CA2712213C - Method to perform limited two dimensional separation of proteins and other biologicals - Google Patents

Method to perform limited two dimensional separation of proteins and other biologicals Download PDF

Info

Publication number
CA2712213C
CA2712213C CA2712213A CA2712213A CA2712213C CA 2712213 C CA2712213 C CA 2712213C CA 2712213 A CA2712213 A CA 2712213A CA 2712213 A CA2712213 A CA 2712213A CA 2712213 C CA2712213 C CA 2712213C
Authority
CA
Canada
Prior art keywords
proteins
protein
separation
zone
separation stage
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CA2712213A
Other languages
French (fr)
Other versions
CA2712213A1 (en
Inventor
Tiemin Huang
Jiaqi Wu
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
ProteinSimple
Original Assignee
ProteinSimple
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by ProteinSimple filed Critical ProteinSimple
Priority to CA3123719A priority Critical patent/CA3123719A1/en
Priority to CA2712213A priority patent/CA2712213C/en
Publication of CA2712213A1 publication Critical patent/CA2712213A1/en
Application granted granted Critical
Publication of CA2712213C publication Critical patent/CA2712213C/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N30/00Investigating or analysing materials by separation into components using adsorption, absorption or similar phenomena or using ion-exchange, e.g. chromatography or field flow fractionation
    • G01N30/02Column chromatography
    • G01N30/88Integrated analysis systems specially adapted therefor, not covered by a single one of the groups G01N30/04 - G01N30/86
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N27/00Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
    • G01N27/26Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating electrochemical variables; by using electrolysis or electrophoresis
    • G01N27/416Systems
    • G01N27/447Systems using electrophoresis
    • G01N27/44704Details; Accessories
    • G01N27/44717Arrangements for investigating the separated zones, e.g. localising zones
    • G01N27/44721Arrangements for investigating the separated zones, e.g. localising zones by optical means
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N27/00Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
    • G01N27/26Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating electrochemical variables; by using electrolysis or electrophoresis
    • G01N27/416Systems
    • G01N27/447Systems using electrophoresis
    • G01N27/44756Apparatus specially adapted therefor
    • G01N27/44795Isoelectric focusing
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N30/00Investigating or analysing materials by separation into components using adsorption, absorption or similar phenomena or using ion-exchange, e.g. chromatography or field flow fractionation
    • G01N30/02Column chromatography
    • G01N30/62Detectors specially adapted therefor
    • G01N30/74Optical detectors
    • G01N2030/746Optical detectors detecting along the line of flow, e.g. axial
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N30/00Investigating or analysing materials by separation into components using adsorption, absorption or similar phenomena or using ion-exchange, e.g. chromatography or field flow fractionation
    • G01N30/02Column chromatography
    • G01N30/88Integrated analysis systems specially adapted therefor, not covered by a single one of the groups G01N30/04 - G01N30/86
    • G01N2030/8809Integrated analysis systems specially adapted therefor, not covered by a single one of the groups G01N30/04 - G01N30/86 analysis specially adapted for the sample
    • G01N2030/8813Integrated analysis systems specially adapted therefor, not covered by a single one of the groups G01N30/04 - G01N30/86 analysis specially adapted for the sample biological materials
    • G01N2030/8831Integrated analysis systems specially adapted therefor, not covered by a single one of the groups G01N30/04 - G01N30/86 analysis specially adapted for the sample biological materials involving peptides or proteins

Landscapes

  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Molecular Biology (AREA)
  • Physics & Mathematics (AREA)
  • Analytical Chemistry (AREA)
  • Biochemistry (AREA)
  • General Health & Medical Sciences (AREA)
  • General Physics & Mathematics (AREA)
  • Immunology (AREA)
  • Pathology (AREA)
  • Electrochemistry (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Peptides Or Proteins (AREA)
  • Investigating Or Analysing Biological Materials (AREA)

Abstract

A method and apparatus are provided for performing capillary isoelectric focusing followed by mobilization of the focused zones by induced hydrodynamic flow or chemical mobilization. These two dimensions of separation are integrated with real-time whole-channel electrophoresis detection and automatic sample injection to achieve a separation resolution superior to that obtainable using known orthogonal capillary two dimensional arrangements.

