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Experimental design methodology applied to the study of channel dimensions on the elution of red blood cells in gravitational field flow fractionation.

Field flow fractionation (FFF) separation techniques have gained considerable success with micron-sized species. Living red blood cells (RBCs) of any origin have emerged as ideal models for cell separation development. Their elution mode is now described as "Lift-Hyperlayer". Certain separator dimension parameters are known to play a key role in the separation and band spreading process. Systematic studies of channel dimensions effects on RBC retention, band spreading, peak capacity and on a novel parameter described as "Particle Selectivity" were set up by means of a two-level factorial experimental design. From experimental results and statistical calculations it is confirmed that channel thickness plays a major role in retention ratio, peak variance, peak capacity and particle selectivity. Channel breadth strongly influences plate height, with lower impact on peak capacity and particle selectivity. Retention ratio, peak variance and peak capacity observed results are modulated by second-order interactions between channel dimensions. Preliminary rules for channel configurations are therefore set up and depend on separation goals. It is shown that a very polydisperse population is best disentangled in a thin and narrow channel whatever its length. If a mixture of many different micron-sized species is considered (each of limited polydispersities); a thick and broad channel should be preferred, with length modulating peak capacity to disentangle this polymodal mixture.

Cell Separation↗

Separation of red blood cells by field flow fractionation.

Field flow fractionation (FFF) is a new methodology described as being well-suited for the separation and characterization of biopolymers and particles. On theoretical grounds, cells may be separated with FFF if they differ in size, density or deformability. In the present study, we first tried to determine optimal separation conditions for red blood cells; thereafter we used FFF to examine red cell changes during a phenylhydrazine-induced hemolytic anemia. It has been shown that in less than 30 minutes, FFF is able to separate normal red blood cells from Heinz body-rich cells or reticulocytes that differ in size or density. The successive steps of hemolysis and regeneration appear clearly on the fractograms. Advantages and drawbacks of the method are discussed.

Anemia, Hemolytic↗

Dual-field and flow-programmed lift hyperlayer field-flow fractionation.

Field and flow programming and their combination, dual programming, are shown to extend the particle size range to which a single flow/hyperlayer field-flow fractionation (FFF) run is applicable to approximately 1-50 microns. The rationale for programming flow/hyperlayer FFF (or other forms of lift hyperlayer FFF) is to expand the diameter range of micron size particles that can be resolved in a single run. By contrast, the reason for programming normal-mode FFF, the only kind of programming previously realized in FFF, is to reduce the analysis time of submicron particle samples of considerable size variability. These differences are explained in detail in relationship to the basic mechanisms governing retention in normal, steric, and lift hyperlayer FFF. Experiments are described in which field, flow, and dual programming are used to expand the accessible diameter range of flow/hyperlayer FFF. An example is shown in which 11 sizes of latex microspheres in the 2-48-microns diameter range are separated by dual programming in 11 min.

Chemical Fractionation↗

Comparison of power and exponential field programming in field-flow fractionation.

Field programming in field-flow fractionation has the purpose of expanding the molecular weight or particle diameter range subject to a single analytical run. The two most widely used field programs are those in which the field strength decays with time according to an exponential function and a power function, respectively. The performances of these two programming functions are compared by obtaining limiting equations showing how retention time tr, standard deviation in retention sigma t, and fractionating power Fd vary with particle diameter d. It is shown that uniform fractionating power (Fd independent of d) can be obtained with power programming but that in exponential programming Fd is always non-uniform, varying as d-1/2. In exponential programming a linear relationship arises between tr and log d. This particular relationship is impossible to realize in power programming but an alternative linear relationship can be obtained by plotting tr versus dt/3. These results are made more concrete by plotting and comparing field strength, relative field strength, Fd and tr for specific programming cases.

Chemical Fractionation↗

Different elution modes and field programming in gravitational field-flow fractionation. III. Field programming by flow-rate gradient generated by a programmable pump.

