EP1333860A1 - Antibodies to the propeptide of candida albicans and methods of use - Google Patents
Antibodies to the propeptide of candida albicans and methods of useInfo
- Publication number
- EP1333860A1 EP1333860A1 EP01979303A EP01979303A EP1333860A1 EP 1333860 A1 EP1333860 A1 EP 1333860A1 EP 01979303 A EP01979303 A EP 01979303A EP 01979303 A EP01979303 A EP 01979303A EP 1333860 A1 EP1333860 A1 EP 1333860A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- intlp
- protein
- antibody
- propeptide
- int1
- 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.)
- Withdrawn
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Classifications
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K16/00—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies
- C07K16/14—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies against material from fungi, algea or lichens
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P31/00—Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
- A61P31/10—Antimycotics
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/569—Immunoassay; Biospecific binding assay; Materials therefor for microorganisms, e.g. protozoa, bacteria, viruses
- G01N33/56961—Plant cells or fungi
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- 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
- A61K2039/505—Medicinal preparations containing antigens or antibodies comprising antibodies
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2333/00—Assays involving biological materials from specific organisms or of a specific nature
- G01N2333/37—Assays involving biological materials from specific organisms or of a specific nature from fungi
- G01N2333/39—Assays involving biological materials from specific organisms or of a specific nature from fungi from yeasts
- G01N2333/40—Assays involving biological materials from specific organisms or of a specific nature from fungi from yeasts from Candida
Definitions
- the present invention relates in general to antibodies which can bind to the propeptide sequence of the Intlp protein of Candida albicans and methods of utilizing such antibodies to prevent and treat infections from microorganisms such as C. albicans, and in particular to agents and antibodies capable of disrupting the propeptide region or other subregions of the Intlp protein and the use of such agents and antibodies in the treatment and prevention of infection from yeasts such as Candida albicans and other microorganisms expressing the Intlp protein.
- the dimorphic yeast, Candida albicans is the leading fungal pathogen in normal hosts and in patients with damaged immune systems.
- disease caused by C. albicans ranges from mild, easily treated, superficial disease (e.g., thrush in newborn infants; paronychia in workers whose hands are immersed in water) to more severe, chronic or recurrent infections (e.g., candidal vaginitis).
- superficial disease e.g., thrush in newborn infants; paronychia in workers whose hands are immersed in water
- chronic or recurrent infections e.g., candidal vaginitis
- Vaginitis is particularly frequent in otherwise normal females with diabetes or a history of prolonged antibiotic or oral contraceptive use. While short-term topical therapy is effective in treating individual episodes of vaginitis, such agents do not prevent recurrences. Thus, even in the normal host, infection with C. albicans can occur at epithelial surfaces, and recurrences are not prevented by presently available therapies. [0003] In immunocompromised hosts such as cancer patients, transplant patients, post-operative surgical patients, premature newborns, or HIV-infected people, C. albicans ranks as the leading fungal pathogen. Invasion leading to systematic infection may also develop in neutropenic patients whose t-cell function is comprised.
- C. albicans adheres to epithelial and endothelial cells in the human host, often times by recognizing proteins of the extracellular matrix called ligands.
- ligands include proteins such as fibronectin, vitronectin, fibrinogen, the C3 degradation fragment iC3b, or the shorter C3 degradation fragment C3d. Because recognition of all of these proteins except C3d appears to be dependent upon the amino acid sequence ARGININE-GLYCINE-ASPARTIC ACID (or R-G-D), these candidal adhesions are thought to operate like the vertebrate integrins and are called "integrin-Iike proteins" or "integrin analogs.”
- Vertebrate integrins are composed of two subunits: an ⁇ -subunit and a ⁇ -subunit. There are approximately 14 ⁇ and 8 ⁇ subunits described to date in vertebrate cells. Using monoclonal or polyclonal antibodies to vertebrate integrins, several investigators have obtained evidence for integrin-Iike proteins in C. albicans. [0006] One such protein is the protein Intlp of Candida albicans, and this protein has been observed to function as an adhesin, to participate in morphologic switching of blastospores to hyphae, and has been linked to virulence in mice.
- the present invention which comprises isolating a peptide from one of a number of specific regions from the Intlp protein of C. albicans and treating or preventing an infection from C. albicans or other microorganism expressing the Intlp protein by administering to a human or animal patient an effective amount of an antibody composition or other agent which can bind to those specific regions and thus disrupt the activity of the Intlp protein.
