Claims
- 1. An HGOMS separation column comprising:first and second tubular portions, wherein said first and second tubular portions have substantially constant cross-sectional areas, said first tubular portion being integral with said second tubular portion and located above said second tubular portion, said first tubular portion having a first cross-sectional area and said second tubular portion having a second cross-sectional area, said first cross sectional area being larger than said second cross sectional area; and a matrix adapted to selectively remove at least one component of a mixture as the mixture flows through said tubular portions, wherein said matrix is contained in at least part of said first tubular portions and at least part of said second tubular portion, and wherein said matrix comprises ferromagnetic material.
- 2. The separation column of claim 1, further comprising:a retainer located in said second portion adjacent said matrix.
- 3. The separation column of claim 2, wherein said retainer is substantially spherical.
- 4. The separation column of claim 3, further comprising, at least one mount extending into said second portion, said retainer resting on said at least one mount.
- 5. The separation column of claim 4, wherein said at least one mount comprising three mounts extending into said second portion.
- 6. The separation column of claim 2, wherein said retainer comprises a porous mesh, frit or grid.
- 7. The separation column of claim 1, wherein said ferromagnetic material comprises ferromagnetic balls.
- 8. The separation column of claim 7, further comprising a retainer located in said second portion adjacent said matrix.
- 9. The separation column of claim 8, wherein said retainer is substantially spherical and is substantially larger than each of said balls.
- 10. The separation column of claim 8, wherein said retainer comprises a porous mesh, frit or grid.
- 11. The separation column of claim 7, wherein said matrix further comprises a nonmagnetic component.
- 12. The separation column of claim 11, wherein said nonmagnetic component comprises glass balls or particles.
- 13. The separation column of claim 11, wherein said nonmagnetic component comprises plastic balls or particles.
- 14. The separation column of claim 7, wherein said ferromagnetic balls having a diameter of at least about 200 μm.
- 15. The separation column of claim 7, wherein said ferromagnetic balls occupy at least 50 percent of an internal volume of said first and second portions.
- 16. The separation column of claim 1, wherein said matrix is porous and said separation column comprises a void volume of less than about 85 μl.
- 17. The separation column of claim 16, wherein said void volume is less than about 50 μl.
- 18. The separation column of claim 17, wherein said void volume is about 30 μl.
- 19. The separation column of claim 16, wherein said matrix comprises a bipartite matrix contained within a portion of said column.
- 20. The separation column of claim 1, wherein said matrix comprises a bipartite matrix contained within a portion of said column, said bipartite matrix having a height less than about 20 mm.
- 21. The separation column of claim 20, wherein said bipartite matrix has a height less than about 15 mm.
- 22. The separation column of claim 21, wherein said bipartite matrix has a height less than about 12 mm.
- 23. The separation column of claim 1, wherein said matrix further comprises a nonmagnetic component.
- 24. The separation column of claim 23, wherein said nonmagnetic component comprises glass.
- 25. The separation column of claim 23, wherein said nonmagnetic component comprises plastic.
- 26. The separation column of claim 1, wherein said ferromagnetic material comprises particles which are coated with a coating, said coating maintaining a relative positioning of said particles with respect to one another.
- 27. The separation column of claim 26, wherein said coating comprises lacquer.
- 28. The separation column of claim 1, further comprising a third portion, said third portion being integral with said second portion; said third portion having a cross sectional area; said cross sectional area of said third portion being less than said second cross sectional area.
- 29. The separation column of claim 28, said tube further comprising a fourth portion, said fourth portion being integral with said third portion; said fourth portion having an outside dimension which is less than a respective outside dimension of said third portion.
- 30. The separation column of claim 1, wherein said column is formed from a material selected from the group consisting of PCTG, polyethylenes, polyamids, polypropylenes, acrylics and PET.
- 31. The separation column of claim 30, wherein said tubular portions are formed from PCTG.
- 32. The separation column of claim 1, further comprising an upper matrix retainer located in said first portion adjacent said matrix.
- 33. The separation column of claim 32, wherein said upper matrix retainer comprises a grid, mesh or frit.
- 34. The separation column of claim 1, further comprising an upper portion, said upper portion being integral with said first tubular portion and located above said first tubular portion; said upper portion having a cross sectional area which is greater than said first cross sectional area.
- 35. The separation column of claim 1, wherein said column is gravity fed.
- 36. The separation column of claim 1, wherein said column is pressure fed.
- 37. A separation column comprising:first and second tubular portions, said first portion being integral with said second portion and located above said second portion, wherein said first and second portions have substantially constant cross-sectional areas; and a matrix adapted to selectively remove at least one component of a mixture as the mixture flows through said tubular portions, wherein said matrix is contained in at least part of said first portion and at least part of said second portion, and wherein an amount of said matrix contained in said first portion accomplishes a greater removal function than an amount of said matrix contained in saint second portion.
- 38. The separation column of claim 37, wherein said amount of said matrix contained in said second portion accomplishes a greater flow resistance function than said amount of said matrix contained in said first portion.
- 39. The separation column of claim 37, wherein said separation column is a micro separation column.
- 40. A column system for high gradient magnetic field separation, comprising:a separation unit including a magnetic yoke having at least one notch formed along a length thereof and a pair of magnets placed within each of said at least one notch to from a gap therebetween; and at least one separation column, each comprising: first and second tubular portions, said first portion being integral with said second portion and located above said second portion, wherein said first and second tubular portions have substantially constant cross-sectional areas, and a matrix adapted to selectively remove at least one component of a mixture as the mixture flows through said tubular portions, wherein said matrix is contained in at least part of said first portion and at least part of said second portion, and wherein an amount of said matrix contained in said first portion accomplishes a greater removal function than an amount of said matrix contained in said second portion.
- 41. The column system of claim 40, wherein said at least one notch comprises at least two notches and said at least one separation column comprises at least two separation columns.
- 42. The column system of claim 41, wherein each said separation column is a micro separation column and said separation unit is a micro separation unit.
- 43. The column system of claim 40, wherein each said separation column is a micro separation column and said separation unit is a micro separation unit.
- 44. A process for purifying biological material on a column, comprising:retaining magnetic carriers bound to the biological material with ferromagnetic particles in a magnetic field, wherein said magnetic particles are retained in a matrix contained in a separation column having first and second tubular portions integrally connected, wherein the first tubular is located above the second tubular portion and the first tubular portion has a cross sectional area that is larger than a cross sectional area of the second tubular portion, wherein said first and second cross-sectional areas are substantially constant along the length of each respective tubular portion, and wherein the matrix is contained in at least part of the first tubular portion and at least part of the second tubular portion; and eluting the biological material by dissociating the biological material from the magnetic carriers while still in said magnetic field.
- 45. The process of claim 44, wherein said separation column is a micro separation column.
- 46. A separation column comprising:first and second tubular portions, said first portion being integral with said second portion and located above said second portion, wherein said first and second portions have substantially constant cross-sectional areas; and a matrix adapted to selectively remove at least one component of a mixture as the mixture flows through said tubular portions, wherein said matrix is contained in at least part of said first portion and at least part of said second portion, and wherein an amount of said matrix contained in said second portion accomplishes a greater flow resistance function than an amount of said matrix contained in said first portion.
Parent Case Info
This application is a continuation of U.S. application Ser. No. 09/042,178, filed Mar. 12, 1998, now abandoned.
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Continuations (1)
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Number |
Date |
Country |
Parent |
09/042178 |
Mar 1998 |
US |
Child |
09/556179 |
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US |