PubMed HealthSearch

PubMed · 4668647

Individualized human karyotyping through quantitative analysis.

Abstract

The source did not provide an abstract. Follow the original record for more information.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

P W Neurath, B Kess, D A Low. 1972. Individualized human karyotyping through quantitative analysis.. https://doi.org/10.1016/0010-4825(72)90047-9

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Integrated Epstein-Barr virus (EBV) and chromosomal abnormality in chronic active EBV infection.

In order to examine the role of Epstein-Barr virus (EBV) in the pathogenesis of chronic active EBV infection (CAEBV), we investigated whether or not EBV integration into the human genome is associated with any chromosonal abnormality. We therefore analyzed 4 cases of CAEBV: 2 cases showed a normal karyotype, while one had an oligo-clonal 6th chromosomal abnormality and the fourth had a clonal 6th deletion (q15q23). In addition, the case with an oligo-clonal abnormality also had oligo-clonal EBV terminal repeat (TR) bands, while the case with a clonal abnormality showed a clonal TR band. In contrast, the 2 cases with a normal karyotype showed no clonal band. Two-color fluorescence in situ hybridization (FISH) was used to detect the integrated EBV and the 6th chromosomal site. The presence of integrated EBV into the 6th chromosome was not frequent in the 2 cases with a normal karyotype, but it was statistically frequent in the case with an oligo-clonal 6th abnormality. In the case with a clonal 6th deletion, integration in the 6th chromosome was also slightly higher than that in the other chromosomes. In CAEBV, integrated EBV might thus be associated both with chromosomal abnormality and with pathogenesis.

Chromosome Aberrations

Imprinting is also a mechanism for immediate or delayed hemizygous expression of several uniparental haplotypes selected from the genome of each sex.

A peculiar and interesting aspect of monoallelic or hemizygous expression, resulting from genomic imprinting, should be a likeness or resemblance for some phenotypic traits between relatives inheriting identical active genes or domains. Although the word "likon," a neologism, is reminiscent of the above implication, it is here proposed for use in a broader sense, namely, to designate a haplotype or part of a haplotype of an imprinted domain. As learned from earlier studies of imprinting and uniparental disomies, haplotypes at loci of such domains may be expressed (E) or unexpressed (U) in somatic cells; they may also be transmitted to be expressed or not in the next generation by germ cells "acting" (A) or marked to be "resting" (R) for such loci. Thus the soma/germinal status of "likons" might for each genitor be abbreviated as EA, UA, ER, and UR. In an evolutionary sense the assumption is that the same monoallelically expressed loci and domains when carried by two or more relatives should be the source of identical transcripts contributing to a closely similar phenotype. If so, the overall phenotype would be distinct if arising from some 10 to 20 imprinted genes or domains potentially gaining expression from the germ cells of either one or the other sex in humans. The result may have evolutionary implications by narrowing the scope of random individual variation and by strengthening assortative and associative values (physical, behavioral, and instinctual) in one's own lineage and species.

Chromosome Aberrations

Folate deficiency causes uracil misincorporation into human DNA and chromosome breakage: implications for cancer and neuronal damage.

Folate deficiency causes massive incorporation of uracil into human DNA (4 million per cell) and chromosome breaks. The likely mechanism is the deficient methylation of dUMP to dTMP and subsequent incorporation of uracil into DNA by DNA polymerase. During repair of uracil in DNA, transient nicks are formed; two opposing nicks could lead to chromosome breaks. Both high DNA uracil levels and elevated micronucleus frequency (a measure of chromosome breaks) are reversed by folate administration. A significant proportion of the U.S. population has low folate levels, in the range associated with elevated uracil misincorporation and chromosome breaks. Such breaks could contribute to the increased risk of cancer and cognitive defects associated with folate deficiency in humans.

Chromosome Aberrations