- the invention relates to the isolation of the propeptide of the Intlp protein and the development of antibodies or other agents which can bind to the propeptide and thus be useful in methods of disrupting the activity of the Intlp protein, such as by preventing the cleaving of the propeptide, and thus prevent or treat infections from C. albicans or other microorganisms expressing the Intlp protein.
- the invention also relates to the generation of peptides which can be used to block the binding of the superantigen to the antigen-presenting cells and/or the T-lymphocytes of the host so as to be useful in methods of preventing or treating infections from C. albicans or other microorganisms expressing the Intlp protein
- Fig. 1 is a depiction of the amino acid sequence of the Intlp protein from C. albicans.
- Figs. 2A and 2B show the nucleic acid sequence coding for the Intlp protein from C. albicans.
- Fig. 3 is a schematic representation of the activation of a general proprotein convertase which shows the presence of a signal peptide, the propeptide, an inactive subtilisin and P-domain, and the manner of activation.
- Fig. 4 is a schematic representation of the intlp protein as compared to a generic proprotein convertase which illustrates the clipping of the Intlp propeptide which is cleaved to become a superantigen at the same time the subtilisin regions are activated as well.
- Fig. 5 shows the P Domain subtilisin motifs from a variety of proteins.
- Fig. 6 shows a comparison of the high-affinity heparin binding site of
- HBHA Mycobacterium tuberculosis heparin-binding hemagglutin adhesin
- Fig. 7 depicts the activation of T lymphocytes after incubation with
- Fig. 8 depicts the effects of antibodies against the MHC Class II determinant HLA-DR (black columns) on lymphocyte activation in response to
- Fig. 9 shows the effects of TSST-1 , INT1/INT1 C. albicans, int1/int1 C. albicans, and phytohemagglutinin on stimulation of V ⁇ subsets. Unactivated T lymphocytes served as control. *p ⁇ 0.05.
- Fig. 10. is a schematic view showing the regions of a generic proprotein convertase.
- Fig. 11 is a schematic representation of the Intlp peptide regions in accordance with the present invention including an identification of regions recognized by certain anti-peptide polyclonal antibodies.
- Fig. 12 illustrates the flow cytometry of surface-exposed domains of
- Fig. 13 is a Western blot of supernatants from / ⁇ /7 -expressing S. cerevisiae grown in the absence or presence of heparin and probed with rabbit polyclonal antibodies to the Intlp amino terminus (anti-INT600), to the second divalent cation binding site (anti-CBS2), or to the RGD domain (anti-RGD).
- Fig. 14 are immunoblots showing the purification of Pep 263 Silver stain lanes 1-4. Western blot lanes 5 and 6. Lane 1 - S.
- Fig. 15 is a graphic representation of the percent of T lymphocytes up- regulating the IL-2 receptor (Y axis) in response to Pep 263 presented as soluble antigen (leftmost group of three bars), as antigen bound to the plate (middle group), or as antigen bound to an anti-His antibody attached to protein A beads (right group).
- Fig. 16 is a schematic representation of a model for the participation of Intlp in Candidemia.
- Fig. 17 shows the MHC-II Binding Sites in the Intlp protein, and in Mycoplasma arthritidis, as disclosed in J. Exp. Med. 183:1105-1110 (1996), incorporated herein by reference.
- Fig. 18 shows the linkage of the T lymphocyte to the antigen- presenting cell through the superantigeh which is produced after the propeptide is cleaved.
- the present inventors have now discovered and isolated several distinct regions of the Intlp protein, and the present invention is directed to treating or preventing infections from microorganisms which express the Intlp protein, including yeast of the Candida species such as Candida albicans, and other microorganisms such as S. cerevisiae, by disrupting the regions, including the propeptide region, which are involved with the pathways by which the Intlp protein is activated in a host.
- the present invention is directed to agents and antibodies which can bind to the specific regions of the Intlp protein and which thus can be useful in treating or preventing C. albicans infections.
- the invention relates to peptides, either linear or cyclic, which have the same sequence as that of the sites on the superantigen propeptide which will bind to two sites, namely the antigen-presenting cell (such as the MHC-II locus) and the T lymphocytes on the host cell.
