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Mitotic crossing over and nondisjunction in translocation heterozygotes of Aspergillus.

To analyze mitotic recombination in translocation heterozygotes of A. nidulans two sets of well-marked diploids were constructed, homo- or heterozygous for the reciprocal translocations T1 (IL;VIIR) or T2 (IL;VIIR) and heterozygous for selective markers on IL. It was found that from all translocation heterozygotes some of the expected mitotic crossover types could be selected. Such crossovers are monosomic for one translocated segment and trisomic for the other and recovery depends on the relative viabilities of these unbalanced types. The obtained segregants show characteristically reduced growth rates and conidiation dependent on sizes and types of mono- and trisomic segments, and all spontaneously produce normal diploid sectors. Such secondary diploid types either arose in one step of compensating crossing over in the other involved arm, or--more conspicously--in two steps of non-disjunction via a trisomic intermediate.--In both of the analyzed translocations the segments translocated to IL were extremely long, while those translocatated from IL were relatively short. The break in I for T1 (I;VII) was located distal to the main selective marker in IL, while that of T2 (1;VIII) had been mapped proximal but closely linked to it. Therefore, as expected, the selected primary crossover from the two diploids with T2 (I;VIII) in coupling or in repulsion to the selective marker, showed the same chromosomal imbalance and poor growth. These could however be distinguished visually because they spontaneously produced different trisomic intermediates in the next step, in accordance with the different arrangement of the aneuploid segments. On the other hand, from diploids heterozygous for T1 (I;VII) mitotic crossovers could only be selected when the selective markers were in coupling with the translocation; these crossovers were relatively well-growing and produced frequent secondary segregants of the expected trisomic, 2n + VII, type. For both translocations it was impossible to recover the reciprocal crossover types (which would be trisomic for the distal segments of I and monosomic for most of groups VII or VIII) presumably because these were too inviable to form conidia.--In addition to the selected segregants of expected types a variety of unexpected ones were isolated. The conditions of selection used favour visual detection of aneuploid types, even if these produce only a few conidial heads and are not at a selective advantage. For T2 (I;VIII) these "non-selected" unbalanced segregants were mainly "reciprocal" crossovers of the same phenotype and imbalance as the selected ones. For T1 (I;VII) two quite different types were obtained, both possibly originating with loss of the small VII-I translocation chromosome. One was isolated when the selective marker in repulsion to T1 (I;VII) was used and, without being homo- or hemizygous for the selective marker, it produced stable sectors homozygous for this marker...

Aneuploidy

[Translocation mechanism of ribosomes].

The paper summarizes studies of the molecular mechanism of the dynamic function of the ribosome, i. e. translocation, performed in the author's laboratory during the past decade. The hypothesis of the locking-unlocking of the ribosomal subparticles and the kinematical model of the working ribosome, the processes of spontaneous (factor-free) and factor-dependent translocation, the sequence of events in the factor-dependent translocation, the energetics of translocation and the contribution of the elongation factors with GTP are considered. The following conclusions are made: (1) the translocation mechanism is intrinsic to the structural organization of the ribosome itself but not introduced by the protein elongation factors; (2) the transpeptidation reaction is one of the sources of energy for the work of the translocation mechanism; (3) the protein elongation factors with GTP impart additional energy to the ribosome, including that for translocation, and thus ensure excess power which is realized, in particular, in the increase of the translocation rate and its resistance against inhibitors and hindrances; (4) the promoting role of the elongation factors with GTP does not proceed by a direct conjugation of GTP hydrolysis with translocation, but through the affinity of the elongation factors to the ribosome, with a subsequent compensation of the affinity at the expense of GTP cleavage.

Guanosine Triphosphate

Ribosomal translocation assayed by the matrix-bound poly(uridylic acid) column technique.

The system of translation of cellulose-bound poly(uridylic acid) by Escherichia coli ribosomes has been used for preparation of pre-translocation state ribosomes in columns. Translocation has been induced by passing the elongation factor G (EF-G) with GTP or its non-cleavable analog (guanosine 5'-[beta, gamma-methylene]triphosphate) through the column. A method for quantitative comparison of translocation rates, and thus of effectiveness of translocation-inducing factors, has been proposed. The method is based on an analysis of the profile of deacylated tRNA elution resulting from translocation in the column. The determination of the rate and amount of translocation has been done under different ionic conditions. It has been found that the Mg2+ concentration is a decisive factor of translocation in vitro: at high Mg2+ (30 mM) EF-G cannot induce translocation, and lowering the Mg2+ concentration (to 10 mM) is required for EF-G to become effective. Sufficiently low Mg2+ (3 mM) itself has proved to induce fast and complete translocation, without EF-G.

