WO2024256467A1 - Anti-npc vhh antibodies and methods for their stabilization - Google Patents
Anti-npc vhh antibodies and methods for their stabilization Download PDFInfo
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- C07K16/18—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies against material from animals or humans
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- C07—ORGANIC CHEMISTRY
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- C07K2317/00—Immunoglobulins specific features
- C07K2317/20—Immunoglobulins specific features characterized by taxonomic origin
- C07K2317/22—Immunoglobulins specific features characterized by taxonomic origin from camelids, e.g. camel, llama or dromedary
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K2317/00—Immunoglobulins specific features
- C07K2317/50—Immunoglobulins specific features characterized by immunoglobulin fragments
- C07K2317/56—Immunoglobulins specific features characterized by immunoglobulin fragments variable (Fv) region, i.e. VH and/or VL
- C07K2317/569—Single domain, e.g. dAb, sdAb, VHH, VNAR or nanobody®
Definitions
- the present invention relates to VHH antibodies that specifically bind to components of nuclear pore complexes of human cells and other species. Further, the present invention relates to the labelling of VHH antibodies through maleimide chemistry and ectopic cysteine residues. Further, the present invention relates to a method for forming a stabilizing, structural disulfide bond in VHH antibodies that were initially reduced and labelled through ectopic cysteines.
- VHH antibodies are isolated antigen-binding domains of camelid heavy-chain-only antibodies (Hamers-Casterman et al., 1993; Muyldermans, 2013). They are straightforward to obtain by immunizing a camelid, such as an alpaca, with an antigen of choice, preparing an immune library, and performing phage display using the antigen again as a panning bait. Such workflow avoids the combinatorial complications typical of traditional antibodies whose paratopes are made of two different polypeptide chains.
- VHH antibodies have found many practical applications, as crystallization chaperones, as imaging agents in immunofluorescence applications (Rothbauer et al., 2008; Pleiner ef al., 2015, 2018), or for virus-neutralization in anti-viral therapy (Guttler et al., 2021 ; Koenig et al., 2021 ).
- VHHs are easily produced in bacteria, such as Escherichia coli, or in yeast, such as Pichia pastoris. They contain a highly conserved structural disulfide bond that is buried in their hydrophobic core and stabilizes them against denaturation (Muyldermans, 2013; Pleiner et al., 2015). This disulfide bond forms between two conserved cysteines, but only when the VHH is produced under the oxidizing conditions that prevail in a secretory compartment, such as the periplasm of E. co// or the endoplasmic reticulum of eukaryotes.
- VHHs can recognize their antigens even when they are produced under reducing conditions in the cytoplasm, i.e. , when their structural disulfide bond has not formed and the corresponding cysteines remained in their -SH form (Pleiner et al., 2015).
- Fluorescent VHH imaging reagents are of particular interest because their actual production does not require animals and they are fully defined by sequence. Compared to traditional stainings with primary and secondary antibodies, they allow for simplified staining workflows (with just a single incubation of the specimen) and a smaller offset (linkage error) between label and epitopes. The latter is highly relevant for super-resolution microscopy, where the linkage error becomes limiting for resolution.
- NPCs Nuclear pore complexes
- VHHs recognizing Xenopus (i.e., frog) NPCs. While this was straightforward because Xenopus nucleoporins are very immunogenic in camelids, their use was limited because only a few labs work with frog cells, but many more with human/ mammalian cell lines.
- VHH antibodies showing improved binding to mammalian and other animal NPCs and indeed to cross-react from frogs to humans.
- a first aspect of the present invention relates to an VHH antibody against a mammalian nuclear pore complex (NPC).
- the VHH antibody is directed against a component of a mammalian NPC including Nup358, Nup133, Nup155, Nup93, Nup35, Elys, and the Nup214 Nup88 Nup62 heterotrimer.
- VHH antibodies comprise two structural cysteine residues capable of forming an intramolecular disulfide bond.
- the VHH antibody comprises at least one additional solvent-accessible ectopic cysteine residue.
- a solvent-accessible ectopic cysteine residue may be introduced in any portion of the VHH antibody that does not interfere with target-recognition, for example, in its N- and/or C-terminal region and/or in the folded part of the VHH antibody avoiding the paratope regions.
- the VHH antibody comprises a heterologous amino acid sequence including a solvent-accessible ectopic cysteine residue at its N-terminus and/or at its C-terminus.
- the VHH antibody carries at least one labelling agent, e.g., a fluorescent labelling agent (fluorophore) or biotin.
- a fluorescent labelling agent fluorophore
- biotin e.g., biotin
- the VHH antibody carries a labelling agent attached to a solvent-accessible ectopic SH group on the VHH antibody, particularly an SH group on the N and/or C-terminus of the VHH antibody.
- the VHH antibody is a stable, e.g., a thermostabilized VHH antibody.
- the VHH antibody is labelled at an ectopic cysteine (e.g., through maleimide chemistry) and it comprises two structural cysteines that are quantitatively oxidized to an intramolecular disulfide bond.
- a further aspect of the present invention relates to a set of at least two VHH antibodies each recognizing a different component of an animal NPC, particularly a vertebrate, e.g., mammalian NPC selected from the group comprising Nup358, Nup155, Nup133, Nup93, Nup35, Elys, and the Nup214 Nup88 Nup62 heterotrimer.
- a vertebrate e.g., mammalian NPC selected from the group comprising Nup358, Nup155, Nup133, Nup93, Nup35, Elys, and the Nup214 Nup88 Nup62 heterotrimer.
- a further aspect of the present invention relates to the use of the VHH antibody or the set of the VHH antibodies for imaging applications including fluorescence spectroscopy or fluorescence microscopy.
- VHH antibodies The binding characteristics of specific VHH antibodies are shown in Table 1 : All antibodies except Nb116 are directed against components of the NPC. Nb116 is directed against the Fc portion of rabbit IgG and may serve as a secondary detection reagent.
- VHH antibodies are shown in Table 2.
- VHH antibodies of the present invention are antibodies recognizing Nup 133 P-propeller such as KG1 D08 (SEQ ID NO: 1 ) and KG1 C05 (SEQ ID NO: 5), variants thereof, competing antibodies and antibodies binding the same epitope as described herein.
- VHH antibodies of the present invention are KG1 D08 (SEQ ID NO: 1 ), KG1 C05 (SEQ ID NO: 5), Re3E01 (SEQ ID NO: 21 ), xhNup358 Nb2t (SEQ ID NO: 25), xhNup93 Nb3t (SEQ ID NO: 29), xhNup35 Nb1t (SEQ ID NO: 33), Bm53C05 (SEQ ID NO: 37), KG26C08 (SEQ ID NO: 49), Nb116 (SEQ ID NO: 53), variants thereof, competing antibodies and antibodies binding the same epitope as described herein.