Description

METHOD TO PERFORM LIMITED TWO DIMENSIONAL SEPARATION
OF PROTEINS AND OTHER BIOLOGICALS
BACKGROUND OF THE INVENTION
[0001] The present invention is in the technical field of two-dimensional separation of proteins and other biologicals and relates particularly to apparatus and a method * for the rapid and reproducible separation of species in a liquid medium.
[0002] The separation and characterization of proteins is ubiquitous throughout the life sciences. Two of the most popular electrophoresis separation techniques are: 1) gel isoelectric focusing (IEF), where the separation mechanism is based on protein surface charge providing isoelectric point (pI) separation and 2) sodium dodecyl sulfate (SDS) gel electrophoresis where the separation mechanism is based on molecular weight (MW). These two techniques are most commonly performed individually.
[0003] Isoelectric focusing (IEF) is a special electrophoretic technique for separating amphoteric substances such as peptides and proteins in an electric field, across which there is both voltage and a pH gradient, acidic in the region of the anode and alkaline near the cathode. Each substance in the mixture will migrate to a position in the separation column where the surrounding pH corresponds to its isoelectric point.
There, in zwitterion form with no net charge, molecules of that substance cease to move in the electric field. Different amphorteric substances are thereby focused into narrow stationary bands.
[0004] In IEF separation, it is well known that proteins having molecular weight differences or conformational differences may possess similar pI values and therefore focus at the same location. In order to then separate these co-focused proteins, a technique called two-dimensional (2D) gel electrophoresis has been employed.

gel electrophoresis combines two orthogonal separation techniques - gel IEF
and SDS
gel - to create a technique that dramatically increases separation resolution and provides for the separation of co-focused IEF protein zones. 2D gel electrophoresis is generally carried out in a polyacrylamide slab gel and although it has become a workhorse in the field of proteomics, owing to the high degree of resolution which can be obtained thereby, it is very labour-intensive, time consuming and non-quantitative.
Moreover, although 2D gel electrophoresis does afford the highest degree of molecular weight resolution of known electrophoretic separation techniques, it has not yet been possible to automate that process nor quantify the resolved component proteins or other analytes. These and other drawbacks have motivated researchers to combine two orthogonal separation techniques in the liquid phase, using a capillary or coplanar microchannel format. While these are necessarily "limited resolution"
techniques, relative to 2D gel electrophoresis, they are much simpler and faster to use and are of adequate resolution for many purposes.
[0005] It is known to combine capillary or channel isoelectric focusing (cIEF) with non-porous reverse phase microliquid chromatography (RPLC) in a two-dimensional layout, to obtain useful online detection and quantitation. However, the interface between the first and second separation dimension has hitherto been carried out only at the outlet end of the IEF separation capillary or channel. It is known that the separation and pH gradient obtained in cIEF may be disturbed when mobilizing focused protein zones to reach the outlet end. A as result, it is more challenging to transfer separated zones from the first separation dimension to the second separation dimension in the orthogonal capillary or microchannel format than in apparatus for 2D
gel electrophoresis. Fluid connections and for control of nanoliter volumes are required, making for complex analytical design and operation.
BRIEF SUMMARY OF THE INVENTION
[0006] This invention describes improved method and apparatus for carrying out limited electrophoretic separation in the liquid phase. The objective of the invention is to provide a simple method and apparatus for limited "2D" separation using both capillary or channel IEF separation and capillary zone electrophoresis (CZE) separation within the same capillary or channel. The present invention also integrates real-time, whole-channel electrophoresis detection with automatic sample injection, automatic cIEF separation, separation zone manipulation and on-line electrolyte selection, to achieve a separation resolution superior to that obtained using an orthogonal capillary arrangement.
[0007] The quotation marks about "2D" above reflect the fact that the present invention uses two different and sequential electrophoretic techniques, but not orthogonal capillaries as in the known arrangements described above. The term "2D"
is, a convenient shorthand term for designating a method and apparatus employing two-stage electrophoretic separation, and will be used in the remainder of the specification and in the claims without quotation marks.
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Figure 1 is a schematic representation of a first embodiment of apparatus for performing limited 2D separation using electrophoresis and controlled hydrodynamic flow.
[0011] Figure 2 illustrates schematically a physiochemical mechanism postulated to explain the separation of proteins in the presence of a hydrodynamic flow as in the method of the invention.

