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Total vertex craniopagus with crossed venous drainage: case report of successful surgical separation.

CASE REPORT: Twin boys joined at the head in a total vertex configuration were born in Egypt in June 2001. At 12 months, they were transported to Dallas for evaluation and eventual surgical separation. In Dallas, a large multidisciplinary team of health care providers from two pediatric hospitals was assembled to care for the boys. Extensive radiographic evaluation revealed that the twins had essentially separate, well-formed brains, each with regions of schizencephaly. Each child's left cerebral hemisphere drained most of the venous blood to the right jugular system of the other. A detailed assessment of the foreseeable risks of surgical separation was then estimated and presented to the parents, as well as to the ethics committee of the two institutions. The decision was then made to proceed with separation. Surgical planning included the construction of multiple polymer models, and the design and construction of customized head holders and an operating table. Prior to separation a series of preparatory operations were performed to expand the scalp, as well as the fascia lata for dural grafting. At the age of 28 months, the twins were successfully separated during a 33-h operation. No attempt was made to reconstruct the dural venous sinuses. Scalp closure was adequate, requiring a split-thickness skin graft on one boy. OUTCOME: Postoperatively each child demonstrated an incomplete right hemiparesis. One twin required cerebral spinal fluid shunting. Neither child had a CSF leak or a CSF infection. At 6 months follow-up, both boys are rapidly acquiring speech in both English and Arabic, motor function is improving, and both are progressing toward independent ambulation.

Brain↗

Replication and/or separation of some human telomeres is delayed beyond S-phase in pre-senescent cells.

Cultured primary human cells, which lack telomerase, enter a state of replicative senescence after a characteristic number of population doublings. During this process telomeres shorten to a critical length of approximately 5-7 kb. The mechanistic relationship between advanced cell passage, cellular senescence and telomeric function has yet to be fully elucidated. In the study described here, we investigated the relationship between changes in telomeric replication timing and/or sister chromatid separation at telomeric regions and advanced cell passage. Using fluorescence in situ hybridization, we analyzed the appearance of double hybridization signals (doublets), which indicate that the region of interest has replicated and the replicated products have separated sufficiently to be resolved as two distinct signals. The results showed that the replication and separation of several telomeric regions occurs during the second half of S-phase and that a delay in replication and/or separation of sister chromatids at these regions occurs in pre-senescent human fibroblasts. Surprisingly, in a significant percentage of pre-senescent cells, several telomeric regions did not hybridize as doublets even in metaphase chromosomes. This delay was not associated with extensive changes in methylation levels at subtelomeric regions and was circumvented in human fibroblasts expressing ectopic telomerase. We propose that incomplete replication and/or separation of telomeric regions in metaphase may be associated with proliferative arrest of senescent cells. This cell growth arrest may result from the activation of a mitotic checkpoint, or from chromosomal instability consequent to progression in the cell cycle despite failure to replicate and/or separate these regions completely.

Cell Cycle↗

Decondensation of pericentric heterochromatin alters the sequence of centromere separation in mouse cells.

The centromeres of a genome separate in a sequential, nonrandom manner that is apparently dependent upon the quantity and quality of pericentric heterochromatin. It is becoming increasingly clear that the biological properties of a centromere depend upon its physicochemical makeup, such as its tertiary structure, and not necessarily on its particular nucleotide sequence. To test this idea we altered the physical state of the AT-rich pericentric heterochromatin of mouse with Hoechst 33258 (bis-benzimidazole) and studied a biological parameter, viz., sequence of separation. We report that an alteration in the physical state of heterochromatin, i.e., decondensation, is accompanied by aberrations in the pattern of centromere separation. The most dramatic effect seems to be on chromosomes with large blocks of heterochromatin. Many chromosomes with large blocks of heterochromatin that, in untreated cells, separate late tend to separate early. Decondensation with Hoechst 33258 does not seem to alter the sequence of separation of inactive centromeres relative to that of active centromeres. These data indicate that alteration in the physical parameters of the pericentric heterochromatin might dispose the centromeres to errors. It is likely that this aberration results from early replication of the pericentric heterochromatin associated with active centromeres.

