during +Gz stress. Aviat Space Environ Med 48:1026–1034PubMed
go back to reference Goldberger AL, Peng CK, Lipsitz LA (2002) What is physiologic complexity and how does it change with aging and disease? Neurobiol Aging 23:23–26PubMedCrossRef Goldberger AL, Peng CK, Lipsitz LA (2002) What is physiologic complexity and how does it change with aging and disease? Neurobiol Aging 23:23–26PubMedCrossRef
go back to reference Gopalakrishnan R, Genc KO, Rice AJ, Lee SMC, Evans HJ, Maender CC, Ilaslan H, Cavanaugh PR (2010) Muscle volume, strength, endurance, and exercise loads during 6-month missions in space. Aviat Space Environ Med 81:91–102PubMedCrossRef Gopalakrishnan R, Genc KO, Rice AJ, Lee SMC, Evans HJ, Maender CC, Ilaslan H, Cavanaugh PR (2010) Muscle volume, strength, endurance, and exercise loads during 6-month missions in space. Aviat Space Environ Med 81:91–102PubMedCrossRef
go back to reference Goswami N, Loeppky JA, Hinghofer-Szalkay H (2008) LBNP: past protocols and technical considerations for experimental design. Aviat Space Environ Med 79:459–471PubMedCrossRef Goswami N, Loeppky JA, Hinghofer-Szalkay H (2008) LBNP: past protocols and technical considerations for experimental design. Aviat Space Environ Med 79:459–471PubMedCrossRef
go back to reference Goswami N, Rossler A, Lackner HK, Schneditz D, Grasser E, Hinghofer-Szalkay H (2009) Heart rate and stroke volume response patterns to augmented orthostatic stress. Clin Auton Res 19:157–165PubMedCrossRef Goswami N, Rossler A, Lackner HK, Schneditz D, Grasser E, Hinghofer-Szalkay H (2009) Heart rate and stroke volume response patterns to augmented orthostatic stress. Clin Auton Res 19:157–165PubMedCrossRef
go back to reference Goswami N, Batzel JJ, Clément G, Stein TP, Hargens AR, Sharp MK, Blaber AP, Roma PG, Hinghofer-Szalkay HG (2012a) Maximizing information from space data resources: a case for expanding integration across research disciplines. Eur J Appl Physiol (Epub ahead of print) Goswami N, Batzel JJ, Clément G, Stein TP, Hargens AR, Sharp MK, Blaber AP, Roma PG, Hinghofer-Szalkay HG (2012a) Maximizing information from space data resources: a case for expanding integration across research disciplines. Eur J Appl Physiol (Epub ahead of print)
go back to reference Goswami N, Roma PG, De Boever P, Clement G et al (2012b) Using the moon as a high-fidelity analogue environment to study biological and behavioural effects of long-duration space exploration. Planet Space Sci. doi:10.1016/j.pss.2012.07.030 Goswami N, Roma PG, De Boever P, Clement G et al (2012b) Using the moon as a high-fidelity analogue environment to study biological and behavioural effects of long-duration space exploration. Planet Space Sci. doi:10.​1016/​j.​pss.​2012.​07.​030
go back to reference Grasser EK, Goswami N, Rossler A, Vreckoc K, Hinghofer-Szalkay H (2009) Hemodynamic and neurohormonal responses to extreme orthostatic stress in physically fit young adults. Acta Astronaut 64:688–696CrossRef Grasser EK, Goswami N, Rossler A, Vreckoc K, Hinghofer-Szalkay H (2009) Hemodynamic and neurohormonal responses to extreme orthostatic stress in physically fit young adults. Acta Astronaut 64:688–696CrossRef
go back to reference Green JF, Miller NC (1973) A model describing the response of the circulatory system to acceleration stress. Ann Biomed Eng 1:455–467PubMedCrossRef Green JF, Miller NC (1973) A model describing the response of the circulatory system to acceleration stress. Ann Biomed Eng 1:455–467PubMedCrossRef
go back to reference Gupta S, Soellinger M, Grzybowski DM, Boesiger P, Biddiscombe J, Poulikakos D, Kurtcuoglu V (2010) Cerebrospinal fluid dynamics in the human cranial subarachnoid space: an overlooked mediator of cerebral disease. I. Computational model. J R Soc Interface 7:1195–1204PubMedCrossRef Gupta S, Soellinger M, Grzybowski DM, Boesiger P, Biddiscombe J, Poulikakos D, Kurtcuoglu V (2010) Cerebrospinal fluid dynamics in the human cranial subarachnoid space: an overlooked mediator of cerebral disease. I. Computational model. J R Soc Interface 7:1195–1204PubMedCrossRef
go back to reference Guyton AC, Coleman TG, Granger HJ (1972) Circulation: overall regulation. Ann Rev Phys 34:13–46CrossRef Guyton AC, Coleman TG, Granger HJ (1972) Circulation: overall regulation. Ann Rev Phys 34:13–46CrossRef
go back to reference Guyton AC, Montani JP, Hall JE, Manning RD Jr (1988) Computer models for designing hypertension experiments and studying concepts. Am J Med Sci 295:320–326PubMedCrossRef Guyton AC, Montani JP, Hall JE, Manning RD Jr (1988) Computer models for designing hypertension experiments and studying concepts. Am J Med Sci 295:320–326PubMedCrossRef
go back to reference Hargens AR, Richardson S (2009) Cardiovascular adaptations, fluid shifts, and countermeasures related to space flight. Resp Physiol Neurobiol 169:S30–S33CrossRef Hargens AR, Richardson S (2009) Cardiovascular adaptations, fluid shifts, and countermeasures related to space flight. Resp Physiol Neurobiol 169:S30–S33CrossRef
