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Evolution of the mouse H-2K region: a hot spot of mutation associated with genes transcribed in embryos and/or germ cells.

Active gene transcription is known to promote genetic change in neighboring DNA. We reasoned that the change would be readily heritable if transcription was occurring in germ cells or early embryonic cells before the germ cells are set aside. The H-2K region of the major histocompatibility complex (MHC) provides a good vehicle for testing this hypothesis because it is replete with such genes. We have compared the amount of polymorphism in 240 kb of DNA contiguous with H-2K and 150 kb of DNA flanking a homologous duplicated region in t-haplotypes and inbred strains. Using 90 probes and three restriction enzymes, we find a staggering difference in the amount of polymorphism in the H-2K region vs. the duplicated region (26% vs. 0%) of t-haplotypes. The disparity in the rate of divergence between the two regions indicates that the spatial distribution of genes and their expression pattern might be important factors in sequence evolution. Since t-haplotypes normally show extremely limited variability among themselves due to their recent divergence from a single ancestor, these results imply that the mutation rate in the H-2K region is unusually high. This is in apparent contradiction to the current view that the MHC loci have evolved at the same rate as other loci. The implications for the evolution of the H-2K gene are discussed.

Animals↗

Assignment of the human homologue of the mouse t-complex gene TCTE3 to human chromosome 6q27.

The gene TCTE3 from the mouse t-complex region is expressed specifically in testicular germ cells. It maps in the central subregion of the t-complex on mouse chromosome 17 containing loci involved in transmission ratio distortion and male sterility. In this study, somatic cell hybrid lines have been used to map the human homologue, TCTE3, to the long arm of chromosome 6. CISS hybridization with the human lambda clone h117 refined this chromosome assignment to the very distal position of chromosome 6q27, thus providing further evidence that loci from the t-complex of mouse chromosome 17 can map to opposite arms of human chromosome 6.

Animals↗

A testis-expressed Zn finger gene (ZNF76) in human 6p21.3 centromeric to the MHC is closely linked to the human homolog of the t-complex gene tcp-11.

A novel testis-expressed Zn finger gene (ZNF76) was identified by screening cDNA libraries with cosmids derived from 6p21. ZNF76 is a member of the GLI-Krüppel family of DNA binding proteins. It is conserved in mouse where transcription in testis is initiated at Day 20 after birth. The mouse tcp-11 gene is located in the distal inversion of the t-complex and is developmentally regulated in the same manner as ZNF76. The human homolog of tcp-11 was isolated to allow a precise chromosomal localization. By using a combination of somatic cell hybrids, radiation hybrids, metaphase and interphase fluorescent in situ hybridization, and pulsed-field gel electrophoresis, we mapped the two genes to the 6p21.2 to 6p21.3 region and linked them to each other within 300 kb of DNA, approximately 2 Mb centromeric to the major histocompatibility complex.

Amino Acid Sequence↗

Functional analysis of a t complex responder locus transgene in mice.

Transmission ratio distortion (TRD) of mouse t haplotypes occurs through the interaction of multiple distorter loci with the t complex responder (Tcr) locus. Males heterozygous for a t haplotype will transmit the t-bearing chromosome to nearly all of their offspring. This process is mediated by the production of functionally inequivalent gametes: wild-type meiotic partners of t spermatozoa are rendered functionally inactive. The Tcr locus, which is required for TRD to occur, is thought to somehow protect its host spermatid from the sperm-inactivating effects of linked distorter genes (Lyon 1984). In previous work, Tcr was mapped to a small genetic interval in t haplotypes, and a candidate gene from this region was isolated (Tcp-10bt). In this work, we further localize Tcr to a 40-kb region that contains the 21-kb Tcp-10bt gene. A cloned genomic copy of Tcp-10bt was used to generate transgenic mice. The transgene was bred into a variety of genetic backgrounds to test for non-Mendelian segregation. Abberrant segregation was observed in some mice carrying either a complete t haplotype or a combination of certain partial t haplotypes. These observations, coupled with those of Snyder and colleagues (in this issue), provide genetic and functional evidence that the Tcp-10bt gene is Tcr. However, other genotypes that were predicted to produce distortion did not. The unexpected data from a variety of crosses in this work and those of our colleagues suggest that elements to the TRD system and the Tcr locus remain to be identified.

Animals↗

Structure and expression of the gene encoding mouse t-complex polypeptide (Tcp-1).

