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P B Selby

Publications and source records attributed to P B Selby.

12 recordsLinked to original sources

Specific-locus experiments show that female mice exposed near the time of birth to low-LET ionizing radiation exhibit both a low mutational response and a dose-rate effect.

Female mice were exposed to 300 R of 73-93 R/min X-radiation either as fetuses at 18.5 d post conception (p.c.) or within 9 h after birth. Combining the similar results from these two groups yielded a specific-locus mutation frequency of 9.4 X 10(-8) mutation/locus/R, which is statistically significantly higher than the historical-control mutation frequency, but much lower than the rate obtained by irradiating mature and maturing oocytes in adults. Other females, exposed at 18.5 days p.c. to 300 R of 0.79 R/min gamma-radiation, yielded a mutation frequency that was statistically significantly lower than the frequency at high dose rates. The low-dose-rate group also had markedly higher fertility. It appears that the dose-rate effect for mutations induced near the time of birth may be more pronounced than that reported for mature and maturing oocytes of adults. A hypothesis sometimes advanced to explain low mutation frequencies recovered from cell populations that experience considerable radiation-induced cell killing is that there is selection against mutant cells. The reason for the relatively low mutational response following acute irradiation in our experiments is unknown; however, the finding of a dose-rate effect in these oocytes in the presence of only minor radiation-induced cell killing (as judged from fertility) makes it seem unlikely that selection was responsible for the low mutational response following acute exposure. Had selection been an important factor, the mutation frequency should have increased when oocyte killing was markedly reduced.

Alleles

A strategy for fine-structure functional analysis of a 6- to 11-centimorgan region of mouse chromosome 7 by high-efficiency mutagenesis.

A refined functional map of a 6- to 11-centimorgan region surrounding the albino (c) locus in mouse chromosome 7 is being generated by N-ethyl-N-nitrosourea (EtNU) "saturation" mutagenesis of stem-cell spermatogonia. In the first phase of an experiment that will eventually test at least 3000 gametes, we screened 972 mutagenized gametes for the induction of both lethal and visible mutations with a two-cross breeding protocol. Thirteen mutations mapping within the limits of a segment corresponding to the cytologically visible Df(c Mod-2 sh-1)26DVT deletion were recovered. They represented three phenotypic groups: prenatal lethality (six mutations); a fitness/runting syndrome (three mutations, provisionally designated as fit variants); and a neurological/balance-defect abnormality (four mutations). Complementation analysis provided evidence for a true repeat mutation at the sh-1 (shaker-1) locus (for the neurological mutations) and another at the here defined fit-1 (fitness-1) locus. In addition, four complementation groups were defined by induced lethal mutations; the two other lethal mutations were each part of a cluster. The recovery of the repeat mutations suggests that the EtNU-induced mutation rate, estimated from specific-locus tests, should make it possible to achieve saturation mutagenesis of a chromosomal region. This experiment is providing basic logistical and statistical information on which to base strategies for expanding the functional map of larger segments of the mouse genome by experimental mutagenesis. It is also yielding additional mutations useful in dissecting the functional and molecular complexity of this segment of chromosome 7.

Albinism

Molecular and genetic characterization of a radiation-induced structural rearrangement in mouse chromosome 2 causing mutations at the limb deformity and agouti loci.

Molecular characterization of mutations in the mouse, particularly those involving agent-induced major structural alterations, is proving to be useful for correlating the structure and expression of individual genes with their function in the whole organism. Here we present the characterization of a radiation-induced mutation that simultaneously generated distinct alleles of both the limb deformity (ld) and agouti (a) loci, two developmentally important regions of chromosome 2 normally separated by 20 centimorgans. Cytogenetic analysis revealed that an interstitial segment of chromosome 17 (17B- 17C; or, possibly, 17A2-17B) had been translocated into the distal end of chromosome 2, resulting in a smaller-than-normal chromosome 17 (designated 17del) and a larger form of chromosome 2 (designated 2(17). Additionally, a large interstitial segment of the 2(17) chromosome, immediately adjacent and proximal to the insertion site, did not match bands 2E4-2H1 at corresponding positions on a normal chromosome 2. Molecular analysis detected a DNA rearrangement in which a portion of the ld locus was joined to sequences normally tightly linked to the a locus. This result, along with the genetic and cytogenetic data, suggests that the alleles of ld and a in this radiation-induced mutation, designated ldIn2 and ajIn2, were associated with DNA breaks caused by an inversion of an interstitial segment in the 2(17) chromosome.

Abnormalities, Radiation-Induced

The 1986 and 1988 UNSCEAR (United Nations Scientific Committee on the Effects of Atomic Radiation) reports: findings and implications.

