Acta Optica Sinica, Volume. 29, Issue s1, 300(2009)
A Probe into New Methods of Non-Invasive Monitoring Inflection Point of Respiratory Quotient by Near-Infrared Spectroscopy
[1] [1] J. P. Flatt. Body composition, respiratory quotient, and weight maintenance[J]. The American J. Clinical Nutrition, 1995, 62: 1107~1117
[2] [2] Millkan F A. The oximeter, an instrurment for measuring continuously the oxygen saturation of arterial blood in man[J]. Rev. Scientific Instrument, 1942, 13: 434~444
[3] [3] Mendelson Y, Ochs B D. Nonivasive pulse oximetrutilizing skin reflectance photoplethy smography[J]. IEEE Trans Biom. Eng., 1988, 35: 798~805
[4] [4] Toshikazu Shiga, Katsuyuki Yamamoto. Study of an algorithm based on model experiments and diffusion theory for a portable tissue oximeter[J]. J. Biomedical, 1997, Optics2(2): 154~161
[5] [5] Ferreira L F, Hueber D M, Barstow T J. Effects of assuming constant optical scattering on measurements of muscle oxygenation by near-infrared spectroscopy during exrcise[J]. J. Appl. Physiol., 2006, 102: 358~367
[6] [6] Ide K, Horn A, Secher N H. Cerebral metabolic response to submaximal execise[J]. Jappl. Physiol., 1999, 87: 1604~1680
[7] [7] Ferreira L F, Harper A J, Townsend D K et al.. Kinetics of estimated human muscle capillary blood flow during recovery from exercise[J]. Exp. Physiol., 2005, 90: 715~726
[8] [8] Guodong Xu, Qingming Luo, Xinfa Ge et al.. Relationship between blood oxygenation and lactate in human skeletal muscle revealed by near-infrared spectroscopy[C]. SPIE, 2001, 4536: 177~181
[9] [9] B. Chance, M. Maris, J. Sorge et al.. A phase modulation system for dual wavelength difference spectroscopy of hemoglobin deoxygenation in tissue[C]. SPIE, 1990, 1204: 481~491
[10] [10] B. Chance. Comparison of time-resolved measurement of deoxyhemoglbin in brain[J]. Proc. Natl. Acad. Sci. USA, 1988, 85: 4971~4975
[11] [11] B. Chance, Z. Zhuang, C. Unah et al.. Cognition-activated low-frequency modulation of light absorption in human brain[J]. Proc. National Academy of Sciencein USA, 1993, 90: 3770~3774
[12] [12] B. Chance, S. Nioka, J. Kent. Time resolved spectroscopy of hemoglobin and myoglobin in resting and ischemic muscles[J]. Anal. Biochem., 1988, 174: 698~707
[13] [13] Mancini Donna M, Lizann Bolinger, B. Chance et al.. Validation of near-infrared spectroscopy in humens[J]. J. Appl. Ohysiol., 1994, 77(6): 2740~2747
[14] [14] Binzoni T. W. Colier, E. Hiltbrand et al.. Muscle O2 consumption by NIRS:a theoretical model[J]. J. Appl. Physiol., 1999, 87(2): 683~688
[15] [15] MacDonald M J,Tarnopolsky M A, Dreen H J et al.. Comparison of femoral blood gases and muscle near-infrared spectroscopy at exercise onset in humans[J]. J. Appl. Physiol., 1999, 86: 687~693
[16] [16] Zhou Chaoyan, You Linghua, Xu Guodong. Changes of muscle oxygen content during incremental exercises[J]. J. Clinical Rehabilitative Tissue Engineering Research, 2008, 12(37): 766~775
[17] [17] B. Chance, Dait M., Zbang C et al.. Recovery from exercise-induced desaturation in the quadriceps muscle of elite competitive rowers[J]. Am. J. Physiol., 1992, 262: 766~775
[18] [18] Costes F, Barthelemy J C, Feasson L et al.. Comparison of muscle near-infrared spectroscopy and femoral blood gases during steady-state exercise in bumans[J]. J. Appl. Physiol., 1996, 80: 1345~1350
[19] [19] Bae S Y, Yasukochi S M, Kan K et al.. Changes in oxygen content and blood volume in working skeletal muscle up to maximal exercise by near infrared spectroscopy[J]. Therapeutic Res., 1996, 17: 129~136
[20] [20] Belardinelli R, Barstow et al.. Changes in skeletalmuscle oxygenation during incremental exercise measured with near infrared spectroscopy[J]. Eur. J. Appl. Physiol., 1995, 70: 487~492
Get Citation
Copy Citation Text
Xu Guodong, Ye Yanjie, Wang Aihua, Xu Jusheng, Wang Zhihua. A Probe into New Methods of Non-Invasive Monitoring Inflection Point of Respiratory Quotient by Near-Infrared Spectroscopy[J]. Acta Optica Sinica, 2009, 29(s1): 300