EP2040746A1 - Processes for recovering stabilized formulations of trimers of retroviral envelope (env) proteins - Google Patents
Processes for recovering stabilized formulations of trimers of retroviral envelope (env) proteinsInfo
- Publication number
- EP2040746A1 EP2040746A1 EP07809720A EP07809720A EP2040746A1 EP 2040746 A1 EP2040746 A1 EP 2040746A1 EP 07809720 A EP07809720 A EP 07809720A EP 07809720 A EP07809720 A EP 07809720A EP 2040746 A1 EP2040746 A1 EP 2040746A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- trimers
- hiv
- env protein
- preparation
- trimer
- 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.)
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K14/00—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
- C07K14/005—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from viruses
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K39/00—Medicinal preparations containing antigens or antibodies
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N2740/00—Reverse transcribing RNA viruses
- C12N2740/00011—Details
- C12N2740/10011—Retroviridae
- C12N2740/15011—Lentivirus, not HIV, e.g. FIV, SIV
- C12N2740/15022—New viral proteins or individual genes, new structural or functional aspects of known viral proteins or genes
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N2740/00—Reverse transcribing RNA viruses
- C12N2740/00011—Details
- C12N2740/10011—Retroviridae
- C12N2740/16011—Human Immunodeficiency Virus, HIV
- C12N2740/16111—Human Immunodeficiency Virus, HIV concerning HIV env
- C12N2740/16122—New viral proteins or individual genes, new structural or functional aspects of known viral proteins or genes
Definitions
- HIV human immunodeficiency virus
- An effective HIV vaccine should demonstrate an ability to elicit neutralizing antibodies (nAb) that are capable of blocking the fusogenic interaction and entry of HIV with the CD4 receptor on CD4 + helper T cells, mediated by the cell surface viral Env glycoproteins, g ⁇ l20 and gp41. Since the genetic polymorphism of the HTV-I gag and env genes are diverse and constantly evolving due to rapid mutation within individuals (2), the nAbs targeting the gpl20 and gp41 envelope proteins on the viral surface should be capable of blocking the viral interaction with the CD4 receptor and should neutralize viruses from a broad range of subtypes without discrimination.
- Env vaccine candidates One logical design of recombinant Env vaccine candidates is to base the vaccine sequence on currently existing HIV-I isolates prevalent in the infected population.
- several oligomeric env proteins from several different subtypes or "clades” have been described, with subtype B sequences serving as a basis for the majority of those that have been reported (3-11, 29, 31).
- the oligomeric Env protein complex on the surface of the virus is comprised of a gpl20-gp41 heterodimer present in a homotrimer configuration (held together via non-covalent interactions), resembling a "spike" structure.
- glycoproteins are derived from a gpl 60 precursor protein, which undergoes processing and cleavage in the cell to generate gpl 20 and gp41 heterodimers that are then targeted to the surface of the HIV viral envelope (12, 13). Fusion of the virus with the CD4 + cell membrane and oligomerization of the trimer spike is mediated by the gp41 glycoprotein, which is tethered to the virion surface via its transmembrane domain (12, 13).
- subtype B HIV JR subtype B HIV JR .
- FL Env was used as a template into which a disulfide bond was introduced between gpl20-gp4lEc ⁇ o subunits (SOS gpl40), followed by a further modification to gp4l E c ⁇ o (I559P mutation), which successfully allowed for the expression of - stable, cleaved and fully processed oligomeric gpl 40 proteins in a trimeric conformation (SOSIP gpl40) (8-1 1 7 15-17). While immunization of rabbits performed with the engineered HIV-1 JR . FL
- the present invention provides novel modified HIV-I Env protein isolates which are purified as complex trimeric forms that closely resemble the structural Env spikes of the native HIV envelope.
- a novel recovery process for obtaining trimeric Env gpl40 protein is also provided.
- Described herein is the purification and biochemical characterization of HIV-I Env isolates, e.g. a modified subtype A KNHl 144 SOSIP R6 gpl40, derived from a contemporary East African subtype A HIV-I primary isolate, and a modified subtype B 5768.4 SOSIP R6 gpl40, using novel methodologies that are different from currently implemented purification procedures.
- the purified KNHl 144 SOSIP R6 gpl40 and 5768.4 SOSIP R6 gpl40 are trimers, as assessed by BN-PAGE and size exclusion chromatography (SEC).
- This invention provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the retroviral Env protein and high molecular weight aggregates thereof s which comprises treating the preparation with a non-ionic detergent so as to thereby convert the high molecular weight aggregates into trimers, and recovering the trimers from the preparation so treated.
- Env retroviral envelope
- This invention also provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which comprises: (a) subjecting the preparation to lectin chromatography to obtain a trimer-enriched eluate in which aggregate content is reduced; (b) applying the eluate of step (a) to a first diethylaminoethyl (DEAE) sepharose chromatography column in the absence of non-ionic detergent to obtain elutio ⁇ fractions further enriched in trimers; (c) applying trimer- enriched elution fractions from the first DEAE sepharose chromatography column of step (b) to a second DEAE sepharose chromatography column in the presence of non-ionic detergent; and (d) collecting the flow through and wash fractions from the second DEAE sepharose chromatography column in the presence of non-ionic detergent, so as to thereby recover the trimers of the retroviral Env protein.
- This invention further provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the retroviral Env protein and high molecular weight aggregates thereof, which comprises: (a) subjecting the preparation to lectin affinity chromatography to obtain an eluate enriched in trimers and essentially separated from monomer and dimer aggregates and macroglobulin; and (b) subjecting the eluate of step (a) to a first diethylaminoethyl sepharose chromatography column in the absence of ⁇ o ⁇ -i ⁇ nic detergent so as to further remove aggregates in the flow through; and (c) subjecting the eluate of step (b) to a second diethylaminoethyl sepharose chromatography column in the presence of non-ionic detergent so as to recover the trimers of the retroviral Env protein.
- This invention also provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which process comprises subjecting the preparation to size exclusion chromatography in the presence of a non-ionic detergent so as to convert the high molecular weight aggregates into trimers, and recovering the trimers from the preparation subjected to the chromatography.
- Env retroviral envelope
- This invention further provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to size exclusion chromatography to obtain eluted fractions; (b) subjecting the eluted fractions of step (a) to anion exchange chromatography; and (c) treating the fractions of step (b) with a non-ionic detergent, so as to thereby recover the trimers of the retroviral Env protein.
- a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to size exclusion chromatography to obtain eluted fractions; (b) subjecting the eluted fractions of step (a) to anion exchange chromatography; and (c) treating the fractions of step (b) with a non-ionic detergent, so as to
- This invention also provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the retroviral Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to lectin affinity chromatography to obtain eluted fractions; and (b) subjecting the fractions of step (a) to size exclusion chromatography in the presence of a non-ionic detergent, so as to thereby recover the trimers of the Env protein.
- a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the retroviral Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to lectin affinity chromatography to obtain eluted fractions; and (b) subjecting the fractions of step (a) to size exclusion chromatography in the presence of a non-ionic detergent, so as to thereby recover the trimers of the Env protein.
- This invention further provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to lectin affinity chromatography to obtain fractions comprising monomers, dimers, and trimers of the Env protein; (b) subjecting the fractions of step (a) to size exclusion chromatography to obtain fractions comprising dimers and trimers of the Env protein; (c) subjecting the fractions of step (b) to anion exchange chromatography to obtain a fractions in which trimers of the Env protein are separated from dimers; and (d) treating the fractions of step (c) with non-ionic detergent, so as to thereby recover the trimers of the Env protein.
- a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to lectin affinity chromatography to obtain fractions comprising
- the Env protein comprises (a) a first polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gpl20 envelope polypeptide portion of a gpl40 envelope of an HTV-I KNHl 144 isolate, or a quasi-species thereof; and (b) a second polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gp41 ectodomain polypeptide portion of the gpl40 envelope of the HIV-I KNHl 144 isolate or such quasi-species thereof, the sequence of said modified gpl20 envelope polypeptide portion and said modified gp41 ectodomain polypeptide portion of said HIV-I KNHl 144 isolate being as set forth in SEQ ID NO.2 and SEQ ID NO:3, respectively, said modified gpl20 envelope polypeptide portion comprising a cysteine at amino acid position 511 and said modified gp41 ectodomain polypeptide portion
- the Env protein comprises (a) a first polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gpl20 envelope polypeptide portion of a gpl40 envelope of an HIV-I 5768.4 isolate, or a quasi-species thereof; and (b) a second polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gp41 ectodomain polypeptide portion of the gpl40 envelope of the HIV-I 5768.4 isolate or such quasi- species thereof, the sequence of said modified gpl20 envelope polypeptide portion and said modified gp41 ectodomain polypeptide portion of said HIV-I 5768.4 isolate being as set forth in SEQ ID NO:5 and SEQ ID NO:6, respectively, said modified gpl20 envelope polypeptide portion comprising a cysteine at amino acid position 519 and said modified gp41 ectodomain polypeptide portion comprising
- FIGURE 1 Analysis of purified KNHl 144 SOSIP R6 gpl40 trimer and gpl20 monomer.
