[1] Wasserman K, Hansen JE, Sue DY, et al. Principles of exercise testing and interpretation-Including pathophysiology and clinical applications[M]. 5th ed, Philadelphia: LIPPINCOTT WILLIAMS & WILKINS, 2012. [2] 孙兴国, 主译. 心肺运动试验的原理和解读——病理生理及临床应用[M]. 第五版. 北京: 北京大学出版社, 2018 [3] Ganter M, Zollinger A.Continuous intravascular blood gas monitoring: development, current techniques, and clinical use of a commercial device[J]. Br J Anaesth, 2003, 91(3): 397-407. [4] Ramamoorthy R, Dutta P, Akbar S.Oxygen sensors: materials, methods, designs and applications[J]. J Mater Sci, 2003, 38(21): 4271-4282. [5] Williams EM, Viale JP, Hamilton RM, et al. Within-breath arterial PO2 oscillations in an experimental model of acute respiratory distress syndrome[J]. Br J Anaesth, 2000, 85(3): 456-459. [6] Baumgardner JE, Markstaller K, Pfeiffer B, et al. Effects of respiratory rate, plateau pressure, and positive end-expiratory pressure on PaO2 oscillations after saline lavage[J]. Am J Respir Crit Care Med, 2002, 166(12 Pt 1): 1556-1562. [7] Bergman NA.Cyclic variations in blood oxygenation with the respiratory cycle[J]. Anesthesiology, 1961, 22: 900-908. [8] Folgering H, Smolders FDJ, Kreuzer F.Respiratory oscillations of the arterial PO2 and their effects on the ventilatory controlling system in the cat[J]. Pflugers Arch, 1978, 375(1): 1-7. [9] Sun XG, Guo ZY. New theory of breathing control: a complex model integrates multi-systems [J]. FASEB J, 2011, 25: A LB634. [10] Sun XG, Guo ZY. Decreased magnitudes of arterial O2 and CO2 oscillation explain Cheyne-Stokes periodic breathing pattern in heart failure patients [J]. FASEB J, 2011, 25: A847.24. [11] Sun XG, Hansen JE, Beshai JF, et al. Oscillatory breathing and exercise gas exchange abnormalities prognosticate early mortality and morbidity in heart failure[J]. J Am Coll Cardiol, 2010, 55(17): 1814-1823. [12] 孙兴国. 整体整合生理学医学新理论体系: 人体功能一体化自主调控[J]. 中国循环杂志, 2013, 28(2): 88-92. [13] 孙兴国. 生命整体调控新理论体系与心肺运动试验[J]. 医学与哲学(人文社会医学版), 2013, 34(3): 22-27. [14] 孙兴国. 整体整合生理学医学新理论体系概论I:呼吸调控新视野[J]. 中国应用生理学杂志, 2015, 31(4): 295-301. [15] 孙兴国. 整体整合生理学医学新理论体系概论II:循环调控新视野[J]. 中国应用生理学杂志, 2015, 31(4): 302-307. [16] 孙兴国. 整体整合生理学医学新理论体系概论III:呼吸循环代谢一体化调控环路中神经体液作用模式[J]. 中国应用生理学杂志, 2015, 31(4): 308-315. [17] Hahn CE.Tutorial review. Electrochemical analysis of clinical blood-gases, gases and vapours[J]. Analyst, 1998, 123(6): 57R-86R. [18] 孙兴, 姚优修, 李军, 等. 人体动脉血气信号波浪式变化及连续动脉逐搏取血血气分析方法的建立[J].中国应用生理学杂志, 2015, 31(4): 316-321. [19] 姚优修, 孙兴国, 李军, 等. 心衰患者动脉血气波浪式变化及其幅度降低的初步实验证据[J].中国应用生理学杂志, 2015, 31(4): 322-325. [20] 崔闫, 孙兴国, 葛万刚, 等. 人体动脉血气波浪式变化特点的实验证据-同时间动、静脉血波浪式变化幅度的不同[J]. 中国应用生理学杂志, 2021, 37(1): 34-39. [21] 刘方, 孙兴国, 李启威, 等. 新生儿首次呼吸前后脐带动静脉血液氧和二氧化碳变化探索呼吸调控机制的初步报告I—血液氧和二氧化碳分压脐带动静脉差值的组间分析[J].中国应用生理学杂志2021, 37(1): 1-8. [22] 崔闫, 孙兴国, 葛万刚, 等.人体通气状态对动脉血气波浪式幅度的影响[J].中国应用生理学杂志,2020, 37(1): 40-44. [23] 王桂芝, 孙兴国, 陈荣声,等. 正常分钟通气量机械通气不同潮气量和频率影响活体山羊颈动脉血氧动态变化的初步实验报告[J]. 