- the MHC-II binding peptide appears to be in the region of from amino acid 239 through 254 (in the propeptide region of 1-263) of the sequence of the protein shown in Fig. 1 , and this sequence is shown in Fig. 17. Accordingly, the use of this peptide, or other blocking peptides, is contemplated in accordance with the invention in any suitable form, e.g., pharmaceutically acceptable compositions, as would be used for administration to a human or animal patient. These types of blocking peptides can thus be administered to the host as a method of blocking the sites that would become bound to the superantigen propeptide, and thus can be used to prevent or treat infections caused by the Intlp protein.
- treatment or prevention of infections caused by microorganisms such as C. albicans may be achieved by causing mutations in the specific regions as set forth herein which can cause conformational or other changes to the peptides coded by these regions and thus disrupt the immunomodulatory ability of the Intlp protein.
- the gene sequence and the peptide sequence for the Intlp protein has previously been disclosed, e.g., in Proc. Natl. Acad. Sci. U.S.A. 93 (1), 357-361 (1996), incorporated herein by reference.
- further information regarding Intlp has been provided in pending U.S. patent application Ser. No.
- the present invention relates to isolated and/or purified antibodies, such as polyclonal or monoclonal antibodies, which have been generated against specific regions of the C. albicans Intlp protein which can be useful in methods of preventing and treating candidal and other yeast infections caused at least in part by the Intlp protein and its immunomodulatory ability.
- antibodies as used herein includes monoclonal, polyclonal, chimeric, single chain, bispecific, simianized, and humanized or primatized antibodies as well as Fab fragments, including the products of an Fab immunoglobulin expression library, and generation of any of these types of antibodies or antibody fragments is well known to those skilled in the art.
- antibodies which can disrupt the activation of the Intlp protein in any of a number of ways, including preventing the cleaving of the propeptide, or disrupting the binding of the cleaved superantigen to host cells at its binding sites, namely the antigen-presenting cell (such as the MHC-II locus) or the superantigen-binding site on T lymphocytes.
- these antibodies are preferably used in amounts effective to prevent or treat infections from C. albicans and other similar microorganisms, and these antibodies may be produced in any of a number of suitable ways well known in the field to produce polyclonal or monoclonal antibodies.
- monoclonal antibodies directed to the Intlp regions described below may also be generated using the method of Kohler and Milstein (see, e.g., Nature 256:495-7, 1975), or other suitable ways known in the field.
- Antisera prepared using monoclonal or polyclonal antibodies in accordance with the invention are also contemplated and may be prepared in a number of suitable ways as would be recognized by one skilled in the art.
- the invention relates to the use of agents which can bind to the specific regions below so as to disrupt these peptides and again inactivate the infectious and immunomodulatory pathways by which microorganisms expressing the Intlp protein by become virulent.
- mutations to these regions may also be utilized in order to disrupt the functioning of the Intlp protein and to make the infectious microorganisms ineffective or less virulent.
- the invention relates to the isolation of the propeptide of the Intlp protein and the use of this propeptide in generating antibodies and other agents which will be useful in the treatment or prevention of C. albicans infection.
- This propeptide constitutes amino acids 1- 263 of the Intlp protein, such as shown in Fig. 1 , and has been identified as peptide Pep 263 .
- the propeptide, Pep 263 constitutes a superantigen-like moiety which is released from Intlp and which plays a major role in activating T lymphocytes in host cells.
- an antibody or other agent capable of binding to this propeptide can be utilized in a method of disrupting the activation of T lymphocytes caused by microorganisms such as C. albicans and S. cerevisiae, and thus can be utilized in methods of preventing, treating, or reducing the virulence of infections from such microorganisms which express Intlp.
- the antibody to the propeptide in accordance with the present invention will be able to disrupt the functioning of the Intlp protein, e.g., such as by binding the propeptide and/or preventing the cleaving of the propeptide and thus stopping the release of the propeptide in its superantigen form.
- the propeptide Pep 263 also contains a heparin binding site at amino acids 155-169, and it appears that activation of T lymphocytes is triggered by Pep 263 when this peptide is cleaved from the amino terminus of Intlp in a reaction accelerated by physiologic doses of heparin. In the absence of heparin, Pep 263 appears to be covert and is generally not detectable by antibodies such as anti- INT600, an antibody to the first 600 amino acids of the Intlp protein.