The United Nations Scientific Committee on the Effects of Atomic Radiation (UNSCEAR) has published a substantive series of reports concerning sources, effects, and risks of ionizing radiation. This article summarizes the highlights and conclusions from the most recent 1986 and 1988 reports. The present annual per person effective dose equivalent for the world's population is about 3 mSv. The majority of this (2.4 mSv) comes from natural background, and 0.4 to 1 mSv is from medical exposures. Other sources contribute less than 0.02 mSv annually. The worldwide collective effective dose equivalent annually is between 13 and 16 million person-Sv. The Committee assessed the collective effective dose equivalent to the population of the northern hemisphere from the reactor accident at Chernobyl and concluded that this is about 600,000 person-Sv. The Committee also reviewed risk estimates for radiation carcinogenesis which included the new Japanese dosimetry at Hiroshima and Nagasaki. These data indicate that risk coefficient estimates for high doses and high dose rate low-LET radiation in the Japanese population are approximately 3-10% Sv-1, depending on the projection model utilized. The Committee also indicated that, in calculation of such risks at low doses and low dose rates, a risk-reduction factor in the range of 2-10 may be considered.

Accidents

Animal model: skeletal anomalies in mice with cleidocranial dysplasia.

Cleidocranial dysplasia in mice, a radiation-induced skeletal mutation, showed striking homology with cleidocranial dysplasia in humans. Genetic studies indicated that the condition in mice is inherited as an autosomal dominant trait with variable expressivity and almost complete penetrance. The homozygous condition was lethal in utero. Radiographic and alcian blue/alizarin red S-stained whole-skeletal preparation studies were used to determine the extent, pattern, incidence, and distribution of skeletal abnormalities in heterozygous mice. Cleidocranial dysplasia in mice was characterized by variable clavicular hypoplasia, delayed closure of cranial fontanelles and sutures, and variable hypoplasia of pelvic bones, in particular ischiopubic rami. The gene symbol Ccd is proposed for the cleidocranial dysplasia mutation in mice and humans.

Animals

A rapid method for preparing high quality alizarin stained skeletons of adult mice.

A simple three-day technique is described for preparing completely cleared and high quality alizarin stained total skeletons of adult mice. Unfixed specimens are partially macerated during staining. Older specimens are heated for 15 min in 1% KOH. A heated solution of benzyl and ethyl alcohol, glycerin, and water is used for final clearing and hardening. This procedure requires about 10 min work per specimen and greatly simplifies preparation of stained and cleared skeletons of adult mice. Another technique, giving slightly better preparations, but requiring 11-14 days, is also described.

Aging

First-generation litter-size reduction following irradiation of spermatogonial stem cells in mice and its use in risk estimation.

Litter-size reduction (LSR) is a useful measure of part of the overall F1 radiation-induced damage. Extensive LSR data were obtained as a by-product of specific-locus experiments. Fourteen such experiments involving 158,490 F1 litters have been analyzed for the extent of LSR induced by x- or gamma-irradiation of spermatogonia. Litter sizes were compared between experimental and control groups at about 3 weeks after birth. In order to reduce variability, comparisons were made only with concurrent controls and between groups of litters having mothers of approximately the same age. At the high dose rate of 90 R/min, the LSRs showed a humped dose-response curve. There was a pronounced dose-rate effect, the mutational responses being much less at dose rates of 0.009 R/min and 0.001 R/min. It is estimated that if men were exposed to 1 R of radiation delivered at low linear energy transfer (low LET) and low dose rate, the number of deaths caused by induced dominant mutations among their children before late childhood would be about 19 per million live-born. This can be added to the earlier estimate of an approximately equal number of viable disorders in all body systems as based on dominant skeletal mutations. This gives a total estimate of induced dominant damage, but much of this addition represents death in very early embryonic life that would not be recognized in humans. The LSR data also permit the conclusion that only an extremely small proportion of serious radiation-induced genetic disorders among live-born humans would be expected to result from segmental aneuploidy.

Aneuploidy

Gamma-ray-induced dominant mutations that cause skeletal abnormalities in mice. II. Description of proved mutations.

In a mutation-rate experiment described earlier, 31 dominant skeletal mutations were confirmed by breeding tests. Skeletal abnormalities were detected in the skeletons of some of the sons of irradiated males, and for 31 of these sons the study of skeletons in subsequent generations showed that they transmitted abnormalities. The detailed descriptions of these mutations, together with descriptions of 6 presumed mutations found in a later paper, provide the basis for determining which mutations cause effects that would, if they occurred in humans, cause a serious handicap. Such a determination is necessary before these data can be used to estimate genetic hazard to humans. Furthermore, these descriptions of syndromes caused by individual dominant mutations should be useful to clinicians interested in skeletal defects. The statistical analysis of the frequency of each abnormality in the mutant line versus an approximation of the frequency of the malformation in the absence of new mutations is essential to be sure that a mutation is indeed the cause of each abnormality. These analyses, together with analyses of the correlation of abnormalities caused by individual mutations, clearly demonstrate that dominant mutations exhibit low penetrance for many of their effects. A few of the mutations also cause the death of some heterozygotes. No externally visible effects have been detected in heterozygotes for most of these mutations. Externally visible effects found in some of the heterozygotes for a few of the mutations include hydrocephalus, circling behavior, increased nervous activity, gray coat color, webbing of digits, and small size. Two coat-color mutations were found that caused no detected skeletal abnormalities. The data suggest that a few of the mutations may be reciprocal translocations. In most of the mutant lines tested cytologically, however, there was no indication of chromosomal aberrations.

Animals