- VHH antibodies without ectopic cysteines
- CDR sequences of a given antibody molecule There are several methods known in the art for determining the CDR sequences of a given antibody molecule, but there is no standard unequivocal method. Determination of CDR sequences from antibody heavy chain variable regions can be made according to any method known in the art, including, but not limited to, the methods known as KABAT, Chothia, and IMGT.
- a selected set of CDRs may include sequences identified by more than one method, namely, some CDR sequences may be determined using KABAT and some using IMGT, for example.
- the CDR sequences of the VHH variable regions are determined using the KABAT methods.
- CDRs may also be defined through a multiple alignment (with many other VHH antibodies), to identify the hot-spots of variability and relate them to a standard VHH antibody structure. It is also possible to define CDRs by analyzing the structure of the VHH antibody and deciding what is a loop and what is the antibody’s scaffold. In some cases, CDR-adjacent residues are also variable, and are therefore included in the CDR definition.
- VHH antibody comprising two structural cysteines and optionally at least one solvent-accessible ectopic cysteine in a host cell under reducing or at least partially reducing conditions
- thermostabilized VHH antibody wherein the two structural cysteines are quantitatively oxidized to a disulfide bond.
- the VHH antibody comprises two structural cysteines and at least one solvent-accessible ectopic cysteine.
- the method comprises step (iii).
- the oxidation in step (iv) may be carried out in the presence of an oxidation agent, e.g., a disulfide compound such as glutathione disulfide (GSSG) and optionally in the presence of a protein disulfide isomerase (PDI).
- an oxidation agent e.g., a disulfide compound such as glutathione disulfide (GSSG) and optionally in the presence of a protein disulfide isomerase (PDI).
- GSSG glutathione disulfide
- PDI protein disulfide isomerase
- the oxidation comprises a treatment at an elevated temperature thereby leading to a transient at least partial thermal unfolding of the VHH antibody.
- the VHH antibody is subjected to a treatment at a temperature which is at least as high as the onset of melting of the VHH antibody with reduced structural cysteines.
- VHH antibody which binds the same or an overlapping epitope of the respective component of the NPC as a VHH antibody of (a).
- VHH antibody of embodiment 1 comprising
- VHH antibody which binds the same or an overlapping epitope of the respective component of the NPC as a VHH antibody of (a).
- the VHH antibody of embodiment 1 or 2 comprising
- VHH sequence which has an identity of at least 70%, at least 80%, at least 90%, at least 95% or at least 98% to a VHH sequence of (a),
- VHH antibody which binds the same or an overlapping epitope of the respective component of the NPC as a VHH antibody of (a).
- the VHH antibody of any one of embodiments 1 -3 comprising at least one solvent-accessible ectopic cysteine residue in its N-and/or C-terminal region, particularly at its N- and/or C-terminus and/or in its folded part avoiding the paratope regions.
- the VHH antibody of any one of embodiments 1 -4 comprising a heterologous amino acid sequence including a solvent-accessible ectopic cysteine residue at its N-terminus and/or at its C-terminus.
- the VHH antibody of any one of embodiments 1 -5 which carries a labelling agent, particularly a fluorescent group, biotin, a DNA oligonucleotide group, an enzyme, an electron spin resonance (EPR) probe, or a group for immobilization to a chromatographic support.
- a labelling agent particularly a fluorescent group, biotin, a DNA oligonucleotide group, an enzyme, an electron spin resonance (EPR) probe, or a group for immobilization to a chromatographic support.
- the VHH antibody of any one of embodiments 1 -6 which carries a labelling agent attached to a solvent-accessible ectopic SH group on the VHH antibody.
- the VHH antibody of any one of embodiments 1 -8 which is a thermostabilized VHH antibody.
- the VHH antibody of any one of embodiments 1 -9 which comprises two structural cysteines that are quantitatively oxidized and form an intramolecular disulfide bond.
- the VHH antibody of any one of embodiments 1 -10 which has a crossreactivity with a homologous NPC component from Xenopus laevis.
- NPC mammalian nuclear pore complex
- the set of embodiment 12 which comprises a VHH antibody recognizing Nup133 [3-propeller.
- the set of embodiment 12 or 13 wherein at least one VHH antibody comprises at least one solvent-accessible ectopic cysteine residue, particularly in its N-and/or C-terminal region and/or in its folded part avoiding the paratope regions.
- the set of any one of embodiments 12-14 comprising at least one VHH antibody comprising:
- VHH antibody which binds the same or an overlapping epitope of the respective component of the NPC as a VHH antibody of (a).
- the set of any one of embodiments 12-15 comprising at least one VHH antibody comprising:
- VHH antibody which binds the same or an overlapping epitope of the respective component of the NPC as a VHH antibody of (a).
- the set of any one of embodiments 12-16 comprising at least one VHH antibody comprising:
- VHH sequence which has an identity of at least 70%, at least 80%, at least 90%, at least 95% or at least 98% to a VHH sequence of (a),
- a VHH antibody which binds the same or an overlapping epitope of the respective component of the NPC as a VHH antibody of (a).
- the set of any one of embodiments 12-17 comprising at least one VHH antibody comprising 2, 3, 4, 5, 6 or 7 different VHH antibodies, particularly 2, 3, 4, 5, 6 or 7 different VHH antibodies as defined in any one of embodiments 13-15.
- the set of any one of embodiments 12-18 wherein at least one VHH antibody carries a labelling agent, particularly a fluorescent group, biotin, a DNA oligonucleotide group, an enzyme, an electron spin resonance (EPR) probe, or a group for immobilization to a chromatographic support.
- a labelling agent particularly a fluorescent group, biotin, a DNA oligonucleotide group, an enzyme, an electron spin resonance (EPR) probe, or a group for immobilization to a chromatographic support.
- VHH antibodies carry different labelling agents, particularly different spectrally separatable fluorescent groups.
- the set of any one of embodiments 12-22 wherein at least one VHH antibody comprises two structural cysteines that are quantitatively oxidized and form an intramolecular disulfide bond.
- Use of the VHH antibody of any one of embodiments 1 -11 or the set of any one of embodiments 12-23 for imaging applications particularly for fluorescence spectroscopy or microscopy.
- a method of producing a VHH antibody comprising the steps:
- step (i) expressing a VHH antibody comprising two structural cysteines and at least one solvent-accessible ectopic cysteine in a host cell under reducing or at least partially reducing conditions, (ii) purifying the VHH antibody obtained in step (i) from the host cell or the culture medium under conditions wherein the at least one solvent- accessible ectopic cysteine is preserved in the reduced SH state;
- step (iv) subjecting the VHH antibody obtained in step (ii) or (iii) to an oxidation that converts the two structural cysteines to a disulfide bond, and
- thermostabilized VHH antibody wherein the two structural cysteines are quantitatively oxidized to a disulfide bond.