- Purified KNH 1144 gpl20 monomer (left panel, gp!20) and SOSIP R.6 gpl40 trimer were analyzed by reducing (left panel, SOSIP R6, Red) and non-reducing SDS-PAGE (left panel, SOSIP R6, NK). Proteins were visualized by Coomassie G-250 stain.
- Purified trimer was also analyzed via ARP31 19 western blot on non-reducing SDS-PAGE to examine presence of SDS- insoluble aggregates (middle panel, Anti-Env blot).
- the numbers on the left represent the migratory positions of the molecular weight standard proteins.
- the right panel shows BN-PAGE analysis of purified trimer, either untreated or treated with Tween® 20 (SOSIPR6, -/+ lanes) and purified gpl20 monomer in absence or presence of Tween® 20 treatment (gpl20, -/+ lanes).
- Arrows indicate high molecular weight (HMW) aggregate, trimer and gpl20 monomer species.
- A/ stands for the 669k thyroglobulin and 440k ferritin molecular weight protein standards.
- FIGURES 2A-2D Tween® 20 conversion experiments.
- A Dose response: Purified KNHl 144 SOSIP R6 gpl40 trimer was incubated with 0 (no detergent control), or 0.1, 0.05, 0.01, 0.001, or 0.0001% Tween® 20 and analyzed by BN-PAGE and Coomassie G-250 stain. Arrows point to HMW aggregate and trimer species. M stands for the 669k thyroglobulin and 440k ferritin molecular weight protein standards.
- B Time course: Purified KNHl 144 SOSIP R6 gpl40 trimer was incubated with Tween® 20 for 5 min (left panel) or 10 min (right panel).
- Trimer was either untreated (- lane) or Tween® 20 treated (+ lane). Arrows indicate trimer and HMW aggregate bands.
- C Temperature effect: Purified KNHl 144 SOSIP R6 gpl40 trimer was either untreated (- lane) or treated with Tween® 20 at on ice (O) 3 room temperature (RT) or 37°C. Reactions were analyzed by BN-PAGE and Coomassie G-250 stain. Arrows indicate HMW aggregate and trimer proteins.
- Tween® 20 effect on HMW aggregate and dimer fractions A preparation composed predominantly of HMW aggregate ( > 80%) was untreated (left panel, - lane), or incubated with Tween® 20 (left panel, + lane), and analyzed by BN-PAGE and Coomassie G-250 stain. Solid arrows indicate HMW aggregate and trimer proteins. Preparations composed of HMW aggregate, dimers and monomers were untreated (right panel, - lane) or incubated with Tween® 20 (right panel, + lane) and analyzed by BN-PAGE and Coomassie G-250 stain. Arrows on the right hand side point to aggregate, trimer, dimer and monomer species.
- FIGURE 3 Size Exchange Chromatography (SEC) analysis of KNHl 144 SOSIP R6 gpl40 trimer.
- KNHl 144 SOSIP R6 gp!40 trimer was resolved on a Superdex 200 10/300 GL column in TN-500 buffer containing 0.05% Tween® 20 (TNT-500).
- TNT-500 0.05% Tween® 20
- the A 28O protein profile of the run is shown in the middle panel.
- Fractions B7-C3 from the run were analyzed by BN-PAGE, followed by silver stain (bottom panel). Arrows to the side of the BN-PAGE image point to the trimer.
- the vertical arrow in the BN-PAGE indicates the peak signal of the trimer in fraction B 12.
- the arrow in the middle chromatograph corresponds to fraction B 12.
- FIGURE 4 Effect of Tween® 20 treatment on KNHl 144 SOSIP R6 HMW aggregate antigenicity.
- Lectin ELISA of untreated and Tween® 20 treated KNHl 144 SOSIP R6 HMW aggregate Untreated or Tween® 20-treated HMW aggregate were bound to GNA lectin coated ELISA plates and probed with 2Gl 2, b6, bl2, CD4-IgG2, and HIVIg. The panels represent their respective binding curves.
- Antibody affinity to the untreated HMW aggregate is represented by the curve having diamond lines.
- Affinity to the Tween® 20 treated HMW aggregate is represented by curve having square lines.
- the Y-axis represents the colorimetric signal at OD492 and the X-axis represents antibody concentration in [ug/ml].
- Lectin ELISA of untreated and Tween® 20-treated KNHl 144 SOSIP R6 gpl40 trimer Untreated or Tween® 20 treated trimer (containing 10-15% HMW aggregate) were bound to GNA lectin coated ELISA plates and probed with 2Gl 2, b6, bl2, and CD4-IgG2. The panels represent their respective binding curves. Antibody affinity to the untreated trimer is represented by the curve having diamond lines. Affinity to the Tween® 20 treated trimer is represented by the curve having square lines.
- FIGURE 5 Effect of Tween® 20 treatment on KNHI l 44 SOSIP R6 gpl40 trimer binding to DEAE anion exchange column.
- sample was applied over an anion exchange column (DEAE HiTrap FF 1 ml column) (Load). Flow through (FT) fractions were collected and the column was washed (Wash).
- the column was eluted (Elution) and fractions were analyzed over BN-PAGE, followed by Coomassie G-250 stain.
- the top panel shows fractions analyzed from the untreated control trimer DEAE application.
- the bottom panel shows fractions analyzed from the Tween® 20 treated trimer DEAE application.
- M stands for the 669k thyroglobulin and 440k ferritin molecular weight protein standards. Asterisks highlight the fraction where the trimer is found.
- FIGURE 7 SEC analysis of KNHI l 44 gpl20 monomer: KNHl 144 gpl20 monomer was resolved on a Superdex 200 10/300 GL column in TN-500 buffer. The top chromatograph shows its A 280 protein profile of the run. As a control, JR-FL gpl20 monomer was resolved in a similar manner and its A 280 protein profile is displayed in the bottom chromatograph. The observed retention times for both monomers and their apparent calculated molecular weights are indicated.
- FIGURE 8 Tween® 20 effect on a.M: Purified a 2 M was incubated with Tween® 20 (+ lane) or waa untreated (- lane). Reactions were analyzed by BN-PAGE and Coomassie stain. Arrow indicates a 2 M band.
- FIGURE 9 Amino acid sequence (SEQ ID NO:1) of modified gpl40 the HIV-I KNHl 144 isolate.
- FIGURE 10 Nucleic acid sequence (SEQ ID NO:7) and amino acid sequence (SEQ ID NO:4) of H ⁇ V-1 5768.4 isolate.
- FIGURES HA and HB Gel analysis (A) BN-PAGE and (B) SDS-PAGE of purified trimer product using the purification method described in Experimental Details III
- FIGURE 12 Gel analysis (BN-PAGE/Silver) of purified trimer using the purification method described in Experimental Details II (fifth lane) and using the purification method described in Experimental Details III (third lane). Molecular weight marker (first lane).
- FIGURES 13A and 13B Immunoprecipitation (IP) of KNHl 144 SOSIP.R6 using ARP3110 probing antibody (A) using the purification method described in Experimental Details III and (B) using the purification method described in Experimental Details II.
- IP Immunoprecipitation
- FIGURES 14A and 14B Western Blot analysis of KNHl 144 SOSIP.R6 using ARP31 10 probing antibody (A) using the purification method described in Experimental Details III and (B) using the purification method described in Experimental Details II.
- An "A5I 1C mutation” refers to a point mutation of amino acid 51 1 in the HIV-I KNHl 144 isolate gpl20 from alanine to cysteine. Because of sequence and sequence numbering variability among different HIV strains and isolates, it will be appreciated that this amino acid will not be at position 51 1 in all other HTV isolates. For example, in HIV-I JR . FL the corresponding amino acid is A492 (Genbank Accession No. U63632), in HIV-1 HXB2 the corresponding amino acid is A501 (Genbank Accession No. AAB50262) and in HIV-l NL4 - 3 it is A499 (Genbank Accession No. AAA44992).