[0012] Figure 3 is a schematic representation of a second embodiment of apparatus according to the invention for performing limited 2D separation using electrophoresis and chemical mobilization.
[0013] Figure 4 illustrates graphically the separation of two proteins having the same pI value but different charge responses to pH, using the method of the invention.
[0014] Figure 5 illustrates graphically the results of a separation effected by using apparatus according to the first embodiment of the invention, showing a single peak of tryptosinogen and pI Marker 9.46 mixture when hydrodynamic flow is minimized, and split peak of tryptosinogen and pI Marker 9.46 when hydrodynamic flow is toward the cathode.
[0015] Figure 6 illustrates graphically the results of a separation effected by apparatus according to the second embodiment of the invention, showing two peaks of transferrin prior to anodic mobilization and four peaks of transferring subsequent to anodic chemical mobilization.
DETAILED DESCRIPTION OF THE INVENTION
[0016] Figure 1 shows a first embodiment of the apparatus. A microfluid device is provided, including an anolyte tank 10 and a catholyte tank 12 such that electrolyes in the tanks are isolated from the sample mixture by ion conductive barriers 14 (such as semipereamble membranes). A high voltage supply connected across two electrodes that are immersed in the respective tanks. A CCD imaging camera 20 is focused so that it can detect light passing through or emitted from the entire length of a horizontal capillary separation channel 22. The camera 20 is able to display and capture pictures in real-time, or at least very rapidly. A
light source and collimation means (not shown) are provided for applying a sheet of light (arrows L) to pass through or emit from the entire length of separation channel 22. A
real time CCD sensor camera/sensor arrangement like that used with the apparatus of the present invention is described in more detail in US patent No. 6,852,206, having a common inventor and the same assignee as the present application. US patent 6,852,206 discloses detection and measurement apparatus of analyte separation zones in a capillary.
(0017] A switch valve 24 is connected to the microfluidic device such that an inlet flow channel portion 26 at one end of the separation channel may be selectively connected to either an autosampler 28 for sample injection, or to the fluid medium contents of an inlet vial 30. A hydrodynamic flow across separation channel 22 can be induced and controlled by vertical up or down fine-control motion of a hydrodynamic flow vial 32 containing fluid medium, the contents of which are connected by means of hydrodynamic flow control valve 33 with an outlet flow channel portion 34 of the separation channel.
[0018] With the switch valve 24 position set for fluid connection of the inlet channel portion 26 of the separation channel to the autosampler 28, and with a shut-off valvefor autosampler connection tube 29 open, a sample containing a mixture of proteins , carrier ampholytes and a sieving solution such as methyl cellulose is injected into the separation channel by the autosampler until the sample mixture volume fills the separation channel to overflow. The position of the switch valve is then set to connect the inlet vial with the separation channel and the high voltage is turned on by means of HV switch 36. An electric field is thereby established across the separation channel and a linear pH gradient is formed by the carrier ampholytes.
The cIEF process begins and upon completion, proteins are focused and separated into zones according to their pI when both electro-osmotic flow and hydrodynamic flow are stable. The entire IEF process is continuously monitored and the images of the separation trace are continuously captured (recorded) in real-time by the whole-channel CCD imaging camera of the CCD sensor unit. At this point, the first dimensional separation (cIEF) is complete and the second dimensional separation is initiated.
[0019] The second dimensional separation is applied to the IEF focused zones (proteins) by the application of a controlled hydrodynamic flow. The hydrodynamic flow is induced by a microgravitational force arising in the separation channel 22 resulting from the finely controlled up or down motion of the hydrodynamic flow vial.
When hydrodynamic flow is introduced into the separation channel following IEF