Chromatography

[Sequence of events in the process of factor-promoted translocation in the ribosome].

A system of translation of matrix-bound poly(U) by purified Escherichia coli ribosomes was used to obtain pre-translocation state ribosomes in columns and then to induce translocation under controlled conditions by passing the elongation factor G (EF-G) with the non-cleavable GTP analog (guanylyl-methylene diphosphonate). It has been shown that translocation in the ribosome, checked by the release of deacylated tRNA, as well as by the puromycin reaction, is induced by the attachment of EF-G (with the non-cleavable GTP analog) to the ribosome and not by its detachment. In accordance with this, the ionic conditions under which the affinity of EF-G with the GTP analog to the ribosome is increased (NH4Cl instead of KCl, a lowered ionic strength) have been also found to be more effective for translocation. On the other hand, it has been shown that the detachment (removal) of EF-G is a strict pre-requisite for the appearance of competence to bind the next aminoacyl-tRNA, and thus for a continuation of the elongation cycle. A conclusion is made that the mechanical shifts of products and substrates, such as peptidyl-tRNA and deacylated tRNA, within the ribosome in the process of translocation are promoted only by the affinity of EF-G to the ribosome and does not depend on the cleavage of GTP. On the basis of the results obtained, the following sequence of events is deduced for the process of EF-G-promoted translocation: 1) interaction of EF-G.GTP with the pre-translocative ribosome, 2) translocation displacements of products and substrates, including the release of deacylated tRNA (probably conjugated with the shift of mRNA), 3) GTP hydrolysis, 4) release of EF-G and GTP from the post-translocated ribosome.

Acylation

Translocation of proteins across membranes: the signal hypothesis and beyond.

Proteins are translocated across membranes either coupled to translation (co-translationally) or after translation (post-translationally). The information for both modes of translocation is encoded in the protein in the form of a short-lived sequence extension (signal sequence). Additional information resides in the ribosome in the case of co-translational translocation, which proceeds via a ribosome--membrane junction. Translocation is mediated by specific receptors (ribosome and/or signal receptors) which are restricted in their location to distinct cellular membranes. In most cases the signal sequence is removed by a signal peptidase operating in an endoproteolytic mode. Membranes endowed with receptors for co-translational translocation are: the rough endoplasmic reticulum (RER) including the outer nuclear envelope membrane, the inner mitochondrial membrane and the thylakoid membrane of chloroplasts, in eukaryotic cells; and the plasma membrane in prokaryotic cells. Each of these membranes presumably contains a single distinctive signal receptor, ribosome receptor and signal peptidase. Membranes endowed with one distinct receptor each for post-translational translocation are both mitochondrial membranes, the chloroplast envelope membrane and the peroxisomal membrane. A signal sequence for co-translational translocation across the RER membrane that is identical in its secondary structure is shared by secretory, lysosomal and certain bitopic integral membrane proteins. Some integral membrane proteins presumably share another common sequence--referred to as stop-transfer sequence--which serves to interrupt translocation and thereby to orient the polypeptide chain in the lipid bilayer. Furthermore, the existence of a few specific 'sorting' sequences is postulated. These would be common to many proteins and would serve to route them to their final destination following translocation across or orientation within the membrane. Thus, the topological information which determines the intracellular pathway and the final location of a great number of proteins appears to reside in a small repertoire of specific sequences which are either a transient or a permanent part of the protein.

Animals

Systematic analysis of 95 reciprocal translocations of autosomes.