- agents and antibodies to Pep 263 in accordance with the present invention can be useful in methods to prevent or treat infections in microorganisms expressing the Intlp protein and to eliminate or reduce the activation of T lymphocytes caused therefrom.
- FIG. 3 the schematic analysis of the Intlp protein shows the presence of a signal peptide, the propeptide, an inactive subtilisin and the P- domain.
- the processing or "P-domain” is employed to clip the propeptide at the carboxy terminal side of dibasic residues, thereby releasing the propeptide.
- Exposed D-H-N-S active site residues assume the subtilisin serine protease conformation. This amino terminal processing is shown further in Fig.
- Fig. 5 shows a comparison of the high-affinity heparin binding site of Mycobacterium tuberculosis heparin-binding hemagglutin adhesin (HBHA) with the heparin-binding site of the Intlp protein of Candida albicans.
- the specific regions of the Intlp protein which are involved in the activation of T lymphocytes by this protein all present target sites for disruption of infectivity and virulence of microorganisms that express this protein such as C. albicans and S. cerevisiae.
- the propeptide region at amino acids 1-263 which includes a heparin binding site is critical to the activation process in that this propeptide is cleaved from the protein in order to become a superantigen which has been shown to be able to immunomodulate host cells.
- antibodies or other agents which can bind this region can thus be useful to prevent T-cell activation and can thus be employed in methods of preventing or treating outbreaks of infections from microorganisms expressing Intlp.
- isolated and/or purified antibodies produced for example in the manner described above, may be generated against the specific regions recited above, and effective amounts of said antibodies may be employed in methods of preventing or treating infections from C. albicans or other microorganisms that express the Intlp protein.
- other methods of treatment or prevention in accordance with the present invention would include agents which bind to or otherwise disrupt these specific regions so as to reduce or eliminate Intlp activity, or mutations in these specific regions of wild-type sequences which also are effective in reducing or eliminating Intlp activity.
- these antibodies will function so as to disrupt Intlp activity, such as by binding the peptide regions and/or preventing the cleaving of the propeptide and thus stopping the release of the propeptide in its superantigen form.
- the superantigen enables the activation of T lymphocytes through a two-fold binding system wherein the superantigen binds to both the T cell and to the antigen-presenting cell, such as at the MHC Class II locus, such as shown in Fig. 18.
- nucleic acid sequences in accordance with the invention will include not only the specific regions of the nucleic acid sequence as shown in Figs. 2A-2B which correspond to the peptide regions as set forth above, but to any alternative nucleic acid sequences coding for those amino acid sequences.
- the isolated nucleic acids of the invention will be useful in many appropriate ways, including generating the peptide regions in accordance with the invention through recombinant means so that these recombinant peptides may be used to generate appropriate antibodies.
- mutations to the peptide and nucleic acid sequences in these regions will also be useful in providing alternative methods by which to disrupt the Intlp activation pathways.
- the present invention also contemplates the use of these antibodies in a variety of ways, including the detection of the presence of microorganisms such as C. albicans or S. cerevisiae and thus using antibodies to diagnose infections caused by microorganisms expressing Intlp, whether in a patient or in medical materials which may also become infected, is contemplated in accordance with the invention.
- one such method of detecting the presence of infections by microorganisms expressing Intlp involves the steps of obtaining a sample suspected of being infected, and lysing the cells so that the DNA can be extracted, precipitated and amplified. Following isolation of the sample, diagnostic assays utilizing the antibodies of the present invention may be carried out to detect the present of Intlp microorganisms such as C. albicans or S. cerevisiae, and such assay techniques for determining such presence in a sample are well known to those skilled in the art and include methods such as radioimmunoasssay, Western blot analysis and ELISA assays.
- antibodies in accordance with the invention may be used for the specific detection of Intlp-producing microorganisms, for the prevention or treatment of infection from said microorganisms, or for use as research tools.
- antibodies as used herein includes monoclonal, polyclonal, chimeric, single chain, bispecific, simianized, and humanized or primatized antibodies as well as Fab fragments, including the products of an Fab immunoglobulin expression library. Generation of any of these types of antibodies or antibody fragments is well known to those skilled in the art.
- the antibodies of the present invention may also be formed into suitable pharmaceutical compositions for administration to a human or animal patient in order to treat or prevent an infection caused by yeast such as C. albicans or S. cerevisiae.