- the VHH antibody comprises at least one solvent-accessible ectopic cysteine.
- the VHH antibody comprises an solvent-accessible ectopic cysteine residue in its N-and/or C-terminal region and/or in its folded part, avoiding the paratope regions.
- step (i) comprise expression of the VHH antibody in the cytoplasm of a prokaryotic host cell such as E.coli or a eukaryotic host cell such as a yeast, protozoan, plant, or animal cell, optionally followed by a reduction treatment.
- a prokaryotic host cell such as E.coli
- a eukaryotic host cell such as a yeast, protozoan, plant, or animal cell
- step (ii) comprises a treatment with a reducing agent such as a thiol, e.g., DTT (dithiothreitol) or a phosphine, e.g., TCEP (tris(carboxyethyl)phosphine), followed by a removal of the reducing agent.
- a reducing agent such as a thiol, e.g., DTT (dithiothreitol) or a phosphine, e.g., TCEP (tris(carboxyethyl)phosphine
- the labelling agent is a thiol-reactive compound, e.g., an maleimide-, iodoacetamidebromoacetamide- or acrylamide-activated compound.
- the labelling agent is a fluorophore, biotin, a DNA oligonucleotide, an enzyme, an electron spin resonance (EPR) probe, or a compound for immobilization to a chromatographic support.
- step (iv) comprises a treatment of the VHH antibody with an oxidant.
- oxidant is a disulfide compound particularly oxidized glutathione (GSSG).
- GSSG oxidized glutathione
- step (iv) is carried out in the presence of a protein disulfide isomerase (PDI), particularly in the presence of DsbA and/or DsbC from E. coli.
- PDI protein disulfide isomerase
- step (iv) comprises a transient thermal unfolding of the VHH antibody.
- the method of embodiment 38 wherein the transient thermal unfolding comprises incubating the VHH antibody at a temperature which is in the range between the onset of melting of the reduced form of the VHH antibody (with reduced structural cysteines) and the nominal melting temperature (Tm) of the reduced form of the VHH antibody.
- a VHH antibody recognizing an Fc region of a rabbit IgG comprising:
- VHH antibody which competes with the VHH antibody of (a) for the binding to its target antigen
- VHH antibody which binds the same or an overlapping epitope of its target antigen as a VHH antibody of (a).
- the VHH antibody of embodiment 40 comprising
- VHH antibody which competes with the VHH antibody of (a) for the binding to its target antigen
- VHH antibody which binds the same or an overlapping epitope of its target antigen as a VHH antibody of (a).
- the VHH antibody of embodiment 40 or 41 comprising
- VHH antibody which competes with the VHH antibody of (a) for the binding to its target antigen
- VHH antibody which binds the same or an overlapping epitope of its target antigen as a VHH antibody of (a). 43.
- VHH antibody of any one of embodiments 40-42 as a secondary detection reagent, particularly for the imaging of an NPC, more particularly for a use as defined in embodiment 24.
- the inventors prepared mixes of human and Xenopus NPC antigens (Nup133, Nup358, Nup155, Nup93, Nup35, Elys, and the Nup214 Nup88 Nup62 heterotrimer), immunized alpacas, selected VHHs by phage display, produced them by recombinant expression in the E.coli cytoplasm, and labeled them through ectopic cysteines with fluorescent dyes.
- the VHH sequences of the antibodies are shown at the end of the description. Table 2 discloses their specificity-determining CDRs.
- nuclei had been assembled from Xenopus sperm chromatin and Xenopus egg extract; here, three VHHs (labelled with different fluorophores) were each combined, demonstrating their utility in multi-color colocalizations.
- Alexa488-labelled anti-Nup133 with AbberiorStar635- labelled anti-Nup358, and Alexa568-labelled anti-Nup35 to generate a three-color three-dimensional pattern by staining NPCs of HeLa cells.
- patterns can be reproduced by standardized cell-staining protocols, they can also be used for benchmarking super-resolution fluorescence microscopes.
- it is relevant that such patterns are generated with biologically relevant samples, which can reveal typical challenges, such as offsets between color channels due to mismatches in diffractive index within the specimen.
- Nup358 organizes the cytoplasmic ring with 5 copies per asymmetric unit.
- Nup133 is part of the Y-complex and forms the scaffolds of the cytoplasmic and nuclear rings.
- Nup35 and Nup155 are two different components of the inner ring.
- the Nup214 Nup88 Nup62 heterotrimer is located near the cytoplasmic ring.
- Elys is part of those Y-complexes that form the outermost nuclear ring and occurs in only one copy per asymmetric unit.
- Elys and Nup358 mark the most distant components of the (rigid) NPC scaffold (along the cytoplasmic-nuclear axis).
- VHH antibodies their target binding can be defined with (near) atomic resolution.
- the inventors crystallized a complex of xhNup358-Nb2t with the N-terminal domain (NTD) of Xenopus Nup358 as well as a complex of the human Nup133 [3-propeller with VHH KG1 D08 and KG1 C05. They collected x-ray diffraction data at a synchrotron source and solved the structures by molecular replacement.
- the epitope is highly conserved between frogs and human, with only two conservative exchanges: R58K (arginine against lysine) and L87V (leucine against valine). The other 13 epitope residues are identical ( Figure 3C). This explains why this VHH cross-reacts so well between Xenopus and human RanBP2, despite the fact that the N-terminal domains share only 71 % sequence identity.
- the Nup133 [3-propeller structures shows that the two VHH bind to distinct and nonoverlapping epitopes (Figure 4A), which is consistent with biolayer interferometry measurements indicating that the two VHH do not compete for a common binding site.
- KG1 C05 docks with its CDR3 loop into the central cavity of the propeller.
- KG1 D08 the so far brightest staining VHH against the Y-complex, binds to the side of the propeller.
- Cryo-electron tomography maps of the nuclear pore complexes are meanwhile sufficiently well resolved to visualize individual protein domains (Mosalaganti et al., 2022).
- the here disclosed crystal structures of the Nup-VHH complexes can be docked in to such cryo-EM maps to locate VHH-attached fluorophores. This in turns allows to interpret obtained fluorescence microscopic patterns with molecular precision.
- E. coli Shuffle strain commercially available from NEB whose cytoplasm is less reducing for disulfide bonds (because of a genetic deletion of the GOR gene, which encodes the glutathione reductase or more correctly a glutathione disulfide reductase).
- GOR gene which encodes the glutathione reductase or more correctly a glutathione disulfide reductase.
- Such strain also expresses the PDI DsbC in the cytoplasm (Bessette et al., 1999), which in wildtype cells forms disulfide bonds in the periplasm.