The statistical analysis of 95 cases of reciprocal translocations involving autosomes detected among about 10,000 patients studied with the R-banding technique gives the following information: 1. An excess of break points exists for chromosome arms 4p,9p, 10q, 21q, and 22q and a deficiency for 1p, 2p, and 6q. Furthermore, there are relatively more break points in the small arms than in the large arms, when the translocation is ascertained through an unbalanced translocation carrier. Except for chromosome 22, an ascertainment bias explain this non random distribution. 2. An excess of telomeric break points exists in all cases of translocations ascertained through unbalanced carriers, and an excess of centromeric break point exists in the case of 3:1 and 1:3 segregations only. These excesses are also explained by an ascertainment bias. 3. The break points are located usually at the junction of the bands (interfaces). 4. The size of the chromosomal imbalance varies in the ascertainment classes. It is very large in cases ascertained through balanced carriers (at least one break point is far from the telomere), large in cases ascertained through abortion, and relatively moderate in cases ascertained through unbalanced translocation carriers (at least one break point is juxta telomeric). 5. An excess of balanced reciprocal translocations exists in our sample of mentally retarded and malformed children (position effect?). 6. An excess of balanced reciprocal translocations (not involving chromosome 21) exists among the trisomics 21 and their parents (interchromosomal effect?). 7. A large excess of maternal transmission exists in cases of 3:1 segregation of reciprocal translocation.

Abnormalities, Multiple

Replication pattern of the X chromosomes in three X/autosomal translocations.

Three X/autosomal translocations, two familial and one de novo, were analyzed. Late-replicating chromosomes and chromosome regions were studied with R-banding techniques after BrdU incorporation. The first translocation, t(X;4)(q21;q13), was a de novo translocation, found in a woman with amenorrhea. The structurally normal X was late replicating in all cells. The second translocation, t(X;6)(p21;q26), was found in an unbalanced form, 46,XX,der(6), in a phenotypically abnormal girl; her mother carried the balanced translocation. In the mother's blood culture inactivation of the X's followed two modes: In 85% of the cells the normal X was late replicating, and in the remaining 15% the der(X) was inactivated, including the attached fragment of chromosome 6. The third translocation, t(X;17)(p11;q24), was found in three generations. In the phenotypically normal mother, who carried the balanced translocation, the late-replicating X was always the normal X. In her daughters, who had an unbalanced karyotype, 46,X,der(X), and multiple congenital abnormalities, the X part of the translocation chromosome was always late replicating. No spreading of inactivation over the attached autosomal region was observed, resulting for these patients in a partial trisomy of 17q. Their peculiar phenotype is described.

Abnormalities, Multiple

Cytogenetics and reproduction of sheep with multiple centric fusions (Robertsonian translocations).

The significance of centric fusions (Robertsonian translocations) in domestic animals, with special reference to sheep, is reviewed. The mating is described of a further 856 ewes with either a normal chromosome number 2n = 54 or carrying one or more of the three different translocations (centric fusions) t1, t2 and t3 in various heterozygous and homozygous arrangements. Rams which were used in the matings were homozygous for one of the translocation chromosomes (2n = 52), double heterozygotes (2n = 52), triple heterozygotes (2n = 51) or were carriers of 4 translocation chromosomes (2n = 50) and 5 translocation chromosomes (2n = 49). A remarkably even distribution of segregation products was recorded in the progeny of all combinations of translocation ewes x translocation rams in those groups in which sufficient animals were available for statistical analysis. Forty-eight chromosomally different groups of animals were mated. Further, the overall fertility of the translocation sheep, measured by conception rate to first service, lambing percentage and number of ewes which did not breed a lamb, was not significantly different from New Zealand national sheep breeding data. In some groups the poorer reproductive performance could be explained by the age structure of the flock and inbreeding depression, which probably affected the performance of some animals. Sheep with progressively decreasing chromosome numbers, due to centric fusion, 2n = 50, 2n = 49 and 2n = 48, are reported. The 2n = 48 category represents a triple homozygous ewe and a triple homozygous ram and is the first report of the viable evolution of such domestic animals. Less than 1% of phenotypically abnormal lambs were recorded in a total of 1995 progeny born over 10 years. It is now considered that there is little or no evidence to suggest that centric fusions in a variety of combinations affect the total productive fitness of domestic sheep. It is suggested that future research should be more actively directed to understanding their genetic significance.

Animals

A novel mechanism for group translocation: substrate-product reutilization by gamma-glutamyl transpeptidase in peptide and amino acid transport.