go back to reference Hargens AR, Bhattacharya R, Schneider SM (2012) Space physiology VI: exercise, artificial gravity, and countermeasure development for prolonged space flight. Eur J Appl Physiol (Epub ahead of print) Hargens AR, Bhattacharya R, Schneider SM (2012) Space physiology VI: exercise, artificial gravity, and countermeasure development for prolonged space flight. Eur J Appl Physiol (Epub ahead of print)
go back to reference Heldt T, Shim EB, Kamm RD, Mark RG (2002) Computational modeling of cardiovascular response to orthostatic stress. J Appl Physiol 92:1239–1254PubMed Heldt T, Shim EB, Kamm RD, Mark RG (2002) Computational modeling of cardiovascular response to orthostatic stress. J Appl Physiol 92:1239–1254PubMed
go back to reference Heldt T, Long B, Verghese GC, Szolovits P, Mark RG (2006) Integrating data, models, and reasoning in critical care. In: Proceedings of EMBS 06, 28th Annual International Conference IEEE, EMBS vol 1, pp 350–353 Heldt T, Long B, Verghese GC, Szolovits P, Mark RG (2006) Integrating data, models, and reasoning in critical care. In: Proceedings of EMBS 06, 28th Annual International Conference IEEE, EMBS vol 1, pp 350–353
go back to reference Hester RL, Brown AJ, Husband L, Iliescu R, Pruett D, Summers R, Coleman TG (2011) HumMod: a modeling environment for the simulation of integrative human physiology. Front Physiol 2(12):1 Hester RL, Brown AJ, Husband L, Iliescu R, Pruett D, Summers R, Coleman TG (2011) HumMod: a modeling environment for the simulation of integrative human physiology. Front Physiol 2(12):1
go back to reference Hildebrandt W, Schutze H, Stegemann J (1993) Higher capillary filtration rate in the calves of endurance-trained subjects during orthostatic stress. Aviat Space Environ Med 64(5):380–385PubMed Hildebrandt W, Schutze H, Stegemann J (1993) Higher capillary filtration rate in the calves of endurance-trained subjects during orthostatic stress. Aviat Space Environ Med 64(5):380–385PubMed
go back to reference Hildebrandt W, Gunga HC, Hermann J, Rocker L, Kirsch K, Stegemann J (1994) Enhanced slow caudal fluid shifts in orthostatic intolerance after 24-h bed-rest. Eur J Appl Physiol Occup Physiol 69(1):61–70PubMedCrossRef Hildebrandt W, Gunga HC, Hermann J, Rocker L, Kirsch K, Stegemann J (1994) Enhanced slow caudal fluid shifts in orthostatic intolerance after 24-h bed-rest. Eur J Appl Physiol Occup Physiol 69(1):61–70PubMedCrossRef
go back to reference Hoyer D, Frank B, Goetze C, Stein PK, Zebrowski JJ, Baranowski R, Palacios M, Vallverdú M, Caminal P, Bayés de Luna A, Schmidt G, Schmidt H (2007) Interactions between short-term and long-term cardiovascular control mechanisms. Chaos 17(015110):1–8 Hoyer D, Frank B, Goetze C, Stein PK, Zebrowski JJ, Baranowski R, Palacios M, Vallverdú M, Caminal P, Bayés de Luna A, Schmidt G, Schmidt H (2007) Interactions between short-term and long-term cardiovascular control mechanisms. Chaos 17(015110):1–8
go back to reference Hughson RL (2009) Recent findings in cardiovascular physiology with space travel. Resp Physiol Neurobiol 169S:S38–S41CrossRef Hughson RL (2009) Recent findings in cardiovascular physiology with space travel. Resp Physiol Neurobiol 169S:S38–S41CrossRef
go back to reference Hyndman BW (1972) A digital simulation of the human cardiovascular system. Inf J 10:8–35 Hyndman BW (1972) A digital simulation of the human cardiovascular system. Inf J 10:8–35
go back to reference Jaron D, Moore TW, Chu CL (1984) A cardiovascular model for studying impairment of cerebral function during +Gz stress. Aviat Space Environ Med 55:24–31PubMed Jaron D, Moore TW, Chu CL (1984) A cardiovascular model for studying impairment of cerebral function during +Gz stress. Aviat Space Environ Med 55:24–31PubMed
go back to reference Jaron D, Moore T, Bai J (1988) Cardiovascular responses to acceleration stress: a computer simulation. Proc IEEE 76:700–707CrossRef Jaron D, Moore T, Bai J (1988) Cardiovascular responses to acceleration stress: a computer simulation. Proc IEEE 76:700–707CrossRef
go back to reference Jennings T (1990) Space adaptation syndrome is caused by elevated intracranial pressure. Med Hypotheses 32:289–291PubMedCrossRef Jennings T (1990) Space adaptation syndrome is caused by elevated intracranial pressure. Med Hypotheses 32:289–291PubMedCrossRef
go back to reference Kappel F, Batzel JJ (2003) Survey of research in modeling the human respiratory and cardiovascular systems. In: Smith RC, Demetriou MA (eds) Research directions in distributed parameter systems. Siam series: Frontiers in Applied Mathematics, Philadelphia, pp 187–218CrossRef Kappel F, Batzel JJ (2003) Survey of research in modeling the human respiratory and cardiovascular systems. In: Smith RC, Demetriou MA (eds) Research directions in distributed parameter systems. Siam series: Frontiers in Applied Mathematics, Philadelphia, pp 187–218CrossRef