- Pharmaceutical compositions containing the antibodies of the present invention, or effective fragments thereof may be formulated in combination with any suitable pharmaceutical vehicle, excipient or carrier that would commonly be used in this art, including such as saline, dextrose, water, glycerol, ethanol, other therapeutic compounds, and combinations thereof.
- any pharmaceutical composition disclosed in this application include, but are not limited to, topical, oral, anal, vaginal, intravenous, intraperitoneal, intramuscular, subcutaneous, intranasal and intradermal administration.
- the composition is formulated in the form of an ointment, cream, gel, lotion, drops or solution.
- wound or surgical dressings, sutures and aerosols may be impregnated with the composition to further prevent infection.
- the composition may contain conventional additives, such as preservatives, solvents to promote penetration, and emollients.
- Topical formulations may also contain conventional carriers such as cream or ointment bases, ethanol, or oleyl alcohol.
- the isolated antibodies of the present invention may also be utilized in the development of vaccines for passive or active immunization against candidal-type infections or other infections associated with Intlp-producing microorganisms.
- these compositions may also be administered to a wound or used to coat medical devices or polymeric biomaterials in vitro and in vivo.
- the antibody may be modified as necessary so that, in certain instances, it is less immunogenic in the patient to whom it is administered.
- the antibody may be "humanized” by transplanting the complimentary determining regions of the hybridoma-derived antibody into a human monoclonal antibody as described, e.g., by Jones et al., Nature 321 :522- 525 (1986) or Tempest et al. Biotechnology 9:266-273 (1991).
- the isolated peptides in accordance with the invention may be used in the preparation of a vaccine which comprises one or more of the Intlp peptides as described above in an amount sufficient to generate an immunological response.
- antibodies in accordance with the invention may be used as a passive vaccine which will be useful in providing suitable antibodies to treat or prevent candidal or other similar infections.
- a vaccine may be packaged for administration in a number of suitable ways, such as by parenteral (i.e., intramuscular, jntradermal or subcutaneous) administration or nasopharyngeal (i.e., intranasal) administration.
- parenteral i.e., intramuscular, jntradermal or subcutaneous
- nasopharyngeal i.e., intranasal
- the vaccine is preferably combined with a pharmaceutically acceptable carrier to facilitate administration, and the carrier may be include common materials such as water or a buffered saline, with or without a preservative.
- the vaccine may be lyophilized for resuspension at the time of administration or in solution.
- the preferred dose for administration of an antibody composition in accordance with the present invention is that amount will be effective in preventing of treating a yeast infection or infection from other microorganisms that express the Intlp protein. As one skilled in the art would recognize, such an effective amount will vary greatly depending on the nature of the infection and the condition of a patient. As indicated above, an "effective amount" of antibody or pharmaceutical agent to be used in accordance with the invention is intended to mean a nontoxic but sufficient amount of the agent, such that the desired prophylactic or therapeutic effect is produced.
- the exact amount of the antibody or a particular agent that is required will thus vary from subject to subject, depending on the species, age, and general condition of the subject, the severity of the condition being treated, the particular carrier or adjuvant being used and its mode of administration, and the like. Accordingly, the "effective amount" of any particular antibody composition will vary based on the particular circumstances. However, an appropriate effective amount may be determined in each case of application by one of ordinary skill in the art using only routine experimentation. The dose should be adjusted to suit the individual to whom the composition is administered and will vary with age, weight and metabolism of the individual.
- the compositions may additionally contain stabilizers or pharmaceutically acceptable preservatives, such as thimerosal (ethyl(2- mercaptobenzoate-S)mercury sodium salt) (Sigma Chemical Company, St. Louis, MO).
- kits which may be useful in isolating and identifying infections caused by microorganisms expressing Intlp which comprises the antibodies of the present invention in a suitable form, such as lyophilized in a single vessel which then becomes active by addition of an aqueous sample suspected of being infected with C. albicans or other similar microorganism.
- a kit will typically include a suitable container for housing the antibodies in a suitable form along with a suitable immunodetection reagent which will allow identification of complexes binding to the specific regions of the Intlp protein as set forth above.
- the immunodetection reagent may comprise a suitable detectable signal or label, such as a biotin or enzyme that produces a detectable color, etc., which normally may be linked to the antibody or which can be utilized in other suitable ways so as to provide a detectable result when the antibody binds to the antigen.