Gamma-glutamyl transpeptidase (gamma-GTP) is suggested to act as a carrier in the group translocation of oligopeptides and possibly some amino acids across cellular membranes. It is proposed that the process may involve the repetitive transfer of gamma-glutamyl groups to acceptor peptides which are being translocated from the exterior of the cell to its interior. After group translocation of the peptides has occurred with concomitant formation of gamma-glutamyl peptide products, it is suggested that the products might then be utilized as substrate for the enzyme in order to permit the translocation of other peptides from the exterior. The system is economical and requires only that it be primed with an appropriate source of gamma-glutamyl peptides, such as glutathione. In contrast to most group translocation systems previously described, substrate-product reutilization by gamma-GTP would not be expected to accumulate peptides against a concentration gradient. Mechanisms for maintaining low intracellular concentrations of the translocated peptides are described. Studies on acceptor substrate specificity of gamma-GTP from bovine choroid plexus and rat kidney show some glycyl peptides are much better substrates than free amino acids in accord with the proposal that gamma-GTP might be primarily involved in peptide translocation. Both kinetic and topological evidence support the suggestion that repetitive transfer of gamma-glutamyl moieties by gamma-GTP could occur during group translocation of peptides and possibly some amino acids.

Amino Acids

Nuclear translocation of the estradiol receptor: partial inhibition by ethidium bromide.

Ethidium bromide (EB), an intercalating drug, has been shown to prevent the in vitro interaction of the estrogen receptor (R) with DNA (André et al., 1976). We have now studied the effect of this drug on the nuclear translocation of R in order to determine whether DNA integrity is needed for this translocation. In a cell-free reconstituted system made of purified nuclei and cytosol, the pretreatment of nuclei by EB prevented approximately half of the R nuclear translocation, but was unable to extract more than 17% of the E2-R previously translocated. A series of indirect evidences suggests that EB inhibits the nuclear translocation of R by interacting with nuclear DNA. The degree of the inhibition was related to the amount of drug bound to nuclei and was in agreement with the degree of ultrastructural modifications of chromatin. R was not irreversibly altered by the drug. The EB inhibition was only observed with DNA-containing particles and with estrogen receptor able to bind to DNA. In surviving uteri the drug also inhibited the R nuclear translocation. These resuts indicate two types of nuclear translocation of R, one sensitive and the other resistant to EB, and suggest that DNA is required for the EB-sensitive translocation.

Animals

Translocation reaction promoted by polypeptide chain elongation factor-2 from pig liver.

Translocation of peptidyl-tRNA from the ribosomal A- to the P-site in the eukaryotic system was extensively investigated using a model system, in which translocation of Phe-tRNA from the A- to the P-site was examined by using the puromycin reaction, and the following results were obtained. 1) The puromycin reaction but not the translocation reaction proceeded at 0 degrees C. Since the latter could be demonstrated at 30 degrees C, it was possible to analyze translocation per se separately from the puromycin reaction. 2) Translocation was completely dependent on the elongation factor-2 (EF-2) and required the presence of GTP, which could be replaced by GMP-P(NH)P provided that the stoichiometric amount of EF-2 with respect to the amount or ribosomes was present. It was further demonstrated that translocation observed in the presence of GTP was catalytic, while that in the presence of GMP-P(NH)P was stoichiometric, indicating that hydrolysis of GTP was required for the catalytic reutilization of EF-2. 3) Translocation promoted by EF-2 in the presence of GMP-P(NH)P could be reversed, which suggests that hydrolysis of GTP is indispensable of the translocation reaction to proceed catalytically and unidirectionally forward.

Animals

A dynamic study in two new cases of X chromosome translocations.

The authors discuss the clinical and cytogenetic problems raised in two new cases of X-chromosome translocations. The first case involves a child who presented marked malformations at age 3 months. Chromosome analysis revealed the presence of a translocation between a 22 and X chromosome resulting in partial X monosomy and partial trisomy 22: 46,X,der(X),t(X:22)(q112;q13)mat. The balanced translocation form was detected in the mother. Dynamic study after 5-Brdu treatment revealed inactivation of the translocated X chromosome in the proband, while in the mother the normal X chromosome was inactivated. In addition to magnesium dependent hypocalcemia resulting from a specific absorption anomaly, Case 2 presented discrete malformations and psychomotor retardation. Chromosome analysis revealed an apparently balanced translocation between a 9 and X chromosome: 46,X,t(9;X)(q12;p22). Treatment with 5-Brdu demonstrated that the translocated X chromosome was inactivated but that inactivation did not extend to the translocated part of chromosome 9. Finally, a pericentric inversion of a 9 chromosome was detected in the father, grandfather, and brother of the proband.

Bromodeoxyuridine

X-Ray-induced translocations in spermatoginia. II. Fractionation in mice.