Animals↗

Laparoscopically assisted components separation technique for ventral incisional hernia repair.

Reconstruction of the abdominal wall to repair ventral hernias continues to pose a challenge to surgeons due to relatively high rates of recurrence and morbidity. In 1990, Ramirez pioneered a technique of components separation of the abdominal wall for ventral hernia repair. Although an effective hernia repair, the mobilization of skin and subcutaneous tissue endangers the blood supply and predisposes midline skin to necrosis. The goal of this study is to determine whether releasing incisions in the transversus abdominis fascia and posterior rectus sheath provide adequate mobilization of the abdominal wall necessary for ventral hernia repair, thus paving the way for a laparoscopic component separation technique. Ten fresh cadavers were used and one side of the abdomen underwent the conventional Ramirez components separation: midline incision, dissection of skin and subcutaneous tissue off the anterior abdominal wall, and incisions in the external oblique aponeurosis and posterior rectus sheath, while the other side received incisions in the transversus abdominis fascia and the posterior rectus sheath with no undermining of the skin. The amount of fascial translation was measured after each incision. Incising only the external oblique aponeurosis produced greater mobilization of the abdominal wall at the level of the umbilicus (P = 0.02) and anterior superior iliac spine (ASIS, P = 0.029) than releasing only transversus abdominis fascia. More importantly, there was no statistically significant difference in the amount of release produced by the complete internal-release components separation versus the conventional technique. In order to test the feasibility of performing the procedure laparoscopically, one additional cadaver underwent a laparoscopic transversus abdominis fascia release. The procedure was successful and resulted in comparable amounts of fascial release as the other 10 cadavers. From this study, it appears technically feasible to perform a laparoscopic components separation to repair a ventral hernia and the procedure produces the same amount of release as the conventional open component separation technique.

Abdominal Wall↗

Complete separation of the triplet components of neurofilament by DE-52 column chromatography depends upon urea concentration.

In the separation of the triplet components of neurofilament (P 200, P 160, and P 68) by DE-52 column chromatography in the presence of urea, it was revealed that the efficiency of separation depended upon urea concentration. When chromatography was performed in the presence of 8 M urea and a linearly increasing sodium phosphate concentration from 10 to 400 mM at pH 6.8, P 160 and P 68 were eluted in the same peak, although P 200 was eluted faster. P 160 and P 68 were partially separated with 6 M urea, and completely separated with 4 M urea. But, under these conditions, P 200 was eluted at the same position as contaminated glial fibrillary acidic protein (GFA). From these results, two methods were recommended for the complete separation of the triplet components of neurofilament and GFA by DE-52 column chromatography. In one method, chromatography was performed in the presence of 8 M urea at first, and then P 160 and P 68 were separated in the presence of 4 M urea. In the other method, chromatography was performed with a linearly decreasing urea concentration from 8 to 0 M.

Amino Acids↗

Separation of nucleosides and nucleotides by reversed-phase high-performance liquid chromatography with volatile buffers allowing sample recovery.

Reversed-phase high-performance liquid chromatography using a C18 column with volatile buffers as the eluant was applied to the separation of a number of nucleosides and nucleotides. Groups of seven nucleosides and five nucleoside monophosphates were separated isocratically employing 0.1 M trimethylammonium acetate and 2% acetonitrile at pH 7.0. Groups of seven nucleoside diphosphates and seven nucleoside triphosphates were separated with 0.1 M triethylammonium bicarbonate and 2% acetonitrile titrated to a pH of 7.1 with acetic acid. The techniques described give resolution and separations comparable to nonvolatile buffers. Moreover, the eluant trimethylammonium acetate or triethylammonium bicarbonate buffer can easily be removed in vacuo from the column effluent, making the technique useful for preparative separations of these compounds. The observed elution pattern of nucleoside phosphates suggests that "paired-ion" chromatography is involved in the separation.

Buffers↗

Separation of DNA restriction fragments by ion-exchange chromatography on FPLC columns Mono P and Mono Q.