- a method of identifying or diagnosing an infection of C. albicans or other microorganism expressing the Intlp protein is also provided wherein one or more antibodies to the peptide regions set forth above from the Intlp protein are introduced into a sample thought to be infected with a microorganism expressing Intlp, and the identification or diagnosis of the infection can be confirmed if binding to the sample is observed.
- a suitable detectable signal or label such as a biotin or enzyme that produces a detectable color, etc.
- the present invention thus provides isolated and/or purified regions of the Intlp protein which have been shown to be involved in pathways of activation which results in the virulent spread of microorganisms expressing Intlp, and also provides antibodies, antisera, and other agents which can bind to these specific regions, and/or which can disrupt the process of Intlp activation in other ways.
- Such antibodies and agents can therefore be utilized in effective methods of treating or preventing infections from microorganisms such as C. albicans or S. cerevisiae which express the intlp protein.
- the protein Intlp of Candida albicans functions as an adhesin, participates in morphologic switching of blastospores to hyphae, and is linked to virulence in mice. Rapid mortality ascribable to INT1/INT1 strains suggested that Intlp may have an immunomodulatory role. Therefore, we investigated whether expression of Intlp on the surface of C. albicans influenced T cell activation.
- Yeast were adhered to the bottom of 96 well culture plates by incubating 500,000 cells/well for 45 minutes at 37°C.
- PBMC Peripheral blood mononuclear cells
- Cocultures were initiated by adding 200 ⁇ PBMCs at 2.5X10 6 cells/ml to the adherent blastospores upon removal of PBS/amphotericin B. Cultures were incubated at 37°C 5% C0 2 for 1-7 days. Control wells containing PBMC + superantigen TSST-1 and the mitogen PHA were also established. The effect of MHC class II inhibition was assessed by adding anti-HLA-DR antibody to PBMCs prior to coculture. Where appropriate, CD3 cells were isolated to >97% purity using cell separation columns. Antigen presenting cells (APC) expressing MHC class II were isolated by plastic adherence. The antigen processing ability of APCs was abolished by pretreatment with 0.3% paraformaldehyde.
- APC Antigen presenting cells
- PBMCs from five normal healthy volunteers were cocultured with either CAF2 INT1/INT1 or CAG3 int1/int1 blastospores for days 1 through 7.
- IL2 receptor positive cells among the CD3 positive population indicate the frequency of activated T cells at each time point.
- Tests on five individuals showed that by day 4, the frequency of activated T cells was significantly greater for CAF2 cocultures.
- Clusters of activated T cells were also predominant by day 4 of PBMCs cocultured with INT1/INT1 blastospores. Under similar experimental conditions, int1/int1 blastospores do not induce these T cell activation clusters.
- PBMCs from a single donor were cultured alone or with C. albicans strains CAF2, CAG1 , CAG3 or HLC-54 for five days. Only strain CAG3, the int1/int1 null mutant failed to activate T cells above the level of unstimulated control.
- PBMCs were cultured with either 10 ⁇ g/ml PHA, 4 ⁇ g/ml TSST-1 or 500,000 blastospores of either CAF2 or CAG3. Each culture condition was either left untreated or incubated with 10 ⁇ g/ml of either anti-HLA-DR antibody or an isotype control.
- CD3 positive cells were analyzed for 1L2 receptor upregulation by flow cytometry. T cell activation induced by PHA was unaffected by anti-HLA- DR antibody as anticipated since mitogen activation is independent of MHC class II. However, the response to superantigen TSST-1 was significantly inhibited since binding to V b8ta 2 of the TCR and the beta chain of class II is required for activation.
- PBMCs that were cocultured with either CAF2 INT1/INT1 or CAG3 int1/int1 blastospores were tested to determine frequencies of CD4 and CD8 T cells by flow cytometry.
- the ratio of CD4:CD8 cells was ⁇ 1 :1 for T cells expanded by CAF2 INT1/INT1, whereas all other activation conditions had ratios >1:1.
- CAF2 modulation of the CD4:CD8 ratio which was evident in the V b ⁇ ta 2 T cell subset of one of the donors evidences a role for Intlp in activation-induced CD4 T cell loss.
- T cells (2.5X10 5 ) were cultured with either 500,000 CAF2 blastospores or 4 ⁇ g/ml TSST-1 in the presence of APC (2.5X10 5 ) pretreated with or without 0.3% paraformaldehyde.