- the amino acid may also be an amino acid other than alanine which has similar polarity or charge characteristics, for example.
- This invention encompasses cysteine mutations in such amino acids, which can be readily identified in other HIV isolates by those skilled in the art.
- This invention encompasses the replacement of such amino acids by cysteine, as may be readily identified in other HIV isolates by those skilled in the art.
- "157 IP" refers to a point mutation wherein the isoleucine residue at position 571 of a polypeptide chain is replaced by a proline residue.
- T617C mutation refers to a point mutation of amino acid 617 in HTV-I KNHl 144 isolate gp41 ectodomain from threonine to cysteine. Because of sequence and sequence numbering variability among different HIV strains and isolates, it will be appreciated that this amino acid will not be at position 617 in all other HIV isolates.
- HJV-I JR . FL the corresponding amino acid is T596 (Genbank Accession No. U63632)
- HIV-I H XB2 the corresponding amino acid is T605 (Genbank Accession No. AAB50262)
- HIV-1 NL4 -3 the corresponding amino acid is T603 (Genbank Accesion No. AAA44992).
- the amino acid may also be an amino acid other than threonine which has similar polarity or charge characteristics, for example.
- This invention encompasses cysteine mutations in such amino acids, which can be readily identified in other HIV isolates by those skilled in the art.
- This invention encompasses the replacement of such amino acids by cysteine, as may be readily identified in other HIV isolates by those skilled in the art.
- A519C mutation refers to a point mutation of amino acid 519 in HIV-I 5768.4 isolate gp!20 from alanine to cysteine. Because of sequence and sequence numbering variability among different HIV strains and isolates, it will be appreciated that this amino acid will not be at position 519 in all other HIV isolates. For example, in HIV-I JR . FL the corresponding amino acid is A492 (Genbank Accession No. U63632), in HIV-1 HXB2 the corresponding amino acid is A501 (Genbank Accession No. AAB50262) and in HIV-1 NL4 . 3 it is A499 (Genbank Accession No. AAA44992).
- the amino acid may also be an amino acid other than alanine which has similar polarity or charge characteristics, for example.
- This invention encompasses cysteine mutations in such amino acids, which can be readily identified in other HIV isolates by those skilled in the art.
- This invention encompasses the replacement of such amino acids by cysteine, as may be readily identified in other HIV isolates by those skilled in the art.
- I579P refers to a point mutation wherein the isoleucine residue at position 579 of a polypeptide chain is replaced by a proline residue.
- a "T625C mutation” refers to a point mutation of amino acid 625 in HIV-I 5768.4 isolate gp41 ectodomain from threonine to cysteine. Because of sequence and sequence numbering variability among different HIV strains and isolates, it will be appreciated that this amino acid will not be at position 625 in all other HIV isolates. For example, in HIV-I JR - FL the corresponding amino acid is T596 (Genbank Accession No. U63632), in HIV-] HXB2 the corresponding amino acid is T605 (Genbank Accession No. AAB50262) and in HIV-IN L -U the corresponding amino acid is T603 (Genbank Accesion No. AAA44992).
- the amino acid may also be an amino acid other than threonine which has similar polarity or charge characteristics, for example. This invention encompasses the replacement of such amino acids by cysteine, as may be readily identified in other HIV isolates by those skilled in the art.
- HIV refers to the human immunodeficiency virus. HIV shall include, without limitation, HIV- 1.
- the human immunodeficiency virus (HIV) may be either of the two known types of HIV (HIV-I or HrV-2).
- the HTV-I virus may represent any of the known major subtypes (Classes A, B, C, D E, F, G and H) or outlying subtype (Group O).
- gpl40 envelope refers to a protein having two disulfide-linked polypeptide chains, the first chain comprising the amino acid sequence of the HIV gpl20 glycoprotein and the second chain comprising the amino acid sequence of the water-soluble portion of HIV gp41 glycoprotein ("gp41 portion").
- HIV gpl40 protein includes, without limitation, proteins wherein the gp41 portion comprises a point mutation such as I579P.
- gpl40 envelope comprising such mutation is also referred to as "HIV SOS gpl40", as well as “HIV gpRO monomer” or "SOSEP gpl40".
- gp41 includes, without limitation, (a) whole gp41 including the transmembrane and cytoplasmic domains; (b) gp41 ectodomain (gp4lEc ⁇ o); (c) gp41 modified by deletion or insertion of one or more glycosylation sites; (d) gp41 modified so as to eliminate or mask the well-known immunodominant epitope; (e) a gp41 fusion protein; and (f) gp41 labeled with an affinity ligand or other detectable marker.
- ectodomain means the extracellular region of a transmembrane protein exclusive of the transmembrane spanning and cytoplasmic regions.
- This invention provides a process of recovering trimers of a retroviral envelope (E ⁇ v) protein from a preparation comprising trimers of the retroviral Env protein and high molecular weight aggregates thereof which comprises treating the preparation with a non-ionic detergent so as to thereby convert the high molecular weight aggregates into trimers, and recovering the trimers from the preparation so treated.
- the retroviral Env protein is an HIV Env protein.
- the retroviral Env protein is an HIV-I or HIV-2 Env protein.
- the above process further comprises formulating the recovered trimers with a pharmaceutically acceptable carrier, excipient, or diluent.
- This invention also provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which comprises: (a) subjecting the preparation to lectin chromatography to obtain a trimer-enriched eJuate in which aggregate content is reduced; (b) applying the eluate of step (a) to a first diethylaminoethyl (DEAE) sepharose chromatography column in the absence of non-ionic detergent to obtain elution fractions further enriched in trimers; (c) applying trimer- enriched elution fractions from the first DEAE sepharose chromatography column of step (b) to a second DEAE sepharose chromatography column in the presence of non-ionic detergent; and (d) collecting the flow through and wash fractions from the second DEAE sepharose chromatography column in the presence of non-ionic detergent, so as to thereby recover the trimers of the retroviral Env protein.
- step (a) the preparation is a concentrated cell culture fluid.
- step (a) the preparation is subjected to ammonium sulfate precipitation prior to the lectin chromatography.
- step (a) column fractions enriched in trimers are eluted through a linear gradient in PBS to 1.0 M methyl-a-D- mannopyranoside (MMP) in ten column volumes.
- step (b) fractions further enriched in trimers are eluted from the DEAE chromatography column through a linear gradient to 20 mM Tris, 0.3 M NaCl, pH 8.0 in ten column volumes.
- step (c) the fractions further enriched in trimers are eluted from the second DEAE chromatography column through a linear gradient to 20 mM Tris, 0.3 M NaCl, pH 8.0 in ten column volumes.
- the wash fractions of step (d) comprise buffer which comprises 20 mM Tris and 75 mM NaCl, pH 7.5.
- This invention further provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the retroviral Env protein and high molecular weight aggregates thereof, which comprises: (a) subjecting the preparation to lectin affinity chromatography to obtain an eluate enriched in trimers and essentially separated from monomer and dimer aggregates and macroglobulin; and (b) subjecting the eluate of step (a) to a first diethylaminoethyl sepharose chromatography column in the absence of non-ionic detergent so as to further remove aggregates in the flow through; and (c) subjecting the eluate of step (b) to a second diethylaminoethyl sepharose chromatography column in the presence of non-ionic detergent so as to recover the trimers of the retroviral Env protein.
- the retroviral Env protein is an HIV Env protein.
- the retroviral Env protein is an HIV-I or HIV-2 Env protein.
- the preparation in step (a), is a concentrated cell culture fluid. In another embodiment, in step (a), the preparation is subjected to ammonium sulfate precipitation prior to the lectin chromatography. In yet another embodiment, the trimers are recovered in the presence of the non-ionic detergent so as to maintain trimer stability upon subsequent storage.
- the non-ionic detergent is a polyethylene type detergent.
- the polyethylene type detergent is a poly(oxyethylene) sorbitan monolaureate.
- the poly(oxyethylene) sorbitan monolaureate is poly (oxyethylene) (20) sorbitan monolaureate. In one embodiment, the polyethylene type detergent is poly (oxyethylene) sorbitan monooleate.
- the Env protein comprises consecutive amino acids having a sequence corresponding to that of a naturally occurring Env protein of an HIV-I subtype A isolate or a mutant derived therefrom.
- the HIV-I subtype A isolate is KNHl 144.
- the Env protein comprises consecutive amino acids having a sequence corresponding to that of a naturally occurring Env protein of an HIV-I subtype B isolate or a mutant derived therefrom.
- the HIV-I subtype B isolate is 5768.4.