Separation of DNA restriction fragments by FPLC ion-exchange chromatography on Mono Q and Mono P columns was investigated. The columns were found to be particularly suitable for the separation of fragments up to 500-600 bp long. Larger fragments can also be separated although less effectively. We found the following practical working ranges for the parameters investigated: pH, 4 to 11; flow rate, 0.05 to 0.6 ml/min corresponding to separation times between 2 and 20 h. (better resolution is achieved at lower flow rates); gradient slope; between 0.5 mM eluting salt/ml buffer and over 5 mM/ml (better resolution is achieved at lower gradient slopes; eluting ionic strength was found to be independent of gradient slope); gradient composition, chloride salts of smaller monovalent cations eluted the DNA at lower ionic strengths but separations obtained were similar; additives, substances such as urea, formamide, and EDTA can be added without chromatographic effects; sample amount: amounts from 2.5 to 200 micrograms were applied, corresponding to single peak content of from 42 ng to 74 micrograms DNA. Yields were generally over 90% and the chromatographed DNA was fully accessible to restriction enzyme cleavage. Separations occurred predominantly according to DNA size, but AT-rich fragments were retarded in a predictable way.

Chromatography, High Pressure Liquid↗

Reversed-phase high-performance liquid chromatography separation of dimethylaminoazobenzene sulfonyl- and dimethylaminoazobenzene thiohydantoin-amino acid derivatives for amino acid analysis and microsequencing studies at the picomole level.

A simple and fast reversed-phase high-performance liquid chromatographic method has been developed for the complete separation of 35 dimethylaminoazobenzene sulfonyl (DABS)-amino acids and by-products. This method allows simultaneous determination of primary and secondary amino acids which can be present in protein and peptide hydrolysates and also detects the presence of cysteic acid, S-sulfocysteine, hydroxyproline, taurine, norleucine, cystine, and delta-hydroxylysine. The precolumn derivatization of amino acids with dimethylaminoazobenzene sulfonyl chloride (DABS-Cl) is simple and quick (10 min at 70 degrees C) and allows the complete reaction of primary and secondary amino acids. The separation of the compounds under investigation is achieved in 25 min using a reversed-phase 3-microns Supelcosil LC-18 column at room temperature. The versatility of the proposed method is documented by amino acid determination on protein samples obtained using different hydrolysis techniques (HCl, methane-sulfonic acid, and NaOH), with attention given to the detection of tryptophan in protein samples with high sugar concentration. Furthermore, we have reported the experimental conditions necessary to apply this method to the amino acid analysis of very low amount of proteins (1 to 5 micrograms) electroeluted from a stained band after sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The stability of DABS-derivatives, the short time of analysis, the high reproducibility and sensitivity of the system, and the complete resolution of all compounds of interest make this method suitable for routine analysis. Furthermore, we have also developed a fast reversed-phase high-performance liquid chromatographic method for the complete separation of dimethylaminoazobenzene thiohydantoin (DABTH)-amino acids. The separation of the compounds under investigation is obtained, at room temperature, in less than 18 min using a reversed-phase Supelcosil LC-18 DB column, 3-micron particles, and also allows the complete separation of DABTH-Ile, DABTH-Leu, and DABTH-Norleu. The short time of analysis, together with the high reproducibility of the system and its sensitivity at picomole levels, make this method very suitable for the identification of DABTH-amino acids released during microsequencing studies of proteins and peptides with the dimethylaminoazobenzene isothiocyanate reagent. In addition, we have shown that it is possible to obtain complete separation of DABTH-amino acids also under isocratic conditions.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acids↗

Separation of tocopherol and tocotrienol isomers using normal- and reverse-phase liquid chromatography.

This optimization study for tocopherols and tocotrienols involved both normal- and reverse-phase liquid chromatography using various columns and mobile phases. Normal-phase systems showed elution of the homologs in order of increasing polarity with separation based on methyl substituents on the chromanol moiety. Reverse-phase systems showed class separation based on the saturation of the phytyl side chain; the more saturated tocopherols were retained on the column longer. When the Zorbax ODS was used with an isocratic ternary acetonitrile:methanol:methylene chloride (60:35:5) mixture, the optimized resolution was greater than 2.0 and separation was achieved in less than 13 min, but there was no separation of beta- and gamma-tocopherols. The normal-phase silica and amino columns provided separation of all available isomers with resolution greater than 1.1 and separation times of less than 5.5 and less than 10 min, respectively. Optimized isocratic binary solvent mixtures of hexane:2-propanol were used for silica (99:1) and amino (98:2) columns. Derivative spectra showed differences depending on substituents in the chromanol moiety but not the phytyl side chain. Second- and fourth-derivative spectra gave the best differentiation of the vitamin E isomers.