The dose-response curve for reciprocal translocations induced by X-rays in spermatogonial stem cells, and observed in primary spermatocytes of mice, is "hump-shaped", with a maximum yield at about 600 R. To test the hypothesis that the decrease in yield with increasing dose above 600 R is a consequence of the different sensitivities of cells in different stages of the cell cycle to both cell killing and chromosome aberration induction, several fractionation experiments were carried out. A total dose of 2800 R was given in repeated doses of 400 R, separated by 8-week intervals. The yield of translocations is that expected for additivity; for example, the yield at 1600 R is approximately equal to that for four separate 400-R doses. When a total dose (500 R) which gives a translocation yield on the ascending part of the dose-response curve is given as two equal fractions separated by intervals of 30, 90, or 150 min, the translocation yield decreases with increasing interval. However, when a total dose (1000 R) which would give a translocation yield on the descending part of the dose-response curve is given in two equal fractions separated by intervals of from 30 min to 6 weeks, the response is different; the translocation yield increases with intervals up to 18 h, then decreases with intervals up to 4 weeks, and finally increases again to a yield equal to additivity with an interval of 6 weeks. These changes in translocation yield with changes in interval between the two doses are explained in terms of the differential sensitivity of cells to killing and aberration induction in the different phases of the cell cycle, and by assuming that the cells surviving the first dose and repopulating the testis have different cycle characteristics from normal cells.

Animals

Heritable translocation test on random-bred mice after prolonged triethylenemelamine treatment.

Heritable translocation and dominant lethal tests were conducted with random-bred Swiss albino male mice. The animals were provided drinking water containing triethylenemelamine (TEM) for 4 weeks, and were then mated for 3 successive weeks for analysis of dominant lethality and production of F1 progeny. Potential translocation carriers among F1 males were selected after two breedings and confirmed by cytogenetic analysis. Translocation heterozygotes were obtained in offspring of the TEM-treated groups, but not in the control groups. In F1 males produced from the first week of mating, the frequencies of translocations were 0, 1.78 6.2 and 10.0% for the control group and groups receiving TEM at 0.0125, 0.025 and 0.050 mg/kg/day, respectively, and in those produced from the third week of mating, the values were 0 and 2.1%, respectively, for the control group and the group receiving TEM at 0.050 mg/kg/day. F1 males from the second week of mating were not studied for the induction of heritable translocations. TEM-induced dominant lethality and heritable translocations were most prominent in the first week of mating after 4 weeks of treatment. In addition, heritable translocations appeared to be a more sensitive endpoint than dominant lethal mutations for the measurement of mutagenic effects of TEM.

Animals

The relation between reaction kinetics and mutagenic action of mono-functional alkylating agents in higher eukaryotic systems. I. Recessive lethal mutations and translocations in Drosophila.

The relationship in Drosophila males between chemical reaction pattern of mono-functional alkylating agents (AA), described in terms of primary alkylation pattern with DNA and proteins as well as the Swain--Scott s factor, and their biological effectiveness were investigated. The agents chosen for comparative analysis were the nitrosamides ENU and MNU, the methanesulfonic esters iPMS, EMS and MMS, the dialkylsulfate DMS, and the nitrosamines DEN and DMN. Parameters of their biological activity were mortality (LC50) of treated adult males, induction in post-meiotic stages of X-chromosomal recessive lethal mutations and 2--3 translocations after either adult feeding or injection. Induced frequencies of recessive lethals, determined for each AA with a range of concentrations, served as biological dosimeter for interaction with target DNA in the germ line. The results are interpreted as indicating for these AA a causal connection between the pattern of primary alkylation of DNA and the quality of genetic damage observed. 1. The agent with the lowest s value, ENU, and its pendant DEN, failed to produce translocations at mutation frequencies that reached 44% for ENU. The highest chromosome-breaking activity was attributed to AA with high s, MMS and DMS. For MMS, the proportions of translocations (T) to mutations (M) approximately reached a 1 : 1 ratio in stored spermatozoa, at a recessive-lethal frequency of 14%. Ability to break chromosomes, as indicated by the T : M ratios, decreased in the sequence MMS greater than or equal to DMS, MNU greater than DMN greater than EMS greater than iPMS greater than ENU = DEN. 2. Nearly the reversed sequence in relative mutagenci effectivenss was obtained when the (directly acting) AA were arranged on the basis of their CM4/LC50 ratios (CM4, the exposure condition producing 4% recessive lethals after injection): ENU greater than EMS greater than iPMS, MNU greater than MMS = DMS. 3. Among the AA, EMS had a somewhat unique position, in that it was slightly less effective in the translocation test, and also less cytotoxic but more mutagenic in the recessive-lethal test than one would expect from its s value. This is taken as an indication of the influence on biological effectiveness of factors other than the s value, e.g. methylation versus ethylation and the lipid/water partition ratio. An example of the latter was also provided by DMS which, although having the same s as MMS, with its 5-fold higher lipid/water partition ratio, was more toxic than MMS. 4. For those AA that were clearly active in the translocation tests--MMS, DMS, MNU, DMN and EMS--delayed formation of exchanges was observed. Only in 17 out of 555 translocation tests with positive response translocations were already found in progeny from unstored spermatozoa. Consequently, it was concluded that performance of storage experiments in Drosophila is an absolute necessity for the detection of this type of rearrangement by AA. 5...

