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Biomedical subjects

H H Rossi

Publications and source records attributed to H H Rossi.

At least 19 recordsLinked to original sources

A comment on the 1990 recommendations of the ICRP.

ICRP Publication 60 recommends a change relating to the numerical assessment of radiation quality in radiation protection. The quality factor, Q, is to be replaced by "radiation weighting factors," WR, and the quantity "effective dose equivalent" is to be supplanted by "effective dose." Reasons are given why it is virtually impossible to measure this quantity and why it appears unavoidable that practical measurements will continue to be based on the current system. No sensible justification was provided for the proposed change, which is likely to cause confusion.

Acetates

Compound dual radiation action. I. General aspects.

The theory of dual radiation action (A. M. Kellerer and H. H. Rossi, Curr. Top. Radiat. Res. Q. 8, 85-158, 1972) has attributed the effects of ionizing radiation on eukaryotes to the production of molecular changes (sublesions) that combine pairwise to produce injury (lesions) responsible for radiation effects. If the yield of sublesions is independent of radiation quality (as is currently assumed), dual radiation action results in the well-known proportionality between the average yield of lesions and alpha D+beta D2, where beta is a radiation-independent quantity. It has, however, been observed that beta changes with radiation type. In this paper we propose an explanation of this discrepancy. Specifically, we suggest that dual radiation action-type processes where beta is variable are the result of a mechanism--termed compound dual radiation action--which consists of a sequence of simple dual radiation action processes, each process being the causative agent for the next one. The sequence, single-strand DNA breaks, double-strand DNA breaks (chromosome breaks), and exchange-type chromosomal aberrations, is one such example examined in the paper.

Chromosome Aberrations

On the question of RBE reversal at high doses.

We present theoretical arguments to explain observations of a "reversal" of the RBE at relatively large doses; that is, the RBE of high-LET vs low-LET radiation is less than one. Numerical examples are given and the results of Bogo et al. (Radiat. Res. 118, 341-352, 1989) are discussed qualitatively.

Dose-Response Relationship, Radiation

Intermediate dosimetric quantities.

The transfer of energy from ionizing radiation to matter involves a series of steps. In wide ranges of their energy spectra photons and neutrons transfer energy to an irradiated medium almost exclusively by the production of charged particles which ionize and thereby produce electrons that can ionize in turn. The examination of these processes leads to a series of intermediate quantities. One of these is kerma, which has long been employed as a measure of the energy imparted in the first of the interactions. It depends only on the fluence of uncharged particles and is therefore--unlike absorbed dose and electron fluence--insensitive to local differences of receptor geometry and composition. An analogous quantity for charged-particle fields, cema (converted energy per unit mass), is defined, which quantifies the energy imparted in terms of the interactions of charged particles, disregarding energy dissipation by secondary electrons. Cema can be expressed as an integral over the fluence of ions times their stopping power. However, complications arise when the charged particles are electrons, and when their fluence cannot be separated from that of the secondaries. The resulting difficulty can be circumvented by the definition of reduced cema. This quantity corresponds largely to the concept employed in the cavity theory of Spencer and Attix. In reduced cema not all secondary electrons but all electrons below a chosen cutoff energy, delta, are considered to be absorbed locally. When the cutoff energy is reduced, cema approaches absorbed dose and thereby becomes sensitive to highly local differences in geometry or composition. With larger values of delta, reduced cema is a useful parameter to specify the dose-generating potential of a charged-particle field 'free in air' or in vacuo. It is nearly equal to the mean absorbed dose in a sphere with radius equal to the range of electrons of energy delta. Reduced cema is a function of the fluence at the specified location at and above the chosen cutoff energy. Its definition requires a modification of restricted linear collision stopping power, L delta, and it is recommended that the definition of L delta be so changed.

Models, Theoretical

The radiobiological significance of spatial and temporal distribution of energy absorbed from ionizing radiations.

The cells of higher organisms respond in a non-linear fashion to the energy absorbed from ionizing radiation. However, there appears to be no indication of a dependence that is of a higher power than the square of the absorbed energy. This relatively simple alternative permits operational definitions of two types of injuries, termed lesions and sublesions, and a basic description in terms of dual radiation action. There are, however, various complicating factors and uncertainties. Further progress requires the development of a modified microdosimetry that incorporates energy transport, a more complete treatment of saturation and especially a specific identification of what is probably damage to DNA.