Chromatography, Liquid↗

Disappearance of calcium-induced phase separation in phosphatidylserine-phosphatidylcholine membranes caused by protonation and by electric current.

Disappearance of Ca2+-induced phase separation in phosphatidylserine-phosphatidylcholine membrane has been studied under several conditions by monitoring electron spin resonance spectrum of spin-labeled phosphatidylcholine. The membranes were prepared in Millipore filters. Electron micrographs of the pre parations showed formation of multilayered structures lined on the pore surface. The phase separation was disappeared when the membrane was soaked in non-buffered salt solution (100 ml KCl, pH 5.5). It was markedly contrasting that when the bathing salt solution was buffered no disappearance was observed. Disappearance of the phase separation was also observed when the Ca2+-treated membrane was transferred to acidic salt solutions (less than or equal to pH 2.5) or to low ionic strength media (less than or equal to mM) buffered at pH 5.5, and then to the buffered salt solution (100 mM KCl, pH 5.5). These are due to replacement of Ca2+ by proton, proton-induced separation, followed by disappearance of the phase separation in the buffered salt solution. Biological significance of the competition between Ca2+ and proton for the phase separation or domain formation in the membranes was emphasized.

Calcium↗

Ca2+-induced phase separation in phosphatidylserine, phosphatidylethanolamine and phosphatidylcholine mixed membranes.

Ca2+-induced phase separation in phosphatidylserine/phosphatidylethanolamine and phosphatidylserine/phosphatidylethanolamine/phosphatidylcholine model membranes was studied using spin-labeled phosphatidylethanolamine and phosphatidylcholine and compared with that in phosphatidylserine/phosphatidylcholine model membranes studied previously. The phosphatidylethanolamine-containing membranes behaved in qualitatively the same way as did phosphatidylserine/phosphatidylcholine model membranes. There were some quantitative differences between them. The degree of phase separation was higher in the phosphatidylethanolamine-containing membranes. For example, the degree of phase separation in phosphatidylserine/phosphatidylethanolamine membranes containing various mole fractions of phosphatidylserine was 94--100% at 23 degrees C and 84--88% at 40 degrees C, while the corresponding value for phosphatidylserine/phosphatidylcholine membranes was 74--85% at 23 degrees C and 61--79% at 40 degrees C. Ca2+ concentration required for the phase separation was lower for phosphatidylserine/phosphatidylethanolamine than that for phosphatidylserine/phosphatidylcholine membranes; concentration to cause a half-maximal phase separation was 1.4 . 10(-7) M for phosphatidylserine-phosphatidylethanolamine and 1.2 . 10(-6) M for phosphatidylserine/phosphatidylcholine membranes. The phase diagram of phosphatidylserine/phosphatidylethanolamine membranes in the presence of Ca2+ was also qualitatively the same as that of phosphatidylserine/phosphatidylcholine except for the different phase transition temperatures of phosphatidylethanolamine (17 degrees C) and phosphatidylcholine (-15 degrees C). These differences were explained in terms of a greater tendency for phosphatidylethanolamine, compared to phosphatidylcholine, to form its own fluid phase separated from the Ca2+-chelated solid-phase phosphatidylserine domain.

Animals↗

High performance liquid chromatographic separation and direct ultraviolet detection of phospholipids.

