Relation Between Structure, Function, and Imaging in a Three-Dimensional Model of the Lung

被引:0
|
作者
Nora T. Tgavalekos
J. G. Venegas
B. Suki
K. R. Lutchen
机构
[1] Boston University,Department of Biomedical Engineering
[2] Massachusetts General Hospital,Department of Anesthesia, and Critical Care
来源
关键词
Asthma; Airway hyperresponsiveness; Ventilation distribution; PET;
D O I
暂无
中图分类号
学科分类号
摘要
Previous studies have reported morphometric models to predict function relations in the lung. These models, however, are not anatomically explicit. We have advanced a three-dimensional airway tree model to relate dynamic lung function to alterations in structure, particularly when constriction patterns are imposed heterogeneously in specific anatomic locations. First, we predicted the sensitivity of dynamic lung resistance and elastance RL and EL) to explicit forms of potential constriction patterns. Simulations show that severe and heterogeneous peripheral airway constriction confined to a single region in the lung (apex, mid, or base) will not produce substantial alterations in whole lung properties as measured from the airway opening. Conversely, when measured RL and EL are abnormal, it is likely that significant (but not necessarily homogeneous) constriction has occurred throughout the entire airway tree. We also introduce the concept of image-assisted modeling. Here positron emission tomographic imaging data sensitive to ventilation heterogeneity is synthesized with RL and EL data to help identify which airway constriction conditions could be consistent with both data sets. An ultimate goal would be personalized predictions. © 2003 Biomedical Engineering Society.
引用
收藏
页码:363 / 373
页数:10
相关论文
共 50 条
  • [21] Three-dimensional model of quasicrystalline atomic structure
    Borodin, VA
    Manichev, VM
    PHYSICAL REVIEW B, 1996, 54 (22) : 15747 - 15753
  • [22] Phase Structure of a Three-Dimensional Yukawa Model
    Sonoda, Hidenori
    PROGRESS OF THEORETICAL PHYSICS, 2011, 126 (01): : 57 - 80
  • [23] Three-dimensional model of quasicrystalline atomic structure
    Borodin, V. A.
    Manichev, V. M.
    Physical Review B: Condensed Matter, 54 (22/PT2):
  • [24] Three-dimensional imaging for thoracoscopic resection of complex lung anomalies
    Yuhei Yokoyama
    Masaaki Sato
    Mitsugu Omasa
    Hiroshi Date
    Surgical Case Reports, 3 (1)
  • [25] Lactoferrin three-dimensional structure: a framework for interpreting function
    Baker, HM
    Anderson, BF
    Kidd, RD
    Shewry, SC
    Baker, EN
    LACTOFERRIN: STRUCTURE, FUNCTION AND APPLICATIONS, 2000, 1195 : 3 - 15
  • [26] Three-dimensional structure of the gap function hemichannel.
    Perkins, GA
    Ghoshroy, S
    Goodenough, DA
    Sosinsky, GE
    BIOPHYSICAL JOURNAL, 1996, 70 (02) : SUPM7 - SUPM7
  • [27] Polysialic acid:: three-dimensional structure, biosynthesis and function
    Mühlenhoff, M
    Eckhardt, M
    Gerardy-Schahn, R
    CURRENT OPINION IN STRUCTURAL BIOLOGY, 1998, 8 (05) : 558 - 564
  • [28] Shark Skin: Three-Dimensional Structure and Hydrodynamic Function
    Lauder, G., V
    Wainwright, D. K.
    Saadat, M.
    Domel, A. G.
    Domel, G.
    Weaver, J. C.
    Ankhelyi, M., V
    Popp, M.
    Wen, L.
    Bertoldi, K.
    INTEGRATIVE AND COMPARATIVE BIOLOGY, 2019, 59 : E131 - E131
  • [29] Computational design of three-dimensional RNA structure and function
    Yesselman, Joseph D.
    Eiler, Daniel
    Carlson, Erik D.
    Gotrik, Michael R.
    d'Aquino, Anne E.
    Ooms, Alexandra N.
    Kladwang, Wipapat
    Carlson, Paul D.
    Shi, Xuesong
    Costantino, David A.
    Herschlag, Daniel
    Lucks, Julius B.
    Jewett, Michael C.
    Kieft, Jeffrey S.
    Das, Rhiju
    NATURE NANOTECHNOLOGY, 2019, 14 (09) : 866 - +
  • [30] Computational design of three-dimensional RNA structure and function
    Joseph D. Yesselman
    Daniel Eiler
    Erik D. Carlson
    Michael R. Gotrik
    Anne E. d’Aquino
    Alexandra N. Ooms
    Wipapat Kladwang
    Paul D. Carlson
    Xuesong Shi
    David A. Costantino
    Daniel Herschlag
    Julius B. Lucks
    Michael C. Jewett
    Jeffrey S. Kieft
    Rhiju Das
    Nature Nanotechnology, 2019, 14 : 866 - 873