go back to reference Kappel F, Fink M, Batzel JJ (2007) Aspects of control of the cardiovascular-respiratory system during orthostatic stress induced by lower body negative pressure. Math Biosci 206:273–308PubMedCrossRef Kappel F, Fink M, Batzel JJ (2007) Aspects of control of the cardiovascular-respiratory system during orthostatic stress induced by lower body negative pressure. Math Biosci 206:273–308PubMedCrossRef
go back to reference Karemaker JM, Berecki-Gisolf J (2009) 24-h blood pressure in space: the dark side of being an astronaut. Respir Physiol Neurobiol 169(Suppl 1):S55–S58PubMedCrossRef Karemaker JM, Berecki-Gisolf J (2009) 24-h blood pressure in space: the dark side of being an astronaut. Respir Physiol Neurobiol 169(Suppl 1):S55–S58PubMedCrossRef
go back to reference Kolff WJ (1959) Mock circulation to test pumps designed for permanent replacement of damaged hearts. Cleve Clin Q 26:223–226PubMedCrossRef Kolff WJ (1959) Mock circulation to test pumps designed for permanent replacement of damaged hearts. Cleve Clin Q 26:223–226PubMedCrossRef
go back to reference Kurtcuoglu V, Dimos Poulikakos D, Yiannis Ventikos Y (2005) Computational modeling of the mechanical behavior of the cerebrospinal fluid system. ASME J Biomech Eng 127:264–269CrossRef Kurtcuoglu V, Dimos Poulikakos D, Yiannis Ventikos Y (2005) Computational modeling of the mechanical behavior of the cerebrospinal fluid system. ASME J Biomech Eng 127:264–269CrossRef
go back to reference Lakin WD, Stevens SA, Tranmer BI, Penar PL (2003) A whole-body mathematical model for intracranial pressure dynamics. J Math Biol 46:347–383PubMedCrossRef Lakin WD, Stevens SA, Tranmer BI, Penar PL (2003) A whole-body mathematical model for intracranial pressure dynamics. J Math Biol 46:347–383PubMedCrossRef
go back to reference Lakin WD, Stevens SA, Penar PL (2007) Modeling intracranial pressures in microgravity: the influence of the blood-brain barrier. Aviat Space Environ Med 78:932–936PubMedCrossRef Lakin WD, Stevens SA, Penar PL (2007) Modeling intracranial pressures in microgravity: the influence of the blood-brain barrier. Aviat Space Environ Med 78:932–936PubMedCrossRef
go back to reference Leach CS, Inners LD, Charles JB (1991) Changes in total body water during space flight. J Clin Pharmacol 31:1001–1006PubMedCrossRef Leach CS, Inners LD, Charles JB (1991) Changes in total body water during space flight. J Clin Pharmacol 31:1001–1006PubMedCrossRef
go back to reference Leach CS, Alfrey CP, Suki WN, Leonard JI, Rambaut PC, Inners LD, Smith SM, Lane HW, Krauhs JM (1996) Regulation of body fluid compartments during short-term spaceflight. J Appl Physiol 81:105–116PubMed Leach CS, Alfrey CP, Suki WN, Leonard JI, Rambaut PC, Inners LD, Smith SM, Lane HW, Krauhs JM (1996) Regulation of body fluid compartments during short-term spaceflight. J Appl Physiol 81:105–116PubMed
go back to reference Leaning MS, Pullen HE, Carson ER, Al-Dahan M, Rajkumar N, Finkelstein L (1983) Modeling a complex biological system: the human cardiovascular system. 2. Model validation, reduction and development. Trans Inst Measurement Control 5:87–98 Leaning MS, Pullen HE, Carson ER, Al-Dahan M, Rajkumar N, Finkelstein L (1983) Modeling a complex biological system: the human cardiovascular system. 2. Model validation, reduction and development. Trans Inst Measurement Control 5:87–98
go back to reference Leonard JI, Grounds DJ (1977) Modification of the long-term circulatory model for the simulation of bed rest. Contractor Report NASA CR-160186 Leonard JI, Grounds DJ (1977) Modification of the long-term circulatory model for the simulation of bed rest. Contractor Report NASA CR-160186
go back to reference Leonard JI, White RJ, Rummel JA (1985) Math modeling as a complement to the scientific inquiry of physiological adaptation to space flight: Fluid, endocrine and circulatory regulation. In: Proceedings of the 2nd International Conference on Space Physiology, 1985, Toulouse, pp 233–244, ESA SP-237 Leonard JI, White RJ, Rummel JA (1985) Math modeling as a complement to the scientific inquiry of physiological adaptation to space flight: Fluid, endocrine and circulatory regulation. In: Proceedings of the 2nd International Conference on Space Physiology, 1985, Toulouse, pp 233–244, ESA SP-237
go back to reference Levenhagen DK, Evans JM, Wang M, Knapp CF (1994) Cardiovascular regulation in humans in response to oscillatory lower body negative pressure. Am J Physiol 267:H593–H604PubMed Levenhagen DK, Evans JM, Wang M, Knapp CF (1994) Cardiovascular regulation in humans in response to oscillatory lower body negative pressure. Am J Physiol 267:H593–H604PubMed
go back to reference Levick JR, Michel CC (2010) Microvascular fluid exchange and the revised Starling principle. Cardiovasc Res 87:198–210PubMedCrossRef Levick JR, Michel CC (2010) Microvascular fluid exchange and the revised Starling principle. Cardiovasc Res 87:198–210PubMedCrossRef