- steps (a) through (d) are carried out at room temperature.
- steps (a) through (c) are carried out at room temperature.
- the non-ionic detergent present is at a concentration of 0.001% to 1% by weight of the preparation.
- the concentration of the non-ionic detergent is from 0.01% to 1% by weight.
- the concentration of the non-ionic detergent is from 0.025% to 1% by weight.
- the concentration of the non-ionic detergent is from 0.01% to 0.5% by weight. In another embodiment, the concentration of the non-ionic detergent is from 0.01% to 0.1% by weight. In one embodiment, the concentration of the non-ionic detergent is from 0.01% to 0.05% by weight. In another embodiment, the concentration of the non-ionic detergent is 0.05% by weight. 14
- the preparation prior to treatment with the non-ionic detergent, comprises greater than 10% high molecular weight aggregates. In another embodiment, prior to treatment with the non-ionic detergent, the preparation comprises 10-40% high molecular weight aggregates. In yet another embodiment, prior to treatment with the non- ionic detergent the preparation comprises greater than 70% high molecular weight aggregates, the Env protein comprises (a) a first polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gpl20 envelope polypeptide portion of a gpl40 envelope of an HIV-I KNHl 144 isolate, or a quasi-species thereof; and (b) a second polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gp41 ectodomain polypeptide portion of the gpl40 envelope of the HIV-I KNHl 144 isolate or such quasi-species thereof, the sequence of said modified gpl20 envelope polypeptide portion and said modified gp
- the Env protein comprises (a) a first polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gpl20 envelope polypeptide portion of a gpl40 envelope of an HIV-I 5768.4 isolate, or a quasi-species thereof; and (b) a second polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gp41 ectodomain polypeptide portion of the gpl40 envelope of the HW-I 5768.4 isolate or such quasi-species thereof, the sequence of said modified gpl20 envelope polypeptide portion and said modified gp41 ectodomain polypeptide portion of said HIV-I 5768.4 isolate being as set forth in SEQ ID NO:5 and SEQ ID NO:6, respectively, said modified gpl20 envelope polypeptide portion comprising a cysteine at amino acid position 519 and said modified gp41 ectodomain polypeptide portion comprising a cyst
- the recovering further comprises purifying the trimers. In one embodiment, at least 50 ⁇ g of trimers are recovered from the preparation. In another embodiment, the above process further comprises formulating the recovered trimers with a pharmaceutically acceptable carrier, excipient, or diluent.
- trimer purification methods/processes at least 50 ⁇ g of trimers are recovered from the starting preparation.
- the above processes further comprise formulating the recovered trimers with a pharmaceutically acceptable carrier, excipient, or diluent.
- This invention also provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which comprises subjecting the preparation to size exclusion chromatography in the presence of a non-ionic detergent so as to convert the high molecular weight aggregates into trimers, and recovering the trimers from the preparation subjected to the chromatography.
- the retroviral Env protein is an HIV Env protein.
- the retroviral Env protein is an HIV-I or HIV-2 Env protein.
- the process comprises subjecting the preparation to size exclusion chromatography, and then subjecting the resulting preparation to anion exchange chromatography before recovering the trimers.
- the processes of the invention provide trimers which are recovered in the presence of non-ionic detergent so as to maintain trimer stability upon subsequent storage.
- the trimers in non-ionic detergent according to this invention are stable for days, weeks and months, e.g., greater than one week, greater than two weeks, greater than one month, greater than two months, or greater than six months to years, for example, ⁇ 4°C-25°C, at room temperature ( ⁇ 16°C-25°C), or frozen.
- the non-ionic detergent is a polyethylene type detergent.
- the polyethylene type detergent is a poly (oxyethylene) sorbitan monolaureate.
- the poly (oxyethylene) sorbitan monolaureate is poly (oxyethylene) sorbitan monolaureate.
- the polyethylene type detergent is poly (oxyethylene) sorbitan monooleate.
- the Env protein comprises consecutive amino acids having a sequence corresponding to that of a naturally occurring Env protein of an HIV-I subtype A isolate, a mutant derived therefrom, or a quasi-species thereof.
- the HIV-I subtype A isolate is KNHl 144.
- the Env protein comprises consecutive amino acids having a sequence corresponding to that of a naturally occurring Env protein of an HIV-I subtype B isolate, a mutant derived therefrom, or a quasi-species thereof.
- the HIV-I subtype B isolate is 5768.4.
- This invention further provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to size exclusion chromatography to obtain eluted fractions; (b ) subjecting the fractions of step (a) to anion exchange chromatography; and (c) treating the column fractions of step (b) with a non-ionic detergent, so as to thereby recover the trimers of the Env protein.
- the process further comprises re-subjecting the column fractions of step (b) to anion exchange chromatography prior to step (c).
- step (b) approximately 30-40% more trimers are recovered following re-subjecting the fractions of step (b) to anion exchange chromatography.
- the process further comprises re-subjecting the fractions of step (c) to anion exchange chromatography (e.g., DEAE anion exchange chromatography) to remove non-aggregate contaminants.
- anion exchange chromatography e.g., DEAE anion exchange chromatography
- the size exclusion chromatography of step (a) is performed in the presence of a non-ionic detergent.
- the retroviral Env protein is an HIV Env protein.
- the retroviral Env protein is an HlV-I or HIV-2 Env protein.
- This invention also provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the retroviral Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to lectin affinity chromatography to obtain elution fractions; and (b) subjecting the fractions of step (a) to size exclusion chromatography in the presence of a non-ionic detergent so as to thereby recover the trimers of the Env protein.
- a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the retroviral Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to lectin affinity chromatography to obtain elution fractions; and (b) subjecting the fractions of step (a) to size exclusion chromatography in the presence of a non-ionic detergent so as to thereby recover the trimers of the Env protein.
- This invention further provides a process of recovering trimers of a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to lectin affinity chromatography to obtain fractions comprising monomers, dimers, and trimers of the Env protein; (b) subjecting the fractions of step (a) to size exclusion chromatography to obtain fractions comprising dimers and trimers of the Env protein; (c) subjecting the fractions of step (b) to anion exchange chromatography to obtain fractions in which trimers of the Env protein are separated from dimers; and (d) treating trimer-containing fractions of step (c) with non-ionic detergent, so as to thereby recover the trimers of the Env proteins.
- a retroviral envelope (Env) protein from a preparation comprising trimers of the Env protein and high molecular weight aggregates thereof which comprises (a) subjecting the preparation to lectin affinity chromatography to obtain fractions compris
- the non- ionic detergent is a polyethylene type detergent.
- the polyethylene type detergent is poly (oxyethylene) sorbitan monolaureate.
- the poly (oxyethylene) sorbitan monolaureate is poly (oxyethylene) (20) sorbitan monolaureate.
- the polyethylene type detergent is poly (oxyethylene) sorbitan monooleate.
- the process further comprises re-subjecting the fractions of step (c) to anion exchange chromatography following step (c) and prior to step (d). In another embodiment, approximately 30-40% more trimers are recovered following re-subjecting the fractions of step (c) to anion exchange chromatography.
- the process further comprises re-subjecting the fractions of step (d) to anion exchange chromatography to remove non-aggregate contaminants.
- the retroviral Env protein is an HIV Env protein. In another embodiment, the retroviral Env protein is an HIV-I or HIV-2 Env protein.
- the preparation prior to treatment with the non-ionic detergent, comprises greater than 10% high molecular weight aggregates. In another embodiment, prior to treatment with the non-ionic detergent, the preparation comprises 10-40% high molecular weight aggregates. In yet another embodiment, prior to treatment with the non-ionic detergent, the preparation comprises greater than 70% high molecular weight aggregates.
- the non-ionic detergent is present at a concentration of between 0.001% to 1% by weight of the preparation. In another embodiment, the concentration of non-ionic detergent is from 0.01% to 1% by weight of the preparation. In another embodiment, the concentration of non-ionic detergent is from 0.025% to 1% by weight of the preparation. In yet another embodiment, the concentration of non-ionic detergent is from 0.01% to 0.5% by weight of the preparation. In a further embodiment, the concentration of non- ionic detergent is from 0.01% to 0.1% by weight of the preparation. In another embodiment, the concentration of non-ionic detergent is from 0.01% to 0.05%. In yet another embodiment, the concentration of non-ionic detergent is 0.05%.
