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Biomedical subjects

B Mintz

Publications and source records attributed to B Mintz.

At least 37 records · Page 2Linked to original sources

Spontaneous malignant transformation of melanocytes explanted from Wf/Wf mice with a Kit kinase-domain mutation.

The W/Kit mouse locus, affecting proliferation and survival of pigment cells, blood cells, and germ cells, is known to encode a tyrosine kinase growth factor receptor and is considered a protooncogene; yet it has not heretofore been causally implicated in any malignancies of those cells. The Wf/Wf mutant mouse coat comprises viable and inviable melanoblast clones, seen ultimately as pigmented and white transverse stripes--the latter more prominent. Judging from the pattern, all clones initially expand, and the inviable ones then undergo programmed cell death prenatally. To observe skin melanocytes of the viable clones during extended proliferation, the cells were explanted from individual young mice. An unusually large number of primary explants failed to survive--a result consistent with a growth handicap. In 3 of the 10 surviving cell lines, many cells spontaneously underwent a series of striking changes with the classic features of transformation. The two transformed lines that have been tested by grafting to immunosuppressed hosts formed undifferentiated invasive tumors compatible with malignant amelanotic melanoma. None of our 52 other melanocyte lines of the coisogenic wild-type strain and 13 other natural genotypes have become transformed under the same culture conditions. Molecular analysis of the Wf gene revealed a single change from wild-type: a point mutation affecting the catalytic region in the kinase domain of the Kit protein. The apparent growth disadvantage due to the mutation may allow selection for melanocytes mobilizing more efficient pathways, thus leading to neoplasia. Production of both viable and inviable melanoblast clones is unlikely to be due only to the kinase mutation; possibly the degree, duration, and consistency of expression of this locus may be controlled by cis elements outside the coding region.

Animals↗

Mosaic expression of a tyrosinase fusion gene in albino mice yields a heritable striped coat color pattern in transgenic homozygotes.

Genetically albino mouse eggs were injected with an inducible transgene comprising the wild-type tyrosinase (monophenol, L-dopa: oxygen oxidoreductase, EC 1.14.18.1) cDNA and the metallothionein gene promoter in the expectation that the transgene would be expressed to different extents in the various developing pigment cell clones of at least some individuals, thereby leading to patterned coats. This proved to be the case. Five transgenic mice had lightly pigmented patterns of transverse stripes visualizing melanoblast proliferation and migration dorsoventrally on each side. Similar patterns have been seen in genetically mosaic mouse models produced from conjoined blastomeres of different color genotypes and in many naturally patterned genotypes of mice. Four of the transgenics had heritable patterns and autosomal transgene integration. Their homozygous descendants were darker than hemizygotes and transmitted the basic pattern through many generations. Eyes were also pigmented, with clonal patches of melanized cells in the retinal pigment epithelium. The skin was dark due to many pigmented dermal melanocytes, whereas relatively few were in the hair follicles. This "inversion" is attributable to precocious maturation and migratory arrest of many melanoblasts during passage through the dermis en route to the hair bulbs. Patterning in these mice is considered in light of the view, previously proposed, that phenotypically different clones, or phenoclones, may exist in virtually all mammalian cell types and that many genes may be associated with cis-acting control regions causing variations in their expression that are mitotically perpetuated. We point out that mosaic expression has many implications for development as well as neoplasia. In the latter case, the potential for tumor susceptibility may be affected by clonal variation without further gene mutations or deletions. Thus, mice with variegating transgenes can provide molecular access to gene control mechanisms and to their consequences in development and disease.

Albinism↗

Clonal coat color variation due to a transforming gene expressed in melanocytes of transgenic mice.

Transgenic mice of an inbred black strain were previously produced with the Tyr-SV40E transgene, comprising simian virus 40 transforming sequences driven by the tyrosinase promoter, in order to obtain melanomas; the animals were found to be lighter than normal in coat color, to various degrees. As described here, hypopigmentation resulted from diminished differentiation of melanized pigment granules in the melanocytes of the hair bulbs in vivo and occurred autonomously in cultured melanocytes. Whereas some of the mice had single-color coats, most (7/13) had coats of two or three colors; in addition, one single-color founder produced a two-color descendant. These eight mice had patterns seen in natural genotypes; the most striking were transversely striped to various extents, with regions of left-right asymmetry on either side of the dorsal midline. The patterns visualized the same clonal developmental territories of coat melanocytes displayed in allophenic mice that are formed from conjoined early embryo cells of different color genotypes. Some of the Tyr-SV40E transgenics were also cellular genotypic mosaics, probably arising by late integration of the transgene. However, one transgenic founder with a completely striped coat proved to be true-breeding, with autosomal inheritance of the pattern. The inherited striped pattern thus exemplifies the formation of phenotypically different but genetically identical developmental clones, or phenoclones, among cells of the same type. This line of transgenic mice provides exceptional material for experimental analysis of the molecular basis for clonal variation in gene expression and of the fate of oncogenic phenoclones of melanocytes occurring in the same individual.

