• Journal of Innovative Optical Health Sciences
  • Vol. 7, Issue 1, 1450013 (2014)
JANA M. KAINERSTORFER, ANGELO SASSAROLI, MICHELE L. PIERRO, BERTAN HALLACOGLU, and SERGIO FANTINI
Author Affiliations
  • Department of Biomedical Engineering, Tufts University 4 Colby Street, Medford, MA 02155, USA
  • show less
    DOI: 10.1142/s1793545814500138 Cite this Article
    JANA M. KAINERSTORFER, ANGELO SASSAROLI, MICHELE L. PIERRO, BERTAN HALLACOGLU, SERGIO FANTINI. COHERENT HEMODYNAMICS SPECTROSCOPY BASED ON A PACED BREATHING PARADIGM — REVISITED[J]. Journal of Innovative Optical Health Sciences, 2014, 7(1): 1450013 Copy Citation Text show less
    References

    [1] S. Fantini, "Dynamic model for the tissue concentration and oxygen saturation of hemoglobin in relation to blood volume, flow velocity, and oxygen consumption: Implications for functional neuroimaging and coherent hemodynamics spectroscopy (CHS)," Neuroimage 85, 202–221 (2014).

    [2] M. L. Pierro, B. Hallacoglu, A. Sassaroli, J. M. Kainerstorfer, S. Fantini, "Validation of a novel hemodynamic model for coherent hemodynamics spectroscopy (CHS) and functional brain studies with fNIRS and fMRI," Neuroimage 85, 222–233 (2014).

    [3] M. Ferrari and V. Quaresima, "A brief review on the history of human functional near-infrared spectroscopy (fNIRS) development and fields of application," Neuroimage 63, 921–935 (2012).

    [4] E. M. Hillman, "Optical brain imaging in vivo: Techniques and applications from animal to man," J Biomed Opt. 12, 051402 (2007).

    [5] D. R. Leff, F. Orihuela-Espina, C. E. Elwell, T. Athanasiou, D. T. Delpy, A. W. Darzi, G. Z. Yang, "Assessment of the cerebral cortex during motor task behaviours in adults: A systematic review of functional near infrared spectroscopy (fNIRS) studies," Neuroimage 54, 2922–2936 (2011).

    [6] T. Katura, N. Tanaka, A. Obata, H. Sato, A. Maki, "Quantitative evaluation of interrelations between spontaneous low-frequency oscillations in cerebral hemodynamics and systemic cardiovascular dynamics," Neuroimage 31, 1592–1600 (2006).

    [7] M. Reinhard, E. Wehrle-Wieland, D. Grabiak, M. Roth, B. Guschlbauer, J. Timmer, C. Weiller, A. Hetzel, "Oscillatory cerebral hemodynamics — The macro- vs. microvascular level," J. Neurol. Sci. 250, 103–109 (2006).

    [8] R. Cheng, Y. Shang, D. Hayes, Jr., S. P. Saha, G. Yu, "Noninvasive optical evaluation of spontaneous low frequency oscillations in cerebral hemodynamics," Neuroimage 62, 1445–1454 (2012).

    [9] J. A. Claassen, B. D. Levine, R. Zhang, "Dynamic cerebral autoregulation during repeated squat-stand maneuvers," J. Appl. Physiol. 106, 153–160 (2009).

    [10] A. H. van Beek, J. Lagro, M. G. Olde-Rikkert, R. Zhang, J. A. Claassen, "Oscillations in cerebral blood flow and cortical oxygenation in Alzheimer's disease," Neurobiol. Aging 33, 428 e421–431 (2012).

    [11] R. Aaslid, M. Blaha, G. Sviri, C. M. Douville, D. W. Newell, "Asymmetric dynamic cerebral autoregulatory response to cyclic stimuli," Stroke 38, 1465–1469 (2007).

    [12] S. Fantini, "A new hemodynamic model shows that temporal perturbations of cerebral blood flow and metabolic rate of oxygen cannot be measured individually using functional near-infrared spectroscopy," Physiol. Measure. 35, N1–N9 (2014).

    [13] J. M. Kainerstorfer, A. Sassaroli, B. Hallacoglu, M. L. Pierro, S. Fantini, "Practical steps for applying a new dynamic model to near-infrared spectroscopy measurements of hemodynamic oscillations and transient changes: Implications for cerebrovascular and functional brain studies," Acad. Radiol. 21, 185– 196 (2014).

    [14] J. L. Chen, L.Wei, V. Acuff, D. Bereczki, F. J. Hans, T.Otsuka,W. Finnegan,C.Patlak, J. Fenstermacher, "Slightly altered permeability-surface area products imply some cerebral capillary recruitment during hypercapnia," Microvas. Res. 48, 190–211 (1994).

    [15] U. Gobel, B. Klein, H. Schrock, W. Kuschinsky, "Lack of capillary recruitment in the brains of awake rats during hypercapnia," J. Cerebral Blood Flow Metabolism: Official J. Int. Soc. Cerebral Blood Flow Metabolism 9, 491–499 (1989).

    [16] W. Kuschinsky, O. B. Paulson,"Capillary circulation in the brain," Cerebrovas. Brain Metabolism Rev. 4, 261–286 (1992).

    [17] A. Villringer, "The intravascular susceptibility effect and the underlying physiology of fMRI," Neuroimage 62, 995–999 (2012).

    [18] A. Villringer, A. Them, U. Lindauer, K. Einhaupl, U. Dirnagl, "Capillary perfusion of the rat brain cortex. An in vivo confocal microscopy study," Circulation Res. 75, 55–62 (1994).

    [19] G. Zoccoli, M. L. Lucchi, E. Andreoli, V. Bach, T. Cianci, P. Lenzi, C. Franzini, "Brain capillary perfusion during sleep," J. Cerebral Blood Flow Metabolism: Official J. Int. Soc. Cerebral Blood Flow Metabolism 16, 1312–1318 (1996).

    JANA M. KAINERSTORFER, ANGELO SASSAROLI, MICHELE L. PIERRO, BERTAN HALLACOGLU, SERGIO FANTINI. COHERENT HEMODYNAMICS SPECTROSCOPY BASED ON A PACED BREATHING PARADIGM — REVISITED[J]. Journal of Innovative Optical Health Sciences, 2014, 7(1): 1450013
    Download Citation