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Biomedical subjects

A R Mitchell

Publications and source records attributed to A R Mitchell.

At least 37 records · Page 2Linked to original sources

A chimpanzee-derived chromosome-specific alpha satellite DNA sequence conserved between chimpanzee and human.

We describe a cloned 2.7 kb alpha satellite sequence, Pan-3, from the pygmy chimpanzee (Pan paniscus) that specifically hybridizes in situ to chromosome 19 in the pygmy chimpanzee and to the homeologous human chromosome, no. 17. Using high stringency conditions of hybridization on Southern blots, this sequence hybridized to DNA from both species of chimpanzee (P. paniscus and P. troglodytes) and from human but not to DNA from gorilla (Gorilla gorilla) or orangutan (Pongo pygmaeus). Partial sequence analysis showed that Pan-3 and a previously described human chromosome 17-specific clone have up to 91% sequence identity. To our knowledge this is the highest sequence similarity reported between alphoid subsets from human and any other primate.

Animals↗

Restriction endonuclease/nick translation of fixed mouse chromosomes: a study of factors affecting digestion of chromosomal DNA in situ.

We used a restriction endonuclease/nick translation procedure to study the ability of certain enzymes, known to cleave mouse satellite DNA in solution, to attack satellite DNA in fixed mouse chromosomes. Although AvaII and Sau96I readily attack the mouse major satellite in fixed chromosomes, BstNI and EcoRII do not normally do so, although if the heterochromatin is uncondensed as a result of culture in the presence of 5-azacytidine, BstNI can attack it. No clear evidence was obtained for digestion in situ of the minor satellite of mouse chromosomes by MspI, the only enzyme reported to cleave this satellite. Our results show that the DNA of mouse heterochromatin is not merely not extracted by certain restriction enzymes, but is actually not cleaved by them. Chromatin conformation is therefore shown to be an important factor in determining patterns of digestion of chromosomes by restriction endonucleases.

Animals↗

The organization of the mouse satellite DNA at centromeres.

The mouse genome contains a major and a minor satellite DNA family of repetitive DNA sequences. The use of 5-azacytidine has allowed us to demonstrate that these satellite DNAs are organized in two separate domains at the centromeres of mouse chromosomes. The minor satellite is closer to the short arms of the acrocentric chromosomes than the major satellite. The major satellite is farther away, flanking the minor satellite and adjacent to the euchromatic long arm of each mouse chromosome. At the level of resolution afforded by the in situ hybridization technique it would appear that the organization of the centromeric domain of the mouse is similar to that in man. That is, both contain two repetitive DNA sequence families arranged in major blocks.

Animals↗

A dicentric recombinant 9 derived from a paracentric inversion: phenotype, cytogenetics, and molecular analysis of centromeres.

A 4-year-old girl with multiple malformations and severe developmental delay has been shown to have a karyotype of 46,XX-9,+rec(9),dup p,inv(9) (q22.1q34.3)mat, with duplication 9pter-q22.1 and deficiency 9q34.3-qter. This case confirms that a stable recombinant chromosome can result from a paracentric inversion. The recombinant was derived by two crossovers, one within the inversion loop and a second outside the inversion loop, between 9q21 and the beginning of the meiotic inversion at 9q22.1. In 87 cells the rec(9) had one Cd-positive primary constriction. In 13 cells the rec(9) had two primary constrictions; in 12 of these cells there was one Cd-positive centromere, and in one of these cells both primary constrictions were Cd-positive. Nuclear projections were observed in 10% of fibroblast interphase cells harvested in situ, suggesting that there was some spindle-fiber activity of the "latent" centromere. In situ hybridization with a centromere-specific probe (p82H) and a satellite III probe (L6) revealed no differences between the two C-band regions of the rec(9) and the normal 9 or inverted 9 chromosomes.

Abnormalities, Multiple↗

A human-derived probe, p82H, hybridizes to the centromeres of gorilla, chimpanzee, and orangutan.

A human-derived centromeric sequence, p82H, hybridizes to DNA from gorilla, chimpanzee, pygmy chimpanzee, and orangutan. On DNA blots, multimeric ladders based on 170 or 340 bp repeat units are seen. In metaphase chromosome preparations from these species, p82H hybridizes to the centromeric region of every chromosome. p82H forms less stable hybrids with DNA from the lion-tailed macaque and does not hybridize to DNA or chromosomes of the owl monkey or the mouse.

Animals↗

Organization and genomic distribution of "82H" alpha satellite DNA. Evidence for a low-copy or single-copy alphoid domain located on human chromosome 14.

We have investigated the organization and genomic distribution of sequences homologous to p82H, a cloned human alpha satellite sequence purported, based on previous in situ hybridization experiments, to exist at the centromere of each human chromosome. We report here that, using Southern blotting analysis under conditions of high stringency, p82H hybridizes solely to a low-copy or single-copy alphoid domain located at or near the centromeric region of human chromosome 14. In contrast, conditions of reduced hybridization stringency permit extensive cross-hybridization with non-identical, chromosome-specific alpha satellite subsets found elsewhere in the human genome. Thus, the previously described ubiquity of "82H" human centromeric sequences reflects the existence of diverse alpha satellite subsets located at the centromeric region of each human chromosome.

Animals↗

Hypervariable minisatellite regions are sites for crossing-over at meiosis in man.

In situ hybridization to human meiotic metaphase I (MI) preparations, using the labeled minisatellite core sequence lambda 33.15, showed clustering of autoradiographic grains principally at or around chiasmata, autosomal sites where crossing-over had occurred. For the XY bivalent, the pairing region formed between the terminal regions of the two short arms (Xpter Ypter), was also a principal site of labeling; in addition, the terminal region of the X long arm (Xqter) was labeled. Control experiments using a member of the human Alu family of dispersed repeated DNA sequences showed a much more randomized grain distribution, with clustering over chiasmata being far less obvious. The data provide support for the suggestion that polymorphic minisatellite regions within the human genome might play a significant role in pairing and/or recombination.