- APC 2.5X10 5
- T cell activation by CAF2 INT1/INT1 blastospores occurred despite the inability of MHC class II expressing APCs to process antigen.
- TSST-1 was not inhibited by paraformaldehyde fixation of APC.
- Candida albicans blastospores expressing the protein Intlp activate human T lymphocytes whereas blastospores lacking Intlp surface expression do not.
- Inhibition of IL2 receptor upregulation by anti-HLA-DR antibody indicates a dependence for MHC class II in Intlp induced T cell activation.
- T cell activation by Intlp expressing blastospores is independent of antigen processing as indicated by resistance to APC paraformaldehyde fixation.
- Candida albicans expressing Intlp preferentially activate the V beta 2 T cell subset.
- Activation induced deletion of CD4 T cells by Intlp is a mechanism by which Candida albicans can modify the host immune response.
- EXAMPLE 2 ADDITIONAL INVESTIGATIONS OF THE INT1 P PROTEIN AND THE ISOLATION OF THE PROPEPTIDE FROM CANDIDA ALBICANS
- Candida albicans gene INT1 Gene in Candida albicans and its Importance in Pathogenesis
- Candida albicans gene INT1 which encodes a protein of Mr 188 kDa that mediates adhesion, medium-dependent filamentation, and virulence. See, e.g., Gale et al. PNAS 93:357-61 (1996); Gale et al. Science 279:1355-58 (1998), incorporated herein by reference.
- ICR mice given a tail vein injection of 10 5 wild type C.
- mice expressing both INT1 alleles showed 100% mortality by day eleven, while 90% of mice given a homozygous double disruptant (genotype INT1/int1) survived. Animals given a heterozygous mutant (genotype INT1/int1) or a re-integrant (genotype int1/int1/INT1) had intermediate mortality (40% survival). All strains replicated equally well and underwent filamentous growth in serum, and no differences in CFU in blood, kidney, or liver were found (36). Thus, defects in replication, filamentation, or organ dissemination did not explain / ⁇ /T -dependent mortality.
- PBMCs Peripheral blood mononuclear cells
- the superantigen TSST-1 (800 ⁇ g/well) or the mitrogen PHA served as controls. Two color flow cytometry was used to plot the percentage of CD3 positive cells that expressed the IL-2 receptor (CD25).
- T Lymphocytes Can Be Blocked by Antibodies to MHC Class II
- PBMCs were pre-incubated with a monoclonal antibody to HLA-DR prior to stimulation with the mitogen PHA, the superantigen TSST-1 , INT1/INT1 C. albicans, or int1/int1 C. albicans.
- T cell activation up-regulation of the IL-2 receptor CD25 was measured by two-color flow cytometry and plotted on the Y- axis. See Figure 8.
- APCs T Lymphocyte Activation in Response to Intlp Does Not Require Antigen Processing or Presentation by Antigen-Presenting Cells (APCs)
- APCs were separated from PBMCs by a glass wool column and pre- treated with 0.3% paraformaldehyde (PFA) before being returned to co-culture with lymphocytes.
- PFA paraformaldehyde
- TSST-1 and INT1/INT1 C. albicans were used as stimuli.
- 44% of T lymphocytes were activated with INT1/INT1 C. albicans as stimulus; in the presence of PFA, 43% were activated.
- Peripheral blood mononuclear cells were stimulated with 5x10 5 INT1/INT1 C. albicans blastospores, and production of TNF ⁇ , IL-6 and IL-4 was measured in supematants on days 2, 4 and 6.
- INT1/INT1 C. albicans induce a predominantly Th1 response in vitro with elevations in TNF ⁇ and IL-6 that are comparable to those induced by staphylococcal enterotoxin B (SEB), a well-characterized superantigen.
- SEB staphylococcal enterotoxin B
- INT1 in S. cerevisiae YPH500 under the control of a galactose- inducible promoter.
- INT1 was ligated into plasmid pBM272 for transformation of S. cerevisiae YPH 500; the resultant plasmid was named pCGOL Expression of Intlp was induced with 2% galactose.
- S. cerevisiae transformed with pBM272 served as control. Approximately 25% of donor PBMCs were activated after co- culture with S.
- V ⁇ 2 subset was preferentially expanded by S. cerevisiae expressing INT1; no expansion of V ⁇ 2 or V ⁇ 8 subsets was noted in response to S. cerevisiae transformed with vector alone.