Gravitational field-flow fractionation (GFFF) utilizes the Earth's gravitational field as an external force that causes the settlement of particles towards the channel accumulation wall. Hydrodynamic lift forces oppose this action by elevating particles away from the channel accumulation wall. These two counteracting forces enable modulation of the resulting force field acting on particles in GFFF. In this work, force-field programming based on modulating the magnitude of hydrodynamic lift forces was implemented via changes of flow-rate, which was accomplished by a programmable pump. Several flow-rate gradients (step gradients, linear gradients, parabolic, and combined gradients) were tested and evaluated as tools for optimization of the separation of a silica gel particle mixture. The influence of increasing amount of sample injected on the peak resolution under flow-rate gradient conditions was also investigated. This is the first time that flow-rate gradients have been implemented for programming of the resulting force field acting on particles in GFFF.

Chemical Fractionation↗

Different elution modes and field programming in gravitational field-flow fractionation. IV. Field programming achieved with channels of non-constant cross-sections.

Force field programming provided increased speed of separation with an improved resolution and detection capability in many field-flow fractionation (FFF) techniques. Gravitational field-flow fractionation (GFFF) uses the Earth's gravitational field to cause the settlement of particles towards the channel accumulation wall. Although this field is constant and relatively weak, there are different ways to implement force field programming in GFFF. Because hydrodynamic lift forces (HLF) participate in the separation process in focusing (hyperlayer) elution mode, they can control the resulting force field acting on particles via changes in flow-velocity. These changes can be accomplished by a programmable pump or with channels of non-constant cross-sections. This work is focused on flow-velocity programming accomplished with channels of non-constant cross-sections. Three trapezoidal channels of decreasing breadth and two channels of decreasing height (along the longitudinal axis) are tested as tools for optimization of the separation of a model silica gel particle mixture. The trapezoidal channels yielded reduced separation times. However, taking into account both speed of separation and resolution, the optimization effect was lower compared with the flow-rate gradients generated by a programmable pump. The channels of non-constant height did not yield advantageous separations.

Fractionation, Field Flow↗

Osmolarity effects on red blood cell elution in sedimentation field-flow fractionation.

Field-flow fractionation (FFF) is an analytical technique particularly suitable for the separation, isolation, and characterization of macromolecules and micrometer- or submicrometer-sized particles. This chromatographic-like methodology can modulate the retention of micron-sized species according to an elution mode described to date as "steric hyperlayer". In such a model, differences in sample species size, density, or other physical parameters make particle selective elution possible depending on the configuration and the operating conditions of the FFF system. Elution characteristics of micron-sized particles of biological origin, such as cells, can be modified using media and carrier phases of different osmolarities. In these media, a cells average size, density, and shape are modified. Therefore, systematic studies of a single reference cell population, red blood cells (RBCs), are performed with 2 sedimentation FFF systems using either gravity (GrFFF) or a centrifugational field (SdFFF). However, in all cases, normal erythrocyte in isotonic suspension elutes as a single peak when fractionated in these systems. With carrier phases of different osmolarities, FFF elution characteristics of RBCs are modified. Retention modifications are qualitatively consistent with the "steric-hyperlayer" model. Such systematic studies confirm the key role of size, density, and shape in the elution mode of RBCs in sedimentation FFF for living, micronsized biological species. Using polymers as an analogy, the RBC population is described as highly "polydisperse". However, this definition must be reconsidered depending on the parameters under concern, leading to a matricial concept: multipolydispersity. It is observed that multipolydispersity modifications of a given RBC population are qualitatively correlated to the eluted sample band width.

Cell Separation↗

Preparative isolation of plasmid DNA with sedimentation field flow fractionation.

Sedimentation field flow fractionation (SFFF) can be used to isolate plasmids preparatively from crude cellular lysates. Total purification time is about 3/4 day, including lysate preparation. The purity and yield of plasmids isolated by SFFF appear to be at least equivalent to those prepared by traditional methods. Molecular-weight data also are supplied rapidly by SFFF without the need for standards.

Centrifugation, Density Gradient↗

Investigation of red blood cell fractionation by gravitational field-flow fractionation.

