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Blood, 1 August 2006, Vol. 108, No. 3, pp. 908-914. Prepublished online as a Blood First Edition Paper on March 28, 2006; DOI 10.1182/blood-2005-07-2937.
HEMOSTASIS, THROMBOSIS, AND VASCULAR BIOLOGY Activation-independent, antibody-mediated removal of GPVI from circulating human platelets: development of a novel NOD/SCID mouse model to evaluate the in vivo effectiveness of antihuman platelet agentsFrom the Blood Research Institute, BloodCenter of Wisconsin, Milwaukee, WI; the Department of Biochemistry and Molecular Biology, Monash University, Clayton, VIC, Australia; the Division of Cardiology, Department of Medicine, University of Pennsylvania, Philadelphia, PA; the Department of Pharmacology, Medical College of Wisconsin, Milwaukee, WI; the Department of Cellular Biology, Medical College of Wisconsin, Milwaukee, WI; and the Cardiovascular Research Center, Medical College of Wisconsin, Milwaukee, WI.
GPVI is a 62-kDa membrane glycoprotein expressed in noncovalent association with the Fc receptor chain on human and murine platelets and serves as the major activating receptor for collagen. GPVI-specific antibodies have the capacity to specifically deplete GPVI from mouse and human platelets in vivo, rendering them unresponsive to collagen and GPVI-specific agonists. Such antibodies do not remove GPVI from noncirculating platelets in vitro, however, making it difficult to evaluate their antithrombotic potential and mechanism of action, particularly in human platelets. We devised a model system in which human platelets are introduced into the retroorbital plexus of nonobese diabetic/severe combined immunodeficient (NOD/SCID) mice, allowed to circulate, and evaluated for the effects of GPVI-specific murine monoclonal antibodies (mAbs) on platelet survival and function. GPVI-specific mAbs triggered depletion of GPVI from human, but not murine, platelets. Soluble truncated human GPVI appeared concomitantly in mouse plasma. GPVI-depleted human platelets had markedly diminished responses to GPVI-specific agonists and unexpectedly exhibited somewhat depressed responses to G-proteincoupled agonists. The ability to evaluate in living mice the in vivo function and survival of circulating human platelets may prove valuable for determining mechanisms of antibody-mediated platelet passivation and aid in the development of novel anti-platelet therapeutics.
An array of agonist receptors reside on the surface of platelets that, on exposure to ligands, initiate the activation of a complex network of signaling pathways leading to platelet activation, adhesion, and thrombus formation. Collagen, a major component of the extracellular matrix, acts as an important primary indicator to the presence of vessel injury. GPVI, the principal platelet collagen receptor, is a 62-kDa platelet-membrane glycoprotein expressed on the surface of human and murine platelets in a noncovalent complex with the immunoreceptor tyrosine-based activation motif (ITAM)containing subunit, the FcR chain.1,2 GPVI is a member of the immunoglobulin gene (Ig) superfamily that is composed of 2 extracellular Ig-homology domains, a transmembrane domain, and a 51amino acid cytoplasmic domain.3-5 The GPVI/FcR chain complex serves as the major platelet-activating receptor for collagen and signals via the Syk/SLP-76/PLC 2 pathway to activate the integrins 2 1 and IIb 3 (also known as GPIIb-IIIa), leading to platelet activation and thrombus formation.6,7 Studies by Nieswandt et al8 Massberg et al,9 and Schulte et al10 have shown the injection into mice of rat antimouse GPVI monoclonal antibodies (termed JAQ1, JAQ2, and JAQ3) results in specific, long-term immunodepletion of GPVI from the surface of circulating murine platelets. Platelets isolated from mice treated in this manner exhibit a corresponding loss of responsiveness to collagen and the GPVI-specific agonist, collagen-related peptide (CRP).8,9 Antibody-mediated depletion of GPVI appears to be operable in humans as well, because platelets from a patient with a circulating autoantibody specific for GPVI, like the platelets from JAQ1-treated mice, are devoid of cell-surface GPVI, fail to become activated in response to collagen or CRP while remaining responsive to other agonists, and form thrombi less efficiently when passed over immobilized collagen under conditions of arterial shear.11
The ability of anti-GPVI antibodies to render platelets unresponsive to collagen suggests that such reagents, especially if nonactivating, might have therapeutic benefit in reducing mural thrombosis in a variety of clinical settings. Attempts to examine the efficiency with which GPVI-specific mAbs are able to passivate human platelets have unfortunately been compromised by the observation that most are unable to effect depletion of GPVI ex vivo8,10 (B.B. and P.J.N., unpublished observations, July 2004). Delineating the molecular mechanisms underlying GPVI immunodepletion in circulating human platelets has been similarly confounded. Although early studies suggested that rat antimouse GPVI mAbs initiate internalization of antibody/murine GPVI complexes,8 a number of recent in vitro studies suggest that agents that cause mitochondrial damage12 or activate platelets after binding GPVI13,14 are able to activate one or more yet-to-be-identified matrix metalloproteinases (MMPs) that proteolytically cleave the extracellular domain of GPVI, in some cases releasing the extracellular domain of GPIb To examine the ability of anti-GPVI mAbs to reduce GPVI expression on human platelets in an activation-independent manner and to dampen GPVI-mediated platelet activation responses, we have developed an in vivo model system in which human platelets are injected into nonobese diabetic/severe combined immunodeficient (NOD/SCID) mice and allowed to circulate for up to 2 days. We show that coinjection of monovalent Fab fragments specific for human GPVI, which do not activate the circulating human platelets, leads to immunodepletion of this receptor from the platelet surface. As a result, soluble human GPVI accumulates in mouse plasma, and the GPVI-depleted human platelets exhibit a corresponding loss of CRP-induced activation. The ability to model in living mice the in vivo function and survival of circulating human platelets may prove valuable for determining mechanisms of antibody-mediated platelet passivation, and may aid in the development of other novel antiplatelet therapeutics.