- the retroviral Env protein is an HIV Env protein. In another embodiment, the retroviral Env protein is an HIV-I or HIV-2 Env protein. In one embodiment, the Env protein comprises consecutive amino acids having a sequence corresponding to that of a naturally occurring Env protein of an HIV-I subtype A isolate or a mutant derived therefrom. In one embodiment, the HIV-I subtype A isolate is KNHl 144. In another embodiment, the Env protein comprises consecutive amino acids having a sequence corresponding to that of a naturally occurring Env protein of an HIV-I subtype B isolate or a mutant derived therefrom. In one embodiment, the HIV-I subtype B isolate is 5768.4.
- This invention also provides processes described above, which further comprise formulating the recovered trimers with a pharmaceutically acceptable carrier, excipient, or diluent.
- the Env protein comprises (a) a first polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gpl20 envelope polypeptide portion of a gpl40 envelope of an HIV-I KNHl 144 isolate, or a quasi-species thereof; and (b) a second polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gp41 ectodomain polypeptide portion of the gpl40 envelope of the HIV-I KNHl 144 isolate or such quasi-species thereof, the sequence of said modified g ⁇ l20 envelope polypeptide portion and said modified gp41 ectodomain polypeptide portion of said HIV-I KNHl 144 isolate being as set forth in SEQ ID NO:2 and SEQ ID NO:3, respectively, said modified gpl20 envelope polypeptide portion comprising a cysteine at amino acid position 511 and said modified gp41 ectodomain polypeptide portion comprising a cysteine at amino
- the cysteine at position 51 1 is the result of an A51 1C mutation.
- the cysteine at position 617 is the result of a T617C mutation.
- the proline at position 571 is the result of an I571P mutation.
- the Env protein comprises (a) a first polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gpl20 envelope polypeptide portion of a gpl40 envelope of an HTV-I S768.4 isolate, or a quasi-species thereof; and (b) a second polypeptide which comprises consecutive amino acids, the sequence of which corresponds to the sequence of a modified gp41 ectodomain polypeptide portion of the gpl40 envelope of the HIV-I 5768.4 isolate or such quasi- species thereof, the sequence of said modified gpl20 envelope polypeptide portion and said modified gp41 ectodomain polypeptide portion of said HIV-I 5768.4 isolate being as set forth in SEQ ID NO:5 and SEQ ID NO:6, respectively, said modified gpl20 envelope polypeptide portion comprising a cysteine at amino acid position 519 and said modified gp41 ectodomain polypeptide portion comprising a cysteine at amino
- the cysteine at position 519 is the result of ah A519C mutation.
- the cysteine at position 625 is the result of a T625C mutation.
- the proline at position 579 is the result of an I579P mutation.
- the process further comprises purifying the trimers so recovered.
- the present invention as described herein encompasses the purification and biochemical characterization of a KNHl 144 SOSIP R6 gpl40, derived from a contemporary East African subtype A HIV-I primary isolate, using novel methodologies that are different from previously implemented purification procedures.
- the purified KNHl 144 SOSIP R6 gpl40 is a trimer based on BN-PAGE and size exclusion chromatography (SEC) analyses.
- SEC size exclusion chromatography
- the present invention is directed to novel methods involving the use of non-ionic detergents, such as Tween® 20, to recover homogeneous trimeric forms of the KNHl 144 SOSIP R6 Env gpl40 protein from aggregates thereof.
- Trimers are recovered (also termed “collapsed” or “converted”) from aggregrates (of monomers, dimers and trimers) at greater than 90-98% purity, typically 100% purity using non-ionic detergent in accordance with this invention.
- the present invention also provides novel insights into the nature of the aggregate species.
- non-ionic detergent e.g., Tween® 20
- treatment on the antigenic properties of KNHl 144 SOSIP R6 gpl40 aggregates and trimers were examined.
- digital imaging based on negative stain electron microscopy was perform and reveals the structure of purified KNHl 144 SOSIP R6 gpl40 as trimeric oligomers.
- the present invention is further directed to novel methods involving the use of non-ionic detergents, such as Tween® 20, to recover homogeneous trimeric forms of the subtype B 5768.4 SOSIP R6 Env gpl40 protein from aggregates thereof. Trimers are recovered (also termed "collapsed") from aggregates at greater than 90-98% purity, typically 100% purity using non-ionic detergent.
- non-ionic detergents such as Tween® 20
- Trimers are recovered (also termed "collapsed") from aggregates at greater than 90-98% purity, typically 100% purity using non-ionic detergent.
- the KNHl 144 SOSIP R6 envelope and furin DNA plasm ids were as described.
- HEK 293T cells were seeded in triple flasks at a density of 2.5 x 10 7 cells/flask and cultured in DMEM/10% FBS/1% pen-strep with 1% L-glutarnine 24 hours prior to transfection.
- 270 ug of KNHl 144 SOSIP R6 envelope DNA was mixed with 90 ug of Furin protease DNA plasmid (per flask) in Opti-MEM.
- Polyethyleneimine (PEI) was added stepwise (2 mg PEI: 1 mg total DNA) and vortexed immediately in between each addition.
- the PEI/DNA complex solutions were incubated for 20 minutes at room temperature. Complexes were then added to the flasks and incubated for 6 hours at 32°C, 5% CO ⁇ .
- the cells were then washed with warmed PBS and then incubated in exchange media (DMEM/ 0.05% BSA/1% pen-strep) for 48 hours at 32°C, 5% CO 2 . After the 48 hour incubation, the supernatants were collected and a cocktail of protease inhibitors was added to minimize protein degradation. Harvested supernatants were then clarified by filtration through a 0.45um filter and concentrated to 53X.
- KNHl 144 gpl20 monomer has been previously described (1 ) and typically, 1-2 L of cell culture supernatants from transfected cells were harvested. Supernatants were clarified by filtration and stored at -8O 0 C without any concentration prior to purification. Purification of KNHl 144 SOSIP R6 f_pl40 and gpl20:
- KNHl 144 SOSIP R6 gpl40 trimer was purified via a four step process starting with an ammonium sulfate precipitation followed by lectin affinity, size exclusion and ion-exchange chromatography.
- 53X concentrated cell culture supernatant was precipitated with an equal volume of 3.8 M ammonium sulfate to remove contaminant proteins (with the major contaminant being ⁇ -2-macroglobulin).
- the ammonium sulfate was added with constant stirring with a stir bar and then was immediately centrifuged at 4000 rpm, 4°C for 45 minutes.
- the resulting supernatant was diluted 4-fold with PBS, pH 7.25, and was filtered using a 0.45 urn vacuum filter.
- the sample was then loaded at 0.5-0.8 ml/min onto a Galanthus nivalis (GNA) lectin (Vector Laboratories, Burlingame, CA) column equilibrated with PBS- pH 7.25. Once the load was finished, the column was washed with PBS pH 7.25 until OD 2 ⁇ o reached baseline, followed by a second wash with 0.5 M NaCl PBS pH 7.25 at 1 ml/min in order to remove contaminant proteins (mainly BSA). The column was then eluted with 1 M MMP PBS pH 7.25 starting with flowing one half CV through the column at 0.3 ml/min and pausing the purification for a 1 hour incubation in MMP elution buffer.
- GAA Galanthus nivalis
- the fractions were analyzed by BN-PAGE using a 4- 12% Bis-Tris NuPAGE gel (Inv ⁇ trogen, Carlsbad, CA) ( 10). All trimer containing fractions were pooled and diluted to 75 mM NaCl with 2OmM Tris pH 8. The diluted SEC pool was then applied over a 1 ml HiTrap DEAE FF column (GE Healthcare), equilibrated in 20 mM Tris pH 8, 75 mM NaCl (TN-75). The diluted SEC pool was loaded at 0.5 ml/min. The column was washed with TN-75 at 1 ml/min until the OD 2 80 reached baseline. The column was then eluted with 20 mM Tris, 300 mM NaCl pH 8 at 1 ml/min, collecting 0.5 ml fractions.
- the flow-through fraction from the DEAE column was re-applied over the column (equilibrated in TN-75) and typically 20-30% or 30-40% more trimer was recovered in this manner.
- the fractions were analyzed by BN-PAGE and by reducing and non-reducing
- ARP31 19 monoclonal antibody The trimer containing fractions were pooled and trimer concentration was determined through densitometry on a reducing SDS-PAGE gel using IR-FL gp 120 as a standard .
- KNHl 144 gpl20 monomer KNHl 144 gpl20 monomer:
- Unconcentrated cell culture supernatants containing secreted gpl20 monomer were applied directly over a GNA lectin column equilibrated in 20 mM imidazole pH 7.1 at 1-2 ml/min. Following adsorption, the column was washed with a high salt (PBS containing 1 M " NaCl, pH 7.1) wash, followed by a low salt (20 mM imidazole pH 7.1) wash. The column was eluted with 1 M MMP in 20 mM imidazole, 0.2 M NaCl pH 7.1.
