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M F Singer

Publications and source records attributed to M F Singer.

At least 37 records · Page 2Linked to original sources

Defining the beginning and end of KpnI family segments.

Comparison of the sequences at the ends of several newly cloned and full length members of the monkey KpnI family with one another and with previously described monkey and human segments defines the nucleotide sequence at the two termini. No terminal repeats either direct or inverted are noted within full length family members which may or may not be immediately flanked by direct repeats. At the 3' terminus, several family members have polyadenylation signals followed by a d(A)-rich stretch. The genomic frequency of segments within the full length element increases markedly from the 5' to the 3' terminus, consistent with the cloning of various truncated family members. One such truncated version joined to a low copy number DNA segment is inserted in monkey alpha-satellite where the combination appears to have been amplified in conjunction with the satellite itself.

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A transcriptionally active monkey genomic segment homologous to the regulatory region of simian virus 40 is associated with DNase I-hypersensitive sites.

Segments of monkey genomic DNA that are homologous to the control region around the origin of replication of simian virus 40 were previously cloned and characterized (Queen et al., Mol. Cell Biol. 1:1061-1068, 1981). We describe here two DNase I-hypersensitive sites that map in the region of monkey chromatin around one such ori-like segment. One of these sites lies within the simian virus 40 homologous segment which is also a site from which transcription initiates bidirectionally (J. Saffer and M. Singer, submitted for publication).

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Homology between the KpnI primate and BamH1 (M1F-1) rodent families of long interspersed repeated sequences.

The KpnI and BamH1 (or M1F-1) families are the predominant sets of long interspersed repeated DNA sequences (LINEs) in primates and rodents, respectively. Recently, the sequences of several cloned subsegments from each family were determined in different laboratories. These sequences have now been compared and found to be homologous over at least 1400 bp. The data suggest that the two LINE families had a common progenitor and have been conserved in similar abundance although in divergent forms in the two mammalian orders.

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Deca-satellite: a highly polymorphic satellite that joins alpha-satellite in the African green monkey genome.

Three different cloned segments of African green monkey DNA that contain alpha-satellite sequences linked to a previously undescribed, distinct monkey satellite (called deca-satellite) are described here. The cloned segments were derived from a monkey DNA library in lambda Charon 4A that was constructed to select for junctions between alpha-satellite and other DNA sequences. The structure of the deca-satellite and of a junction between deca-satellite and alpha-satellite were studied by subcloning appropriate fragments of the original cloned segments and by sequence analysis. Deca-satellite has a ten base-pair repeat unit; the consensus sequence of the repeat units is 5' A-A-A-C-C-G-G-N-T-C. Sequences homologous to the deca-satellite are in the middle repeated class of genomic DNA. Analysis of the organization of deca-satellite sequences by digestion of total DNA with various restriction endonucleases and hybridization with a cloned deca-satellite probe revealed extensive polymorphism in the genomes of different individual monkeys but not among the tissues of one organism. These observations indicate that the arrangement of deca-satellite sequences is continually changing. An unusual alpha-satellite repeat unit occurs at a junction between the alpha-satellite and deca-satellite. It resembles the major baboon alpha-satellite more closely than it does monkey alpha-satellite and thereby provides evidence in favor of the "library" hypothesis for satellite evolution.

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Members of the KpnI family of long interspersed repeated sequences join and interrupt alpha-satellite in the monkey genome.

Three different members of a family (KpnI-family) of interspersed repeated DNA sequences were found linked to alpha-satellite sequences in cloned segments of the African green monkey genome. In two of these segments the KpnI-family member is over 6 kbp in length and one of them is flanked by alpha-satellite on both sides indicating that it was inserted into a satellite array. Hybridization of subcloned portions of the family members to restriction endonuclease digests of monkey and human DNA and to a genomic library of African green monkey DNA indicate that 1) family members are interspersed in both the monkey and human genomes, 2) some family members may include sequences in addition to those in the three characterized here, 3) some family members may contain only parts of the sequences characterized here and 4) while the overall organization of the family is similar in the human and monkey genome the majority of the family members in each of the two genomes are distinctly identified by the variant position of certain restriction endonuclease sites. This last observation suggests that within each genome there is a tendency to maintain particular versions of the sequence. Observations 2) and 3) suggest that the KpnI family is complex and includes a variety of subfamilies.

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Kpn I family of long interspersed repeated DNA sequences in primates: polymorphism of family members and evidence for transcription.