go back to reference Levine BD, Lane LD, Watenpaugh DE, Gaffney FA, Buckey JC, Blomqvist CG (1996) Maximal exercise performance after adaptation to microgravity. J Appl Physiol 81:686–694PubMed Levine BD, Lane LD, Watenpaugh DE, Gaffney FA, Buckey JC, Blomqvist CG (1996) Maximal exercise performance after adaptation to microgravity. J Appl Physiol 81:686–694PubMed
go back to reference Levine BD, Zuckerman JH, Pawelczyk JA (1997) Cardiac atrophy after bed-rest deconditioning: a nonneural mechanism for orthostatic intolerance. Circulation 96:517–525PubMedCrossRef Levine BD, Zuckerman JH, Pawelczyk JA (1997) Cardiac atrophy after bed-rest deconditioning: a nonneural mechanism for orthostatic intolerance. Circulation 96:517–525PubMedCrossRef
go back to reference Lindenberger M, Länne T (2007) Sex-related effects on venous compliance and capillary filtration in the lower limb. Am J Physiol Regul Integr Comp Physiol 292(2):R852–R859PubMedCrossRef Lindenberger M, Länne T (2007) Sex-related effects on venous compliance and capillary filtration in the lower limb. Am J Physiol Regul Integr Comp Physiol 292(2):R852–R859PubMedCrossRef
go back to reference Liu CH, Niranjan SC, Clark JW Jr, San KY, Zwischenberger JB, Bidani A (1998) Airway mechanics, gas exchange, and blood flow in a nonlinear model of the normal human lung. J Appl Physiol 84(4):1447–1469PubMed Liu CH, Niranjan SC, Clark JW Jr, San KY, Zwischenberger JB, Bidani A (1998) Airway mechanics, gas exchange, and blood flow in a nonlinear model of the normal human lung. J Appl Physiol 84(4):1447–1469PubMed
go back to reference Liu JZ, Brown RW, Yue GH (2002) A dynamical model of muscle activation, fatigue, and recovery. Biophys J 82(5):2344–2359PubMedCrossRef Liu JZ, Brown RW, Yue GH (2002) A dynamical model of muscle activation, fatigue, and recovery. Biophys J 82(5):2344–2359PubMedCrossRef
go back to reference Loth F, Yardimci MA, Alperin N (2001) Hydrodynamic modeling of cerebrospinal fluid motion within the spinal cavity. ASME J Biomech Eng 123:71–79 Loth F, Yardimci MA, Alperin N (2001) Hydrodynamic modeling of cerebrospinal fluid motion within the spinal cavity. ASME J Biomech Eng 123:71–79
go back to reference Lu K, Clark JW Jr, Ghorbel FH, Ware DL, Bidani A (2001) A human cardiopulmonary system model applied to the analysis of the Valsalva maneuver. Am J Physiol Heart Circ Physiol 281:H2661–H2679PubMed Lu K, Clark JW Jr, Ghorbel FH, Ware DL, Bidani A (2001) A human cardiopulmonary system model applied to the analysis of the Valsalva maneuver. Am J Physiol Heart Circ Physiol 281:H2661–H2679PubMed
go back to reference Lu K, Clark JW Jr, Ghorbel FH, Robertson CS, Ware DL, Zwischenberger JB, Bidani A (2004) Cerebral autoregulation and gas exchange studied using a human cardiopulmonary model. Am J Physiol Heart Circ Physiol 286:H584–H601PubMedCrossRef Lu K, Clark JW Jr, Ghorbel FH, Robertson CS, Ware DL, Zwischenberger JB, Bidani A (2004) Cerebral autoregulation and gas exchange studied using a human cardiopulmonary model. Am J Physiol Heart Circ Physiol 286:H584–H601PubMedCrossRef
go back to reference Lundvall J, Bjerkhoel P, Quittenbaum S, Lindgren P (1996) Rapid plasma volume decline upon quiet standing reflects large filtration capacity in dependent limbs. Acta Physiol Scand 158(2):161–167PubMedCrossRef Lundvall J, Bjerkhoel P, Quittenbaum S, Lindgren P (1996) Rapid plasma volume decline upon quiet standing reflects large filtration capacity in dependent limbs. Acta Physiol Scand 158(2):161–167PubMedCrossRef
go back to reference Mader TH, Gibson CR, Pass AF, Kramer LA, Lee AG, Fogarty J, Tarver WJ, Dervay JP, Hamilton DR, Sargsyan A, Phillips JL, Tran D, Lipsky W, Choi J, Stern C, Kuyumjian R, Polk JD (2011) Optic disc edema, globe flattening, choroidal folds, and hyperopic shifts observed in astronauts after long-duration space flight. Ophthalmology 118(10):2058–2069PubMedCrossRef Mader TH, Gibson CR, Pass AF, Kramer LA, Lee AG, Fogarty J, Tarver WJ, Dervay JP, Hamilton DR, Sargsyan A, Phillips JL, Tran D, Lipsky W, Choi J, Stern C, Kuyumjian R, Polk JD (2011) Optic disc edema, globe flattening, choroidal folds, and hyperopic shifts observed in astronauts after long-duration space flight. Ophthalmology 118(10):2058–2069PubMedCrossRef
go back to reference Mangourova V, Ringwood J, Van Vliet B (2011) Graphical simulation environments for modelling and simulation of integrative physiology. Comput Methods Programs Biomed 102:295–304PubMedCrossRef Mangourova V, Ringwood J, Van Vliet B (2011) Graphical simulation environments for modelling and simulation of integrative physiology. Comput Methods Programs Biomed 102:295–304PubMedCrossRef
go back to reference Marshall-Bowman K (2011) Increased intracranial pressure and visual impairment associated with long-duration spaceflight. MS thesis, International Space University, Illkirch-Graffenstaden Marshall-Bowman K (2011) Increased intracranial pressure and visual impairment associated with long-duration spaceflight. MS thesis, International Space University, Illkirch-Graffenstaden