- the inventors developed, therefore, an alternative technology. They conceived a workflow that includes (i) expression of a VHH with ectopic cysteines for later labeling, under reducing (or semi-reducing) conditions for expression, (ii) VHH purification including a final reduction step to ensure an -SH state of the ectopic cysteines, (iii) modification of the ectopic (and fully exposed) cysteines with a label, e.g., a maleimide-activated label (fluorophore, biotin, DNA-oligonucleotide) while keeping the structural cysteines unmodified, (iv) a post-treatment that converts the two structural cysteines (which are buried in the hydrophobic core of the VHH) to a disulfide bond, and (v) obtaining the VHH antibody in a stable oxidized form.
- a label e.g., a maleimide-activated label (fluorophore, biotin, DNA-oligon
- a PDI should catalyze the disulfide bond formation; however, initial experiments showed only low efficiency and rather variable results with different VHHs.
- the inventors reasoned that the problem might relate to the fact that the two structural cysteines are buried in the hydrophobic interior of the VHH and are thus not easily accessible for modification or enzymatic action. This burial helps to confine the fluorophore-labelling to only the engineered, ectopic cysteines. However, in the next step of the above-sketched workflow, the burial prevents the two structural cysteines also from being oxidized to a stabilizing disulfide bond. Indeed, PDIs act in vivo probably already during the translocation of the still fully unfolded VHH polypeptide through the plasma membrane (of E.
- VHH (such as the here described anti-Nup VHHs) produced under reducing conditions is, however, a correctly folded entity, because it can bind its target perfectly well (see Pleiner et al., 2015 and below, Figure 13). Indeed, this poses the question if and how a chaperone/ folding enzyme can recognize such a reduced VHH as a folding substrate.
- the inventors used oxidized glutathione (GSSG) as an oxidant and the three (periplasmic) PDIs from E. coli, namely DsbA, DsbC, and DsbG, as catalytic enzymes.
- GSSG oxidized glutathione
- PDIs from E. coli
- DsbA, DsbC, and DsbG oxidized glutathione
- DsbA, DsbC, and DsbG catalytic enzymes.
- a given VHH was incubated with various combinations of GSSG and the above-mentioned enzymes. Disulfide bond formation was then assessed by non- reducing SDS PAGE, where the (more compact) disulfide-bridged form runs faster than the reduced form (see Figures 6, 7, 8, 10C, 11 , 12, 16).
- Re9B09 an anti-SARS-CoV-2 VHH antibody (SEQ ID NO: 60) (Guttler et al., 2021 ), was a first example for a post-production disulfide-bonding (Figure 7). Incubations were performed at 37°C because this corresponds to the body temperature of alpacas (from which the VHH originated) and because this is the optimal growth temperature of E. coli and should therefore be an ideal temperature for the action of the Dsb enzymes that are of E. coli origin.
- Re24H12 another anti-SARS-CoV-2 VHH antibody (SEQ ID NO: 61 ) showed no disulfide bond formation when tested under the same conditions (37°C), even when all three Dsb enzyme had been added. Surprisingly, however, a quantitative disulfide bond formation was observed when the treatment temperature was raised to 65°C and kept for 5 minutes (Figure 8A).
- the optimal treatment temperature was here determined by pipetting a master mix (35 pM VHH, 2 mM GSSG, and 1.5 pM each DsbA, DsbC, and DsbG), aliquoting this to PCR tubes, incubating the 12 parallel samples in a gradient-thermocycler with end-temperatures reaching a range between 30°C and 70°C, and analyzing disulfide-bonding in each of the samples by nonreducing SDS-PAGE.
- 65°C is a rather non-physiological temperature, lethal for either E. coli or mammalian cells, but the effective treatment at this temperature is explainable by the assumption that thermal unfolding of the VHH is the first and essential step in the reaction. Such unfolding would transiently make one of the two buried thiol groups accessible and thus allow its oxidation, through a covalent (S-S) intermediate with either a Dsb or a glutathione molecule, followed by the displacement of the enzyme/ glutathione by the thiol group of the second VHH cysteine.
- S-S covalent
- Thermal unfolding can be measured by differential scanning fluorimetry or DSF for short (also called thermofluor), using, e.g., SYBR orange as an indicator.
- DSF differential scanning fluorimetry
- SYBR orange an indicator for SYBR orange
- Tm nominal melting temperature
- 58°C as defined by the inflection point of the melting curve
- the onset of unfolding is seen at ⁇ 50°C, which in turn is close to the optimal disulfide bonding temperature of 48°C in the 16 h incubation.
- Nb116 SEQ ID NO: 53
- a secondary VHH directed against the anti-rabbit IgG Fc fragment (Table 1 ).
- NEB Shuffle this VHH can reach up to 50% disulfide-bonding.
- a post-production treatment at 60°C allows for a quantitative conversion into a hyperthermostable, disulfide-bridged form.
- the treatment strategy disclosed here allows for an excellent stabilization of fluorophore-labeled VHHs that initially had a reduced structural disulfide bond.
- the VHH antibodies may be used for imaging applications, e.g., confocal laser scanning microscopy or stimulated emission depletion (STED) microscopy. They were found to be cross-reactive with NPCs from the frog Xenopus laevis. For staining, two or more, e.g., three VHHs labelled with different labelling agents such as fluorophores may be combined, demonstrating their utility in multi-color co-localizations.
- imaging applications e.g., confocal laser scanning microscopy or stimulated emission depletion (STED) microscopy. They were found to be cross-reactive with NPCs from the frog Xenopus laevis.
- two or more, e.g., three VHHs labelled with different labelling agents such as fluorophores may be combined, demonstrating their utility in multi-color co-localizations.
- VHH antibodies are combined into sets comprising a plurality of VHH antibodies.
- the present invention relates to a VHH antibody, which is a monovalent heavy chain- only antibody comprising a CDR1 domain, a CDR2 domain and a CDR3 domain linked by framework regions including, but not being limited to, whole VHH antibodies, e.g. native VHH antibodies comprising framework regions derived from camelids, and modified VHH antibodies comprising modified framework regions, VHH antibody fragments and VHH antibody fusion proteins, e.g. a fusion protein with an immunoglobulin or non-immunoglobulin peptide or polypeptide, as long as it shows the properties according to the invention.
- VHH antibody which is a monovalent heavy chain- only antibody comprising a CDR1 domain, a CDR2 domain and a CDR3 domain linked by framework regions including, but not being limited to, whole VHH antibodies, e.g. native VHH antibodies comprising framework regions derived from camelids, and modified VHH antibodies comprising modified framework regions, VHH antibody fragments and VHH antibody fusion proteins, e.
- a VHH antibody according to the present invention is characterized by (i) a CDR3 sequence, (ii) a combination of a CDR1 sequence, a CDR2 sequence, and a CDR3 sequence, (iii) by a complete VHH sequence, or (iv) by competition with a specific reference antibody.