- Peak fractions were pooled and diluted with 20 mM imidazole, pH 7.1, thirteen-fold to a final buffer concentration of 20 mM imidazole, pH 7.1, 15 mM NaCl.
- the diluted GNA elution was applied over 1 ml HiTrap Q Sepharose FF (GE Healthcare) equilibrated in 20 mM imidazole, pH 7.1.
- the column was washed with 20 mM imidazole, pH 7.1, and was eluted with 20 mM imidazole, 0.2 M NaCl, pH 7.1.
- Tween® 20 Dose effect: 1 ug of purified KNHl 144 SOSIP R6 trimer was incubated with varying concentrations of Tween® 20 (polyoxyethylene sorbitan monolaurate) ranging from 0 to 0.0001 % (v/v) and incubated for 1 hour at room temperature. Following incubation, samples were analyzed by BN-PAGE as described above.
- Tween® 20 Temperature dependance on Tween® 20 effect: To determine if temperature affected the ability of Tween® 20 to recover trimers from aggregates (i.e., collapse aggregate into trimer), 1 ug of purified KNHl 144 SOSIP R6 trimer was incubated with Tween® 20 to a final concentration of 0.05% (v/v) at 0 0 C (on ice), room temperature (22-23°C) at 37°C, or left untreated for 10 minutes. Following the incubation, samples were analyzed by BN-PAGE and Coomassie staining.
- Tween® 20 effect on KNHl 144 gpl20 To test if Tween® 20 had a similar effect on KNHl 144 gpl20, 1 ug of purified gpl20 monomer was either untreated or incubated with Tween® 20 at a final concentration of 0.05% for 10 minutes at room temperature. Following the treatment, samples were analyzed by BN-PAGE and Coomassie staining.
- Tween® 20 effect on a-2-macroglogulin (a 2 M) 0.5 ug of purified ⁇ -2-macroglobuHn was either untreated or treated with Tween® 20 at a final concentration of 0.05% for 10 minutes at room temperature. Reactions were analyzed via BN-PAGE, followed by Coomassie staining.
- Molecular weight standards SEC A Superdex 200 10/300 GL column was equilibrated in 20 mM Tris pH 8, 0.5 M NaCl (TN-500) and calibrated with the following molecular weight standard proteins: thyroglobulin 669,000 Da; ferritin 440,000 Da; BSA 67,000 Da; and RNAse A 13,700 Da. A standard curve was generated by plotting the observed retention volumes of the standard proteins against the log values of their predicted molecular weights.
- KNHl 144 gp!20 SEC analysis: 14 ug of purified KNH 1144 gp 120 (either untreated or Tween® 20-treated as described above) was applied over the Superdex 200 column equilibrated in TN- 500 and resolved at a flow rate of 0.4 ml/min. As a control, 10-14 ug of JR-FL gpl20 was also analyzed in a similar manner.
- KNHl 144 SOSIP R6 gpUO SEC analysis 8-10 ug of purified KNHl 144 SOSIP R6 gpl40 was treated with Tween® 20 at a final concentration of 0.05% for 10-30 minutes at room temperature. Treated samples were then applied over the Superdex 200 column equilibrated with TN-500 containing 0.05% Tween® 20 (TNT-500) and resolved at 0.4 ml/min, collecting 0.4 ml fractions. Trimer-containing fractions were then analyzed by BN-PAGE, followed by silver staining. Fractions were also separated by BN-PAGE, followed by Western blot analysis with ARP 3119 antibody.
- Human mAbs b6 (32), bl2 (33) and 2Gl 2 (26), HIVIg (40) were obtained from Dr. Dennis Burton (The Scripps Research Institute, La JoIIa 3 CA) or Dr. Herman Katinger (University of Natural Resources and Applied Life Sciences, Austria, Vienna).
- anti-Env antibodies 2G12, b6, bl2 and HIVIg were used.
- the CD4-IgG2 antibody conj ugate PRO 542 (39) was also used .
- ELISA plates were coated overnight at 4°C with lentil lectin powder from Lens culinaris (L9267, Sigma) at 10 ug/ml concentration. Plates were washed with PBS twice and blocked with SuperBlock (Pierce) (warmed to RT). Excess blocking agent was washed off with PBS. SEC fractions containing HMW aggregate were either untreated or treated with 0.05% Tween® 20 (v/v, final concentration) for 30 minutes at room temperature (RT) and were added at 0.3 ug/ml (diluted in PBS) and bound to the plates (via the lectin) for 4 hours at RT.
- Tween® 20 v/v, final concentration
- EM analysis of the SOSIP trimers was performed by negative stain as previously described (34, 35). Because this technique is incompatible with detergent, 20 ⁇ l of the original sample (0.5 mg/ml in TN-300) was dialyzed against BSB (0.1 M H 3 BO 3 , 0.025 M Na 2 B 4 O 7 , 0.075 M NaCl, pH 8.3) and subsequently depleted of detergent using the Mini Detergent-OUTTM detergent removal kit (Calbiochem, La JoIIa, CA) as described by the manufacturer. Two microliters of the resulting protein solution, diluted in 200 ⁇ l BSB, was affixed to carbon support membrane, stained with 1% uranyl formate, and mounted on 600 mesh copper grids for analysis.
- BSB 0.1 M H 3 BO 3 , 0.025 M Na 2 B 4 O 7 , 0.075 M NaCl, pH 8.3
- Mini Detergent-OUTTM detergent removal kit Calbiochem, La JoIIa, CA
- EMs were recorded at XlOO 5 OOO at 100 kV on a JOEL JEM 1200 electron microscope. Measurements were made using the Image-Pro Plus software program. Fifty or more trimers were measured and analyzed statistically. The average diameter of the compact trimers formed by the SOSIP gpl40 (e.g., KNHl 144.R6 SOSIP) proteins was about 12-13 nm.
- SOSIP gpl40 e.g., KNHl 144.R6 SOSIP
- KNHl 144 SOSIP R6 gpl40 trimers typically involved three chromatography steps: GNA lectin affinity, Superdex 200 size exclusion and DEAE weak anion exchange.
- 53X concentrated cell culture supernatant precipitated with ammonium sulfate was clarified by centrifugation, diluted and applied over the GNA lectin affinity column to capture gpl40 proteins via ( ⁇ -1, 3) mannose residues.
- Analysis of the ammonium sulfate precipitation using different starting concentrations of harvested cell culture supernatant (10OX to 40X) revealed that 53X was the optimum condition at which maximum ⁇ -2-macroglobulin precipitated out, with minimal envelope protein loss.
- Typical HMW aggregate content ranged from 10 to 40% of the final preparation prior to non-ionic detergent treatment.
- Treatment of the purified preparation with Tween® 20 at a final concentration of 0.05% converted the HMW aggregate species to trimers, yielding a homogenous trimer preparation ( Figure 1, right panel, SOSIP R6, + lane)(19). It should be noted that treatment with Tween® 20 also caused the treated trimer to migrate slightly more rapidly than the untreated trimer (notice faster mobility of trimer in the + lane).
- Tween® 20 provided a simple and mild means to obtain homogenous trimers, further characterization of the non-ionic detergent effect was performed.
- a purified trimer preparation containing ⁇ 30% aggregates e.g., monomer, dimmer and trimer
- Tween® 20 was treated with Tween® 20 at final concentrations of 0.0001% to 0.1% (v/v) ( Figure 2A).
- the SOSJP R6 aggregates were converted to trimers at concentrations of 0.1% to 0.01% ( Figure 2A, lanes 3-5). No conversion was observed at Tween® 20 concentrations of 0.001 and 0.0001% ( Figure 2A, lanes 6 and 7).
- ⁇ -2- macroglobulin (0. 2 M), which is an acidic 726 kDa tetrameric glycoprotein comprised of four identical 185 kDa subunits, was incubated with Tween® 20. No change was observed in the migratory pattern of Ct 2 M in the presence of Tween® 20, although there was a slight increase in the staining intensity of the protein.