Animals↗

Multiple alternatively spliced transcripts of the mouse tyrosinase-encoding gene.

We have isolated and characterized tyrosinase-specific cDNAs from wild-type mouse skin, to provide a basis for the structural and functional analysis of mutations at the mouse tyrosinase-encoding (Tyr) locus. The cDNAs were synthesized by the polymerase chain reaction. At least twelve alternatively spliced transcripts of the Tyr gene were found, including nine not previously described. Of 51 clones obtained, most (59%) correspond to the full-length cDNA encoding active tyrosinase. The others are shorter and apparently arose by alternative splicing. They are attributable to exon skipping, usage of alternative 5' and/or 3' splice sites, and (in one case) retention of an intronic sequence. Patterns of alternative splicing also occur in other pigmented tissues.

Animals↗

Malignant melanoma in transgenic mice.

Ocular and cutaneous melanomas arose in new inbred lines of transgenic mice having an integrated recombinant gene comprised of the tyrosinase promoter, expressed in pigment cells, and the simian virus 40 early-region transforming sequences. The tumors were hypomelanotic and were histopathologically similar to corresponding human melanomas. Eye melanomas often originated at a young age, chiefly from the retinal pigment epithelium, also from the choroid, and rarely from the ciliary body. The eye tumors grew aggressively, were highly invasive, and metastasized to local and distant sites. The earliest formation of these tumors was associated with higher copy numbers of the transgene; mice of different single-copy lines varied greatly in age of onset and frequency of eye tumors. Coat pigmentation was reduced in almost all lines, to various extents. Primary skin melanomas arose later and less frequently than eye melanomas. Hence they were at early stages and of unknown long-range incidence in this investigation, in which autopsies covered the first half-year of life. For both ocular and cutaneous melanomas, the transgenic mice offer numerous possibilities for experimental study of mechanisms underlying formation and spread of melanomas.

Animals↗

Melanosis and associated tumors in transgenic mice.

Melanosis was found to various extents in a wide array of tissues of all 23 autopsied mice whose transgene consisted of the tyrosinase promoter fused to the simian virus 40 early-region oncogenic sequences. Pigmentation in a given animal was attributable to any or all of the following; an increase in numbers of some normally pigmented cells of neural crest origin (a result compatible with early stages of transformation); elicitation of melanin synthesis in some cells that normally have little melanin, or none at all (the latter possibly signaling metaplasia); unusual intercellular transfer of pigment granules from melanocytes into certain normally unpigmented epithelia and endothelia; and profusion of melanin-phagocytizing cells. Neoplasms, occasionally also containing melanin, arose in association with some of these melanotic tissues and included three choroid plexus tumors, three endocardial tumors, two peripheral nerve sheath tumors (schwannomas), two cochlear tumors, two pineal gland tumors, one salivary gland tumor, and one nasal mucosa tumor. These apparently originated independently of the ocular and cutaneous melanomas found in the same animals. The events involved in melanosis may thus contribute to neoplastic conversion.

Animals↗

Mosaicism of tyrosinase-locus transcription and chromatin structure in dark vs. light melanocyte clones of homozygous chinchilla-mottled mice.