- Specific CDR and VHH sequences are provided in the Tables, Figures and the Sequence Listing. According to the present invention, sequences related to the above sequences are encompassed. These related sequences are defined by having a minimum identity to a specifically indicated amino acid sequence, e.g., a CDR or VHH sequence. This identity is indicated over the whole length of the respective reference sequence and may be determined by using well-known algorithms such as BLAST.
- a related CDR3 sequence has an identity of at least 80% or at least 90% or at least 95% to a specifically indicated CDR3 sequence, e.g., a substitution of 1 , 2, or 3 amino acids.
- a related combination of a CDR1 sequence, a CDR2 sequence, and a CDR3 sequence has an identity of at least 80% or at least 90% or at least 95% to a specifically indicated combination of a CDR1 sequence, a CDR2 sequence, and a CDR3 sequence, e.g., a substitution of 1 , 2, 3, 4, 5 or 6 amino acids by different amino acids.
- a related VHH sequence has an identity of least 70%, at least 80%, at least 90%, at least 95% or at least 98% to a VHH sequence, e.g., a substitution of 1 , 2, 3, 4, 5 or up to 20 amino acids.
- the invention relates to a VHH antibody recognizing Nup358 which competes with the VHH antibody xhNup358-Nb2t (SEQ. ID NO: 25) for the binding to Nup358 and/or which binds to the epitope of Xenopus Nup358 and/or human Nup358 indicated in Fig. 3C (by bold letters).
- the invention relates to a VHH antibody recognizing Nup133 which competes with the VHH antibody KG1 C05 (SEQ. ID NO: 1 ) for the binding to Nup133 and/or which binds to the epitope of human Nup133 indicated in Fig. 4C (by bold letters).
- the invention relates to a VHH antibody recognizing Nup133 which competes with the VHH antibody KG1 D08 (SEQ. ID NO: 5) for the binding to Nup133 and/or which binds to the epitope of human Nup133 indicated in Fig. 4C (by bold letters).
- the present invention relates to a nucleic acid molecule, e.g., a DNA molecule, encoding a VHH as indicated above, or a vector, comprising said nucleic acid molecule as indicated above in operative linkage with an expression control sequence, particularly with a heterologous expression control sequence. Furthermore, the invention relates to a cell comprising a nucleic acid molecule or a vector as described above.
- Vectors for the recombinant production of VHH antibodies are well-known in the art.
- the vector is an extrachromosomal vector.
- the vector is a vector for genomic integration.
- the cell may be a known host cell for producing antibodies or antibody fragments, e.g., a prokaryotic cell such as an E. coli or a Bacillus sp. cell, a yeast cell, particularly a Pichia yeast cell, an insect cell, or a mammalian cell, e.g., a CHO cell, or a plant cell.
- a prokaryotic cell such as an E. coli or a Bacillus sp. cell
- a yeast cell particularly a Pichia yeast cell, an insect cell, or a mammalian cell, e.g., a CHO cell, or a plant cell.
- the cell comprises the nucleic acid or the vector extrachromosomally.
- the cell comprises the nucleic acid or the vector integrated into the genome, e.g., as a genomically integrated expression cassette.
- a particular aim of the invention has been to generate stable VHH antibodies useful for imaging mammalian NPCs.
- the inventors prepared VHH antibodies specifically directed against a component of a mammalian nuclear pore complex (NPC) selected from the group comprising Nup133, Nup358, Nup155, Nup93, Nup35, Elys, and the Nup214 Nup88 Nup62 heterotrimer.
- the VHH antibodies are specifically directed against a component of a human nuclear pore complex (NPC) selected from the group comprising human Nup133, human Nup358, human Nup155, human Nup93, human Nup35, human Elys, and the human Nup214 Nup88 Nup62 heterotrimer.
- the VHH antibody recognizes Nup133 [3-propeller, particularly human Nup133 [3-propeller.
- the component of the human NPC is selected from human Nup133 (UniProt #ID: Q8WUM0), human Nup358 (UniProt #ID: P49792), human Nup155 (UniProt #ID 075694), human Nup93 (UniProt #ID: Q8N1 F7), human Nup35, (UniProt #ID:Q8NFH5), human Elys (UniProt #ID Q8WYP5), and the human Nup214 (UniProt #ID: P35658) Nup88 (UniProt #ID: Q99567) Nup62(UniProt #ID: P37198) heterotrimer.
- the component of the human NPC is Nup133 [3-propeller.
- VHH antibodies are disclosed herein.
- a further aim of the invention has been to generate stable VHH antibodies against the Fc region of an antibody, e.g., a rabbit IgG antibody useful as secondary detection reagent in imaging applications.
- an antibody e.g., a rabbit IgG antibody useful as secondary detection reagent in imaging applications.
- VHH antibodies A specific embodiment of such VHH antibodies is disclosed herein.
- the antibodies were produced recombinantly and modified with labelling agents, e.g., fluorophores, which were attached to solvent-accessible ectopic cysteines introduced into the antibody sequence.
- labelling agents e.g., fluorophores
- the term “solvent-accessible” means the cysteine is accessible to the surrounding medium and thus to the attachment of a labelling agent when the VHH antibody is in a folded state.
- the VHH antibody comprises 1 , 2 , 3, or 4 to solvent-accessible ectopic cysteines.
- a solvent-accessible ectopic cysteine residue may be located in the N-and/or C-terminal region and/or in the folded part of the VHH antibody, avoiding the paratope regions.
- the VHH antibody comprises at least one heterologous cysteine-containing amino acid sequence at the N-terminus and/or at the C-terminus of the VHH sequence.
- the heterologous cysteine-containing amino acid sequence typically has a length of up to about 20 amino acids, e.g., about 1 to about 20 amino acids, or about 4 to about 10 amino acids.
- the heterologous amino acid sequence comprises one cysteine.
- a cysteine present in the heterologous amino acid sequence is an ectopic cysteine, particularly a solvent-accessible ectopic cysteine.
- the heterologous cysteine-containing amino acid sequence is flexible and/or comprises hydrophilic amino acids, e.g., amino acids selected from Gly, Ser, Thr, Gin, Asn, Glu, and Asp, particularly from Gly, Ser, Thr and Glu.
- the VHH antibody comprises a heterologous cysteine- containing amino acid sequence at the N-terminus and a heterologous cysteine- containing amino acid sequence at the C-terminus of the VHH sequence.
- the VHH antibody further comprises at least one heterologous tag-containing amino acid sequence, e.g., for purification.
- the tag-containing amino acid sequence is a poly-His sequence comprising up to about 20 histidine residues or even more, e.g., a His-SUMO or a His-NEDD8 tag.
- the tag-containing amino acid sequence is cleavable, e.g., by a protease under conditions where the residual VHH antibody remains intact.