Alkylating Agents

The fitness of human translocation carriers.

A simple method to estimate the mean fitness of human translocation carriers is described. The method is based on information about the inheritance pattern of the translocations. This kind of data can be obtained from the surveys of the chromosome constitutions of new-born babies. The following fitness estimates are obtained: D/D translocation carriers, 0-94; D/G translocation carriers, 0-83; and reciprocal translocation carriers, 0-67. The estimates are rather uncertain due to the scarcity of information, but they are consistent with the expected results. More accurate estimates will be obtained in the future when more data on translocation carriers are available and the cytological classification of the different translocations becomes more exact.

Biological Evolution

The microbial metabolism of Cl compounds. The stoicheiometry of respiration-driven proton translocation in Pseudomonas AM1 and in a mutant lacking cytochrome c.

This paper clarifies the role of cytochrome c in Pseudomonas AM1 by measuring the stoicheiometry of proton translocation driven by respiration of endogenous or added substrates in wild-type bacteria and in a mutant lacking cytochrome c (mutant PCT76). The maximum -->H(+)/O ratio (protons translocated out of the bacteria per atom of oxygen consumed during respiration) was about 4 and, except when respiration was markedly affected, this ratio was similar in mutant and wild-type bacteria. The -->H(+)/O ratios were unaltered when the usual oxidase (cytochrome a(3)) was inhibited by 300mum-KCN and respiration involved the single cytochrome b functioning as an alternative oxidase. Ratios measured in cells respiring endogenous substrate and in cells loaded with malate or 3-hydroxybutyrate suggest that there are two proton-translocating segments operating during the oxidation of NADH. By contrast, during oxidation of formaldehyde or methylamine only one pair of protons is translocated. Proton translocation could not be measured with methanol as substrate, because its oxidation was inhibited (90-95%) by 5mm-KSCN. It is tentatively proposed that the electron-transport chain for NADH oxidation in Pseudomonas AM1 is arranged such that the NADH-ubiquinone oxidoreductase forms one proton-translocating segment and the second segment consists of ubiquinone and cytochromes b and a/a(3). The cytochrome c appears to be essential only for respiration and proton translocation from methanol (and possibly from methylamine); there is no conclusive evidence that cytochrome c ever mediates between cytochromes b and a/a(3) in Pseudomonas AM1.

Cyanides

Human X-Linked genes regionally mapped utilizing X-autosome translocations and somatic cell hybrids.

Human genes coding for hypoxanthine phosphoribosyltransferase (HPRT, EC 2.4.2.8; IMP:pyrophosphate phosphoribosyltransferase), glucose-6-phosphate dehydrogenase (G6PD, EC 1.1.1.49; D-glucose-6-phosphate:NADP+ 1-oxidoreductase), and phosphoglycerate kinase (PGK, EC 2.7.2.3; ATP:3-phospho-D-glycerate 1-phosphotransferase) have been assigned to specific regions on the long arm of the X chromosome by somatic cell gentic techniques. Gene assignment and linear order were determined by employing human somatic cells possessing an X/9 translocation or an X/22 translocation in man-mouse cell hybridization studies. The X/9 translocation involved the majority of the X long arm translocated to chromosome 9 and the X/22 translocation involved the distal half of the X long arm translocated to 22. In each case these rearrangements appeared to be reciprocal. Concordant segregation of X-linked enzymes and segments of the X chromosome generated by the translocations indicated assignment of the PGK gene to a proximal long arm region (q12-q22) and the HPRT and G6PD genes to the distal half (q22-qter) of the X long arm. Further evidence suggests a gene order on the X long arm of centromere-PGK-HPRT-G6PD.

Animals