Cells, Cultured↗

p82H identifies sequences at every human centromere.

A cloned alphoid sequence, p82H, hybridizes in situ to the centromere of every human chromosome. After washing under stringent conditions, no more than 8% of the grains are located on any specific chromosome. p82H thus differs from other centromeric sequences which are reported to be chromosome specific, because it detects sequences that are conserved among the chromosomes. Two experimental approaches show that the p82H sequences are closely associated with the centromere. First, p82H remains with the relocated centromeres in an inv(19) and an inv(6) chromosome. Second, p82H hybridizes at the centromere but not to the centromeric heterochromatin of chromosomes 1, 9 and 16 that have elongated 1qh, 9qh and 16qh regions produced by short growth in 5-azacytidine. The only noncentromeric site of hybridization is at the distal end of the 9qh region.

Base Sequence↗

Regional localization and characterization of a DNA segment on the long arm of chromosome 21.

A human genomic DNA fragment, pAM37 (HGM8; D21S22), was mapped to chromosome 21q2.1-q2.21 by in situ hybridization. This segment is therefore situated on the boundary of the "pathological region" of Down syndrome. A genomic restriction map encompassing 35 kb of chromosome 21 was derived and two restriction fragment length polymorphisms (RFLPs) were mapped and characterized. A homologous sequence was detected in the mouse genome but no homologous RNA was detected in a range of human tissues. This DNA segment will contribute to the linkage mapping of chromosome 21 and will facilitate delineation of the pathological region of Down syndrome.

Chromosome Banding↗

Ring XY bivalent: a new phenomenon at metaphase I of meiosis in man.

The unusual appearance of a ring XY bivalent at metaphase I of meiosis is reported in some cells of an oligospermic human male. Higher than usual frequencies of ring configuration in the XY pair were also observed during prophase I. The defect could be attributable to loss of some DNA sequences from the distal heterochromatic tip of the Y chromosome long arm.

Adult↗

Gene mapping and physical arrangements of human chromatin in transformed, hybrid cells: fluorescent and autoradiographic in situ hybridization compared.

We compare a fluorescent in situ hybridization technique, using N-acetoxy-2-acetylaminofluorene (N-ACO-AAF) modified DNA adducts, with 3H-labeled DNA in situ hybridization for visualizing human transgenomes in HRAS1-selected, chromosome-mediated gene transfer (CMGT), and mapping chromosomal SV40 in an SV40-transformed, human-mouse hybrid cell line. We demonstrate that individual HRAS1-CMGTs may contain multiple fragments of human chromatin. We deduce that the CMGT process can involve interstitial loss of mouse chromatin. We conclude that the N-ACO-AAF technique gives finer resolution than 3H-labeled in situ hybridization. However, 3H-labeling is more sensitive and has allowed us to sublocalize SV40 in C121 to the region 7q31-35.

Animals↗

Molecular hybridization to meiotic chromosomes in man reveals sequence arrangement on the no. 9 chromosome and provides clues to the nature of "parameres".

In situ hybridization of male human meiotic material has been used to elucidate the molecular organization of the centromeric region of human chromosome 9. The use of two cloned DNA sequences has shown that the centromere and the secondary constriction of this chromosome contain two separate repeated DNA families. The secondary constriction organizes into "paramere" bodies during pachytene. The individual parameres are comprised of one family of repeated DNA sequences.

Centromere↗

A cloned sequence, p82H, of the alphoid repeated DNA family found at the centromeres of all human chromosomes.

Clone p82H is a human DNA sequence which hybridises in situ exclusively to the centromeric regions of all human chromosomes. It is composed of approximately 14 tandemly repeated variants of a basic 172 bp sequence, and is related to the alphoid family. The organisation of the family of cross-hybridising sequences, detected by the clone p82H, is described both in the human genome and on certain chromosomes, and its relationship to known sequence families is discussed.

Base Sequence↗

Psychiatrists in primary health care settings.

An increasing number of psychiatrists are now working partly in primary care settings. This paper describes how the movement began and how both psychiatrists and other members of the specialist psychiatric treatment team have explored ways of working with family doctors in the diagnosis and management of psychiatric disorders. Various styles of collaborative work, the declared advantages of such attachment schemes, the reservations being expressed about their further extension, and their research and educational potential are explored. If such enterprises, designed to help the family doctor identify psychiatric morbidity in the practice and to extend his skills in managing such patients and their relatives, are to be commanded, they must be carefully monitored so that the cost-benefit balance can be established.

Community Psychiatry↗

Liaison psychiatry in general practice.

In the WHO (1973) working group report on psychiatry and primary medical care, six reasons why the GP must remain the first-contact physician for psychiatric morbidity are outlined: 1. Mentally disturbed patients often present with physical complaints 2. Physical illness and psychiatric disorder do coexist 3. There is still a major stigma associated with institutionalized psychiatric care 4. There is a danger that otherwise patients may unwisely gravitate from one specialist to another 5. Many psychiatric problems are connected with social factors and conflicts of family life 6. The GP is in the best position to maintain contact with most of his patients over the years. Liaison psychiatry in general practice allows the consultant psychiatrist and psychiatric trainees a unique opportunity to assist the GP in this work. However, for the liaison to succeed the GP must take the risk of sharing some of his hard won and jealously guarded autonomy with the specialist, and the specialist, in turn, must be prepared to commit scarce time to this enterprise and take the risk of exposing himself personally to colleagues who can have a different perspective and professional philosophy from his own.

Community Health Centers↗