The chinchilla-mottled (cm) mutation at the mouse tyrosinase-encoding locus leads to a transversely striped pattern of dark- and light-grey coat colors in homozygotes. The same basic pattern occurs in various other genotypes and has previously been found to represent the clonal developmental history of melanocytes. In a homozygote such as cm/cm, cis-acting mechanisms would be expected to account for the color differences. To search for these mechanisms, the genomic structure of the mutation was examined and compared with the wild-type, and its function was compared in cultured melanocyte clones of the respective colors. Evidence from restriction mapping indicated that the coding region of the mutant gene resembles that of the fully and uniformly pigmented wild-type. However, the upstream sequences are rearranged in the mutation. The rearrangement begins 5 kb 5' of the transcription initiation site and is estimated to encompass at least 30 kb of distal upstream sequence. At least two stable functional states of the cm gene were detectable: Light-cell clones have low levels of tyrosinase-specific transcription, reduced DNAase I sensitivity of tyrosinase chromatin, and no detectable hypersensitive sites near the gene; dark-cell clones have higher (but subnormal) levels of transcription, greater sensitivity of chromatin to DNAase I, and a hypersensitive site in the promoter region. The changed relation between the structural gene and its upstream region may separate it from cis-acting control elements, resulting in reduced and variable ability to achieve the appropriate chromatin configuration near the time of melanocyte determination; differences in expression among clonal initiator cells are then mitotically perpetuated.

Alleles↗

Long- and short-lived murine hematopoietic stem cell clones individually identified with retroviral integration markers.

The proliferative longevity of totipotent hematopoietic stem cells (THSC) is a limiting factor in normal hematopoiesis and in therapy by cell- or gene-replacement, but has not yet been ascertained. We have followed the long-term fate of individual clones of mouse THSC from fetal liver or adult bone marrow, after labeling in culture, followed by engraftment and serial transplantation in unirradiated W/Wv-C57BL/6 hosts. The ancestor cell of each clone and its mitotic progeny were uniquely identifiable retrospectively by the DNA integration pattern experimentally produced by replication-incompetent recombinant murine retroviruses. These viruses provided physiologically neutral markers. The marked clones proved to be derived from THSC, based on their contributions to a wide array of myeloid and lymphoid blood lineages in the hosts. The label also identified the target cells as the population displaying clonal succession. The various labeled stem cell clones proliferated for substantially different periods of time. The longest observed clone endured, after the original cell was marked, for at least 2 1/2 years--the equivalent of a mouse's lifetime. However, the results suggest that THSC clones are not all long-lived and that even the longest-lived ones may not be potentially immortal. Thus, the unpredictable lifespan of any given THSC clone indicates the desirability of introducing multiple clones in therapeutic transplants.

Animals↗

Pigmented cell lines of mouse albino melanocytes containing a tyrosinase cDNA with an inducible promoter.

Melanocyte cell lines, with characteristic dendritic morphology and melanosomes, were established from young mice of wild-type (C57BL/6) and of two albino (C57BL/6-c2J/c2J and BALB/c) inbred strains. The albino cells were cotransfected with two plasmids: pMTtyr1, containing the full-length tyr1 cDNA for tyrosinase encoded by the c locus, under the control of the inducible mouse metallothionein-I (MT-I) promoter; and pSVneo beta, allowing selection of transformants by G418 resistance. The intrinsic albino defect was corrected by the tyr1 cDNA in transfected cells, thereby validating the coding capability of tyr1 for tyrosinase. Black melanin was formed in the genetically black (B/B) C57BL/6-c2J/c2J cells and brown melanin in the genetically brown (b/b) BALB/c cells. Pigment was produced even without adding heavy metal (for induction of the MT-I promoter), thus obviating the need for adding it, but was formed more rapidly upon addition of ZnSO4 up to 100 microM. Stable transfected albino melanocyte lines with active tyrosinase and melanization were obtained. Addition of ZnSO4 at 200 microM was lethal to the cells. However, this toxicity--attributable at least in part to melanin precursors--was prevented if the cells sojourned at 100 microM ZnSO4 for two weeks before being exposed to the 200 microM level. Adaptation was lost when the cells were removed from 200 microM ZnSO4 for one week and then returned to it. Avoidance of toxicity under these conditions is thus the result of physiological detoxification mechanisms rather than selection for a genetic change.

Albinism↗

Isolation and characterization of variant cDNAs encoding mouse tyrosinase.

Two different cDNA clones encoding mouse tyrosinase (monophenol oxygenase, E.C. 1.14.18.1) were isolated from B16 melanoma cells, and their primary structure was determined. One of the cDNAs consists of 3309 nucleotides with an open reading frame coding for a peptide of 533 amino acids. The other cDNA is approximately 1600 nucleotides long, with a shorter 3'-untranslated region and a deduced in-frame deletion of 77 amino acid residues with respect to the former clone. Neither of these clones is structurally identical to other described mouse tyrosinase cDNAs (1-3). RNA blotting analysis demonstrates that multiple tyrosinase mRNA species are not only present in B16 melanoma, but also in normal skin melanocytes.