- X Activates T lymphocytes, up-regulates IL-2 receptor, and releases pro- inflammatory cytokines
- APCs antigen-presenting cells
- proprotein convertase As a potential mechanism for proteolysis, we considered the possibility that Intlp, like MMTV, might be cleaved by a proprotein convertase.
- a subset of serine endopeptidases, proprotein convertases cleave proproteins, or zymogens, to their active fragments by limited proteolysis at one or at most two specific cleave sites.
- these enzymes are called "subtilisin-like proprotein convertases" or SPCs.
- SPCs are autocatalytic and must be activated by cleavage of their propeptide before they can cleave their specific substrates.
- a model of a proprotein convertase is provided in Figure 10, and the canonical cleavage site is indicated with an arrow.
- proprotein convertases exhibit several highly conserved features including a propeptide domain, distinguished by a canonical cleavage site just C- terminal to a pair of dibasic amino acids, most frequently KR or KK.
- a catalytic domain spans approximately 330 amino acids with an active site sequent of D-H- N-S [Asp-His-Asn-Ser], in which the initiating D is followed by a DX.
- This DDX motif has been shown in other systems (e.g., integrins) to be a recognition site for the binding of the RGD tripeptide; however, this interaction has never been explored with proprotein convertases.
- Catalytic domains may occur singly or in tandem.
- a processing domain also contains a D-H-N-S motif, but in six of the seven know SPCs, an RGD tripeptide is intercalated between the N and the S.
- the RGD motif is essential for cleavage of the propeptide; site-directed mutagenesis of the RGD tripeptide inhibits zymogen processing and mis-directs cellular trafficking of the unprocessed protein.
- FIG. 11 a comparison of the Intlp sequence in C. albicans with the motifs essential for the proprotein convertases is shown, and this analysis disclosed several sites of interest, including a dibasic cleavage site at residue 263, two putative catalytic domains, and an RGD sequence correctly situation in a possible P domain. Regions recognized by specific rabbit anti-peptide polyclonal antibodies developed in our laboratory as shown in brackets.
- Figure 13 is a Western blot of supernatants from / ⁇ /7 -expressing S. cerevisiae grown in the absence or presence of heparin and probed with rabbit polyclonal antibodies to the Intlp amino terminus (anti-INT600), to the second divalent cation binding site (anti-CBS2), or to the RGD domain (anti-RGD).
- Pep 263 was responsible for the superantigen-like effects observed with INT1/INT1 C. albicans and INT1- expressing S. cerevisiae
- Pep 263 was expressed as a recombinant, His-tagged protein in S. cerevisiae and assessed its effects on T lymphocyte activation and expansion of V ⁇ subsets.
- S. cerevisiae was preferable to £. coli for expression in order to avoid the activating effects of lipopylsaccharide.
- C. albicans genomic DNA encoding amino acids 1 to 263 of Intlp was amplified by PCR and ligated in-frame to a 6X-His tage at the 3' end.
- This construct was inserted as a Bam ⁇ ISal ⁇ fragment into pBM272 and expressed from a galactose-inducible promoter in S. cerevisiae BJ3501 , a protease-deficient strain.
- the His-tagged fusion protein appeared in the lysate ( Figure 14, lane 1).
- S. cerevisiae lysate was chromatographed on a nickel column, and an anti-His Mab was used in a dotblot to detect the His-tagged protein as it was eluted from a nickel column by an imidazole gradient (0-500 mM imidazole).
- Pep 263 100 picograms of Pep 263 was then incubated with 5x10 6 PBMCs in each of three reactions: (a) purified Pep 263 as a soluble peptide; (b) purified Pep 263 bound to the bottom of the tissue-culture well; (c) purified Pep 263 immobilized by anti-His antibodies covalently linked to Protein A Sepharose beads. Fractions which also eluted at 300 mM imidazole but contained no His- tagged protein were used as control.
- Figure 16 schematizes the apparent role of Intlp in C. albicans fungemia. In the absence of heparin (panel A), the first 263 amino acids of Intlp (Pep 263 ) are covert and cannot be detected by anti-INT600 antibodies ( Figure 12).
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| US23708200P | 2000-09-28 | 2000-09-28 | |
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| PCT/US2001/030312 WO2002026257A1 (en) | 2000-09-28 | 2001-09-28 | Antibodies to the propeptide of candida albicans and methods of use |
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