An approximately equal to 2-kilobase-pair-long member (Kpn I-LS1) of the African green monkey Kpn I family of repeated sequences has been cloned, subjected to sequence analysis, and compared to other family members which are over 6 kilobase pairs (Kpn I-alpha 7) and 829 base pairs (Kpn I-RET) long. Both Kpn I-LS1 and Kpn I-RET lack sequences found at the ends of the longer family member and their structures resemble those of processed genes. Kpm I-LS1 sequences are colinear with part of the long family member, Kpn I-alpha 7. However, although all sequences in Kpn I-RET are represented in Kpn I-LS1, the two are not colinear; Kpn I-RET is missing 731 base pairs found in Kpn I-LS1 and one segment flanking the deletion is inverted. The results demonstrate that Kpn I family members are not only of different lengths but may also contain scrambled arrangements of common sequences. Sequences in Kpn I-LS1 hybridize to RNA from monkey and human cells, indicating that some family members are transcribed.

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Interruption of an alpha-satellite array by a short member of the KpnI family of interspersed, highly repeated monkey DNA sequences.

We describe here the interruption of a cloned African green monkey alpha-satellite array by an 829-base-pair-long nonsatellite DNA segment. Hybridization experiments indicate that the sequences within the interruption are homologous to segments frequently found in the 6-kilobase-pair-long members of the KpnI family of long, interspersed repeats. These data confirm and extend earlier results suggesting that sequences common to the KpnI family can occur independently of one another and in segments of variable lengths. The 829-base-pair-long segment, which is termed KpnI-RET, contains a terminal stretch of adenosine residues preceded by two typical but overlapping polyadenylation sites. KpnI-RET is flanked by direct repeats of a 14-base-pair-long segment of alpha-satellite that occurs only once in the satellite consensus sequence. These structural features suggest that KpnI-RET was inserted into the satellite array as a movable element.

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A monkey Alu sequence is flanked by 13-base pair direct repeats by an interrupted alpha-satellite DNA sequence.

A member of the Alu family, the dominant family of short interspersed repeated DNA sequences in primates, interrupts a cloned repeat unit of African green monkey alpha-satellite DNA. The Alu is immediately flanked by 13-base-pair duplications of the known sequence of the satellite at the site of insertion. These observations support the idea that Ala family members may be moveable elements.

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Interspersed repeated sequences in the African green monkey genome that are homologous to the human Alu family.

The dominant family of interspersed repetitive DNA sequences in the human genome has been termed the Alu family. We have found that more than 75% of the lambda phage in a recombinant library representing an African green monkey genome hybridize with a human Alu sequence under stringent conditions. A group of clones selected from the monkey library with probes other than the Alu sequence were analyzed for the presence and distribution of Alu family sequences. The analyses confirm the abundance of Alu sequences and demonstrate that more than one repeat unit is present in some phages. In the clones studied, the Alu units are separated by an average of 8 kilobase pairs of unrelated sequences. The nucleotide sequence of one monkey Alu sequence is reported and shown to resemble the human Alu sequences closely. Hence, the sequence, dispersion pattern, and copy number of the Alu family members are very similar in the African green monkey and human genomes. Among the clones investigated were two that contain segments of the satellite DNA term alpha-component joined to non alpha-component DNA. The experiments indicate that in the monkey genome Alu sequences can occur close to regions of alpha-component DNA.

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Sequence relationships between single repeat units of highly reiterated African Green monkey DNA.

Individual monomer and dimer units of the highly repeated alpha-component DNA of African Green monkeys were isolated and amplified by molecular cloning in pBR322. The purified sequences were characterized by digestion with restriction endonucleases and by primary nucleotide sequence analysis. Comparison of the cloned units with the 172 base pair long sequence representing the most abundant nucleotide at each position in the set of sequences comprising alpha-component allows the following conclusions. The set of sequences comprising alpha-component is made up of a very large number of related but slightly divergent sequences. Two neighboring repeats of the monomer unit are not necessarily more similar to one another than are randomly isolated monomers.

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DNA sequences similar to those around the simian virus 40 origin of replication are present in the monkey genome.

We report the molecular cloning of African green monkey genomic DNA segments that include regions of homology to the origin of replication of simian virus 40 (SV40). Three clearly different cloned segments 14 to 17 kilobase pairs (kb) long were isolated from a genomic library in lambda phage. We estimate that each of the three is repeated fewer than four times in the monkey genome. The SV40-like regions represent a small portion of the cloned segments, and these regions cross hybridize only weakly with one another. One of the three segments is described here in detail. Although the entire segment occurs only once or twice in the monkey genome, it contains DNA sequences (other than the SV40-like sequences) that are repeated elsewhere in the genome including in the other two cloned segments. The homology to SV40 is contained within about 300 base pairs of monkey DNA and is limited to the region around the viral replication origin. The nucleotide sequence of the SV40-like region was determined. It contains a large number of short stretches homologous to three specific noncoding domains around the SV40 origin of replication: the 27-base-pair region of dyad symmetry, the first set of (short) repeats that occur just on the late side of the origin, and, further in the late direction, the two 72-base-pair-long repeats. Although these components are grouped in the monkey DNA, as they are in SV40 DNA, their relative juxtaposition is scrambled.