go back to reference Martin BA, Reymond P, Novy J, Balédent O, Stergiopulos N (2012) A coupled hydrodynamic model of the cardiovascular and cerebrospinal fluid system. Am J Physiol Heart Circ Physiol 302(7):H1492–H1509PubMedCrossRef Martin BA, Reymond P, Novy J, Balédent O, Stergiopulos N (2012) A coupled hydrodynamic model of the cardiovascular and cerebrospinal fluid system. Am J Physiol Heart Circ Physiol 302(7):H1492–H1509PubMedCrossRef
go back to reference Melchior FM, Srinivasan RS, Charles JB (1992) Mathematical modeling of human cardiovascular system for simulation of orthostatic response. Am J Physiol 262(Heart Circ Physiol 31):H1920–H1933PubMed Melchior FM, Srinivasan RS, Charles JB (1992) Mathematical modeling of human cardiovascular system for simulation of orthostatic response. Am J Physiol 262(Heart Circ Physiol 31):H1920–H1933PubMed
go back to reference Melchior FM, Srinivasan RS, Thullier PH, Clere JM (1994) Simulation of cardiovascular response to lower body negative pressure from 0 to −40 mmHg. J Appl Physiol 77:630–640PubMed Melchior FM, Srinivasan RS, Thullier PH, Clere JM (1994) Simulation of cardiovascular response to lower body negative pressure from 0 to −40 mmHg. J Appl Physiol 77:630–640PubMed
go back to reference Mendoza E, Schmid-Schonbein GW (2003) A model for mechanics of primary lymphatic valves. J Biomed Eng 125:407–414 Mendoza E, Schmid-Schonbein GW (2003) A model for mechanics of primary lymphatic valves. J Biomed Eng 125:407–414
go back to reference Montani JP, Van Vliet BN (2009) Understanding the contribution of Guyton’s large circulatory model to long-term control of arterial pressure. Exp Physiol 94:382–388PubMedCrossRef Montani JP, Van Vliet BN (2009) Understanding the contribution of Guyton’s large circulatory model to long-term control of arterial pressure. Exp Physiol 94:382–388PubMedCrossRef
go back to reference Montani JP, Adair TH, Summers RL, Coleman TG, Guyton AC (1989) A simulation support system for solving large physiological models on microcomputers. Int J Biomed Comput 24:41–54PubMedCrossRef Montani JP, Adair TH, Summers RL, Coleman TG, Guyton AC (1989) A simulation support system for solving large physiological models on microcomputers. Int J Biomed Comput 24:41–54PubMedCrossRef
go back to reference Mukkamala R, Reisner AT, Hojman HM, Mark RG, Cohen RJ (2006) Continuous cardiac output monitoring by peripheral blood pressure waveform analysis. IEEE Trans Biomed Eng 53:459–467PubMedCrossRef Mukkamala R, Reisner AT, Hojman HM, Mark RG, Cohen RJ (2006) Continuous cardiac output monitoring by peripheral blood pressure waveform analysis. IEEE Trans Biomed Eng 53:459–467PubMedCrossRef
go back to reference Mutsaers M, Bachar M, Batzel JJ, Kappel F, Volkwein S (2008) Receding horizon controller for the baroreceptor loop in a model for the cardiovascular system. Cardiovasc Eng 8:14–22PubMed Mutsaers M, Bachar M, Batzel JJ, Kappel F, Volkwein S (2008) Receding horizon controller for the baroreceptor loop in a model for the cardiovascular system. Cardiovasc Eng 8:14–22PubMed
go back to reference Norsk P (2005) Cardiovascular and fluid volume control in humans in space. Curr Pharm Biotechnol 6:325–330PubMedCrossRef Norsk P (2005) Cardiovascular and fluid volume control in humans in space. Curr Pharm Biotechnol 6:325–330PubMedCrossRef
go back to reference O’Leary DJ, Pantalos GM, Sharp MK (1999) Feedback control of mean aortic pressure in a dynamic model of the cardiovascular system. ASAIO J 45:587–594PubMedCrossRef O’Leary DJ, Pantalos GM, Sharp MK (1999) Feedback control of mean aortic pressure in a dynamic model of the cardiovascular system. ASAIO J 45:587–594PubMedCrossRef
go back to reference Olufsen MS, Ottesen JT, Tran HT, Ellwein LM, Lipsitz LA, Novak V (2005) Blood pressure and blood flow variation during postural change from sitting to standing: model development and validation. J Appl Physiol 99:1523–1537PubMedCrossRef Olufsen MS, Ottesen JT, Tran HT, Ellwein LM, Lipsitz LA, Novak V (2005) Blood pressure and blood flow variation during postural change from sitting to standing: model development and validation. J Appl Physiol 99:1523–1537PubMedCrossRef
go back to reference Olufsen MS, Ottesen JT (2012) A practical approach to parameter estimation applied to model predicting heart rate regulation. J Math Biol (Epub ahead of print) Olufsen MS, Ottesen JT (2012) A practical approach to parameter estimation applied to model predicting heart rate regulation. J Math Biol (Epub ahead of print)
go back to reference Ottesen JT (2000) Modelling the dynamical baroreflex-feedback control. Math Comput Model 31:167–173CrossRef Ottesen JT (2000) Modelling the dynamical baroreflex-feedback control. Math Comput Model 31:167–173CrossRef
go back to reference Pantalos GM, Mathias J, Sharp MK, Watenpaugh D, Buckey J, Parnis S, Hargens A, Thornton W (1996) Variations in esophageal and abdominal pressure in humans during parabolic flight. Am Soc Grav Space Bull 10(1):33 Pantalos GM, Mathias J, Sharp MK, Watenpaugh D, Buckey J, Parnis S, Hargens A, Thornton W (1996) Variations in esophageal and abdominal pressure in humans during parabolic flight. Am Soc Grav Space Bull 10(1):33