- Tween® 20 To examine whether Tween® 20 could convert preparations containing predominantly aggregate as the major oligomeric species to resulting trimers, a KNHl 144 SOSIP R6 preparation containing > 70% HMW aggregate was incubated with Tween® 20 and analyzed by BN-PAGE. As shown in Figure 2D, Tween® 20 was effective in converting the aggregate rich fraction to trimer (Figure 2D, left panel). Fractions of less purity containing HMW aggregate, dimers and monomers ( Figure 2D, right panel, - lane, each species denoted by arrows), when treated with Tween® 20 also resulted in collapse of HMW aggregate to resulting trimer ( Figure 2D, right panel, + lane).
- Size exclusion chromatography (SEC) analysis was performed as a second means to characterize the molecular sizes of KNHl 144 gpl20 monomer and SOSIP R6 gpl40 trimer proteins.
- a Superdex 200 size exclusion column was calibrated with thyroglobulin (669 kDa), ferritin (440 kDa), BSA (67 kDa) and RNAse A (13.7 kDa) as molecular weight standards.
- monomeric JR-FL gpl20 was also analyzed as a control. KNHl 144 gpl20 and JR-FL gpl20 were each found to migrate at an apparent molecular weight of 210 kDa. These values are consistent with those found for JR-FL gp!20 (10).
- trimer In order to maintain homogenous (rimers, treated trimer was resolved in the presence of TN-500 containing 0.05% Tween® 20 (TNT-500). As shown in Figure 3, ⁇ bottom panel BN-PAGE), the trimer ⁇ thick arrow) migrated from fractions BlO through C2, represented in the major peak, with its peak signal at fraction B12 ⁇ vertical arrow). The retention time at this fraction corresponds to an apparent calculated molecular weight of ⁇ 518 kDa.
- the reported apparent molecular weight (MW) of JR-FL SOSIP gpl40 trimer calculated via Superdex 200 SEC analysis is -520 kDa (9); and thus, the calculated apparent MW value for KNHl 144 SOSIP R6 gpl40 trimer is consistent with MW values of other SOSIP envelope trimers.
- Tween® 20 treatment and consequential conversion of HMW aggregate to resulting trimer enhances epitope exposure for Env binding antibodies.
- Tween® 20 treatment and presence may offer favorable consequences in the context of KNHl 144 SOSIP R6 gpl 40 trimer stability and antibody epitope exposure.
- Electron microscopy was performed on purified SOSIP R6 preparations employing negative stain EM analysis.
- the results, shown in Figure 6, reveal that the majority of the observed structures displayed a regular compact morphology with approximate three-fold symmetry. This tri-lobed configuration is most apparent in preparations with deeper stain ( Figure 6; panel of trimers) that are less subject to the flattening that can occur in thinner staining preparations.
- HIV-I £nv-based protein vaccines In the context of identifying and pursuing a variety of HIV-I £nv-based protein vaccines, described herein is the purification and characterizion of a novel subtype A KNHl 144 trimeric envelope spike protein and its properties.
- HIV-I JR-FL has been manipulated to a purified form to mimic as closely as possible the native trimeric structure of the HIV-I viral surface envelope complex via the SOSIP technology (8-11, 15-17).
- the present invention provides another clade, clade A KNHl 144, for which the SOSIP technology results in purified trimeric envelopes that are stable, soluble, and fully cleaved.
- the purification process implemented according to the present invention for the KNHl 144 SOSIP trimers provides a marked improvement over that utilized for JR-FL SOSIP gpl40 trimers.
- the GNA lectin column provided a significant enrichment of gpl40 proteins, but elution off the column significantly destabilized the gpl40 trimers, resulting in a compromise of trimer fidelity on the column. As a result, significant dissociation of the trimer to resulting dimer and monomer was noticed.
- This destabilization could be brought about from Galanthus Nivalis lectin binding to ⁇ l-3 and ⁇ l-6 mannose linkages on the gpl40 high mannose chains, which are internal linkages and not terminal linkages (20).
- the affinity of the lectin for the mannan is likely much higher than the intersubunit protein-protein affinities of the 3 gp!20-gp41 E c ⁇ o monomers contributing to trimer formation, resulting in destabilization and dissociation into component dimers and monomers.
- a one hour incubation in MMP eluting buffer was included. So while a highly enriching step, the lectin affinity column also decreased the final yield of trimer significantly, due to its dissociation during the elution phase.
- KNHl 144 SOSIP R6 g!40 trimer It is relevant to extrapolate from its behavior on anion exchange chromatography that the nature of the KNHl 144 SOSIP R6 g!40 trimer is that of an acidic protein, which would be contrary to its predicted basic isoelectric point (pi) of 8.73 calculated for the protein backbone. However, the likely presence of the predicted acidic sialylated complex oligosaccharide chains on the gpl40 (21, 22) would contribute to a decrease in the overall charge of the glycoprotein and thus confer on it properties of an acidic protein. Indeed, analysis of purified KNHl 144 SOSIP R6 gpl40 trimers on isoelectric focusing gels reveal it to migrate at a pi range of 5.9 to 6.1, consistent with the above observations.
- the purified trimer was shown to contain variable amounts of HMW aggregate (Figure 1, right panel, BN-PAGE), which could not be attributed to being formed at any one particular step of the purification, although one possibility might be at the lectin elution step.
- HMW aggregate Figure 1, right panel, BN-PAGE
- one of the key improvements made in this purification protocol is absence of SDS-insoluble aggregates in the final prep, which are formed by abberantly formed disulfide bonds and are visualized by their slow migration on a non-reduced SDS-PAGE.
- As detected by Coomassie staining and confirmed by anti-envelope Western blot little to no SDS-insoluble aggregates were observed (Figure 1, left and middle panels, Non-Red SDS-PAGE and Anti-Env blot). This is in contrast to what was observed with JR-FL SOSIP gpl40 (R6 and non-R6 versions), where SDS- insoluble aggregates comprised a significant percentage of the final preparations (9
- Tween® 20 was used to address the co-purifying HMW aggregate present in the final trimer preparations. Tween® 20 was chosen because initial observations had shown that Tween® 20 treatment was mild and did not result in any detectable monomer formation, unlike treatment with the other non-ionic detergents NP-40 and Triton X-IOO, where dinners and monomers were observed upon treatment (19). Tween® 20 treatment of the final purified KNHl 144 SOSIP R6 trimer preparation was highly reproducible and resulted in the "conversion" of the HMW aggregate species, as shown in Figure 1 (right panel, BN-PAGE).
- non-ionic detergents Since the nature of non-ionic detergents is exactly that, i.e., non-ionic, it is difficult to realize how an uncharged molecule such as Tween® 20 would affect the charge status of a large, macromolecular oligomer such as the KNHl 144 SOSIP R6 trimer. Furthermore, this effect is highly specific to the trimer, as other such large, highly charged (acidic) oligomeric proteins such as a ⁇ M and even smaller ones such as BSA are unaffected by the detergent.
- Tween® 20 was "coating" the trimer in a manner that may cause perturbations in its conformation, resulting in its "compactness".
- Tween® 20 and Tween® 80 are polyoxyethylene sorbitan esters of fatty acids and thus may likely interact with the sialic acids, causing a charge "neutralization” effect.
- the involvement of the sialic acid residues can be investigated by mild sialydase treatment (21, 22) and removal of these residues, followed by Tween® 20 treatment, followed by monitoring of binding on ion exchange resins.
- the predicted molecular weight for a trimer such as KNHl 144 (and JR-FL) would be -420 kDa (3 x 140 kDa monomers).
- the KNHl 144 SOSIP R6 gpl40 trimer also exhibits an abberant migration on SEC, presumably due to interactions of its ⁇ Minked glycans with the dextran- (agarose polymer) based matrix of Superdex 200, resulting in a higher than expected apparent molecular mass.
- envelope proteins have been shown to be non-globular in shape (10, 23, 24); therefore, gel filtration may not be optimal for determination of their precise molecular masses.
- Tween® 20 for KNHl 144 SOSIP R6 gpl40 proteins would be advantageous, possible Tween® 20 effects on the antigenicity of the HMW aggregate and trimer were examined. Effects on antigenicity was examined by performing lectin ELISAs with the NAbs 2G12, bl2, HIVIg, the CD4-IgG2 antibody conjugate PRO 542, as well as the non-neutralizing mAb b6, to gain information on neutralizing/non-neutralizing epitope exposure and accessibility- It was reasoned that trimer preparations containing 10-30% HMW aggregate may not undergo significant enough changes that would be detectable in a non-quantitative assay such as IPs, i.e., subtle changes (20-30% changes) may go undetected in such an assay due to sensititivity.
- IPs non-quantitative assay
- HIVIg which is a low neutralizing polyclonal human antisera directed against gpl20 hypervariable loop (40)
- HIVIg epitope is accessible on the surface of the HMW aggregate, based on its ability to bind the antibody in absence of Tween® 20.