A fast and efficient method for the separation of (phospho)lipids by high performance liquid chromatography using n-hexane, 2-propanol, water mixtures as the solvent system is described. The lipid separation occurs on a LiChrosorb Si-60 (10 micron) column and the individual components are monitored directly by ultraviolet absorption at 206 nm. Of a total lipid extract from erythrocytes a complete separation is achieved of cholesterol, phosphatidic acid, phosphatidylethanolamine, phosphatidylinositol, phosphatidylserine, lysophosphatidylcholine and lysophosphatidylethanolamine, whereas phosphatidylcholine and sphingomyelin are only partly separated under these circumstances. Furthermore, a mixture of synthetic phospholipids, i.e. 1,2-dilauroyl-sn-glycero-3-phosphatidic acid, 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine, 1,2-dioleoyl-sn-glycero-3-phospho-1'-sn-glycerol and 1,2-dioleoyl-sn-glycero-3-phosphocholine has been completely resolved. In addition to separation of phospholipids in different classes, separation of molecular species can also be achieved in some cases, as is shown for 1,2-dipalmitoleoyl-sn-glycero-3-phosphocholine and 1,2-didocos-13'-cis-enoyl-sn-glycero-3-phosphocholine.

Animals↗

Two-chain structure of T-suppressor factor: antigen-specific T-suppressor factor occurs as a single molecule and as separate antigen-binding and I-J+ parts, both of which are required for biological activity.

Antigen-specific T-suppressor factor (TsF), which acts at the expression stage of the contract sensitivity reaction, was produced by culturing the lymphoid cells of mice injected with picryl-sulphonic (trinitrobenzenesulphonic) acid and then painted with picryl chloride. Supernatant activity was found around 50-60 and 90 kDa on Sephadex gel filtration. The activity at 50-60 kDa was due to two separate (or readily separable) molecules, one antigen binding and the other bearing I-J determinants as shown by affinity chromatography on insolubilized antigen and anti-I-J. These two separate molecules were inactive alone but complemented each other and may be designated as the variable chain of TsF (TsFv) and the I-J+ chain. The use of gel filtration and sequential absorption of individual pools on anti-I-J antibody followed by antigen, together with a complementation assay, also showed a TSFv chain at 30-40 kDa and an I-J+ chain at 20-30 kDa. The higher-molecular-weight activity around 90 kDa was due to a single molecule which was both antigen binding and I-J+. This molecule dissociated on treatment with the reducing agent dithioerythritol followed by alkylation into two separate chains, one antigen binding and the other I-J+, both of which were required for activity. There was a requirement for genetic matching between the antigen-binding chain (TsFv) and the I-J+ chain for biological activity. These data support a two-chain model of TsF in which TsFv and the I-J+ chain occur as a single disulphide-bonded molecule around 90 kDa, or as two separate (or readily separable) chains of lower molecular weight which were inactive alone but complemented each other.

Animals↗

Simplified concanavalin-A sepharose adsorption method for separation of cone visual pigments from rhodopsin.

Batch adsorption of chicken photoreceptor extract using Concanavalin-A Sepharose enables separation of rod and cone pigments and separation of cone pigments of different color sensitivity. In earlier work, column separations using the same adsorption medium, although effective, with high resolution, were slow, demanding and required many differential bleachings of column fractions for analysis. It is shown here that affinity separations can be performed in the batch adsorption mode to purify cattle, frog and chicken rhodopsin. These procedures are more rapid and much more convenient. An extract from the chicken retina can rapidly be separated into four fractions, including three highly enriched (80% or more) visual pigment fractions: (1) extraneous proteins, carotenoids and phospholipids; (2) short wavelength-sensitive pigments; (3) iodopsin; and (4) rhodopsin. While the resolution is not as great as that of the columns, the selectivity is sufficient to produce cone pigments, which are only slightly contaminated with rhodopsin and free of other proteins, either to experiment with directly or to enable heavier loading on high resolution columns. The method is adaptable both to highly labile pigments and to very small quantities, neither of which perform well in column separations.

Adsorption↗

A novel system of LDL apheresis combining a centrifugal plasma separator with a specific LDL adsorption column.

