PubMed HealthSearch

Biomedical subjects

R E Rowland

Publications and source records attributed to R E Rowland.

15 recordsLinked to original sources

Cancer risk from the lifetime intake of Ra and U isotopes.

From extensive human data on the induction of skeletal cancers (bone sarcomas and carcinomas of the head sinuses) by 226Ra, 228Ra and 224Ra, the cumulative lifetime risk to 1 million people, each ingesting 5 pCi of a Ra isotope per day, was calculated to be nine bone sarcomas plus 12 head carcinomas for 226Ra, 22 bone sarcomas for 228Ra, and 1.6 bone sarcomas for 224Ra. Assuming that the risk per rad of average skeletal dose is equal for 226Ra and the U isotopes with half-lives exceeding 1000 yr and that the equilibrium skeletal content is 25 times the daily ingestion of 226Ra, but 11 times the daily ingestion of long-lived U, the cumulative life-span risk to 1 million persons, each ingesting 5 pCi per day of 233U, 234U, 235U, 236U or 238U, is estimated to be about 1.5 bone sarcomas. The U risk is not well established and additional research is needed on the metabolism of U in humans and its carcinogenicity in laboratory animals. These estimates assume linear dose responses. However, if incidence varies with the square of dose, virtually no induced cancers would be expected from these levels of radioactivity.

Alpha Particles

Dose-response relationships for radium-induced bone sarcomas.

The incidence of bone sarcomas among 3055 female radium-dial workers who entered the dial industry before 1950 was used to determine dose-response relationships for the induction of bone sarcomas by radium. Two subpopulations were analyzed: all measured cases who survived at least 5 yr after the start of employment and all cases who survived at least 2 yr after first measurement. The first constituted a group based on year of entry; it contained 1468 women who experienced 42 bone sarcomas; the expected number was 0.4. The second comprised a group based on first measurement; it contained 1257 women who experienced 13 bone sarcomas; the expected number was 0.2. The dose-response function, I = (C + alpha D + beta D2)e-gammaD, and simplifications of this general form, were fit to each data set. Incidence (I) was in units of bone sarcomas per person-yr; (D) was the quantity (muCi) of radium that entered the blood. Two functions, I = (C + alpha D + beta D2)e-gammaD and I = (C + beta D2)e-gammaD, fit the data for year of entry (p greater than or equal to 0.05); both these functions and I = (C + alpha D) fit the data for first measurement. The function I = (C + beta D2)e-gammaD was used to predict the number of bone sarcomas in all other pre-1950 radium cases (medical, laboratory and other exposures); fewer were actually observed than the fit of this function to the female dial workers predicted.

Adult