Claims
- 1. A substrate material having at least two simultaneous binding properties for the respective specific binding of nucleic acids and their corresponding expression products, wherein
- a) said substrate material has a first surface area capable of binding only said nucleic acids and, separate from said first surface area, a second surface area capable of binding only said expression products, and one of said first and second surface areas has affinity properties effected by a first affinity ligand or ligands and the other said surface area has ion-exchange or affinity properties effected by a second affinity ligand or ligands, said affinity properties of said first surface area differing from said affinity properties of said second surface area
- or
- b) said substrate material is capable of binding said nucleic acids and said expression products over the entire surface area, said surface area having a first portion with affinity properties effected by a first affinity ligand or ligands and a second portion with ion-exchange or affinity properties effected by a second affinity ligand or ligands, said affinity properties of said first portion differing from said affinity properties of said second portion.
- 2. The substrate material according to claim 1, wherein said first surface area and said second surface area are separated from one and another by 10 nm to 1,000 .mu.m.
- 3. The substrate material according to claim 1, wherein complex forming properties are said affinity properties.
- 4. The substrate material according to claim 1, wherein hydrophobic interactions are said affinity properties.
- 5. The substrate material according to claim 1, wherein at least one of said first and second surface areas having affinity properties allows for reversible interactions enabling elution of at least one of the molecular types bound.
- 6. The substrate material according to claim 1, wherein said substrate material is located two-dimensionally on a membrane or assembly of membranes or embedded within a membrane.
- 7. The substrate material according to claim 1, wherein said substrate material is located in a capillary or on a fiber or fibrous composite structure or combinations thereof.
- 8. The substrate material according to claim 7, wherein a non-woven fabric is said fibrous composite structure.
- 9. The substrate material according to claim 1, wherein the other surface area has anion-exchange properties.
- 10. The substrate material according to claim 9, wherein the other surface area having said anion-exchange properties are provided by surface-modified large-pore or close-pore particles.
- 11. The substrate material according to claim 9, wherein the other surface area having said anion-exchange properties is still capable of binding DNA molecules at an ionic strength corresponding to that of 1M NaCl.
- 12. The substrate material according to claim 1, wherein at least one of said first and second surface areas having said affinity properties is constituted by biotin derivatives, streptavidin derivatives, avidin derivatives, nucleic acids, antibody fragments, metal chelates, protein ligands, peptide ligands, or a combination of protein and peptide ligands.
- 13. The substrate material according to claim 9, wherein said areas having said affinity properties are constituted by metal chelates based on nickel-nitrilotriacetic acid chelates and said areas having said anion-exchange properties are constituted by materials capable of binding nucleic acids.
- 14. A process for evolutive optimization of biopolymers comprising applying nucleic acids and their corresponding expression products simultaneously to the substrate, material according to claim 1, and isolating said nucleic acids and their corresponding expression products selectively or concurrently.
- 15. A process comprising the sequential steps of:
- subjecting a nucleic acid to mutagenesis in a reaction chamber to effect a mutagenized nucleic acid;
- subjecting the mutagenized nucleic acid to at least one replication;
- expressing the mutagenized nucleic acid to effect an expression product;
- binding the expression product along with the nucleic acid on a substrate material having at least two simultaneous binding properties for the respective specific binding of nucleic acids and their corresponding expression products, wherein
- a) said substrate material has a first surface area capable of binding only said nucleic acids and, separate from said first surface area, a second surface area capable of binding only said expression products, and one of said first and second surface areas has affinity properties effected by a first affinity ligand or ligands and the other said surface area has ion-exchange or affinity properties effected by a second affinity ligand or ligands, said affinity properties of said first surface area differing from said affinity properties of said second surface area
- or
- b) said substrate material is capable of binding said nucleic acids and said expression products over the entire surface area, said surface area having a first portion with affinity properties effected by a first affinity ligand or ligands and a second portion with ion-exchange or affinity properties effected by a second affinity ligand or ligands, said affinity properties of said first portion differing from said affinity properties of said second portion; and
- examining the bound expression product.
Priority Claims (1)
Number |
Date |
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Kind |
42 373 81.6 |
May 1992 |
DEX |
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Parent Case Info
This application is a continuation of application Ser. No. 8/432,121, filed as PCT/EP93/03075 Nov. 3, 1993 published as WO94/10572, now abandoned.
US Referenced Citations (3)
Foreign Referenced Citations (1)
Number |
Date |
Country |
WO9218645 |
Oct 1992 |
WOX |
Non-Patent Literature Citations (2)
Entry |
Berichte Der Bunsen-Gesellschaft Fur Physikalische Chemie vol. 89, No. 6, Jun. 1985, pp. 658-667; "Macromolecular Evolution: Dynamical Ordering in Sequence Space". |
Abstract of Hunger et al patent DD-274676, (1990). |
Continuations (1)
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Number |
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Parent |
432121 |
Jun 1995 |
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