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Review

Breast cancer metastasis progression as revealed by intravital videomicroscopy

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Pages 1271-1279 | Published online: 10 Jan 2014

References

  • Parmar DN, Awwad ST, Petroll WM, Bowman RW, McCulley JP, Cavanagh HD. Tandem scanning confocal corneal microscopy in the diagnosis of suspected acanthamoeba keratitis. Ophthalmology113(4), 538–547 (2006).
  • Boerma EC, Mathura KR, van der Voort PH, Spronk PE, Ince C. Quantifying bedside-derived imaging of microcirculatory abnormalities in septic patients: a prospective validation study. Crit. Care9(6), R601–R606 (2005).
  • Groner W, Winkelman JW, Harris AG et al. Orthogonal polarization spectral imaging: a new method for study of the microcirculation. Nat. Med.5(10), 1209–1212 (1999).
  • Dekker E, Fockens P. Advances in colonic imaging: new endoscopic imaging methods. Eur. J. Gastroenterol. Hepatol.17(8), 803–808 (2005).
  • Ishibashi F, Aziz K, Abela GS, Waxman S. Update on coronary angioscopy: review of a 20-year experience and potential application for detection of vulnerable plaque. J. Interv. Cardiol.19(1), 17–25 (2006).
  • Mokbel K, Escobar PF, Matsunaga T. Mammary ductoscopy: current status and future prospects. Eur. J. Surg. Oncol.31(1), 3–8 (2005).
  • Wirtzfeld LA, Graham KC, Groom AC et al. Volume measurement variability in three-dimensional high-frequency ultrasound images of murine liver metastases. Phys. Med. Biol.51(10), 2367–2381 (2006).
  • Graham KC, Wirtzfeld LA, MacKenzie LT et al. Three-dimensional high-frequency ultrasound imaging for longitudinal evaluation of liver metastases in preclinical models. Cancer Res.65(12), 5231–5237 (2005).
  • Ford NL, Graham KC, Groom AC, Macdonald IC, Chambers AF, Holdsworth DW. Time-course characterization of the computed tomography contrast enhancement of an iodinated blood-pool contrast agent in mice using a volumetric flat-panel equipped computed tomography scanner. Invest. Radiol.41(4), 384–390 (2006).
  • Heyn C, Ronald JA, Mackenzie LT et al. In vivo magnetic resonance imaging of single cells in mouse brain with optical validation. Magn. Reson. Med.55(1), 23–29 (2006).
  • Jain RK, Munn LL, Fukumura D. Dissecting tumour pathophysiology using intravital microscopy. Nat. Rev. Cancer2(4), 266–276 (2002).
  • Citrin D, Camphausen K. Optical imaging of mice in oncologic research. Expert Rev. Anticancer Ther.4(5), 857–864 (2004).
  • Alencar H, Mahmood U, Kawano Y, Hirata T, Weissleder R. Novel multiwavelength microscopic scanner for mouse imaging. Neoplasia7(11), 977–983 (2005).
  • Hoffman RM. Advantages of multi-color fluorescent proteins for whole-body and in vivo cellular imaging. J. Biomed. Opt.10(4), 41202 (2005).
  • Yamauchi K, Yang M, Jiang P et al. Development of real-time subcellular dynamic multicolor imaging of cancer-cell trafficking in live mice with a variable-magnification whole-mouse imaging system. Cancer Res.66(8), 4208–4214 (2006).
  • Duda DG, Fukumura D, Munn LL et al. Differential transplantability of tumor-associated stromal cells. Cancer Res.64(17), 5920–5924 (2004).
  • Mueller MM. Inflammation in epithelial skin tumours: old stories and new ideas. Eur. J. Cancer42(6), 735–744 (2006).
  • Chang HY, Nuyten DS, Sneddon JB et al. Robustness, scalability, and integration of a wound-response gene expression signature in predicting breast cancer survival. Proc. Natl Acad. Sci. USA102(10), 3738–3743 (2005).
  • MacDonald IC, Groom AC, Chambers AF. Cancer spread and micrometastasis development: quantitative approaches for in vivo models. Bioessays24(10), 885–893 (2002).
  • Koop S, MacDonald IC, Luzzi K et al. Fate of melanoma cells entering the microcirculation: over 80% survive and extravasate. Cancer Res.55(12), 2520–2523 (1995).
  • Japee SA, Pittman RN, Ellis CG. Automated method for tracking individual red blood cells within capillaries to compute velocity and oxygen saturation. Microcirculation12(6), 507–515 (2005).