focusing, the pH gradient will be affected and additional sample mixture will enter the separation channel. As more sample mixture is continuously injected into the separation channel owing to the hydrodynamic flow, the focused zones at the far end of the separation channel (along the direction of hydrodynamic flow) are continuously pushed out. For example, if the outlet vial 32 is raised slightly, then the hydrodynamic flow direction proceeds from the anodic (outlet end) to the cathodic end (inlet end). More sample mixture is introduced from the anodic end, and the most basic zones focused at the cathodic end will be pushed out of the separation capillary (over the ion conductive barrier area, see Figure 2). Since this hydrodynamic flow coexists with an electric field, the separation zone resolution and shape is preserved when the hydrodynamic flow is limited and carefully controlled and the newly injected sample mixture ampholytes are focused into their pI position.
The movement of relatively larger molecular weight proteins (protein A in Fig 2) is slower than that of smaller ones (protein B in Fig 2) in a sieving solution such as methylcellulose. As a result, a limited second dimensional separation of cIEF
zones (proteins) due to mass difference is achieved. Again, the entire second dimension separation process is continuously monitored and the images of the separation trace are continuously captured (recorded) in real-time by the whole-channel, CCD
imaging camera.
[0020] Figure 3 shows a second embodiment of the apparatus. The same reference numerals are used to indicate components corresponding to those of the first apparatus embodiment (Fig. 1). The microfluid device contains an analyte tank 10, a catholyte tank 12 and a chemical mobilization tank 38. The electrolyes in the three tanks are isolated from the sample mixture by ion conductive barriers 14. High voltage supply is connected at one end to an electrode immersed in the anolyte tank and at the other end to HV switch 36 such that connection can be made to either an electrode immersed in the catholyte tank or an electrode immersed in the chemical mobilization tank. Real time CCD sensor 20 is focused such that it can detect light (arrows L) passing through or emitted from the entire length of separation channel 22 and the camera is able to display and capture pictures in real-time, or at least very rapidly. Means (not shown) are provided in both the first and second embodiments of the invention for projecting a sheet of light to pass through or emit from the entire length of the separation channel. As with the first embodiment described above switch valve 24 is connected to the microfluidic device such that the inlet flow channel 26 may be connected to either autosampler 18 for sample injection or to an inlet vial 30. The end of the outlet channel is immersed in an outlet vial.
[0021] The anolyte, catholyte and chemical mobilization tanks (10, 12,38) are filled with appropriate electrolytes and, with the switch valve position set for connection between the inlet of the separation channel and the autosampler and the shut-off valvle to capillary section 29 open, a sample containing a mixture of proteins , carrier ampholytes and a sieving solution such as methyl cellulose solution is injected into the separation channel by the autosampler until the sample mixture volume fills the separation channel to overflow. The switch valve position is then set for connection between inlet vial 30 and separation channel 22, the high voltage is turned on and the switch valve 24 is set such that the catholyte electrode is contacted, an electric field established across the separation channel, and a linear pH
gradient is formed by the carrier ampholytes. The cIEF process begins and upon completion, proteins are focused and separated into zones according to their pI when both electro-osmotic flow and hydrodynamic flow are well controlled. The entire cIEF
process is continuously monitored and the images of the separation trace are continuously captured (recorded) in real-time by the whole-channel, CCD
imaging camera. At this point, the first dimensional separation (cIEF) is complete and the second dimensional separation begins.
[0022] The second dimensional separation is achieved in this second embodiment of the apparatus, not by controlled hydrodynamic pressure but by chemical mobilization of the cIEF focused zones. An electric switch that is selectively operable to connect to anolyte electrode or the catholyte electrode is changed to connect to the chemical mobilization solution upon completion of cIEF.
Mobilization of the focused zones will then occur. It is known that when non-acid solution is used as the anolyte, focused cIEF zones will migrate towards the anode (anodic mobilization).
Whereas when non-base solution is used as the catholyte, focused cIEF zones will migrate towards the cathode (cathodic mobilization). Therefore, anodic mobilization may be achieved by switching the high voltage contact to the anode from the acid solution tank to the chemical mobilization tank that contains non-acid solution, or cathodic mobilization may be achieved by switching the high voltage contact to the cathode from the base solution tank to the chemical mobilization tank that contains non-base solution.
[0023] The rate of migration due to chemical mobilization is determined by the charge-to-mass ratio of the protein and the mobility of the protein in a specific sieving solution. For example, two exemplary proteins with the same pI value have different rates of migration in response to a pH change (Figure 4). As a result, these two proteins will not experience the same rate of motion during chemical mobilization. In addition, when this movement is carried out in a sieving solution, proteins with different molecular weight or shape (conformation) may have different mobility. Therefore, proteins with the same pI, but have different mobility change with pH or different molecular weights or conformation can be separated with limited 2D separation of cIEF zones using chemical mobilization. Again, the entire second dimension separation process is continuously monitored and the images of the
- 8 -separation trace are continuously captured (recorded) in real-time by the whole-channel, CCD imaging camera.
[0024] cIEF is a steady state technique. Focusing and separation of proteins is achieved when transitional peaks or zones converge into stationary zones.
However, if single-point detection is used, it is difficult to know the exact time when all proteins are focused, since the speed of protein focusing is affected by sample conditions such as: content of salt and carrier ampholytes in the sample, experimental conditions such as separation channel dimensions, electric field strength and electrolyte concentration. As a result, two transitional peaks or zones for one protein may be detected when the protein is not yet focused. Further, an abnormal peak may be observed due to protein aggregation or precipitation resulting from prolonged protein focusing. With whole-column detection, as used with the present invention, however, the separation and focusing of an individual protein can be monitored in real time, avoiding the problems of 2D separation of transitional peaks (premature focusing) and separation of precipitated proteins (over focusing). The pI value of the protein is calibrated and the second dimension separation is applied. With real-time, whole column detection, the protein separation can be monitored, providing better protein fingerprinting by allowing straightforward assignment of protein zones based on pI
and relative molecular weight differences.
Example 1: Induced Hydrodynamic Flow as Second Dimension of Separation [0025] Figure 5 illustrates hydrodynamic flow induced limited 2D
separation of protein trypsinogen and a small molecular weight pI marker. In this experiment, trypsinogen and a small molecular pI marker were mixed with 8% pH 3-10 Pharmalyte and 0.35% methylcellulose. The sample mixture was injected into a mm 100 pm inner diameter FC coated capillary with a micro autosampler.
Focusing was conducted at a focusing voltage of 3000 V, with 80 mM H3PO4 as anolyte and mM NaOH as catholyte. Detection was conducted with a real-time, whole column UV
- 9 -detector. The hydrodynamic flow is controlled by the water level difference in the hydrodynamic flow vial and the inlet vial.
[0026] It can be seen that when hydrodynamic flow was minimized (i.e.
under first dimension cIEF separation conditions), there were two peaks in the electrophorogram (trace a). The more acidic peak to the left of the electrophorogram (egram) contains the minor component of trypsinogen (pk 1) and the more basic peak to the right of the egram contains the major component of trypsinogen (pk 2) and the pI marker (pk3). When a hydrodynamic flow was introduced in the direction of the cathodic end (trace b), the minor component of trypsinogen (pk 1) further partially separated into two subcomponents, and the pI marker (pk 3) was partially separated from peak the major component of trypsinogen (pk 2). The pI marker (pk 3) moved more quickly to a more basic position than the major trypsinogen component (pk 2) due to its smaller molecular weight in a sieving solution.
When a hydrodynamic flow was introduced in the direction of the anodic end (trace c), again because of the smaller MW of the pI marker (pk 3) compared to that of the major component of trypsinogen (pk 2), the pI marker shifted more quickly to a more acidic position than that of the major component of trypsinogen.
Example 2: Chemical Mobilization as Second Dimension of Separation [0027] Figure 6 illustrates chemical mobilization induced limited 2D
separation of transferrin, myoglobin and a small molecular weight pI marker (pI 4.22). In this experiment, transferrin and myoglobin and the pI marker were mixed with 8% pH