go back to reference Pantalos GM, Sharp MK, Woodruff SJ, O’Leary DJ, Lorange R, Everett SD, Bennett TE, Schurfranz T (1998a) The influence of gravity on cardiac performance. Ann Biomed Eng 26:931–943PubMedCrossRef Pantalos GM, Sharp MK, Woodruff SJ, O’Leary DJ, Lorange R, Everett SD, Bennett TE, Schurfranz T (1998a) The influence of gravity on cardiac performance. Ann Biomed Eng 26:931–943PubMedCrossRef
go back to reference Pantalos GM, Hart S, Mathias J, Sharp MK, Watenpaugh D, Buckey J, Parnis S, Hargens A, Thornton W (1998b) Central venous, esophageal and abdominal pressure in humans during parabolic flight. Am Soc Grav Space Bio Bull 12(1):81 Pantalos GM, Hart S, Mathias J, Sharp MK, Watenpaugh D, Buckey J, Parnis S, Hargens A, Thornton W (1998b) Central venous, esophageal and abdominal pressure in humans during parabolic flight. Am Soc Grav Space Bio Bull 12(1):81
go back to reference Pantalos GM, Bennett TE, Sharp MK, Woodruff SJ, O’Leary SD, Gillars KJ, Schurfranz T, Everett SD, Lemon M, Schwartz J, Bennett TE (2005) The effect of gravitational acceleration on cardiac diastolic function: a biofluid mechanical perspective with initial results. Curr Pharm Biotechnol 6:331–341PubMedCrossRef Pantalos GM, Bennett TE, Sharp MK, Woodruff SJ, O’Leary SD, Gillars KJ, Schurfranz T, Everett SD, Lemon M, Schwartz J, Bennett TE (2005) The effect of gravitational acceleration on cardiac diastolic function: a biofluid mechanical perspective with initial results. Curr Pharm Biotechnol 6:331–341PubMedCrossRef
go back to reference Parazynski SE, Hargens AR, Tucker B, Aratow M, Styf J, Crenshaw A (1991) Transcapillary fluid shifts in tissues of the head and neck during and after simulated microgravity. J Appl Physiol 71:2469–2475PubMed Parazynski SE, Hargens AR, Tucker B, Aratow M, Styf J, Crenshaw A (1991) Transcapillary fluid shifts in tissues of the head and neck during and after simulated microgravity. J Appl Physiol 71:2469–2475PubMed
go back to reference Peterson K, Sharp MK, Pantalos GM, Ozawa ET (2002) Numerical simulation of the influence of gravity and posture on cardiac performance. Ann Biomed Eng 30(2):247–259PubMedCrossRef Peterson K, Sharp MK, Pantalos GM, Ozawa ET (2002) Numerical simulation of the influence of gravity and posture on cardiac performance. Ann Biomed Eng 30(2):247–259PubMedCrossRef
go back to reference Pope SR, Ellwein LM, Zapata CL, Novak V, Kelley CT, Olufsen MS (2009) Estimation and identification of parameters in a lumped cerebrovascular model. Math Biosci Eng 6:93–115PubMedCrossRef Pope SR, Ellwein LM, Zapata CL, Novak V, Kelley CT, Olufsen MS (2009) Estimation and identification of parameters in a lumped cerebrovascular model. Math Biosci Eng 6:93–115PubMedCrossRef
go back to reference Quarteroni A, Veneziani A (2003) Analysis of a geometrical multiscale model based on the coupling of PDE’s and ODE’s for blood flow simulations. SIAM J MMS 1:173–195 Quarteroni A, Veneziani A (2003) Analysis of a geometrical multiscale model based on the coupling of PDE’s and ODE’s for blood flow simulations. SIAM J MMS 1:173–195
go back to reference Reddy NP (1986) Lymph circulation: physiology, pharmacology, and biomechanics. Crit Rev Biomed Eng 14(1):45–91PubMed Reddy NP (1986) Lymph circulation: physiology, pharmacology, and biomechanics. Crit Rev Biomed Eng 14(1):45–91PubMed
go back to reference Rosenberg G, Phillips WM, Landis DL, Pierce WS (1981) Design and evaluation of the Pennsylvania State University mock circulatory system. ASAIO Trans 4:41–49 Rosenberg G, Phillips WM, Landis DL, Pierce WS (1981) Design and evaluation of the Pennsylvania State University mock circulatory system. ASAIO Trans 4:41–49
go back to reference Rothe CF, Gersting JM (2002) Cardiovascular interactions: an interactive tutorial and mathematical model. Adv Physiol Educ 26:98–109PubMed Rothe CF, Gersting JM (2002) Cardiovascular interactions: an interactive tutorial and mathematical model. Adv Physiol Educ 26:98–109PubMed
go back to reference Sagawa K (1975) Critique of a large-scale organ system model: Guytonian cardiovascular model. Ann Biomed Eng 3:386–400PubMedCrossRef Sagawa K (1975) Critique of a large-scale organ system model: Guytonian cardiovascular model. Ann Biomed Eng 3:386–400PubMedCrossRef
go back to reference Sharp MK, Dharmalingham RK (1999) Development of a hydraulic model of the human systemic circulation. ASAIO J 45:535–540PubMedCrossRef Sharp MK, Dharmalingham RK (1999) Development of a hydraulic model of the human systemic circulation. ASAIO J 45:535–540PubMedCrossRef
go back to reference Sharp MK, Richards CM, Gillars KJ, Giridharan G, Pantalos GM (2008) The influence of mock circulation input impedance on valve acceleration during in vitro cardiac device testing. ASAIO J 54:341–346PubMedCrossRef Sharp MK, Richards CM, Gillars KJ, Giridharan G, Pantalos GM (2008) The influence of mock circulation input impedance on valve acceleration during in vitro cardiac device testing. ASAIO J 54:341–346PubMedCrossRef