Animals

A generalized definition of dosimetric quantities.

The current definitions of microdosimetric and dosimetric quantities use the notion of 'ionizing radiation'. However, this notion is not rigorously defined, and its definition would require the somewhat arbitrary choice of specified energy cut-off values for different types of particles. Instead of choosing fixed cut-off values one can extend the system of definitions by admitting the free selection of a category of types and energies of particles that are taken to be part of the field. In this way one extends the system of dosimetric quantities. Kerma and absorbed dose appear then as special cases of a more general dosimetric quantity, and an analogue to kerma can be obtained for charged particle fields; it is termed cema. A modification that is suitable for electron fields is termed reduced cema.

Radiation Dosage

Microdosimetric measurements and the variance-covariance method. Some experimental experience.

Systematic and statistical uncertainties in the variance-covariance method have been investigated. Two spherical wall-less detectors have been used to determine the dose mean lineal energy (yD) in a neutron beam of 5.7 MeV produced by a Van de Graaff accelerator. It is shown that certain systematic uncertainties influenced the mean yD of the two detectors much less than yD from only one of them. A statistical uncertainty of 6% (95% confidence level) was achieved if yD was calculated from 2000 measurements. In this particular experiment insufficient shieldings of the preamplifiers positioned in the beam turned out to limit the possibility to measure below 20 nm.

Analysis of Variance

Estimation of the quality factor on the basis of multi-event microdosimetric distributions.

The measurement of microdosimetric distributions for the purpose of estimating the quality factor, Q, may be encumbered in pulsed radiation fields--as produced, for instance, by accelerators with low duty cycle--because of a signal pile-up. We propose a method of estimating Q from the first several moments of multi-event distributions. In addition to overcoming the high dose-rate problems, the measurement of such distributions can be performed in significantly smaller volumes than conventional microdosimetry, thus raising the possibility of reducing the site diameter (presently 1 micron) for which y in the function Q(y) is specified.

Radiation Dosage

A multi-element proportional counter for radiation protection measurements.

A detector incorporating about 300 individual counting volumes is described, and the results of performance tests are reported. The device can be employed for a direct measurement of the dose equivalent in an unspecified radiation field on the basis of the lineal energy spectrum in 1-micron diameter tissue regions. It is substantially smaller than a conventional tissue equivalent proportional counter yielding the same counting rate and may be useful for measurements in phantoms.

Radiometry

Microdosimetry near the trajectory of high-energy heavy ions.

Single-event energy distributions were measured in a 1.3-micron-diameter site as a function of radial distance from the trajectory of high-energy iron ions having an energy of about 600 MeV/amu. It was found that beyond distances of a few micrometers the average lineal energy of the (mostly single) secondary electrons (delta rays) is of the order of 3 keV/micron. This is similar to the value found in a medium irradiated by 170-keV photons. The frequency-mean specific energy for delta rays occurring at large distances from the path of the primary ion exceeds the calculated (radial) absorbed dose by two orders of magnitude.

Ions

The role of microdosimetry in radiobiology.

Microdosimetry is a branch of radiological physics that provides quantitative characterization of the non-uniformity of energy deposition in uniformly irradiated matter. Consideration based on microdosimetry indicate that the action of ionizing radiation on the cells of higher organisms depends on the square of the specific energy absorbed in subcellular volumes. This is the basis of the Theory of Dual Radiation Action. The basic postulate of this theory is reviewed and four factors are discussed that modify its elementary formulation.

Animals

Oncogenic transformation of mammalian cells in vitro with split doses of x-rays.

An established line of mouse fibroblasts, C3H/10T1/2 cells, was used for the assessment in vitro of oncogenic transformations caused by single and split doses of x-rays. The shape of the dose-response relationship was determined over the range from 0.1 to 10 Gy. It was found that splitting the x-ray dose into two equal fractions, separated by 5 hr, led to a reduction in transformation frequency at doses above 1.5-2 Gy but to an enhancement of transformation at lower doses. The observations reported cast doubt on the assessment of human cancer risk at lo dose levels by a linear extrapolation from available high-dose data from the Japanese atomic bomb survivors or from persons exposed for medical purposes.

Animals