Pharmalyte and 0.35% methylcellulose. The sample mixture was injected into a mm 100 pm inner diameter FC coated capillary with a micro autosampler.
Focusing was conducted at a focusing voltage of 3000 V, with 80 mM H3PO4 as anolyte and mM NaOH as catholyte. Detection was conducted with a real-time, whole column UV
detector. For anodic mobilization (trace b), the anolyte was replaced with 100 mM
NaOH upon completion of cIEF focusing. For cathodic mobilization (trace c), the catholyte was replaced with 80 mM H3PO4 upon completion of focusing.
- 10 -In Trace a, it can be seen that when electroosmotic flow and hydrodynamic flow are well controlled (i.e. under first dimension cIEF separation conditions), the transferrin protein is partially resolved into two peaks and a minor myoglobin peak (pk 1) is noted. Under anodic mobilization (trace b), the transferrin protein is now partially resolved into 4 peaks and the minor myoglobin component is partially resolved into 2 peaks (pk 1). When cathodic chemical mobilization was introduced (trace c), the two peaks of transferrin (trace a) are separated into two larger peaks and one smaller peak.
[0028] Neither chemical mobilization conditions produced any split or partially separation of the pI marker peak (pI 4.22) and the major myoglobin peak.
CONCLUSION
[0029] From the description and examples herein it will be seen that applicants' provides a rapid, reproducible and quantative limited 2D electrophoresis separation.
Channel or capillary-based electrophoresis, unlike 2D gel electrophoresis permits automatic sample injection. No sample transfer or handling is involved and either hydrodynamic flow or chemical mobilization can be used, since both can be well controlled. Applicants' arrangement allows "two-dimensional" electrophoresis to be carried out within a single separation channel and in a single analysis run.
The use of real time, whole channel image detection affords very good reproducibility in both qualitative and quantative characterization.
[0030] While the foregoing written description of the invention enables one of ordinary skill to make and use what is considered presently-to be the best mode thereof, those of ordinary skill will understand and appreciate the existence of variations, combinations, and equivalents of the specific embodiment, method, and examples herein. The invention should therefore not be limited by the above
-11-described embodiment, method, and examples, but by all embodiments and methods within the scope and spirit of the invention as claimed.
- 12-

Claims (26)

