1. A method of separating all high molecular weight lectin molecules from low molecular weight lectins of a lectin preparation comprising a variety of recombinant lectin molecules, wherein high molecular weight lectin molecules are lectins with a molecular weight above the molecular weight of lectin dimers, and low molecular weight lectins are lectin molecules with a molecular weight equal or below the molecular weight of lectin dimers, said method comprising
a) obtaining said lectin preparation
b) adding to said preparation a precipitating agent and allowing a precipitate and a supernatant to form,
c) separating said precipitate from said supernatant, obtaining a precipitate fraction comprising substantially all high molecular weight lectin molecules of said lectin preparation and optionally obtaining a supernatant fraction,
d) optionally resuspending said precipitate fraction, thereby
e) obtaining a composition comprising the lectin molecules of the precipitate fraction comprising less than 5% mole of low molecular weight MBL.
2. The method claim 1, wherein the lectin is mannose-binding lectin (MBL).
3. The method according to claim 2, wherein at least 50% of the MBL of the obtained MBL composition has a molecular weight above 200 kDa.
4. The method according to claim 2, wherein the obtained MBL composition comprises MBL molecules having a molecular weight in at least two of the following classes
class I having molecular weight in the range of 200 kDa to 270 kDa,
class II having molecular weight in the range of from 270 kDa to 300 kDa,
class III having molecular weight in the range of from 300 kDa to 400 kDa, and
class IV having molecular weight in the range of from 400 kDa to 600 kDa, said molecular weight being determined by SDS-PAGE,
wherein MBL in class I constitutes an amount in the range of from 0-20 mole % of the total amount of MBL in the composition.
5. The composition according to claim 4, said composition comprising MBL molecules of at least three of the molecular weight classes.
6. The method according to claim 2, wherein said precipitate is resuspended before obtaining said composition comprising high molecular weight MBL.
7. The method according to claim 2, wherein MBL with a molecular weight below the molecular weight of MBL dimers comprises MBL having a molecular weight below 200 kDa.
8. The method according to claim 2, wherein the precipitating agent is selected from low mass precipitating agents.
9. The method according to claim 2, wherein the precipitating agent is selected from cationic precipitating agents.
10. The method according to claim 2, wherein the precipitating agent is selected from Ca 2 containing precipitating agents.
11. The method according to claim 10, wherein the precipitating agent is selected from the group consisting of CaCl2, calcium chloride (CaCl2, CaCl2.H2O, CaCl2.2H2O, CaCl2.6H2O), calcium nitrate (Ca(NO3)2, Ca(NO3)2.3H2O, Ca(NO3)2.4H2O), calcium nitrite (Ca(No2)2.H2O, Ca(NO2)2.4H2O), calcium iodide (CaI2, CaI2.6H2O), calcium bromide (CaBr2, CaBr2.6H2O), bromate (Ca(BrO3)2.H2O), calcium chlorate (Ca(ClO3)2, Ca(ClO3)2.2H2O, (CaClO4)2), calcium chromate (CaCrO4.2H2O), calcium permanganate (Ca(MnO4)2.5H2O), calcium hypophosphite (Ca(H2PO2)2), calcium iron cyanides (Ca3Fe(CN)62.12H2O, Ca2Fe(CN)6.12H2O), calcium thiosulphate (CaS2O3.6H2O), calcium formate (Ca(CHO2)2), calcium acetate (Ca(C2H3O2)2, Ca(C2H3O2)2.H2O, Ca(C2H3O2)2.2H2O), calcium propionate (Ca(C3H5O2)2.H2O), calcium lactate (Ca(C3H5O3)2.5H2O), calcium maleate (CaC4H2O4.H2O), calcium valerate (Ca(C5H9O2)2), and calcium citrate (Ca3(C6H5O7)2.4H2O).
12. The method according to claim 2, wherein the precipitating agent is an anionic precipitating agent.
13. The method according to claim 2, wherein the precipitating agent is selected from the group consisting of phosphates, carbonates, and sulphates.
14. The method according to claim 2, wherein the preparation comprises a solvent.
15. The method according to claim 14, wherein said solvent comprises an anion.
16. The method according to claim 2, wherein the separation is conducted by centrifugation of the preparation.
17. The method according to claim 2, wherein the MBL preparation is obtained by
preparing a gene expression construct encoding human MBL peptide or a functional equivalent thereof,
transforming a host cell culture with the construct,
cultivating the host cell culture in a culture medium, thereby obtaining expression and secretion of the polypeptide into the culture medium,
obtaining a preparation comprising a variety of MBL molecules
18. The method according to claim 14, wherein said solvent is a culturing medium.
19. The process according to claim 17, wherein the gene expression construct comprises at least one intron sequence from the human MBL gene or a functional equivalent thereof.
20. The process according to claim 19, wherein the gene expression construct comprises at least two exon sequences from the human MBL gene or a functional equivalent thereof.
21. The process according to claim 17, wherein the gene expression construct comprises a cDNA sequence encoding a MBL subunit or a functional equivalent thereof.