Gravitational field-flow fractionation is used for the separation of particles according to their sizes in the range 1-100 microns: larger particles elute before smaller ones. This phenomenon can be explained as a result of the steric exclusion of the particles from the vicinity of the channel walls, and/or hydrodynamic effects supposedly associated with the inertia of the liquid. The method was used for the investigation of red blood cells. The dependence of the retention ratio on the flow-rate, sample volume, concentration of blood and relaxation time was studied. Analysis of fifteen individual fractions by Coulter counter and reinjection of three other fractions were studied in order to verify fractionation of red blood cells.

Cell Separation↗

Rice starch granule characterization by flow cytometry scattering techniques hyphenated with sedimentation field-flow fractionation.

Sedimentation field-flow fractionation (SdFFF) elution mode of micron sized particle is described generically as "Hyperlayer" and involves particle size, density, shape and rigidity. It requires the use of specific detectors of mass, size, surface, or of other characteristics of the eluted particles. Correlation of FFF retention data with such signals gives hyphenated information about particle properties. Flow cytometry (FC) is a multi dimensional particle counter, which permits specific particle property characterization using light scattering and fluorescence principles. It appears therefore as a powerful technique for micron sized species description. FC is mostly known for cell analyses, while its potential is much broader once proper calibration performed. In this report, forward angle signal (FS) is calibrated in size by using standard latex beads and produces, for a given particle sample, a number versus size histogram, describing particle size distribution. These histograms can be an alternative to Coulter counting. That methodology is tested with rice starch population (RSP) fractions obtained from FFF separation.

Algorithms↗

Monitoring of an experimental red blood cell pathology with gravitational field-flow fractionation.

Gravitational field-flow fractionation is a simple method suitable for the separation of micrometre-size particles, for example the red blood cells (RBC). The variation in the composition of the RBC population in a rabbit during an experimental reversible anaemia induced by phenylhydrazine was studied. Blood samples taken at different stages of the anemia showed differences in the retention and shape of the elution profiles. Microscopic observations of original RBC samples and fractions collected at the outlet of the fractionation channel make a description of the RBC population possible. The three species observed were the normal RBC, the newly produced reticulocytes, and the blood cells containing Heinz bodies (intracellular haemoglobin precipitates). A decrease of the normal RBC from 96 to 1% was observed over five days. The production of reticulocytes in bone marrow is stimulated by the anaemia and increases in percentage after the second day of the anaemia (from 1 to 16%). RBC with Heinz bodies, which appear on the third day, were also studied. Granulometric studies were performed on the RBC sampled from the rabbit each day as well as on some fractions eluted by field-flow fractionation. Reinjection procedures of some cell subpopulations of known size distribution were also performed. The relaxation process of these cells was then studied to approximate their density properties. It was observed that RBC of different density but of the same average size were selectively eluted, as were cells of equivalent density but of different size. Injection of the cells at different stop-flow times enabled the study of the relaxation process on the elution profiles. The results, compared with systematic microscopic observation and size analysis, permit the description of modifications in the RBC composition as well as the purification of subpopulations at each stage of the anaemia. The correlation observed between the fractionation profiles and the progress or the regression of the anaemia opens a new field in the analytical monitoring of this type of pathology.

Anemia, Hemolytic↗

Characterization of submicron MCT o/w emulsions using sedimentation field-flow fractionation (FFF) with power field programming.

Sedimentation field-flow fractionation (SdFFF) operated with power-based field programming, was shown to be effective in the characterization of submicron investigational pharmaceutical emulsions. Field programming, in which the decrease of field strength with time gradually decreases the retention of sample components, extends the capabilities of sedimentation field flow fractionation in handling polydisperse and multicomponent samples. The emulsions were made of medium chain triglycerides (MCT) oil in water emulsified by phospholipids. They were analysed by different rates of field decay and different flow rates. Identical size distribution profiles were obtained under all circumstances, using the appropriate stop-flow times. Fractions were collected from the SdFFF eluting bands, and diameters were analysed by photon correlation spectroscopy, showing good agreement with values given by the FFF instrument at high flow rates and low rates of field decay. Accurate and highly reproducible size distribution profiles were obtained under various conditions. The detector response was shown to consist mostly of light scattering and was linear with concentration.