- the heterologous amino acid sequence comprises a heterologous tag-containing amino acid sequence, particularly a cleavable tagcontaining amino acid sequence and at least one heterologous cysteine-containing amino acid sequence.
- the VHH antibody carries a labelling agent.
- the labelling agent may be any compound to be known in the art for labelling, e.g., detecting and/or immobilizing a polypeptide.
- labelling agents are fluorophores, biotin, DNA oligonucleotides, enzymes, electron spin resonance (EPR) probes, or groups for immobilization to a chromatographic support.
- the labelling agent is preferably attached to a solvent-accessible ectopic SH group on the VHH antibody.
- the labelling agent may be attached to the VHH antibody at as a thiol-reactive compound, e.g., an maleimide-, iodoacetamide- bromoacetamide- or acrylamide- activated compound to a solvent-accessible ectopic SH group on the VHH antibody.
- a thiol-reactive compound e.g., an maleimide-, iodoacetamide- bromoacetamide- or acrylamide- activated compound to a solvent-accessible ectopic SH group on the VHH antibody.
- VHH antibody has to survive long-term storage and continued use under various conditions: at 4°C, freeze-thaw cycles, changes in temperature without a loss of activity or aggregation.
- thermostability which can be measured, e.g., by thermal shift assays or specifically by differential scanning fluorimetry.
- the invention relates to a VHH antibody, which is stable, particularly thermostable.
- the VHH antibody has a melting point (melting temperature) of at least about 65°C, of at least about 80°C, of at least 90°C or of at least about 95°C, and/or an aggregation temperature of at least about 50°C, of at least about 60°C, of at least 70°C or of at least about 80°C when measured under nonreducing conditions. Melting and aggregation temperatures are determined as described herein.
- the invention relates to a stable VHH antibody that is thermostabilized which comprises two structural cysteines that are quantitatively oxidized and form an intramolecular disulfide bond.
- the term “quantitatively” means that the oxidized form with an intramolecular disulfide bond is present in a VHH antibody preparation in an amount of at least about 85%, at least 90% or at least about 95% as measured by non-reducing gel electrophoresis, as shown in the figures.
- the present invention relates to a set comprising at least 2, 3, 4 or more of the above VHH antibodies.
- the individual VHH antibodies are present in suitable molar ratios.
- the molar ratios are in the range of about 2:1 to about 1 :2, particularly about 1.5:1 to about 1 :1.5, even more particularly about 1 :1.
- the VHH antibody set may comprise a single composition wherein the VHH antibodies in said set consist of a predetermined number of different species of VHH antibodies as described above.
- the VHH antibody set may comprise a plurality of compositions each comprising a different species of VHH antibody as described above.
- the set of the present invention may be free from other VHH antibodies.
- the set of VHH antibodies comprises at least 2, e.g., 2, 3, 4, or
- VHH antibodies each recognizing a different component of a mammalian, e.g., human nuclear pore complex (NPC) selected from the group comprising Nup133, Nup358, Nup155, Nup93, Nup35, Elys and the Nup214 Nup88 Nup62 heterotrimer.
- NPC human nuclear pore complex
- the set of VHH antibodies comprises at least 2, e.g., 2, 3, 4, 5,
- VHH antibodies selected from:
- the set comprises a VHH antibody recognizing Nup133 [3- propeller, e.g., KG1 D08 (SEQ. ID NO: 1 ) or KG1 C05 (SEQ. ID NO: 5) or a variant thereof.
- the set comprises VHH antibodies selected from:
- VHH antibody recognizing Nup133 [3-propeller, a VHH antibody recognizing Nup358, a VHH antibody recognizing Nup93, a VHH antibody recognizing Nup35; and a VHH antibody recognizing the Nup214 Nup88 Nup62 heterotrimer;
- VHH antibody recognizing Nup133 [3-propeller, a VHH antibody recognizing the Nup214 Nup88 Nup62 heterotrimer, a VHH antibody recognizing Nup155 and a VHH antibody recognizing Elys;
- VHH antibody recognizing Nup133 [3-propeller, a VHH antibody recognizing Nup358, and a VHH antibody recognizing Nup35;
- VHH antibody recognizing Nup133 [3-propeller, a VHH antibody recognizing Nup358, a VHH antibody recognizing Nup35, a VHH antibody recognizing Nup155 and a VHH antibody recognizing Elys;
- VHH antibody recognizing Nup133 [3-propeller, a VHH antibody recognizing Nup358, and a VHH antibody recognizing Nup93;
- VHH antibody recognizing Nup133 a VHH antibody recognizing Nup358, a VHH antibody recognizing Nup93, a VHH antibody recognizing Nup155 and a VHH antibody recognizing Elys.
- VHH antibodies in a set may be conjugated to different labelling agents, e.g., compatible fluorophores of different spectral properties such as excitation and/or emission properties. These sets may be used to generate 2D and 3D multicolor nanoscopic patterns that can be used for benchmarking super-resolution fluorescence microscopes. Alternatively, individual VHHs can also be combined when carrying the same or spectrally similar labelling agents, e.g., fluorophores, in order to obtain an additive, stronger signal.
- labelling agents e.g., compatible fluorophores of different spectral properties such as excitation and/or emission properties.
- the VHH antibody is recombinantly produced in a bacterium, e.g., E. coli or Bacillus.
- expression in a bacterium may involve cytoplasmic and/or periplasmic expression and purification of the VHH antibody from the host cell, or secretory expression and purification of the VHH antibody from the culture medium.
- the nucleic acid sequence encoding the VHH antibody is fused to at least one sequence directing the expression to the periplasm and/or into the culture medium.
- the present invention relates to a novel method for producing a stable VHH antibody.
- This method is not only applicable to the anti-NPC VHH antibodies as described herein but for any type of VHH antibody comprising two structural cysteines capable of forming an intramolecular disulfide bond.
- this method is also applicable to anti-SARS-CoV2 VHH antibodies, e.g., VHH antibodies Re9B09 (SEQ ID NO: 60) and Re24H12 (SEQ ID NO: 61 ) and anti-rabbit Fc VHH antibody Nb116 (SEQ ID NO: 53) as shown in the Figures and Examples.
- This method is specifically applicable to a VHH antibody comprising two structural cysteines and further at least one solvent-accessible ectopic cysteine as described herein.
- the structural disulfide bond of a VHH is important for its stability and that this disulfide bond can be introduced in a workflow that includes (i) expression of a VHH antibody optionally with a solvent-accessible ectopic cysteine for later labeling, under reducing conditions, e.g., cytoplasmic expression in a normal E. coli, or semi-reducing conditions, e.g., cytoplasmic expression in E.