Animal protocols were approved by the Medical College of Wisconsin Institutional Animal Care and Use Committee. Antibodies and reagents 11A12 and 6B12 are well-characterized mouse antihuman GPVI-specific monoclonal antibodies (mAbs) that have been previously described.7,16 The mAbs PECAM-1.3 and 235.1, specific for the extracellular and cytoplasmic domains, respectively, of PECAM-1, have been described.17 AP2, which recognizes a complex-dependent integrin GPIIb-IIIa epitope,18 was kindly provided by Dr Robert R. Montgomery (Blood Research Institute, BloodCenter of Wisconsin, Milwaukee, WI). Monovalent Fab fragments of 6B12, PECAM-1.3, and 235.1 were prepared using the Immunopure preparation kit (Pierce Biotechnology, Rockford, IL). The anti-GPVI cytoplasmic tail antibody was raised by immunizing New Zealand White rabbits with a previously described maltose-binding protein (MBP)GPVI cytoplasmic tail fusion protein.19 Serum derived from these rabbits was subjected to sequential affinity chromatography on columns of MBP-GPVI cytoplasmic tail fusion protein and MBP alone coupled to Affi-Gel 10/15 (Bio-Rad Laboratories, Hercules, CA). The fibrinogen-mimetic mAb, PAC-1,20 prelabeled with fluorescein isothiocyanate (FITC), was purchased from BD Biosciences (San Jose, CA). In some cases, mAbs were directly conjugated to Alexa Fluors 647 (11A12 and AP2) and 488 (AP2) using a kit purchased from Molecular Probes (Eugene, OR). CRP was synthesized and crosslinked as previously described.21,22 Circulation of human platelets in NOD/SCID mice Human blood drawn into acid-citrate-dextrose and supplemented with prostaglandin E1 (PGE1) at 50 ng/mL was incubated at room temperature for 10 minutes then spun at 200g for 10 minutes. Platelet-rich plasma (PRP) was collected, and PGE1 was added to 50 ng/mL. Platelets were incubated at room temperature for 10 minutes and then spun at 750g for 10 minutes. The platelets were resuspended in human plasma at 2.0 x 109/mL, supplemented with PGE1 to 50 ng/mL and incubated at room temperature for 30 minutes. Platelet concentrates (200 µL) were injected into the retro-orbital plexus of age- and sex-matched NOD/SCID mice (Stock no. 001303; The Jackson Laboratory, Bar Harbor, ME). Thirty micrograms monovalent Fabs or 10 µg intact IgG, each resuspended in 200 µL sterile DPBS, was injected intraperitoneally 30 minutes after introducing the human platelets. Preparation of washed platelets Whole blood (20-50 µL) was obtained from the mouse tail vein and collected into 1.0 mL of 1:9 mixture of 3.8% sodium citrate/Tyrode-HEPES buffer containing PGE1 at 50 ng/mL. The blood mixture (1.0 mL) was layered onto 2 mL Fico/Lite Platelets (Atlanta Biologicals, Norcross, GA) and spun for 15 minutes at 350g. The platelet layer (1.0 mL) was added to 3.0 mL Tyrode-HEPES buffer supplemented with 67 ng/mL PGE1. Platelets were washed by centrifugation at 750g for 10 minutes and resuspended in Tyrode-HEPES buffer. Platelet activation assays Washed platelets obtained from mice 24 hours after injection of human platelet concentrates were stimulated with CRP, ADP, thrombin, or a cocktail of 10 U/mL thrombin + 10 µM adenosine diphosphate (ADP) + 100 µM epinephrine and incubated for 20 minutes at room temperature in FITC-conjugated PAC-1 at 2.5 µg/mL and 1 mM CaCl2. Alexa Fluor 647conjugated AP2 was then added at 5 µg/mL; platelets were incubated for an additional 20 minutes at room temperature and directly analyzed on a BD LSR II (Franklin Lakes, NJ). Platelet aggregation Washed human platelets (400 µL) in Tyrode-HEPES buffer at 3.0 x 108 platelets/mL were added to siliconized glass cuvettes at 37°C with constant stirring at 1000 rpm. CaCl2 and fibrinogen were added to a final concentration of 1 mM and 300 µg/mL, respectively. Platelet aggregation was measured in a whole-blood lumi-ionized calcium aggregometer (Chrono-Log, Havertown, PA) for 