  • Japee SA, Pittman RN, Ellis CG. A new video image analysis system to study red blood cell dynamics and oxygenation in capillary networks. Microcirculation12(6), 489–506 (2005).
  • Koop S, Schmidt EE, MacDonald IC et al. Independence of metastatic ability and extravasation: metastatic ras-transformed and control fibroblasts extravasate equally well. Proc. Natl Acad. Sci. USA93(20), 11080–11084 (1996).
  • Abshagen K, Eipel C, Menger MD, Vollmar B. Comprehensive analysis of the regenerating mouse liver: an in vivo fluorescence microscopic and immunohistological study. J. Surg. Res.134(2), 354–362 (2006).
  • Hoffman RM. Green fluorescent protein imaging of tumor cells in mice. Lab. Anim.31(4), 34–41 (2002).
  • Zacharakis G, Kambara H, Shih H et al. Volumetric tomography of fluorescent proteins through small animals in vivo. Proc. Natl Acad. Sci. USA102(51), 18252–18257 (2005).
  • Yamauchi K, Yang M, Jiang P et al. Real-time in vivo dual-color imaging of intracapillary cancer cell and nucleus deformation and migration. Cancer Res.65(10), 4246–4252 (2005).
  • Yang M, Li L, Jiang P, Moossa AR, Penman S, Hoffman RM. Dual-color fluorescence imaging distinguishes tumor cells from induced host angiogenic vessels and stromal cells. Proc. Natl Acad. Sci. USA100(24), 14259–14262 (2003).
  • Yang M, Reynoso J, Jiang P, Li L, Moossa AR, Hoffman RM. Transgenic nude mouse with ubiquitous green fluorescent protein expression as a host for human tumors. Cancer Res.64(23), 8651–8656 (2004).
  • Yang M, Baranov E, Wang JW et al. Direct external imaging of nascent cancer, tumor progression, angiogenesis, and metastasis on internal organs in the fluorescent orthotopic model. Proc. Natl Acad. Sci. USA99(6), 3824–3829 (2002).
  • Condeelis J, Segall JE. Intravital imaging of cell movement in tumours. Nat. Rev. Cancer3(12), 921–930 (2003).
  • Naumov GN, MacDonald IC, Weinmeister PM et al. Persistence of solitary mammary carcinoma cells in a secondary site: a possible contributor to dormancy. Cancer Res.62(7), 2162–2168 (2002).
  • Stroh M, Zimmer JP, Duda DG et al. Quantum dots spectrally distinguish multiple species within the tumor milieu in vivo. Nat. Med.11(6), 678–682 (2005).
  • Varghese HJ, MacKenzie LT, Groom AC, Ellis CG, Chambers AF, MacDonald IC. Mapping of the functional microcirculation in vital organs using contrast-enhanced in vivo video microscopy. Am. J. Physiol. Heart Circ. Physiol.288(1), H185–H193 (2005).
  • Anan K, Mitsuyama S, Kuga H et al. Double mapping with subareolar blue dye and peritumoral green dye injections decreases the false-negative rate of dye-only sentinel node biopsy for early breast cancer: 2-site injection is more accurate than 1-site injection. Surgery139(5), 624–629 (2006).
  • Hagendoorn J, Tong R, Fukumura D et al. Onset of abnormal blood and lymphatic vessel function and interstitial hypertension in early stages of carcinogenesis. Cancer Res.66(7), 3360–3364 (2006).
  • Tauber S, Menger MD, Lehr HA. Microvascular in vivo assessment of reperfusion injury: significance of prostaglandin E1 and I2 in postischemic "no-reflow" and "reflow-paradox". J. Surg. Res.120(1), 1–11 (2004).
  • Giepmans BN, Adams SR, Ellisman MH, Tsien RY. The fluorescent toolbox for assessing protein location and function. Science312(5771), 217–224 (2006).
  • Cheng Z, Wu Y, Xiong Z, Gambhir SS, Chen X. Near-infrared fluorescent RGD peptides for optical imaging of integrin α vs β3 expression in living mice. Bioconjug. Chem.16(6), 1433–1441 (2005).
  • Pollmann MA, Shao Q, Laird DW, Sandig M. Connexin 43 mediated gap junctional communication enhances breast tumor cell diapedesis in culture. Breast Cancer Res.7(4), R522–R534 (2005).
  • Weissleder R, Tung CH, Mahmood U, Bogdanov A Jr. In vivo imaging of tumors with protease-activated near-infrared fluorescent probes. Nat. Biotechnol.17(4), 375–378 (1999).
