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Biomedical subjects

M Cullinan

Publications and source records attributed to M Cullinan.

3 recordsLinked to original sources

UV induction of transforming growth factor alpha in melanoma cell lines is a posttranslational event.

Low, mitogenic fluences of UVC (3.7-5.6 Jm-2) have previously been shown to cause increases of radioimmunoassayable transforming growth factor alpha (TGF alpha) in the medium and cells of cultures of melanocytes, melanoma lines, and HeLa cells (Ellem, K.A.O., Cullinan, M., Baumann, K.C., Dunstan, A.: Carcinogenesis 9:797-801, 1988). Here the cellular mechanism of this increase is explored by Northern blotting to detect any changes in TGF alpha mRNA levels, and the use of inhibitors of macromolecular synthesis to attempt to block the increase in TGF alpha protein. We were unable to detect any increase in TGF alpha mRNA levels attributable to UVC between 2 and 24 hours after irradiation. Inhibition of DNA synthesis (arabinosylcytosine, 10 microM), RNA synthesis (actinomycin D, 3 micrograms/ml; DRB 93 microM), or protein synthesis (cycloheximide, 10 micrograms/ml) failed to prevent the UVC induced increase in TGF alpha. We conclude that the UVC induction of TGF alpha is by a posttranslational mechanism. There was considerable discordance between the amount of TGF alpha protein and its mRNA in cultures of 15 different melanoma cell lines, which again emphasized that posttranscriptional mechanisms modulate the release of immunodetectable TGF alpha. We also found that the inhibitors themselves were capable of inducing an increase in TGF alpha in MM229 cultures. This suggests that the inhibitors and UV may effect the increase by a common mechanism, perhaps the activation of cell surface proteases as suggested for other stimuli (e.g., Pandiella, A., and Massagué, J.: Proc. Natl. Acad. Sci., USA 88:1726-1730, 1991) and that the response may be part of a global response to perturbation of DNA synthesis.

Cell Death

UVR induction of TGF alpha: a possible autocrine mechanism for the epidermal melanocytic response and for promotion of epidermal carcinogenesis.

The occurrence of the epidermal growth factor homologue, transforming growth factor alpha (TGF alpha), in embryonic and neoplastic tissues suggests that it may be an oncofetal version of epidermal growth factor. A strong case is developing for TGF alpha to have an autocrine mode of action in sustaining the autonomous growth of several types of tumour. We propose that TGF alpha normally has an autocrine role not only in stimulating the growth of some fetal tissues but also with postnatal epidermal cells in response to local stimuli--in particular ultraviolet radiation (UVR). As a first step to test this hypothesis we have checked whether UVR will induce the production of TGF alpha, measured by radioimmunoassay, using a highly specific monoclonal antibody which recognizes native, biologically active human TGF alpha. We found that cultures of normal foreskin melanocytes do not produce detectable amounts of TGF alpha when grown under routine conditions, but, within 12 h of exposure to low doses of short-wavelength UVR, significant quantities of TGF alpha are produced. The UVR-induced TGF alpha is both cell associated and released into the medium of these cultures. Also, UVR has a promoting action on epidermal cells which have been initiated by carcinogenic activity. A significant part of the promoting activity may be due to autocrine stimulation of multiplication of partially transformed epidermal cells. In this regard we found that UVR induced TGF alpha in HeLa cells and all human melanoma lines so far tested. Induction was complete within 24 h of a single exposure. Dose-response curves of TGF alpha induction in a malignant melanoma cell line showed a distinctive peak of factor induced by low (2 J/m2) doses of UVR. Higher doses which inhibit [3H]thymidine incorporation resulted in lower levels of induced TGF alpha. These findings are consistent with the participation of TGF alpha as an autocrine mediator of UVR-induced tumour promotion, as well as cell multiplication, in sun-exposed skin.

Dose-Response Relationship, Radiation

Digital image capture and analysis for split-drop micropuncture.

A method for automated image capture and analysis of shrinking drop sequences is described. The procedure can be managed by a single operator and allows estimates of proximal tubule volume flux to be calculated during the experiment. Speed of analysis is increased considerably (mean time 1.5 min per sequence) compared with previous methods. The potential exists for measurement of droplets in tubules that follow a tortuous path in the horizontal plane and further increases in capture and analysis rate would allow estimation of volume flux under non-steady state conditions. Film processing is eliminated and the removal of operator errors, bias and fatigue associated with manual measurement, coupled with the greatly reduced time required for analysis of sequences makes the shrinking drop method much more reliable and attractive.

Animals