WE CLAIM:
1. A method, comprising:
introducing into a capillary separation column of an electrophoretic cell a solution including a plurality of proteins in an ampholytic carrier medium or a plurality of amphoteric biological analytes in an ampholytic carrier medium;
focusing, in a first separation stage via isoelectric focusing a first subset of the plurality of proteins or the plurality of amphoteric biological analytes into a first zone along a capillary separation column and a second subset of the plurality of proteins or the plurality of amphoteric biological analytes into a second zone along the capillary, the second zone different from the first zone, the capillary separation column having a first pH gradient during the first separation stage such that the first zone corresponds to a first pH value corresponding to a first pI value of each protein or amphoteric biological analyte from the first subset of the plurality of proteins or the plurality of amphoteric biological analytes and the second zone corresponds to a second pH value corresponding to a second pI value of each protein or amphoteric biological analyte from the second subset of the plurality of proteins or the plurality of amphoteric biological analytes;
initiating a second separation stage after the first subset of the plurality of proteins or the plurality of amphoteric biological analytes are focused into the first zone in the first separation stage, the capillary separation column having a second pH gradient different from the first pH gradient during the second separation stage such the first zone moves along the capillary separation column causing each protein or amphoteric biological analyte from the first subset of the plurality of proteins or the plurality of amphoteric biological analytes to separate according to their respective mobility- and detecting a separation of a first protein or amphoteric biological analyte from a second protein or amphoteric biological analyte based on the first protein or amphoteric biological analyte having a different mobility than the second protein or amphoteric biological analyte, each of the first protein or amphoteric biological analyte and the second protein or amphoteric Date Recue/Date Received 2020-06-24 biological analyte being from the first subset of the plurality of proteins or the plurality of amphoteric biological analytes.
2. The method according to claim 1, wherein the zone is mobilized by applying hydrodynamic pressure to the solution at one end of said capillary separation column.
3. The method according to claim 1, wherein the zone is mobilized via at least one of anodic or cathodic chemical mobilization.
4. A method, comprising:
loading an inlet reservoir and a separation channel of an electrophoretic cell with a solution including a plurality of proteins, an amphoteric carrier medium, and a sieving solution, the inlet reservoir fluidically coupled to the separation channel;
during a first separation stage:
establishing a pH gradient across the separation channel, the pH gradient being static during the first separation stage;
applying a voltage to the separation channel in the presence of the pH
gradient such that the plurality of proteins are focused into a zone having a pH value corresponding to a pI value of each protein from the plurality of proteins in that zone, the zone being static during the first separation stage;
during a second separation stage mutually exclusive from the first separation stage:
drawing the sample from the inlet reservoir into the separation channel inducing a hydrodynamic flow within the separation channel causing the zone to move away from the inlet reservoir such that each protein from the plurality of proteins is displaced from the pH
value corresponding to the pI value of each protein from the plurality of proteins and such that Date Recue/Date Received 2020-06-24 each protein from the plurality of proteins moves towards the zone effecting a separation of the plurality of proteins by mobility; and continuously monitoring the plurality of proteins during the second separation stage using a whole column imaging detector and detecting a separation of a first protein from a second protein during the second separation stage due to the first protein having a different mobility than the second protein, the first protein and the second protein each being from the plurality of proteins.
5. The method of claim 4, wherein the plurality of proteins are a first plurality of proteins, the pI
value is a first pI value, and the sample includes a second plurality of proteins having a plurality of pI values different from the first pI value.
6. The method of claim 4 wherein the first separation stage concludes when the plurality of proteins are focused into the zone.
7. The method of claim 4, further comprising:
continuously monitoring the plurality of proteins during the first separation stage using the whole column imaging detector, the hydrodynamic flow induced in response to the whole column imaging detector detecting that each protein from the plurality of proteins is focused into the zone.
8. The method of claim 4, wherein the first protein has a first mobility and the second protein has a second mobility greater than the first mobility such that the second protein moves through the sieving solution towards the zone during the second separation stage faster than the first protein.
9. The method of claim 4, wherein the plurality of proteins are focused during the first separation stage via isoelectric focusing.
Date Recue/Date Received 2020-06-24