中国应用生理学杂志, 2020, 37(1): 45-50. [24] Chen R, Formenti F, McPeak H, et al. Experimental investigation of the effect of polymer matrices on polymer fibre optic oxygen sensors and their time response characteristics using a vacuum testing chamber and a liquid flow apparatus[J]. Sens Actuators B Chem, 2016, 222: 531-535. [25] Chen R, Formenti F, McPeak H, et al. Optimizing design for polymer fiber optic oxygen sensors[J]. IEEE Sens J, 2014, 14(10): 3358-3364. [26] Formenti F, Bommakanti N, Chen R, et al. Respiratory oscillations in alveolar oxygen tension measured in arterial blood[J]. Sci Rep, 2017, 7(1): 7499. [27] Demas JN, DeGraff B, Coleman PB. Peer reviewed: oxygen sensors based on luminescence quenching[J]. Anal Chem, 1999, 71(23): 793A-800A. [28] Gewehr P, Delpy D.Analysis of non-linearity of optical oxygen sensors based upon phosphorescence lifetime quenching[J]. Med Biol Eng Comput, 1994, 32(6): 659-664. [29] Becker LC, Bergfeld WF, Belsito DV, et al. Final report of the cosmetic ingredient review expert panel safety assessment of polymethyl methacrylate (PMMA), methyl methacrylate crosspolymer, and methyl methacrylate/glycol dimethacrylatecrosspolymer[J]. Int J Toxicol, 2011, 30(3 Suppl): 54S-65S. [30] Nakai Y, Yoshimizu H, Tsujita Y.Enhancement of gas permeability in HPC, CTA and PMMA under microwave irradiation[J]. Polym J, 2006, 38: 376-380. [31] Stannett V, Williams J.The permeability of poly(ethyl methacrylate) to gases and water vapor[J]. J Polym Sci Polym Symp,1965, 10(1): 45-59. [32] Chen R, Hahn CE, Farmery AD.A flowing liquid test system for assessing the linearity and time-response of rapid fibre optic oxygen partial pressure sensors[J]. Respir Physiol Neurobiol, 2012, 183(2): 100-107. [33] Saied A, Edgington L, Gale L, et al. Design of a test system for fast time response fibre optic oxygen sensors[J]. Physiol Meas, 2010, 31(4): N25-N33. [34] Formenti F, Chen R, McPeak H, et al. A fibre optic oxygen sensor that detects rapid PO2 changes under simulated conditions of cyclical atelectasis in vitro[J]. Respir Physiol Neurobiol, 2014, 191(100): 1-8. [35] Klimant I, Wolfbeis OS.Oxygen-sensitive luminescent materials based on silicone-soluble ruthenium diimine complexes[J]. Anal Chem, 1995, 67(18): 3160-3166. [36] MacCraith BD, McDonagh CM, et al. Fibre optic oxygen sensor based on fluorescence quenching of evanescent-wave excited ruthenium complexes in sol-gel derived porous coatings[J]. Analyst, 1993, 118: 385-388. [37] Formenti F, Chen R, McPeak H, et al. Intra-breath arterial oxygen oscillations detected by a fast oxygen sensor in an animal model of acute respiratory distress syndrome[J]. Br J Anaesth, 2015, 114(4): 683-688. [38] Gregory JW, Sakaue H, Liu T, et al. Fast pressure-sensitive paint for flow and acoustic diagnostics[J]. Annu Rev Fluid Mech, 2014, 46(1): 303-330. [39] Kimura F, Khalil G, Zettsu N, et al. Dual luminophore polystyrene microspheres for pressure-sensitive luminescent imaging[J]. Meas Sci Technol, 2006, 17(6): 1254. [40] Papkovsky DB, Dmitriev RI.Biological detection by optical oxygen sensing[J]. Chem Soc Rev, 2013, 42(22): 8700-8732. |