The nucleotide (nt) sequence of the structural gene (Tcp-1) encoding mouse t-complex polypeptide 1 (TCP-1) has been determined. The nt sequence extending to 10,043 bp shows that the Tcp-1 gene is divided into 12 exons, 11 introns and 5'- and 3'-flanking regions. The Tcp-1 gene has a tight cluster of major transcription start points (tsp). Two GC boxes, one CCAAT box and some other possible regulatory elements are located in the region upstream from the tsp, but no TATA box was found. Extending from the 5'-flanking region to the first intron, a CpG dinucleotide-rich cluster is located. In addition, Tcp-1 gene transcripts in mouse organs, embryos and cultured cells were analyzed by Northern blotting. The Tcp-1 mRNA is enriched not only in testes, but also in early post-implantation embryos and some cultured cell lines, as compared with mouse organs other than the testis. The amount of Tcp-1 mRNA in embryos decreases during development. These results suggest that the expression of the Tcp-1 gene may be regulated spatially and temporally in embryonic and adult mice by transcriptional control or by mRNA stability.

Amino Acid Sequence↗

Concerted evolution of the mouse Tcp-10 gene family: implications for the functional basis of t haplotype transmission ratio distortion.

The mouse Tcr locus is defined by its central role in the transmission ratio distortion phenotype characteristic of t haplotypes. A molecular candidate for Tcr has been identified in the form of a gene--Tcp-10b--expressed during spermatogenesis. Tcp-10b is one member of a multigene family present in two to four copies on different homologs of chromosome 17. The coding regions of the Tcp-10 genes present within two inbred strains were compared with those of the tw5 haplotype. The various gene family members are highly conserved relative to each other with a minimum nucleotide identity of 98.6% in all pairwise comparisons. Maximal parsimony analysis indicates that the Tcp-10 gene family has evolved in a concerted manner with the obliteration of nearly all individual gene-specific characteristics. As a consequence, the candidate for the full-length mutant Tcr gene product is distinguished by only a single, highly conservative, amino acid change. The data are consistent with the hypothesis that the effector of mutant Tcr activity is a second, alternatively spliced product that is expressed in a haploid- and allele-specific manner.

Alleles↗

The mouse plasminogen locus maps to the recombination breakpoints of the tLub2 and TtOrl partial t haplotypes but is not at the tw73 locus.

The mouse plasminogen (Plg) locus maps to a region of chromosome (Chr) 17 which is inverted in the t haplotype Chromosomal variant. Here we investigate the genomic organization of the Plg locus in structurally variant forms of Chr 17; wild-type (+), t haplotype (t), and two partial t haplotypes TtOrl and tLub2 which arose by recombination between + and t chromosomes. Our analysis suggests that the t haplotype chromosomal variant contains extra, inverted copies of the Plg locus, and that a single locus is present in the wild-type variant. Changes in the Plg locus in TtOrl and tLub2 suggest that they arose by homologous recombination across elements in the Plg locus having the same orientation in the wild-type and t haplotype chromosomes. One hundred ten kb around the wild-type Plg genomic locus have been cloned and the proximal breakpoint of a deletion in the tLub2 chromosome has been localized to a fragment 30 kb downstream of the Plg gene. The tLub2 deletion has been shown to delete a gene named tw73 that affects blastocyst implantation, a process probably requiring proteases such as plasminogen. However, the mapping of Plg relative to the tLub2 deletion and mRNA analysis of plasminogen in tw73 heterozygotes suggests that Plg does not lie at the tw73 locus.

Animals↗

[Structure and evolution of the D17LeH80-like locus in the murine t-complex].