- HIVIg epitope exposure also significantly increased on the rearranged trimer, upon treatment with Tween® 20.
- the likely explanation to these increases in epitope exposure is that "disruption/rearrangement" of the aggregate and its subsequent conversion to trimer unshields the above mentioned surfaces and thus, upon conversion, these surfaces are now exposed on their individual trimers and are accessible to the antibodies.
- KNHl 144 SOSIP R6 gpl40 proteins were indeed trimeric in nature ( Figure 6).
- the observation that the KNHl 144 SOSIP R6 trimer is compact is associated with anti-Env antibody epitope availability. EM on Tween®-treated trimer which has favorable anti-Env epitope exposure was performed.
- the present invention expands the panel of trimeric HTV-I envelope proteins that may be used as protein-based HIV-I vaccine candidates or serve as a template for future design of Env based protein vaccine candidates, using the SOSIP technology.
- the description of the KNHl 144 SOSIP R6 gpl40 trimers of the present invention addresses most of these issues. Furthermore, the description of the Tween® 20 affects on coverting HMW aggregates to trimeric forms further expands on current knowledge of the aggregate species in HIV-I biology. Of significance, it was shown for the first time, that oligomeric Env protein complexes designed using the SOSIP technology platform are indeed trimeric from EM images and that the trimers are of a similar diameter as native spikes on the HIV-I virion (36, 37).
- Expansion of the panel of potential HIV-I SOSIP protein vaccine candidates by development of a clade A envelope according to this invention now allows for immunological evaluation of the KNHl 144 SOSIP R6 gpl40 trimer in small animals, for example. Such evaluations will assist in S determining the efficacy of KNHl 144 SOSIP R6 gpl40 trimers as immunogens capable of eliciting broadly neutralizing immune responses directed against HIV-I.
- Subtype B 5768.4 SOSIP R6 gpl40 expression and purification The subtype B 5768.4 envelope sequence has been described (8). The sequence was modified to make the soluble SOSIP R6 gpl40 version, as described above for the KNHl 144 isolate in the section "Experimental Details I" and for the JR-FL SOSIP R6 gpl40 trimers (3, 4). DNA synthesis was performed by DNA 2.0 (Menlo Park, CA). The 5768.4 SOSIP R6 gpl40 trimer was expressed in HEK293 and small scale (2 L) purification was performed as described above for KNH 1 144 SOSIP R6 gp 140.
- Tween® 20 Dose effect: 1 ug of purified 5768.4 SOSIP R6 trimer was incubated with varying concentrations of Tween® 20 ranging from 0.1 to 0.0001% (v/v) and incubated for 1 hour at room temperature. Following incubation, samples were analyzed by BN-PAGE as described above.
- Detergent effect on 5768.4 SOSIP R6 gpJ40 trimer preparations 0.24 ug of purified 5768.4 SOSIP R6 trimer was incubated with Triton X-IOO, NP-40, or SDS to a final detergent concentration of 0.1% (v/v) or with Tween® 20 at concentrations of 0.05 and 0.1% for 1 hour at room temperature. Following incubation, 4x BN-PAGE MOPS sample buffer was added and the samples were immediately analyzed on BN-PAGE at 150 V for 2 hours at room temperature, followed by Coomassie G-250 staining.
- Detergent treatments were performed on a trimeric gpl40 of a different subtype 5768.4, which is a subtype B envelope (8).
- the 5768.4 Env protein was modified to the SOSIP R6 version, expressed and purified as a gpl40 trimer.
- the purified final preparation contained high HMW aggregate content ( ⁇ 60%) and minor a 2 M contamination ( ⁇ 5%), with trimer comprising the rest.
- Purified preparations were incubated with the various indicated detergents (Triton X-IOO, NP40, SDS, or Tween® 20) and were treated to collapse HWM aggregate.
- Tween® (Tween® 20 and Tween® 80) effectively collapsed HMW aggregate to trimers at 0.1 and 0.05% concentrations.
- Triton X-100 was also capable of collapsing HMW aggregate to trimer, however, some breakdown to monomeric 5768.4 was observed.
- SDS was effective in breaking down the entire 5768.4 gpl40 protein to resulting monomers by virtue of its denaturing effect on the trimer and HMW aggregate.
- NP40 treatment also led to collapse of HMW aggregate to trimer, but the resulting trimer displayed a somewhat broader staining compared with that of Tween® 20 treated trimers.
- the detergent effect, in particular, Tween® 20, on the HMW aggregate is not unique to KNHl 144 SOSIP gpl40 Env proteins and exhibits similar HMW aggregate collapse ability on other subtypes of HIV envelope trimers as well, such as the 5768.4 SOSIP R6 gpl40.
- An efficient purification process was developed to purify SOSlP Env trimers and to increase the yield of trimers. This process is exemplified by using a preparation, e.g., a cell culture fluid containing KNHl 144.R6 SOSIP proteins, to purify KNHl 144.R6 SOSIP trimers.
- a preparation e.g., a cell culture fluid containing KNHl 144.R6 SOSIP proteins
- CCF concentrated cell culture fluid
- MMP methyl-a-D- mannopyranoside
- the trimer-containing eluted fractions from the lectin chromatography column were applied to a first DEAE sepharose column (DEAE 1) in the absence of Tween 20®.
- a 5-ml HiTrap DEAE FF sepharose column (GE Healthcare/Amersham Biosciences Piscataway, NJ) was used in this step.
- the DEAE 1 chromatography was performed at room temperature.
- the column equilibration buffer comprised 20 mM Tris, 0.075 M NaCl, pH 8.0, and the column equilibration flow rate was 10 ml/min.
- the column loading and elution flow rate was 2.5 ml/min with a fraction size of 2.5 ml.
- the high flow rate allowed this step to be completed in a short amount of time.
- the KNH1 144.R6 gpHO trimer product was eluted from DEAE 1 in several fractions through a linear gradient to 20 mM Tris, 0.3 M NaCl, pH 8.0 in ten column volumes (10 CV).
- KNHl 144 SOSIP.R6 gpl40 monomers and dimers were removed in the flow through and wash step using 20 mM Tris, 75 mM NaCl (pH 7.5) at room temperature.
- a second Hi-Trap DEAE FF sepharose column (DEAE 2) was equilibrated with buffer containing Tween 20® (20 mM Tris, 75 mM NaCl, 0.05% Tween, pH 8.0). The DEAE 2 chromatography was also performed .at room temperature.
- the DEAE 1 elution fractions containing KNHl 144 SOSTP .R6 trimers in buffer also containing Tween 20® was applied to the second DEAE column.
- the KNHl 144 SOSIP.R6 trimer product was obtained in the flow- though and in the wash pool, since KNHl 144 SOSIP.R6 trimer did not bind to the DEAE column in the presence of Tween 20® in the buffer.
- a suitable range of Tween 20Cg) for purification of the SOSIP.R6 trimers is 0.025% to 1%. 0.05% Tween 20® was used in many purification runs.
- the immunogenicity of the KNHl 144 SOSIP.R6 trimer product was also tested by immunoprecipitation (IP) experiments, e.g., as shown in Figure 13 using ARP 3119 probing antibody (also known as CA13) (MRC Centralized Facility for AIDS reagents, NIBSC, UK). 2G12, bl2, b6, and 15e are HTV neutralizing antibodies used in the IP experiment.
- PRO542 is a CD4-IgG2 heterotetrameric protein.
- 75 ug KNHl 144 SOSIP.R6 trimer was purified using this purification method from 1 liter (IL) of cell culture fluid (CCF).
- trimer product was recovered from IL of CCF using the purification method described in this example.
- the resulting purified and enriched trimer product was free from aggregates, monomers and dimers.
- Monomer content was less than 5% based on BN-PAGE/silver stain gel analysis.
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| PCT/US2007/014388 WO2007149490A1 (en) | 2006-06-19 | 2007-06-19 | Processes for recovering stabilized formulations of trimers of retroviral envelope (env) proteins |
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| EP2765138B1 (en) * | 2012-11-05 | 2018-01-10 | International Aids Vaccine Initiative | HIV-1 envelope glycoprotein |
| WO2015171975A1 (en) * | 2014-05-09 | 2015-11-12 | The Regents Of The University Of Michigan | Use of modified banana lectin in purification of glycoproteins |
| CA2996007A1 (en) | 2015-09-03 | 2017-03-09 | Novavax, Inc. | Vaccine compositions having improved stability and immunogenicity |
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