10. The method of claim 4, wherein the monitoring includes monitoring along substantially an entire length of the separation channel simultaneously.
11. The method of claim 4, wherein the sieving solution is methyl cellulose.
12. A method, comprising:
loading a separation channel having a first end and a second end with a solution including a plurality of proteins, an amphoteric carrier medium, and a sieving solution;
during a first separation stage:
ionically coupling a first anolyte reservoir containing an acid to the first end of the separation channel and a first catholyte reservoir containing a base to the second end of the separation channel such that a first pH gradient is established across a length of the separation channel, the first pH gradient being static during the first separation stage;
applying a voltage to the separation channel in the presence of the first pH
gradient such that the plurality of proteins are focused into a zone having a pH value corresponding to a pI value of each protein from the plurality of proteins in that zone, the zone being static during the first separation stage;
during a second separation stage mutually exclusive from the first separation stage:
ionically coupling at least one of a second anolyte reservoir different from the first anolyte reservoir to the first end of the separation channel or a second catholyte reservoir different from the first catholyte reservoir to a second end of the separation channel, such that the at least one of the second analyte reservoir or the second catholyte reservoir replaces at least one of the first analyte reservoir or the first catholyte reservoir such that a second pH
gradient different from the first pH gradient is established across the length of the separation channel and such that each protein from the plurality of proteins is displaced from the pH
value corresponding to the pI value of each protein from the plurality of proteins and such that each protein from Date Recue/Date Received 2020-06-24 the plurality of proteins moves towards the zone effecting a separation of the plurality of proteins by mobility; and continuously monitoring the plurality of proteins during the second separation stage using a whole column imaging detector.
13. The method of claim 12, wherein each protein from the plurality of proteins has the pI value.
14. The method of claim 12, wherein the plurality of proteins are a first plurality of proteins, the sample includes a second plurality of proteins.
15. The method of claim 12, wherein the second anolyte reservoir contains a non-acid.
16. The method of claim 12, wherein the second catholyte reservoir contains a non-base.
17. The method of claim 12, wherein the first separation stage concludes when the plurality of proteins are focused into the zone.
18. The method of claim 12, further comprising:
continuously monitoring the plurality of proteins during the first separation stage using the whole column imaging detector, the at least one of the second anolyte reservoir or the second catholyte reservoir ionically coupled to the separation channel in response to the whole column imaging detector detecting that each protein from the plurality of proteins is focused into the zone.
19. The method of claim 12, wherein:
the plurality of proteins includes a first subset of proteins having a first pI and a second subset of proteins having a second pI; and during the first separation stage the voltage is applied to the separation channel such that the first subset of proteins are focused into a first zone having a first pH value corresponding to Date Recue/Date Received 2020-06-24 the first pI value and the second subset of proteins are focused into a second zone having a second pH value corresponding the second pI value.
20. The method of claim 12, further comprising:
detecting, via the continuous monitoring during the second separation stage, a first peak associated with a first protein from the plurality of proteins and a second peak associated with a second protein from the plurality of proteins, the first protein having a pI
and a first mobility, the second protein having the pI and a second mobility different from the first mobility.
21. The method of claim 12, further comprising:
detecting, via the continuous monitoring during the second separation stage, a first peak associated with a first protein from the plurality of proteins, a second peak associated with a second protein from the plurality of proteins, a third peak associated with a third protein from the plurality of proteins, and a forth peak associated with a fourth protein from the plurality of proteins, the first protein having a first pI and a first mobility, the second protein having the first pI and a second mobility different from the first mobility, the third protein having a second pI different from the first pI and a third mobility, the fourth protein having the second pI and a fourth mobility different from the third mobility.
22. The method of claim 1, wherein the second separation stage is initiated after the second subset of the plurality of proteins or the plurality of amphoteric biological analytes are focused into the second zone in the first separation stage.
23. The method of claim 1, wherein the second pH gradient causes the second zone to move along the capillary separation column causing each protein or amphoteric biological analyte from the second subset of the plurality of proteins or the plurality of amphoteric biological analytes to separate according to their respective mobility.
24. The method of claim 1, further comprising:

Date Recue/Date Received 2020-06-24 continuously monitoring in real time and recording the subset of the plurality of proteins or the plurality of amphoteric biological analytes during the first separation stage, the monitoring including using a whole column imaging detector, the second separation stage initiated after the continuous monitoring indicates the first subset of the plurality of proteins or the plurality of amphoteric biological analytes are focused into the first zone in the first separation stage; and continuously monitoring in real time and recording the separation of the subset of the plurality of proteins or the plurality of amphoteric biological analytes during the second separation stage, the monitoring including using the whole column imaging detector.
25. The method of claim 4, wherein:
the plurality of proteins is a first plurality of proteins;
the zone is a first zone having a first pH value corresponding to a first pI
value of each protein from the first plurality of proteins;
the solution includes a second plurality of proteins;
during the first separation stage the voltage is applied to the separation channel such that a first plurality of protein are focused into the first zone and such that a second plurality of proteins are focused into a second zone having a second pH value corresponding to a second pI value of each protein from the second plurality of proteins; and the first zone and the second zone are static during the first separation stage.
26. The method of claim 4, wherein:
the plurality of proteins is a first plurality of proteins;

Date Recue/Date Received 2020-06-24 the zone is a first zone having a first pH value corresponding to a first pI
value of each protein from the first plurality of proteins;
the solution includes a second plurality of proteins;
during the first separation stage the voltage is applied to the separation channel such that a first plurality of protein are focused into the first zone and such that a second plurality of proteins are focused into a second zone having a second pH value corresponding to a second pI value of each protein from the second plurality of proteins;
during the second separation stage the hydrodynamic flow causes the first zone to move away from the inlet reservoir such that each protein from the first plurality of proteins is displaced from the first pH value corresponding to the first pI value such that each protein from the first plurality of proteins moves towards the first zone effecting a separation of the first plurality of proteins by mobility; and during the second separation stage the hydrodynamic flow causes the second zone to move away from the inlet reservoir such that each protein from the second plurality of proteins is displaced from the second pH value corresponding to the second pI value such that each protein from the second plurality of proteins moves towards the second zone effecting a separation of the second plurality of proteins by mobility.
Date Recue/Date Received 2020-06-24
CA2712213A 2010-08-05 2010-08-05 Method to perform limited two dimensional separation of proteins and other biologicals Active CA2712213C (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
CA3123719A CA3123719A1 (en) 2010-08-05 2010-08-05 Method to perform limited two dimensional separation of proteins and other biologicals
CA2712213A CA2712213C (en) 2010-08-05 2010-08-05 Method to perform limited two dimensional separation of proteins and other biologicals

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CA2712213A CA2712213C (en) 2010-08-05 2010-08-05 Method to perform limited two dimensional separation of proteins and other biologicals

Related Child Applications (1)

Application Number Title Priority Date Filing Date
CA3123719A Division CA3123719A1 (en) 2010-08-05 2010-08-05 Method to perform limited two dimensional separation of proteins and other biologicals

Publications (2)

Publication Number Publication Date
CA2712213A1 CA2712213A1 (en) 2012-02-05
CA2712213C true CA2712213C (en) 2021-08-24

Family

ID=45566691

Family Applications (2)

Application Number Title Priority Date Filing Date
CA2712213A Active CA2712213C (en) 2010-08-05 2010-08-05 Method to perform limited two dimensional separation of proteins and other biologicals
CA3123719A Pending CA3123719A1 (en) 2010-08-05 2010-08-05 Method to perform limited two dimensional separation of proteins and other biologicals

Family Applications After (1)

Application Number Title Priority Date Filing Date
CA3123719A Pending CA3123719A1 (en) 2010-08-05 2010-08-05 Method to perform limited two dimensional separation of proteins and other biologicals

Country Status (1)

Country Link
CA (2) CA2712213C (en)

Also Published As

Publication number Publication date
CA2712213A1 (en) 2012-02-05
CA3123719A1 (en) 2012-02-05

Similar Documents

Publication Publication Date Title
US10107782B2 (en) Method to perform limited two dimensional separation of proteins and other biologicals
CA2657317C (en) Method and apparatus for precise selection and extraction of a focused component in isoelectric focusing performed in micro-channels
JP6422131B2 (en) Capillary device for separation analysis, microfluidic chip for separation analysis, protein or peptide analysis method, electrophoresis apparatus, and microfluidic chip electrophoresis apparatus for separation analysis
JP7530416B2 (en) Apparatus, method and kit for characterization of a sample
US9182371B2 (en) Microscale western blot
US5395502A (en) Apparatus for performing and universally detecting capillary isoelectric focusing without mobilization using concentration gradient imaging systems
US11285484B2 (en) Multichannel isoelectric focusing devices and high voltage power supplies
EP3226993B1 (en) Apparatus and method for separating molecules
Bergmann et al. Potential of on-line isotachophoresis-capillary zone electrophoresis with hydrodynamic counterflow in the analysis of various basic proteins and recombinant human interleukin-3
US20130140182A1 (en) PROTEIN FRACTIONATION BASED ON pI
US20230381781A1 (en) Isoelectric focusing devices and fixtures
CA2712213C (en) Method to perform limited two dimensional separation of proteins and other biologicals
Wu et al. Analysis of proteins by CE, CIEF, and microfluidic devices with whole-column-imaging detection
Mikuš et al. Column coupling electrophoresis in biomedical analysis
JP2008309539A (en) Two-dimensional electrophoretic apparatus
Thormann et al. Capillary electrophoretic separations
Végvári Peptide and protein separations by capillary electrophoresis and electrochromatography
Barahona Development of a microfluidic, segmented-flow, single molecule, enzyme activity assay and improvement of separation efficiency of basic proteins by application of a waterproofing agent as a coating in capillary electrophoresis
Na et al. Capillary separation techniques
Zhan Development of Isoelectric Focusing Techniques for Protein Analyses
Kilár Capillary Isoelectric Focusing

Legal Events

Date Code Title Description
EEER Examination request

Effective date: 20150707