Skip to main content
Log in

The microvasculature of the 7,12-dimethylbenz(a)anthracene (DMBA)-induced rat mammary tumour

I. Vascular patterns as visualized by scanning electron microscopy of corrosion casts

  • Published:
Virchows Archiv A Aims and scope Submit manuscript

Summary

We examined the microvasculature of the 7,12-dimethylbenz(a)anthracene (DMBA)-induced rat mammary tumour by scanning electron microscopy of corrosion casts. An elaborate vascular envelope predominantly consisting of sinusoidal and venular vessels was formed around each tumour nodule. These vessels exhibited various abnormal features, whereas arterioles appeared normal. The abnormal vessels possessed many globular outpouches, possibly representing the site of angiogenesis. An additional capillary layer was seen in the marginal boundary between the tumour and host tissue. The lack of centrifugally extruding vessels in this layer may indicate a poor potency for vascular spread of tumour cells into the adjacent normal tissue. Looplike or glomerular ingrowths were frequently found on the inner aspect of the vascular capsule, which eventually developed into a dense intranodular plexus. Intranodular vessels often showed focal narrowing, tapering and/ or rupturing, possibly due to increased tissue pressure caused by proliferating tumour cells. Those surrounding necrotic portions were extremely dilated with occasional periodic varicosities. The features may be associated with the lessening of the tissue pressure resulting from tumour cell collapse.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Institutional subscriptions

Similar content being viewed by others

References

  • Bugajski A, Nowogrodzka-Zagórska M, Leńko J, Miodoński AJ (1989) Angiomorphology of the human renal clear cell carcinoma: a light and scanning electron microscopic study. Virchows Arch [A] 415:103–113

    Google Scholar 

  • Egawa J, Ishioka K, Ogata T (1979) Vascular structure of experimental tumours: appearances in scanning electron microscope. Acta Radiol Oncol 18:367–375

    Google Scholar 

  • Endrich B, Reinhold HS, Gross JF, Intaglietta M (1979) Tissue perfusion inhomogeneity during early tumor growth in rats. J Natl Cancer Inst 62:387–395

    Google Scholar 

  • Folkman J (1985) Tumor angiogenesis. In: Klein G, Weinhouse S (eds) Advances in cancer research, vol 43. Academic Press, London, pp 175–203

    Google Scholar 

  • Folkman J, Cortan RS (1976) Relation of vascular proliferation to tumor growth. Int Rev Exp Pathol 16:207–248

    Google Scholar 

  • Grunt TW, Lametschwandtner A, Karrer K, Staindl O (1986a) The angioarchitecture of the Lewis lung carcinoma in laboratory mice: a light microscopic and scanning electron microscopic study. Scanning Electron Microsc II:557–573

    Google Scholar 

  • Grunt TW, Lametschwandtner A, Karrer K (1986b) The characteristic structural features of the blood vessels of the Lewis lung carcinoma: a light microscopic and scanning electron microscopic study. Scanning Electron Microsc II: 575–589

    Google Scholar 

  • Huggins C, Grand LC, Brillantes FP (1961) Mammary cancer induced by a single feeding of polynuclear hydrocarbons, and its suppression. Nature 189:204–207

    Google Scholar 

  • Hultborn R, Tveit E, Weiss L (1983) Vascular reactivity and perfusion characteristics in 7,12-dimethylbenz(a)anthracene-induced rat mammary neoplasia. Cancer Res 43:363–366

    Google Scholar 

  • Inouē T, Osatake H (1988) A new drying method of biological specimens for scanning electron microscopy: thet-buthyl alcohol freeze-drying method. Arch Histol Cytol 51:53–59

    Google Scholar 

  • Intaglietta M, Myers RR, Gross JF, Reinhold HS (1977) Dynamics of microvascular flow in implanted mouse mammary tumours. Bibl Anat 15:273–276

    Google Scholar 

  • Murakami T (1971) Application of the scanning electron microscope to the study of the fine distribution of the blood vessels. Arch Histol Jpn 32:445–454

    Google Scholar 

  • Peters W, Teixeira M, Intaglietta M, Gross JF (1980) Microcirculatory studies in rat mammary carcinoma. 1. Transparent chamber method, development of microvasculature, and pressures in tumor vessels. J Natl Cancer Inst 65:631–642

    Google Scholar 

  • Reinhold HS, Van Den Berg-Blok A (1983) Vascularization of experimental tumours. In: Nugent J, O'Connor M (eds) Development of the vascular system. Ciba Found Symp 100. Pitman, London, pp 100–119

    Google Scholar 

  • Shimizu K, Ujiie K (1978) Structure of ocular vessels. Igaku-Shoin, Tokyo

    Google Scholar 

  • Tatematsu M, Cohen SM, Fukushima S, Shirai T, Shinohara Y, Ito N (1978) Neovascularization in benign and malignant urinary bladder epithelial proliferative lesions of the rat observed in situ by scanning electron microscopy and autoradiography. Cancer Res 38:1792–1800

    Google Scholar 

  • Thompson WD, Schiach KJ, Fraser RA, Mcintosh LC, Simpson JG (1987) Tumours acquire their vasculature by vessel incorporation not vessel ingrowth. J Pathol 151:323–332

    Google Scholar 

  • Tveit E, Weiss L, Hultborn R (1984) Blood flow and reactivity to noradrenaline in induced and autotransplanted DMBA rat mammary neoplasia. Eur J Cancer Clin Oncol 20:707–710

    Google Scholar 

  • Warren BA (1979a) The vascular morphology of tumors. In: Peterson HI (ed) Tumor blood circulation. CRC Press, Boca Raton, pp 1–47

    Google Scholar 

  • Warren BA (1979b) Tumor angiogenesis. In: Peterson HI (ed) Tumor blood circulation. CRC Press, Boca Raton, pp 49–75

    Google Scholar 

  • Weiss L, Tveit E, Hultborn R (1985) Vascular resistance characteristics of 7,12-dimethylbenz(a)anthracene-induced rat mammary tumors and normal tissues as studied in vitro. Cancer Res 45:2478–2480

    Google Scholar 

  • Wiig H, Tveit E, Hultborn R, Weiss L (1981) Interstitial and vascular pressures in rat mammary tumors. Bibl Anat 20:620–623

    Google Scholar 

  • Wood S (1973) Neoplasia and the microcirculation. In: Wells R (ed) The microcirculation in clinical medicine. Academic Press, New York, pp 275–288

    Google Scholar 

  • Yasugi T, Kaidoh T, Uehara Y (1989) Changes in density and architecture of microvessels of the rat mammary gland during pregnancy and lactation. Arch Histol Cytol 52:115–122

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Kaidoh, T., Yasugi, T. & Uehara, Y. The microvasculature of the 7,12-dimethylbenz(a)anthracene (DMBA)-induced rat mammary tumour. Vichows Archiv A Pathol Anat 418, 111–117 (1991). https://doi.org/10.1007/BF01600286

Download citation

  • Received:

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF01600286

Key words

Navigation