A novel system of low density lipoprotein (LDL) apheresis for familial hypercholesterolemia (FH) was developed, combining a centrifugal plasma separator (IBM-2997) with a new adsorption column specific to lipoproteins containing apolipoprotein B (apo-B), and its operation was compared to previous methods. The present system selectively removed LDL without the substantial reduction of high density lipoprotein that was seen with other methods using membrane filters. The capacity for LDL removal was slightly more reduced with the adsorption column than with the membrane filters when a single column was used. Since the ability to obtain plasma in the centrifugal system was much higher than in the system using membrane filters for plasma separation, efficient apheresis could be performed in a much shorter time, without making an arterio-venous shunt. Remixing of blood cells, such as platelets, with the separated plasma sometimes raises the pressure within the plasma component separator, but the problem could be avoided by withdrawing the buffy coat fraction, using the WBC pump of the IBM separator. In conclusion, the novel system, combining the centrifugal plasma separator with the adsorption column, has proved, in our hands, to be a more useful and more convenient method than those previously used for the treatment of severe FH.

Adsorption↗

High-performance reversed-phase ion-pair chromatographic study of myo-inositol phosphates. Separation of myo-inositol phosphates, some common nucleotides and sugar phosphates.

A detailed study of all the major chromatographic variables affecting the retention behaviour and separation of myo-inositol phosphates in reversed-phase ion-pair chromatographic systems was carried out. The parameters studied included the eluent concentration of the pairing ion, the eluent concentration of the organic modifier and the buffer salt, the pH of the eluent, the minimum column plate count necessary for the separation of the inositol trisphosphate isomers and isocratic and gradient modes of separation. The retention behaviour of some common nucleotides and sugar phosphates was also investigated as these phosphates present chromatographic interference problems in biochemical studies based on the cellular incorporation of [32P]Pi. The separation methods developed appear to be superior to established anion-exchange separation techniques in terms of separation speed and "mildness" of the chromatographic conditions.

Chromatography, High Pressure Liquid↗

Separation of neuropeptide Y diastereomers by high-performance liquid chromatography and capillary zone electrophoresis.

Separation of analogues of neuropeptide Y (NPY) in which a single D-amino acid replaced the corresponding naturally occurring residue was performed by chromatographic techniques to ensure the quality of the synthetic peptides to be used for structural and biological studies. Of the 35 compounds, 28 were easily separated (alpha = 1.02-2.76) from native NPY by standard reversed-phase high-performance chromatography (RP-HPLC) methods using a Vydac C18 column and a gradient buffer system developed in our laboratory comprised of triethylammonium phosphate (TEAP) at pH 2.25 and acetonitrile at 40 degrees C. The identical diastereomers could be separated on the same solid support and by using 0.1% trifluoroacetic acid (TFA) as the mobile phase modifier, however separation factors were smaller and retention times were longer. Three of the remaining seven unresolved analogues were separated (alpha = 1.02-1.96) by changing the solid-phase support to Vydac diphenyl derivatized silica and a buffer system consisting of 0.1% TFA and acetonitrile. Of the four remaining unresolved analogues, only two could be separated by capillary zone electrophoresis (CZE) in 0.1 M sodium phosphate at pH 2.5, but all four were finally resolved by changing the electrophoretic buffer to 0.1 M TEAP buffer at pH 2.5. Migration times of the diastereomers differed by 0.2-2.0 min from that of the natural NPY. In addition to confirming the uniqueness of each isomer, this investigation demonstrated the expansive utility and high efficiency of the TEAP buffer system for both RP-HPLC and CZE as well as the difference in selectivity produced by the TEAP and TFA buffers in RP-HPLC.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Separation of isoforms of Serratia marcescens nuclease by capillary electrophoresis.

Three S. marcescens nuclease isoforms differing mainly in charge (native nuclease with pI 6.8 and two minor isoforms with pI 7.3 and 7.4) were separated using several different modes of high-performance capillary electrophoresis. Separation of the isoforms by free solution capillary electrophoresis was unsatisfactory. Separation by micellar electrokinetic capillary chromatography was therefore investigated in detail and the method optimized with respect to pH and sodium dodecyl sulphate concentration; in addition, the effect of adding various substances to control dispersion and avoid analyte adsorption at the capillary wall was examined. Under optimal conditions there was almost complete baseline separation of the two isoforms with basic pI whereas there was only partial separation of the native form and the isoform with pI 7.4. With capillary isoelectric focusing there was complete baseline separation of the native nuclease and the other two isoforms.

Amino Acid Sequence↗