Chemical Fractionation↗

The influence of temperature on the characterization of water-soluble polymers using asymmetric flow field-flow-fractionation coupled to multiangle laser light scattering

Asymmetrical flow field-flow fractionation coupled to multiangle laser light scattering has been shown to be an effective method to determine the molar mass distribution of polysaccharides. Two polymer standards, dextran and pullulan, were analyzed in the temperature range 30-60 degrees at intervals of 10 degrees C. The weight average molar mass and molar mass distribution obtained at each temperature agreed well with quoted values. The diffusion coefficient, hydrodynamic radius, radius of gyration, and activation energy of diffusion were calculated and all agreed well with literature data obtained by dynamic and static light scattering. The asymmetry factor Rg/Rh suggests a flexible random coil conformation for both polymers, which was supported by the molar mass dependence of both the radius of gyration and the hydrodynamic radius. The results show the potential of asymmetric flow field fractionation coupled to multiangle laser light scattering in undertaking measurements of molar mass distribution as a function of temperature.

Journal Article↗

Separation of living red blood cells by gravitational field-flow fractionation.

The field-flow fractionation technique, using the earth's gravitational field, has been applied to peripheral blood cell populations. A more or less symmetrical, gaussian-like, elution peak is generally observed for the red cell population. The bimodal cell population obtained after a massive transfusion is shown to result in a shoulder on the red blood cell elution profile. In one case where a similar shouldering peak was obtained from a non-transfused donor, the existence of an immunological double population has been demonstrated. This suggests that field-flow fractionation has some potential for complementary biomedical diagnosis.

Cell Separation↗

Field- and flow-dependent trapping of red blood cells on polycarbonate accumulation wall in sedimentation field-flow fractionation.

Sedimentation field-flow fractionation (SdFFF) instrumentation is now mature. Methodological procedure and particle separation development rules are well established even in the case of biological species. However, in some biological applications, retention properties of samples not predicted by any field-flow fractionation (FFF) elution models are observed. It is demonstrated that the trapping of cellular material in the separation system is not related to geometrical instrumentation features but to channel wall characteristics. The physicochemical particle-wall attractive interactions are different depending on the flow-rate and field intensity applied. Separation power in SdFFF for biological species is therefore limited by the intensity of these interactions. In terms of separation, a balance is to be found between external field and flow intensity to limit particle-wall interactions.

Cell Separation↗

Size- and shape-dependent separation of TiO2 colloidal sub-populations with gravitational field flow fractionation.

The simplest field flow fractionation technique, which uses the earth's gravity as the external field is applied to isolate two populations, which differ in both shape and size, from a polydisperse sub-micron TiO2 powder of homogenous density. The fraction eluted first is spherical with an average diameter of 0.31 microm while the second fraction is ellipsoidal and can be associated with a 0.45 microm hydrodynamic diameter. Elution conditions appeared to be very sensitive to electrolyte and surfactant characteristics in the carrier phase as well as on the sample concentration. Using 25 microl (1%, w/w) sample suspension, separations of spherical from ovoid particles was performed in almost 2 h with a mobile phase of 0.001 M KNO3-0.01% (v/v) Fl-70 in water in a 0.025-cm thick channel made of polystyrene walls.

Chemical Fractionation↗

Two-dimensional field-flow fractionation.

Multidimensional field-flow fractionation (FFF) is described in two major forms: one in which different separative stages are coupled together and one in which two independent displacements, at least one of them FFF, are carried out in a generally planar channel structure. The latter, the subject of this paper, is relatively promising for implementation in FFF systems because in most cases the geometry of the FFF channel is already planar; the channel structure needs mainly to be broadened along the second dimension and modified with different inlets and outlets for this two-dimensional use. The large number of potential two-dimensional FFF systems is discussed. These systems are described at greater length in four categories: (1) FFF displacement used in both dimensions, (2) FFF along one axis and chromatography along another, (3) FFF along one axis and a field-induced displacement along the other, and (4) FFF separation combined with bulk or flow displacement at right angles. Finally, theoretical equations are obtained for the deflection of the trajectories away from the main flow axis z. The sensitivity of deflection to component properties is described in terms of the deflection selectivity. Several examples are discussed in which the deflection selectivity is remarkably high.

Chemical Fractionation↗