go back to reference Snyder MF, Rideout VC (1969) Computer simulation studies of the venous circulation. IEEE Trans Biomed Eng BME 16:325–334CrossRef Snyder MF, Rideout VC (1969) Computer simulation studies of the venous circulation. IEEE Trans Biomed Eng BME 16:325–334CrossRef
go back to reference Srinivasan RS, Simanook KE, Charles JB (1992) Computer simulation analysis of the effects of countermeasures for reentry orthostatic intolerance. Physiologist 35:S165–S168PubMed Srinivasan RS, Simanook KE, Charles JB (1992) Computer simulation analysis of the effects of countermeasures for reentry orthostatic intolerance. Physiologist 35:S165–S168PubMed
go back to reference Stevens SA, Lakin WD (2000) Local compliance effects on the global pressure–volume relationship in models of intracranial pressure dynamics. Math Comp Model Dyn Sys 6(4):445–465CrossRef Stevens SA, Lakin WD (2000) Local compliance effects on the global pressure–volume relationship in models of intracranial pressure dynamics. Math Comp Model Dyn Sys 6(4):445–465CrossRef
go back to reference Stevens SA, Lakin WD, Penar PL (2005) Modeling steady-state intracranial pressures in supine, head-down tilt and microgravity conditions. Aviat Space Environ Med 76:329–338PubMed Stevens SA, Lakin WD, Penar PL (2005) Modeling steady-state intracranial pressures in supine, head-down tilt and microgravity conditions. Aviat Space Environ Med 76:329–338PubMed
go back to reference Stevens SA, Stimpson J, Lakin WD, Thakore NJ, Penar PL (2008) A model for idiopathic intracranial hypertension and associated pathological ICP wave-forms. IEEE Trans Biomed Eng 55(2):288–298CrossRef Stevens SA, Stimpson J, Lakin WD, Thakore NJ, Penar PL (2008) A model for idiopathic intracranial hypertension and associated pathological ICP wave-forms. IEEE Trans Biomed Eng 55(2):288–298CrossRef
go back to reference Summers RL, Coleman TG (2002) Computer systems analysis of the cardiovascular mechanisms of reentry orthostasis in astronauts. Comput Cardiol 29:521–525PubMed Summers RL, Coleman TG (2002) Computer systems analysis of the cardiovascular mechanisms of reentry orthostasis in astronauts. Comput Cardiol 29:521–525PubMed
go back to reference Summers RL, Coleman TG (2006) Computer model for the planning of emergency medical management during spaceflight. Ann Emerg Med 290:S87CrossRef Summers RL, Coleman TG (2006) Computer model for the planning of emergency medical management during spaceflight. Ann Emerg Med 290:S87CrossRef
go back to reference Summers RL, Coleman TG (2010) The digital astronaut: theoretical conception of physiologic adaptations to the Mars environment. J Cosmol 12:3807–3816 Summers RL, Coleman TG (2010) The digital astronaut: theoretical conception of physiologic adaptations to the Mars environment. J Cosmol 12:3807–3816
go back to reference Summers RL, Martin DS, Meck JV, Coleman TG (2007) Computer systems analysis of spaceflight induced changes in left ventricular mass. Comp Biol Med 37:358–363CrossRef Summers RL, Martin DS, Meck JV, Coleman TG (2007) Computer systems analysis of spaceflight induced changes in left ventricular mass. Comp Biol Med 37:358–363CrossRef
go back to reference Summers RL, Coleman TG, Meck JV (2008) Development of the digital astronaut program for analysis of the mechanisms of physiologic adaptation to microgravity: validation of the cardiovascular module. Acta Astronaut 63:758–762CrossRef Summers RL, Coleman TG, Meck JV (2008) Development of the digital astronaut program for analysis of the mechanisms of physiologic adaptation to microgravity: validation of the cardiovascular module. Acta Astronaut 63:758–762CrossRef
go back to reference Summers RL, Platts S, Myers JG, Coleman TG (2010) Theoretical analysis of the mechanisms of a gender differentiation in the propensity for orthostatic intolerance after spaceflight. Theor Biol Med Model 7:8PubMedCrossRef Summers RL, Platts S, Myers JG, Coleman TG (2010) Theoretical analysis of the mechanisms of a gender differentiation in the propensity for orthostatic intolerance after spaceflight. Theor Biol Med Model 7:8PubMedCrossRef
go back to reference Tawhai MH, Hoffman EA, Lin CL (2009) The lung physiome: merging imaging-based measures with predictive computational models. Wiley Interdiscip Rev Syst Biol Med 1(1):61–72PubMedCrossRef Tawhai MH, Hoffman EA, Lin CL (2009) The lung physiome: merging imaging-based measures with predictive computational models. Wiley Interdiscip Rev Syst Biol Med 1(1):61–72PubMedCrossRef
go back to reference Ten Tusscher KH, Hren R, Panfilov AV (2007) Organization of ventricular fibrillation in the human heart. Circ Res 100:e87–e101PubMedCrossRef Ten Tusscher KH, Hren R, Panfilov AV (2007) Organization of ventricular fibrillation in the human heart. Circ Res 100:e87–e101PubMedCrossRef