Amino Acid Sequence↗

Clonal contributions of small numbers of retrovirally marked hematopoietic stem cells engrafted in unirradiated neonatal W/Wv mice.

Mice were repopulated with small numbers of retrovirally marked hematopoietic cells operationally definable as totipotent hematopoietic stem cells, without engraftment of cells at later stages of hematopoiesis, in order to facilitate analysis of stem cell clonal histories. This result depended upon the use of unirradiated W/Wv newborn recipients. Before transplantation, viral integration markers were introduced during cocultivation of fetal liver or bone marrow cells with helper cell lines exporting defective recombinant murine retroviruses of the HHAM series. Omission of selection in culture [although the vector contained the bacterial neomycin-resistance (neo) gene] also limited the proportion of stem cells that were virally labeled. Under these conditions, engraftment was restricted to a small population of marked and unmarked normal donor stem cells, due to their competitive advantage over the corresponding defective cells of the mutant hosts. A relatively simple and coherent pattern emerged, of one or a few virally marked clones, in contrast to previous studies. In order to establish the totipotent hematopoietic stem cell identity of the engrafted cells, tissues were sampled for viral and inbred-strain markers for periods close to one year after transplantation. The virally labeled clones were characterized as stem cell clones by their extensive self-renewal and by formation of the wide range of myeloid and lymphoid lineages tested. Results clearly documented concurrent contributions of cohorts of stem cells to hematopoiesis. A given stem cell can increase or decrease its proliferative activity, become completely inactive or lost, or become active after a long latent period. The contribution of a single clone present in a particular lineage was usually between 5% and 20%.

Animals↗

Neonatal W-mutant mice are favorable hosts for tracking development of marked hematopoietic stem cells.

Neonatal unirradiated mice of W-mutant genotypes, with a hematopoietic stem cell defect and anemia, were injected i.v. with normal fetal liver hematopoietic cells. Efficient, long-term engraftment occurred as a result of the competitive advantage to the donor stem cells. The frequency of engraftment and rate of repopulation characteristically diminish in the series W/Wv, Wf/Wf, and Wv/+, in which the severity of the endogenous defect is progressively less. H-2 compatibility is required in the inbred strain combinations examined; other histocompatibility loci play a minor role in some strain combinations. Engraftment is due to self-renewing hematopoietic stem cells ancestral to myeloid and lymphoid lineages. The more mildly defective mutants display much greater variability in the kinetics of repopulation--a result consistent with seeding by single, or very few, stem cells that form developing clones. Engraftment efficiency is reduced by prolonged culture of fetal liver cells during experimental infection by recombinant retroviruses; nevertheless, after 24 h in vitro to achieve retroviral marking, stem cells retain their ability to repopulate and develop in W/Wv neonates.

Animals↗

Mapping of gene encoding mouse placental alkaline phosphatase to chromosome 4.

The gene encoding the mouse placental alkaline phosphatase (ALP; orthophosphoric-monoester phosphohydrolase, alkaline optimum, EC 3.1.3.1) is mapped to chromosome 4, based on Southern blot hybridization of the mouse cDNA with DNAs from mouse-Chinese hamster somatic cell hybrids. This assignment is consistent with the genetic analysis of the Akp-2 locus, which is responsible for the genetic variation of alkaline phosphatase enzyme in placenta as well as in liver, kidney, and bone.

Alkaline Phosphatase↗

Cloning and characterization of a cDNA coding for mouse placental alkaline phosphatase.

Mouse alkaline phosphatase [ALP; orthophosphoric-monoester phosphohydrolase (alkaline optimum), EC 3.1.3.1] was partially purified from placenta. Data obtained by immunoblotting analysis suggested that the primary structure of this enzyme has a much greater homology to that of human and bovine liver ALPs than to the human placental isozyme. Therefore, a full-length cDNA encoding human liver-type ALP was used as a probe to isolate the mouse placental ALP cDNA. The cloned mouse cDNA is 2459 base pairs long and is composed of an open reading frame encoding a 524-amino acid polypeptide that contains a putative signal peptide of 17 amino acids. Homology at the amino acid level of the mouse placental ALP is 90% to the human liver isozyme but only 55% to the human placental counterpart. RNA blot hybridization results indicate that the mouse placental ALP is encoded by a gene identical to the gene expressed in mouse liver, kidney, and teratocarcinoma stem cells. This gene is therefore evolutionarily highly conserved in mouse and human.