- VHH purification including a final reduction step to ensure an -SH state of the ectopic cysteines, (iii) modification of the ectopic (and fully exposed) cysteines with a labelling agent, e.g., a thiol-reactive labelling agent, while keeping the structural cysteines unmodified, (iv) a post-treatment in the presence of an oxidant that converts the two structural cysteines (which are buried in the hydrophobic core of the VHH) to a disulfide bond, and (v) obtaining the resulting thermostabilized VHH antibody.
- a labelling agent e.g., a thiol-reactive labelling agent
- a further aspect of the invention is a novel method of producing a stable VHH antibody comprising the steps:
- step (ii) purifying the VHH antibody obtained in step (i) from the host cell or the culture medium under conditions wherein the at least one solvent- accessible ectopic cysteine is in the reduced SH state;
- step (iv) subjecting the VHH antibody obtained in step (ii) or (iii) to an oxidation that converts the two structural cysteines to a disulfide bond, and
- thermostabilized and optionally labelled VHH antibody wherein the two structural cysteines are quantitatively oxidized to a disulfide bond.
- the VHH antibody comprises a solvent-accessible ectoptic cysteine as herein described above, e.g., in its N-and/or C-terminal region and/or in its folded part, avoiding the paratope regions.
- the VHH antibody further comprises at least one heterologous tag-containing amino acid sequence as herein described above.
- the antibody expression in the host cell according to step (i) is carried out under reducing or at least partially reducing conditions. These conditions may comprise expression of the VHH antibody in the cytoplasm of a prokaryotic host cell such as E.coli or a eukaryotic host cell such as a yeast, protozoan, or animal cell optionally followed by a reduction.
- a prokaryotic host cell such as E.coli
- a eukaryotic host cell such as a yeast, protozoan, or animal cell optionally followed by a reduction.
- the labelling agent is a fluorophore, biotin, a DNA oligoucleotide or another labelling agent as herein desscribed above.
- the labelling agent is a thiol-reactive compound as herein described above, e.g., a maleimide-activated compound.
- Step (iv) comprises a treatment of the VHH antibody with an oxidant.
- a disulfide compound such as oxidized glutathione (GSSG), cystine, dithioglycolic acid or 2,2 'dithiopyridine may be used as an oxidant.
- step (iv) is carried out in the presence of a PDI such as DsbA from E. coli (SEQ ID NO: 57), DsbC from E. coli (SEQ ID NO: 58), or DsbG from E. coli (SEQ ID NO: 59).
- a PDI such as DsbA from E. coli (SEQ ID NO: 57), DsbC from E. coli (SEQ ID NO: 58), or DsbG from E. coli (SEQ ID NO: 59).
- the oxidation is preferably carried out under conditions wherein an at least partial thermal unfolding of the VHH antibody takes place.
- the VHH antibody still comprises reduced structural cysteines.
- the VHH antibody is subjected to an incubation at a temperature and for a time period wherein a transient (reversible) thermal unfolding of the VHH antibody is promoted.
- the incubation temperature is preferably in the range between the nominal melting temperature (Tm) of the reduced form of the VHH antibody (with reduced structural cysteines) and the onset of melting of the reduced form of the VHH antibody (which is typically 10°C-15°C below Tm).
- Tm nominal melting temperature
- An incubation temperature above the onset of melting of the reduced form is advisable only in a slow warmup-regime.
- An upper temperature threshold is the onset of melting of the disulfide-bonded form (which is typically 10-15°C below the nominal Tm of the disulfide-bonded form).
- the melting temperatures of individual VHH antibodies may vary considerably.
- the optimal incubation temperature of an individual VHH antibody may be determined as described in the Figures and Examples, particularly by the methods disclosed in Figures 8, 11 , 12, and 16.
- the incubation during the oxidation step may involve a slow warm-up regime, e.g., involving a temperature increase of about 1 °C per min or less over a temperature range of at least 10°C, preferably of about 15°C.
- the incubation time of the oxidation step can vary to great extent, e.g., between about 5 min and about 24 h, preferably between 1 h and 16 h.
- the incubation time needed for completing reaction correlates inversely with the incubation temperature.
- the treatment considerably increases the melting temperature of a VHH antibody, e.g. by a ATm of at least 10°C, by at least 20°C, by at least 30°C or by at least 40°C, reaching stabilities with a Tm of 60°C to even hyperthermostability with a Tm of >95°C.
- Table 3 lists selected anti-NPC VHH antibodies that were initially produced under reducing conditions and then stabilized by a post-production treatment with oxidized glutathione (GSSG) and Dsb enzymes as disclosed here. Note that the treatment increased the melting temperatures (Tm) by at least 14°C (xhNup35-Nb1t) or to more than 45°C (KG26C08).
- FIG. 1 Anti-nuclear pore complex (NPC) VHH antibodies and their application in confocal laser scanning microscopy.
- VHH antibodies were generated by immunizing alpacas with human as well as Xenopus antigens, constructing immune libraries from blood samples, and phage display using folded nucleoporin (Nup) domains as baits.
- NPC Anti-nuclear pore complex
- Antigens included the N-terminal a-helical domain of Nup358 (the N-terminal a-helical domain comprising residues 1 -145), the RRM domain of Nup35, the a-solenoid of Nup93, the [3-propel ler of Nup133, full length Nup155, the [3-propeller of Elys, and the heterotrimeric coiled-coil of the Nup214 Nup88 Nup62 complex (or Nup214 complex for short).
- VHH antibodies were expressed in E. coli NEB Shuffle with two ectopic cysteines each (placed on N- and C-termini). These ectopic cysteines were kept reduced during purification and were modified with the fluorophore maleimides of Alexa647, Alexa488, and Alexa568.
- FIG. 2 Application of anti-NPC VHHs in super-resolution microscopy. Immunofluorescence was performed as described in Figure 1 with the following modifications: AbberiorStar 635 maleimide was used for labeling, cells were mounted in SlowFade Gold (Thermo Fisher Scientific) imaging medium to protect the dyes from photobleaching, images were acquired with a STEDycon microscope (Abberior Instruments) using the 640 nm laser and deconvoluted using the Huygens Professional software (version 19.10) with a saturation factor of 80 and an immunity factor of 1. Images reveal the typical ring-like NPC structure originating from their 8- fold rotational symmetry. Scale bar, 500 nm.
- Figure 3 Crystal structure of xhNup358-Nb2t bound to the Xenopus Nup358 NTD.
- the complex was produced by recombinant expression and purification, it was crystallized and subjected to structural analysis by x-ray crystallography.
- FIG. 5 Sensitivity of cytoplasmically expressed VHH KG1 D08 to repeated freeze-thaw cycles. Immunofluorescence of HeLa cells was performed similarly to Figure 1 , but with a few modifications. Cells were first semi-permeabilized with 30 pg/ml digitonin in ‘transport buffer’ (20 mM HEPES/ KOH pH 7.5, 3.5 mM MgAc, 110 mM KAc, 0.5 mM EGTA, 250 mM sucrose) for 5 minutes at room temperature. They were then incubated with 40 nM anti-Nup133 VHH KG1 D08 expressed in NEB Shuffle and labeled with AbberiorStar 635.