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Recurring defective variants of simian virus 40 containing monkey DNA segments.

Four independently and newly isolated defective variants of simian virus 40 have been characterized. All four are very similar, if not identical, to two previously and independently isolated variants (Wakamiya et al., J. Biol. Chem. 254:3584-3591, 1979; J. Papamatheakis, E. Kuff, E. Winocour, and M. F. Singer, J. Biol. Chem. 255:8919-8927, 1980). The documented similarities include restriction endonuclease maps and the presence of the same monkey DNA segments covalently linked to simian virus 40 DNA sequences. Each of the newly described variants was first detected upon serial passaging of wild-type simian virus 40 at a high multiplicity of infection at 33 degrees C as recently described (M. F. Singer and R. E. Thayer, J. Virol. 35:141-149, 1980). A variety of experiments support the idea that the various isolates were independent and do not reflect inadvertent cross-contamination. Two of the new isolates arose during passage of wild-type strain 777 virus in BSC-1 cells, one during passage of strain 776 in BSC-1 cells, and one during passage of strain 776 in primary African green monkey kidney cells. The two variants obtained after passage of strain 776 were shown to contain a particular recognition site for restriction endonuclease MboII within their simian virus 40 DNA segments, as do the two previous isolates. This site is not present in wild-type strain 776 DNA but is shown here to be present in wild-type strain 777 DNA. The surprising recurrence of closely related variants and particularly the unexpected presence of the endo R.MboII site in variants derived from passaging strain 776 suggest that these variants may arise by mechanisms other than recombination between the initial infecting viral genome and the host DNA.

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Three segments from the monkey genome that hybridize to simian virus 40 have common structural elements.

Three cloned segments that hybridize to a region of simian virus 40 (SV40) deoxyribonucleic acid including the origin of replication have been isolated from a monkey genomic library. The primary structure of one segment was previously reported (T. McCutchan and M. Singer, Proc. Natl. Acad. Sci. U.S.A. 78:95-99, 1981). We report here the sequences of the other two segments and a comparison of all three. The SV 40-hybridizing region in each segment is limited to several hundred base pairs. All of the segments contain multiple and disconnected sequences homologous to the region of SV40 directly surrounding the viral replication origin. The number and arrangement of the homologous sequences is different in the three segments. However, the segments have the following features in common: (i) each contains multiple copies of the sequence GGGCGGPuPu, which also appears six times near the origin of SV40; (ii) each contains several strong homologies to the central dyad symmetry of SV40; (iii) each contains a long internal repeat, as does the origin region of SV40. The three SV40-hybridizing segments are members of a larger family of genomic sequences that hybridize well to each other, but not necessarily to SV40.

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Preferential replication of a class of host-substituted defective simian virus 40 variants at low temperature.

The host-substituted variant termed CVP8/1/P2 (EcoRI res) was first isolated several years ago after serial passage of simian virus 40 strain 777 on BSC-1 cells at 37 degrees C. When BSC-1 are coinfected with wild-type simian virus 40 strain 777 and variant CVP8/1/P2 (EcoRI res), the variant rapidly becomes the dominant species produced, often representing as much as 80% of the total DNA I synthesized after infection. We present evidence that the replicative advantage of the variant was increased when the infection was carried out at 33 rather than 37 degrees C. Also described are nine new and independent serial passage experiments carried out at 33 degrees C with several purified wild-type virus stocks, including strain 776, and both BSC-1 and primary African green monkey kidney cells. In each series variants related to CVPs/1/P2 (EcoRI res) were detected in the progeny viral genomes after four serial passages. Hybridization data suggest that at least some of these variant DNA I molecules contain simian virus 40 DNA sequences, monkey alpha-component DNA sequences (highly repetitive), and the infrequently reiterated monkey DNA sequences found in CVP8/1/P2 (EcoRI res), all covalently linked as in CPV8/1/P2 (EcoRI res). It appears that this type of variant emerges with some frequency during infection and is then preferentially replicated at 33 degrees C, thereby becoming readily detectable in passaged stocks. A variety of control experiments indicated that the repeated emergence of similar, if not identical, variants is unlikely to be the result of inadvertent cross-contamination or the presence of detectable amounts of the variant in the plaque-purified viral stocks.

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