Alkaline Phosphatase↗

Handicapped retroviral vectors efficiently transduce foreign genes into hematopoietic stem cells.

Retroviral vectors, designated handicapped, are described. These are genetically defective viruses that allow transfer of nonselectable genes under the transcriptional control of internal promoters. The basic handicapped vector (pHHAM) is derived from Harvey, Abelson, and Moloney murine retroviruses. It contains a 327-base-pair deletion in the 3' long terminal repeat that spans enhancer and promoter sequences. The deletion is successfully transferred to the 5' long terminal repeat after reverse transcription of viral RNA, yielding a provirus incapable of synthesizing viral transcripts. HHAM viruses containing the mouse c-myc gene under the control of immunoglobulin kappa chain gene regulatory elements, along with a selectable gene (neo) driven by a weak promoter (tk), were stably transmitted to cultured mouse B cells. The donor c-myc gene was transcribed from the kappa promoter in these cells. Helper-free virus-producing cell lines were generated at titers favorable for the efficient introduction of HHAM viruses, even without selection, into hematopoietic stem cells from mouse bone marrow. When returned to unirradiated congenic recipient mice, the cells were capable of long-term reconstitution of the myeloid and lymphoid lineages of W/Wv mutants and the lymphoid system of scid mutants.

Animals↗

Cellular DNA rearrangements and early developmental arrest caused by DNA insertion in transgenic mouse embryos.

Insertional mutagenesis was investigated in a transgenic mouse strain (HUGH/4) derived from a fertilized egg injected with plasmid DNA containing the human growth hormone gene. Lethality occurred in homozygous embryos and was traced to the egg cylinder stage on days 4 to 5 of gestation, shortly after implantation. The mutation is on chromosome 12 and is distinct in location and integration pattern from another mutation also leading to lethality of homozygotes in the egg cylinder stage. Based on this and other evidence, relatively many genes may be recruited to activity near the time of implantation and may therefore present a large target of vulnerability to mutagenesis. The single insert in HUGH/4, consisting of approximately three tandem copies of plasmid sequences, is flanked by mouse cellular sequences that have undergone rearrangements, including a probable deletion. The data suggest the hypothesis that DNA rearrangements, which appear to be commonplace in transgenic mice, may arise because the initial insertional complex is unstable; stepwise changes may then be generated until a more stable conformation is achieved.

Animals↗

Early postimplantation embryo lethality due to DNA rearrangements in a transgenic mouse strain.

Insertional mutagenesis in a transgenic mouse strain (HUGH/3) was caused by integration of plasmid DNA containing the human growth hormone gene and pBR322 plasmid sequences. From this study, which includes another instance of mutagenesis, and from other reports, it is apparent that insertional mutagenesis occurs fairly frequently during DNA integration in the mouse egg and that it is not specific for the exogenous DNA employed. The mutation in HUGH/3 is recessive and results in death of embryos homozygous for the donor sequences shortly after implantation, at the egg cylinder stage on days 4-5 of gestation. Restriction mapping of the insert and of the flanking DNA regions indicates that integration must have involved a series of complex events. Approximately five copies of plasmid sequences are arrayed in tandem but are interrupted at least twice by mouse cellular sequences. In addition, the mouse flanking DNA shows extensive rearrangements, probably including a deletion of at least 10 kilobases. The rearrangements may reflect an initially unstable DNA structure followed by attainment of a more stable conformation.

Animals↗

Abnormal development of genetically normal fetal hematopoietic stem cells in steel mutant mouse fetuses.

The role and possible transplantability of the early hematopoietic microenvironment was investigated by transplacental inoculation of fetal liver cells from normal donors into steel mutant early fetuses. Donor hematopoietic stem cells were able to lodge in the livers of recipients and to progress to the bone marrow postnatally. However, self-renewal of stem cells and production of differentiated blood cells was very limited in extent and duration after transplantation into mildly anemic steel as compared with Wv/+ heterozygotes. The microenvironmental defect known to exist (albeit undefined) in steel and not in W mutants thus adversely affects proliferation and differentiation of stem cells from the very inception of hepatic hematopoiesis and is not correctable by introducing normal stromal cells under the conditions of the experiment.

Anemia, Macrocytic↗