  • Hoffman RM. Orthotopic metastatic mouse models for anticancer drug discovery and evaluation: a bridge to the clinic. Invest. New Drugs17(4), 343–359 (1999).
  • Welch DR. Technical considerations for studying cancer metastasis in vivo. Clin. Exp. Metastasis15(3), 272–306 (1997).
  • Morris VL, MacDonald IC, Koop S, Schmidt EE, Chambers AF, Groom AC. Early interactions of cancer cells with the microvasculature in mouse liver and muscle during hematogenous metastasis: videomicroscopic analysis. Clin. Exp. Metastasis11(5), 377–390 (1993).
  • Luzzi KJ, MacDonald IC, Schmidt EE et al. Multistep nature of metastatic inefficiency: dormancy of solitary cells after successful extravasation and limited survival of early micrometastases. Am. J. Pathol.153(3), 865–873 (1998).
  • Cameron MD, Schmidt EE, Kerkvliet N et al. Temporal progression of metastasis in lung: cell survival, dormancy, and location dependence of metastatic inefficiency. Cancer Res.60(9), 2541–2546 (2000).
  • Allan AL, Vantyghem SA, Tuck AB, Chambers AF, Chin-Yee IH, Keeney M. Detection and quantification of circulating tumor cells in mouse models of human breast cancer using immunomagnetic enrichment and multiparameter flow cytometry. Cytometry A65(1), 4–14 (2005).
  • Vantyghem SA, Allan AL, Postenka CO et al. A new model for lymphatic metastasis: development of a variant of the MDA-MB-468 human breast cancer cell line that aggressively metastasizes to lymph nodes. Clin. Exp. Metastasis22(4), 351–361 (2005).
  • Chambers AF, Groom AC, MacDonald IC. Dissemination and growth of cancer cells in metastatic sites. Nat. Rev. Cancer2(8), 563–372 (2002).
  • Scherbarth S, Orr FW. Intravital videomicroscopic evidence for regulation of metastasis by the hepatic microvasculature: effects of interleukin-1α on metastasis and the location of B16F1 melanoma cell arrest. Cancer Res.57(18), 4105–4110 (1997).
  • Wong CW, Song C, Grimes MM et al. Intravascular location of breast cancer cells after spontaneous metastasis to the lung. Am. J. Pathol.161(3), 749–753 (2002).
  • Hangan D, Uniyal S, Morris VL et al. Integrin VLA-2 (α2β1) function in postextravasation movement of human rhabdomyosarcoma RD cells in the liver. Cancer Res.56(13), 3142–3149 (1996).
  • Naumov GN, MacDonald IC, Chambers AF, Groom AC. Solitary cancer cells as a possible source of tumour dormancy? Semin. Cancer Biol.11(4), 271–276 (2001).
  • Naumov GN, Townson JL, MacDonald IC et al. Ineffectiveness of doxorubicin treatment on solitary dormant mammary carcinoma cells or late-developing metastases. Breast Cancer Res. Treat.82(3), 199–206 (2003).
  • Varghese HJ, Mackenzie LT, Groom AC et al. In vivo videomicroscopy reveals differential effects of the vascular-targeting agent ZD6126 and the anti-angiogenic agent ZD6474 on vascular function in a liver metastasis model. Angiogenesis7(2), 157–164 (2004).
  • Koop S, Khokha R, Schmidt EE et al. Overexpression of metalloproteinase inhibitor in B16F10 cells does not affect extravasation but reduces tumor growth. Cancer Res.54(17), 4791–4797 (1994).
  • Morris VL, Schmidt EE, Koop S et al. Effects of the disintegrin eristostatin on individual steps of hematogenous metastasis. Exp. Cell Res.219(2), 571–578 (1995).
  • Citrin D, Lee AK, Scott T et al. In vivo tumor imaging in mice with near-infrared labeled endostatin. Mol. Cancer Ther.3(4), 481–488 (2004).
  • Janicki SM, Tsukamoto T, Salghetti SE et al. From silencing to gene expression: real-time analysis in single cells. Cell116(5), 683–698 (2004).
  • Ji JW, Tsoukias NM, Goldman D, Popel AS. A computational model of oxygen transport in skeletal muscle for sprouting and splitting modes of angiogenesis. J. Theor. Biol.241(1), 94–108 (2005).
  • Goldman D, Bateman RM, Ellis CG. Effect of decreased O2 supply on skeletal muscle oxygenation and O2 consumption during sepsis: role of heterogeneous capillary spacing and blood flow. Am. J. Physiol. Heart Circ. Physiol.290(6), H2277–H2285 (2006).

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