- transport buffer (20 mM HEPES/ KOH pH 7.5, 3.5 mM MgAc, 110 mM KAc, 0.5 mM EGTA, 250 mM sucrose
- the VHH was frozen once (as a 20pM stock in PBS plus 20% glycerol) in liquid nitrogen and thawed at room temperature immediately before the experiment.
- the VHH was frozen and thawed six more times after a 4-fold dilution in transport buffer. Note that the repeated freezing and thawing caused a severe loss of staining activity. This loss is probably due to the irreversible denaturation of KG1 D08 molecules that were not stabilized by the structural disulfide bond. The low residual activity is probably due to a small ( ⁇ 10-20%) fraction of disulfide-bonded VHH formed during expression in NEB Shuffle (see below, figure 8C).
- FIG. 6 Disulfide bonding state of VHHs dependent on the mode of expression in Escherichia coli.
- VHH antibody Re24H12 (directed against the receptor binding domain of SARS-CoV-2) was expressed in three ways: in the reducing cytosol of NEB Express, the partially oxidizing cytosol of NEB Shuffle, and under the oxidizing conditions of the periplasm.
- the disulfide bonding of these preparations was then elucidated by SDS polyacrylamide electrophoresis (SDS PAGE) under non-reducing conditions (keeping any formed disulfide bonds intact), each in comparison to a sample prior reduced by dithiothreitol (DTT). Gel-staining was performed with Coomassie Brilliant Blue G250.
- FIG. 7 Enzymatic post-production disulfide bond formation.
- the anti-SARS- CoV-2 VHH antibody Re9B09 was produced cytoplasmically in NEB Express as described in Figure 4. It was thus initially fully reduced.
- a 35 pM VHH stock in Dsb buffer 50 mM Tris/ HCI pH 8.0, 150 mM NaCI was then incubated for 30 minutes at 37°C with the indicated additives, namely 2 mM oxidized glutathione (GSSG) as an oxidant, and 1.5 pM of the E. coli thiol: disulfide exchange proteins DsbA, DsbC, or DsbG (concentrations refer to the enzyme monomers).
- Figure 8 Treatment temperature and treatment time as key parameters for optimal post-production disulfide bond formation.
- Fully reduced Re24H12 was produced by cytoplasmic expression in NEB express as described above.
- a mixture of 35 pM VHH, 2 mM GSSG, and 1.5 pM each of DsbA, DsbC, and DsbG was prepared in Dsb buffer and placed in 20 pl aliquots into a gradient thermocycler. Within 45 minutes, the samples were linearly heated to either 30°C, 32°C, 35°C, 39°C, 43°C, 48°C, 52°C, 57°C, 61 °C, 65°C, 68°C, or 70°C.
- the end temperature was then kept for either 5 minutes, for one hour, or overnight (16 hours), before returning to 20°C. Samples were subsequently analyzed by non-reducing SDS PAGE for disulfide bonding. For the short treatment (5 minutes hold time), an end temperature of 65°C was required to convert VHH Re24H12 quantitatively to the disulfide-bonded form. For the medium-length treatment, 61 °C was sufficient. This temperature optimum dropped to 48°C for a 16 hours-treatment.
- FIG 11 Optimal treatment temperatures for enzymatic post-production disulfide bonding of VHH KG1 D08.
- Optimal conditions for introducing the structural disulfide bond in the initially fully reduced KG1 D08 were elucidated as described for Re24H12 in Figure 6, again in the presence of 2 mM GSSG, and 1.5 pM each DsbA, DsbC, and DsbG.
- the optimal temperature for the overnight treatment (35°) approximates the onset of melting of the fully reduced VHH
- the optimal endpoint temperature (43-52°) in the fast-treatment (5-60 minutes) approximates the nominal melting point of 46°C.
- the overnight treatment at lower temperature appears superior since less aggregates are formed.
- Figure 12 Non-enzymatic disulfide bridging in KG1 D08. Left: experiment was performed as in Figure 9 (holding the endpoint temperature for 5 minutes) but without the Dsb enzymes. Note that the disulfide bond formation in this particular VHH was as efficient as in the presence of the enzymes. Right: same experiment but using cystine (oxidized cysteine) instead of GSSG as an oxidant. This had essentially the same effect but resulted in more aggregates.
- cystine oxidized cysteine
- Figure 13 Affinities of reduced and post-production disulfide-bridged KG1 D08 for its Nup133 [3-propeller target.
- KG1 D08 was expressed with two additional cysteines at its N- and C-terminus in the cytoplasm of NEB Express. After purification, these two exposed cysteines were modified with Biotin-PEG11 -maleimide (Iris Biotech). Half of the preparation was treated with 2 mM GSSG, 1.5 pM each DsbA, DsbC, and DsbG for 5 minutes at 52°C with 45 minutes heat up time, resulting in quantitative disulfide bonding.
- the biotinylated VHHs were then immobilized for biolayer interferometry to High precision streptavidin sensors of an Octet Red96 machine (to a binding signal of 1 nm), using PBS+ 1 % BSA as an assay buffer. Loaded sensors were then dipped for 800 seconds into 40 nM solutions of the human or the Xenopus Nup133 [3-propeller to measure association, and subsequently dipped into buffer only to measure dissociation. Dissociation constants were computed using the Octet software.
- Figure 14 Disulfide bond formation in fluorophore-labelled KG1 D08.
- KG1 D08 was produced in fully reduced form with two additional cysteines as described above and labelled AbberiorStar 635 maleimide to a density of labelling of 2.
- the labelled VHH was then treated with 2 mM GSSG, 1.5 pM each DsbA, DsbC, and DsbG for 5 minutes at 52°C with 45 minutes heat up time, resulting in quantitative disulfide bonding. Analysis was by reducing/ non-reducing SDS PAGE followed by fluorescence detection and by Coomassie staining.
- Re24H12 was expressed with a cleavable N-terminal DsbA secretion signal and a C-terminal spacer-Hisi2 tag. It was purified by Ni 2+ chelate chromatography from the periplasmic fraction (obtained by an osmotic shock). The C-terminal tag was not removed, resulting in a slower migrating species.
- VHH sequences of VHH antibodies described herein (without ectopic cysteines), PDI enzymes and human (h) or frog (x) NPC antigens described herein are listed.
- AWHPGDNPCQIYYTLVTVKDEGYNISDEITVEVTQFNPVFQARGMQLCQLWPNFS SQACYLYTQEMIFACSTGTGRSTLPQEKIPFEAQGDNIVGAGSCEGWPVFFIRKSG MLTVVARETAS
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