Coevolution of Solid Stress and Interstitial Fluid Pressure in Tumors During Progression: Implications for Vascular Collapse

被引:330
作者
Stylianopoulos, Triantafyllos [1 ]
Martin, John D. [2 ,4 ,5 ]
Snuderl, Matija [3 ,4 ,5 ,6 ,7 ]
Mpekris, Fotios [1 ]
Jain, Saloni R. [2 ,4 ,5 ]
Jain, Rakesh K. [4 ,5 ]
机构
[1] Univ Cyprus, Dept Mech & Mfg Engn, CY-1678 Nicosia, Cyprus
[2] MIT, Dept Chem Engn, Cambridge, MA 02139 USA
[3] Massachusetts Gen Hosp, Dept Pathol, Boston, MA 02114 USA
[4] Harvard Univ, Sch Med, Boston, MA USA
[5] Massachusetts Gen Hosp, Dept Radiat Oncol, Edwin L Steele Lab, Boston, MA 02114 USA
[6] NYU, Dept Pathol, Langone Med Ctr, New York, NY 10016 USA
[7] Sch Med, New York, NY USA
关键词
CANCER-CELLS; MACROMOLECULES; NORMALIZATION; HYPERTENSION; TRANSPORT; GROWTH; BLOOD; SIZE;
D O I
10.1158/0008-5472.CAN-12-4521
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
The stress harbored by the solid phase of tumors is known as solid stress. Solid stress can be either applied externally by the surrounding normal tissue or induced by the tumor itself due to its growth. Fluid pressure is the isotropic stress exerted by the fluid phase. We recently showed that growth-induced solid stress is on the order of 1.3 to 13.0 kPa (10-100 mmHg) - high enough to cause compression of fragile blood vessels, resulting in poor perfusion and hypoxia. However, the evolution of growth-induced stress with tumor progression and its effect on cancer cell proliferation in vivo is not understood. To this end, we developed a mathematical model for tumor growth that takes into account all three types of stresses: growth-induced stress, externally applied stress, and fluid pressure. First, we conducted in vivo experiments and found that growth-induced stress is related to tumor volume through a biexponential relationship. Then, we incorporated this information into our mathematical model and showed that due to the evolution of growth-induced stress, total solid stress levels are higher in the tumor interior and lower in the periphery. Elevated compressive solid stress in the interior of the tumor is sufficient to cause the collapse of blood vessels and results in a lower growth rate of cancer cells compared with the periphery, independently from that caused by the lack of nutrients due to vessel collapse. Furthermore, solid stress in the periphery of the tumor causes blood vessels in the surrounding normal tissue to deform to elliptical shapes. We present histologic sections of human cancers that show such vessel deformations. Finally, we found that fluid pressure increases with tumor growth due to increased vascular permeability and lymphatic impairment, and is governed by the microvascular pressure. Crucially, fluid pressure does not cause vessel compression of tumor vessels. (C) 2013 AACR.
引用
收藏
页码:3833 / 3841
页数:9
相关论文
共 32 条
  • [1] On the mechanics of a growing tumor
    Ambrosi, D
    Mollica, F
    [J]. INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 2002, 40 (12) : 1297 - 1316
  • [2] Cell adhesion mechanisms and stress relaxation in the mechanics of tumours
    Ambrosi, Davide
    Preziosi, Luigi
    [J]. BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2009, 8 (05) : 397 - 413
  • [3] Both p16Ink4a and the p19Arf-p53 pathway constrain progression of pancreatic adenocarcinoma in the mouse
    Bardeesy, N
    Aguirre, AJ
    Chu, GC
    Cheng, KH
    Lopez, LV
    Hezel, AF
    Feng, B
    Brennan, C
    Weissleder, R
    Mahmood, U
    Hanahan, D
    Redston, MS
    Chin, L
    DePinho, RA
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (15) : 5947 - 5952
  • [4] TRANSPORT OF FLUID AND MACROMOLECULES IN TUMORS .1. ROLE OF INTERSTITIAL PRESSURE AND CONVECTION
    BAXTER, LT
    JAIN, RK
    [J]. MICROVASCULAR RESEARCH, 1989, 37 (01) : 77 - 104
  • [5] TRANSPORT OF FLUID AND MACROMOLECULES IN TUMORS .2. ROLE OF HETEROGENEOUS PERFUSION AND LYMPHATICS
    BAXTER, LT
    JAIN, RK
    [J]. MICROVASCULAR RESEARCH, 1990, 40 (02) : 246 - 263
  • [6] BOUCHER Y, 1990, CANCER RES, V50, P4478
  • [7] BOUCHER Y, 1992, CANCER RES, V52, P5110
  • [8] Chauhan VP, 2012, NAT NANOTECHNOL, V7, P383, DOI [10.1038/nnano.2012.45, 10.1038/NNANO.2012.45]
  • [9] Micro-Environmental Mechanical Stress Controls Tumor Spheroid Size and Morphology by Suppressing Proliferation and Inducing Apoptosis in Cancer Cells
    Cheng, Gang
    Tse, Janet
    Jain, Rakesh K.
    Munn, Lance L.
    [J]. PLOS ONE, 2009, 4 (02):
  • [10] Fung Y, 2013, Biomechanics: mechanical properties of living tissues