The t complex in the proximal part of chromosome 17 is one of the most thoroughly studied regions of the mouse genome. We determined the sequence of Tu80, a molecular clone derived from microdissected fragments of chromosome 17. The sequence data demonstrated that the total length being 324 bp, Tu80 contains an open-reading frame (ORF) of 204 bp. Two fragments were detected within the ORF, one homologous to the LINE1-element, the other to the first intron of the C epsilon gene of mouse immunoglobin. A sequence designated NOV1 was isolated from the genomic library of mouse chromosome 17. NOV1 was found to contain a B2 insert, making in structurally different from Tu80. The sequences of Tu80 and NOV1 were compared with those of LINE1 and the first intron of the C epsilon gene. The results suggested that the ancestor of the Tu80-like sequence might have arisen through illegitimate recombination between the fragments of LINE1 and the C epsilon gene. It is concluded that Tu80 and NOV1 might have resulted from duplication of the ancestral sequence and following divergence. The comparative analysis also demonstrated high degree of conservation of the LINE1 fragments in Tu80 and NOV1, as well as in the LINE1 in a number of mammalian species. Based on the structure of human, rat, rabbit and mouse LINE1 fragments, and also on that of NOV1 and Tu80, phylogenetic tree has been constructed. Its topology is consistent with the accepted phylogenetic relationships among the species studied. The data available tend to support the assumption that the ancestor for the Tu80-like sequence might have arisen not later than 27-33 million years ago.

Amino Acid Sequence↗

Function in protein folding of TRiC, a cytosolic ring complex containing TCP-1 and structurally related subunits.

T-complex polypeptide 1 (TCP-1) was analyzed as a potential chaperonin (GroEL/Hsp60) equivalent of the eukaryotic cytosol. We found TCP-1 to be part of a hetero-oligomeric 970 kDa complex containing several structurally related subunits of 52-65 kDa. These members of a new protein family are assembled into a TCP-1 ring complex (TRiC) which resembles the GroEL double ring. The main function of TRiC appears to be in chaperoning monomeric protein folding: TRiC binds unfolded polypeptides, thereby preventing their aggregation, and mediates the ATP-dependent renaturation of unfolded firefly luciferase and tubulin. At least in vitro, TRiC appears to function independently of a small co-chaperonin protein such as GroES. Folding of luciferase is mediated by TRiC but not by GroEL/ES. This suggests that the range of substrate proteins interacting productively with TRiC may differ from that of GroEL. We propose that TRiC mediates the folding of cytosolic proteins by a mechanism distinct from that of the chaperonins in specific aspects.

Adenosine Triphosphatases↗

Distortion of transmission ratio by a candidate t complex responder locus transgene.

The mouse t complex responder locus (Tcr) is centrally involved in the phenomenon of male-specific transmission ratio distortion (TRD) through its action in haploid germ cells. Previously, we identified a candidate gene, Tcp-10b, whose t allele generates alternatively spliced transcripts. The full-length Tcp-10bt transcript is present in pre- and postmeiotic germ cells and encodes a product that is virtually identical with that encoded by the wild-type allele. The alternatively spliced t-specific transcript is observed in post-meiotic haploid spermatids and would encode an altered polypeptide that could convey the Tcrt phenotype. To assess their function, we have introduced constructs representing each Tcp-10bt transcript into transgenic mice. Breeding experiments demonstrate that these two constructs alter the transmission ratios of t haplotypes from male mice, but in opposite directions. The results provide support for the hypothesis that Tcp-10bt is a component of the Tcr locus.

Animals↗

Nucleotide sequence of a mouse Tcp-1 pseudogene: a nucleotide record for a t complex gene carried by an ancestor of the mouse.

We have isolated clones of a processed pseudogene of mouse t complex polypeptide 1 (Tcp-1) and determined the nucleotide sequence of the pseudogene. The pseudogene was 1363 bp long and had no intron. The Tcp-1 pseudogene had 88.4% or 88.3% nucleotide identity to the mouse Tcp-1 cDNA of wild-type (Tcp-1b) or t haplotype (Tcp-1a), and 87.5% identity to the rat Tcp-1 cDNA. On 12 nucleotide positions where the open reading frames (ORFs) of mouse Tcp-1b and Tcp-1a cDNAs have bp substitutions, the Tcp-1 pseudogene had 6 bp identical to Tcp-1b, 5 bp identical to Tcp-1a and 1 bp not identical to neither. On ten amino acid positions where TCP-1B and TCP-1A polypeptides have substitutions, deduced amino acids of the Tcp-1 pseudogene had four amino acids identical to TCP-1B, five amino acids identical to TCP-1A and one amino acid identical to neither. These results suggest that the ancestral mouse Tcp-1 gene would have had no significant difference between the resemblance to Tcp-1b and that to Tcp-1a before they were diverged and that amino acids of TCP-1B and TCP-1A would have been substituted in similar high rates.

Amino Acid Sequence↗

Genetic mapping of three human homologues of murine t-complex genes localizes TCP10 to 6q27, 15 cM distal to TCP1 and PLG.