22. The process according to claim 17, wherein the host cell culture is cultured in vitro.
23. The process according to claim 17, wherein the host cell culture is an eucaryotic host cell culture.
24. The process according to claim 17, wherein the host cell culture is a mammalian host cell culture.
25. A recombinant human MBL composition having MBL molecules of at least two molecular weight classes, said classes being
class I having molecular weight in the range of 200 kDa to 270 kDa,
class II having molecular weight in the range of from 270 kDa to 300 kDa,
class III having molecular weight in the range of from 300 kDa to 400 kDa, and
class IV having molecular weight in the range of from 400 kDa to 600 kDa, said molecular weight being determined by SDS-PAGE,
wherein MBL in class I constitutes an amount in the range of from 0-20 mole % of the total amount of MBL in the composition.
26. The composition according to claim 25, said composition comprising MBL molecules of at least three of the molecular weight classes, wherein MBL in class I constitutes an amount in the range of from 0.10-20 mole % of the total amount of MBL in the composition.
27. The composition according to claim 25, said composition comprising MBL molecules of four of the molecular weight classes.
28. The composition according to claim 25, wherein MBL composition is substantially free from any impurities naturally associated with the MBL when produced in a native host organism.
29. (canceled)
30. The composition according to claim 25, said molecules being in a non-denatured state.
31. The composition according to claim 25, said molecules being in a denatured state.
32. The composition according to claim 25, wherein the MBL subunit is assembled of three identical peptide sequences.
33. A pharmaceutical composition comprising a human recombinant MBL composition as defined in claim 25, further comprising a pharmaceutically acceptable carrier substance.
34. The composition according to claim 33, in a form suitable for injections.
35. The composition according to claim 33, wherein the carrier substance is saline, human serum albumin, or mannose.
36. The composition according to claim 33, in a form suitable for pulmonal administration.
37. The composition according to claim 36, in the form of a powder for inhalation.
38. The composition according to claim 36, in the form of a creme or lotion for topical application
39. (Canceled)
40. A method of treating, in an individual, a clinical condition selected from the group consisting of infections, MBL deficiency, cancer, disorders associated with chemotherapy, miscarriages, disorders associated with neutropenia, and human immunodeficiency virus (HIV) which comprises administering a therapeutically effective amount of a composition according to claim 25.
41. The method according to claim 40, wherein the pharmaceutical composition is administered intravenously, intramusculary, subcutanously, or intradermally.
42. The method according to claim 40, wherein the pharmaceutical composition is administered pulmonally.
43. The method according to claim 40, wherein the pharmaceutical composition is administered topically.
44. The method according to claim 40, wherein the pharmaceutical composition is administered prophylactically before initiation of chemotherapy or other therapeutic cell toxic treatments.
45. The method according to claim 43, wherein the amount of MBL composition administered is from 1-100 mgdosage.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A semiconductor device, comprising:
a substrate having a portion of the substrate formed to include a plurality of diffusion regions, wherein the plurality of diffusion regions respectively correspond to active areas of the portion of the substrate within which one or more processes are applied to modify one or more electrical characteristics of the active areas of the portion of the substrate,
wherein the plurality of diffusion regions include a first p-type diffusion region, a second p-type diffusion region, a first n-type diffusion region, and a second n-type diffusion region,
wherein the first p-type diffusion region includes a first p-type active area formed to have a direct electrical connection to a common node,
wherein the second p-type diffusion region includes a second p-type active area formed to have a direct electrical connection to the common node,
wherein the first n-type diffusion region includes a first n-type active area formed to have a direct electrical connection to the common node, and
wherein the second n-type diffusion region includes a second n-type active area formed to have a direct electrical connection to the common node; and
a gate electrode level region formed above the portion of the substrate, the gate electrode level region including a number of conductive features defined to extend over the substrate in only a first parallel direction, wherein each of the number of conductive features within the gate electrode level region is fabricated from a respective originating rectangular-shaped layout feature, such that a centerline of each respective originating rectangular-shaped layout feature is aligned with the first parallel direction,
wherein the number of conductive features include conductive features that respectively form a first PMOS transistor device gate electrode, a second PMOS transistor device gate electrode, a first NMOS transistor device gate electrode, and a second NMOS transistor device gate electrode,
wherein the first PMOS transistor device gate electrode is formed to extend over the first p-type diffusion region to electrically interface with the first p-type active area and thereby form a first PMOS transistor device,
wherein the second PMOS transistor device gate electrode is formed to extend over the second p-type diffusion region to electrically interface with the second p-type active area and thereby form a second PMOS transistor device,
wherein the first NMOS transistor device gate electrode is formed to extend over the first n-type diffusion region to electrically interface with the first n-type active area and thereby form a first NMOS transistor device,
wherein the second NMOS transistor device gate electrode is formed to extend over the second n-type diffusion region to electrically interface with the second n-type active area and thereby form a second NMOS transistor device, and
wherein the first PMOS transistor device gate electrode is electrically connected to the second NMOS transistor device gate electrode, and
wherein the second PMOS transistor device gate electrode is electrically connected to the first NMOS transistor device gate electrode, and
whereby the first PMOS transistor device, the second PMOS transistor device, the first NMOS transistor device, the second NMOS transistor device define a cross-coupled transistor configuration having commonly oriented gate electrodes formed from respective rectangular-shaped layout features.