go back to reference Thomaseth K, Cobelli C (1999) Generalized sensitivity functions in physiological system identification. Ann Biomed Eng 27:607–616PubMedCrossRef Thomaseth K, Cobelli C (1999) Generalized sensitivity functions in physiological system identification. Ann Biomed Eng 27:607–616PubMedCrossRef
go back to reference Thomaseth K, Cobelli C (2000) Analysis of information content of pharmakokinetic data using generalized sensitivity functions. In: Proceedings of 22nd Annual EMBS International Conference IEEE vol 1, pp 435–437 Thomaseth K, Cobelli C (2000) Analysis of information content of pharmakokinetic data using generalized sensitivity functions. In: Proceedings of 22nd Annual EMBS International Conference IEEE vol 1, pp 435–437
go back to reference Thornton WE, Hoffler GW, Rummel JA (1977) Anthropometric changes and fluid shifts. In: Johnston RS, Dietlein LF (eds) Biomedical results from Skylab. NASA, Washington, DC, NASA SP-377:137–173 Thornton WE, Hoffler GW, Rummel JA (1977) Anthropometric changes and fluid shifts. In: Johnston RS, Dietlein LF (eds) Biomedical results from Skylab. NASA, Washington, DC, NASA SP-377:137–173
go back to reference Ursino M (1991) Mechanisms of cerebral blood flow regulation. Crit Rev Biomed Eng 18:255–288PubMed Ursino M (1991) Mechanisms of cerebral blood flow regulation. Crit Rev Biomed Eng 18:255–288PubMed
go back to reference Ursino M (1998) Interaction between carotid baroregulation and the pulsating heart: a mathematical model. Am J Physiol 275:H1733–H1747PubMed Ursino M (1998) Interaction between carotid baroregulation and the pulsating heart: a mathematical model. Am J Physiol 275:H1733–H1747PubMed
go back to reference Ursino M, Lodi AC (1997) A simple mathematical model of the interaction between intracranial pressure and cerebral hemodynamics. J Appl Physiol 82(4):1256–1269PubMed Ursino M, Lodi AC (1997) A simple mathematical model of the interaction between intracranial pressure and cerebral hemodynamics. J Appl Physiol 82(4):1256–1269PubMed
go back to reference Ursino M, Antonucci M, Belardinelli E (1994) Role of active changes in venous capacity by the carotid baroreflex: analysis with a mathematical model. Am J Physiol 267:H2531–H2546PubMed Ursino M, Antonucci M, Belardinelli E (1994) Role of active changes in venous capacity by the carotid baroreflex: analysis with a mathematical model. Am J Physiol 267:H2531–H2546PubMed
go back to reference Vernikos J, Schneider VS (2010) Space, gravity and the physiology of aging: parallel or convergent disciplines? A mini-review. Gerontology 56:157–166PubMedCrossRef Vernikos J, Schneider VS (2010) Space, gravity and the physiology of aging: parallel or convergent disciplines? A mini-review. Gerontology 56:157–166PubMedCrossRef
go back to reference Videbaek R, Norsk P (1997) Atrial distension in humans during microgravity induced by parabolic flights. J Appl Physiol 83:1862–1866PubMed Videbaek R, Norsk P (1997) Atrial distension in humans during microgravity induced by parabolic flights. J Appl Physiol 83:1862–1866PubMed
go back to reference Watenpaugh DE (2001) Fluid volume control during short-term space flight and implications for human performance. J Exp Biol 204:3209–3215PubMed Watenpaugh DE (2001) Fluid volume control during short-term space flight and implications for human performance. J Exp Biol 204:3209–3215PubMed
go back to reference Waters WW, Ziegler MG, Meck JV (2001) Post-spaceflight orthostatic hypotension occurs mostly in women and is predicted by low vascular resistance. J Appl Physiol 92:586–594 Waters WW, Ziegler MG, Meck JV (2001) Post-spaceflight orthostatic hypotension occurs mostly in women and is predicted by low vascular resistance. J Appl Physiol 92:586–594
go back to reference White RJ, Blomqvist CG (1998) Central venous pressure and cardiac function during spaceflight. J Appl Physiol 85:738–746PubMed White RJ, Blomqvist CG (1998) Central venous pressure and cardiac function during spaceflight. J Appl Physiol 85:738–746PubMed
go back to reference Williams D, Kuipers A, Mukai C, Thirsk R (2009) Acclimation during space flight: effects on human physiology. CMAJ 180:1317–1323PubMedCrossRef Williams D, Kuipers A, Mukai C, Thirsk R (2009) Acclimation during space flight: effects on human physiology. CMAJ 180:1317–1323PubMedCrossRef
go back to reference Woodruff SJ, Sharp MK, Pantalos GM (1997) Compact compliance chamber design for the study of cardiac performance in microgravity. ASAIO J 43:316–320PubMed Woodruff SJ, Sharp MK, Pantalos GM (1997) Compact compliance chamber design for the study of cardiac performance in microgravity. ASAIO J 43:316–320PubMed
Metadata
Title
Space physiology IV: mathematical modeling of the cardiovascular system in space exploration
Authors
M. Keith Sharp
Jerry Joseph Batzel
Jean-Pierre Montani
Publication date
01-08-2013
Publisher
Springer Berlin Heidelberg
Published in
European Journal of Applied Physiology / Issue 8/2013
Print ISSN: 1439-6319
Electronic ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-013-2623-x

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