Human homologues of mouse t-complex genes have been cloned and localized physically to chromosome 6p or 6q. TCP1, TCP10, and PLG are human homologues of genes located in the proximal portion of the t-complex on mouse chromosome 17. We present here results of genetic mapping of these human t-complex homologues previously localized to 6q25-q27, 6q21-q27, and 6q26-q27, respectively, by physical techniques. TCP1 and PLG do not recombine with each other and are separated from TCP10 by about 15 cM, while the corresponding mouse genes are no more than 4 cM apart. Genetic mapping with markers well localized cytogenetically places TCP1 and PLG proximal to TCP10 and localizes the latter to the cytogenetic band 6q27. It is likely that the organization of human t-complex homologues on 6q is similar to that of t haplotypes rather than that of wildtype murine chromosome 17.

Animals↗

Deletion of mouse t-complex distorter-1 produces an effect like that of the t-form of the distorter.

An allele of the mouse brachyury locus, T22H, had been shown previously to involve a deletion of several markers in the proximal part of chromosome 17, and almost certainly includes deletion of the t-complex distorter gene Tcd-1. The effects of T22H on transmission ratio distortion and male sterility caused by the t-complex were compared with those of a partial t-haplotype th51, which carries the t-form of the distorter Tcd-1t. In combination with the complete haplotype tw32, T22H caused severe impairment of male fertility, but males of genotype T22H/t6 or T22H/th51 were normally fertile. These results were very similar to those obtained when th51 was in combination with the same haplotypes. In effect on transmission ratio T22H was again similar to th51, in that it produced a marked increase in the transmission of the haplotype t6. To test whether the effects of T22H were due to deletion of elements other than Tcd-1, the effect of T22H on transmission of the partial haplotype th2 was compared with that of the deletion Thp. Again T22H markedly increased transmission of the t-haplotype and the effect was significantly greater than the small effect produced by Thp. It is concluded that deletion of the distorter Tcd-1 has an effect like that of the t-form of this distorter, Tcd-1t, and hence that Tcd-1t must be an amorph or hypomorph. It is speculated that other t-complex distorters, Tcd-2t and Tcd-3t, may also be amorphs or hypomorphs.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

TCP1 complex is a molecular chaperone in tubulin biogenesis.

A role in folding of newly translated proteins in the cytosol of eukaryotes has been proposed for t-complex polypeptide-1 (TCP1), although its molecular targets have not yet been identified. Tubulin is a major cytosolic protein whose assembly into microtubules is critical to many cellular processes. Although numerous studies have focused on the expression of tubulin, little is known about the processes whereby newly translated tubulin subunits acquire conformations that enable them to form alpha-beta-heterodimers. We examined the biogenesis of alpha- and beta-tubulin in rabbit reticulocyte lysate, and report here that newly translated tubulin subunits entered a 900K complex in a protease-sensitive conformation. Addition of Mg-ATP, but not nonhydrolysable analogues, released the tubulin subunits as assembly-competent protein with a conformation that was relatively protease-resistant. The 900K complex purified from reticulocyte lysate contained as its major constituent a 58K protein that cross-reacted with a monoclonal antiserum against mouse TCP1. We conclude that TCP1 functions as a cytosolic chaperone in the biogenesis of tubulin.

Adenosine Triphosphate↗

T-complex polypeptide-1 is a subunit of a heteromeric particle in the eukaryotic cytosol.

The murine t-complex encodes t-complex polypeptide-1 (TCP1), which is constitutively expressed in almost all cells, and upregulated during spermatogenesis. Mammalian sequences have greater than 96% identity with each other, and greater than 60% identity with Drosophila melanogaster and yeast orthologues. TCP1 is essential in yeast, and is postulated to be the cytosolic mammalian equivalent of groEL. We report here that, in the native state, murine and human TCP1 is distributed throughout the cytosol as an 800K-950K hetero-oligomeric particle in association with four to six unidentified proteins and two Hsp70 heat-shock proteins. Negative-stain electron microscopy indicates that the structure is two stacked rings, 12-16 nm in diameter. Therefore, despite similarities with the chaperonin 60 proteins, these data indicate that TCP1 is biochemically and structurally unique. We suggest that TCP1 may represent one of a family of molecules in the eukaryotic cytosol involved in protein folding and regulated in part by their heteromeric associations.

Amino Acid Sequence↗