2 minutes in the presence of 10 µg/mL isotype control mAb or mAb 6B12, and then finally activated with 7 ng/mL CRP. Immunoprecipitation of GPVI from plasma Human platelets were introduced into the circulation of NOD/SCID mice as described in "Circulation of human platelets in NOD/SCID mice." Twenty-four hours after transfusion, mice were lethally anesthetized with tribromo-ethanol administered intraperitoneally. Whole blood was collected from the inferior vena cava into 0.1 volume of 3.8% sodium citrate, incubated at room temperature for 10 minutes in the presence of 50 ng/mL PGE1, and then centrifuged at 200g for 10 minutes to remove red blood cells. Following readdition of 50 ng/mL PGE1, the supernatant containing platelet-rich plasma was spun at 750g for 10 minutes to pellet platelets and remaining leukocytes, and the supernatant was subjected to a final spin at 100 000g for 60 minutes. Soluble GPVI (sGPVI) was immunoprecipitated by nutating 250 µL mouse plasma overnight with 50 µL streptavidin-Sepharose that had been precoated for 12 hours at 4°C with 0.5 mg/mL biotinylated 11A12, and washed 3 x in Tyrode-HEPES buffer. Immunocaptured proteins were eluted with 0.1 M glycine, pH 2.7, for 10 minutes at room temperature and neutralized in 1.5 M Tris, pH 8.8.
Human platelets survive and circulate in NOD/SCID mice Although GPVI is lost from the platelet surface in vitro following treatment with agents that activate platelets or damage mitochondria, attempts to deplete GPVI under in vitro conditions using mAbs that do not injure or activate platelets have been unsuccessful,8,10 perhaps because of a requirement for circulation and/or the presence of cells or factors that are present only in vivo. To effect antibody-mediated depletion of human GPVI in vivo, we developed a mouse model system in which approximately 200 µL concentrated human platelet-rich plasma is introduced, together with antihuman GPVI-specific mAbs, into the circulation of immune-deficient NOD/SCID mice via the retro-orbital plexus. As shown in Figure 1A, human platelets introduced in this way typically comprise approximately 10% to 15% of the total circulating platelet population and decrease to about 7% over a 24-hour time period, probably reflecting their clearance against a background of murine platelets that are continually being replenished. Thirty minutes after transfusing human platelets into the mice, 10 µg of a single mAb was injected intraperitoneally. Tail bleeds were performed at different time points, and flow cytometry was used to track human platelet survival over time. As shown in Figure 1B, mice injected with an intact mAb specific for human PECAM-1 showed rapid loss of human platelets, most likely resulting from Fc receptor-mediated clearance of antibody-coated platelets by splenic and hepatic macrophages and other elements of the reticuloendothelial system, which is fully intact in NOD/SCID mice. In contrast, injection of a nonbinding, isotype-matched control mAb (mAb 235.1, specific for the cytoplasmic domain of human PECAM-1) caused only a modest decrease in the number of circulating human platelets over time. Mice treated with a mAb specific for GPVI had an intermediate rate of human platelet clearance. To determine whether the human platelets in the anti-GPVItreated mice were being removed from circulation because the kinetics of antibody-mediated immunodepletion of GPVI lagged behind that of FcR-mediated platelet destruction and to increase the number and survival time of human platelets in the mouse circulation, we repeated these experiments using monovalent Fab fragments, which lack the Fc region recognized by Fc receptors. As shown in Figure 1C, use of Fab fragments effectively eliminated the antibody-mediated component of human platelet clearance in mice injected with either anti-GPVI or antiPECAM-1 mAbs; therefore, Fabs were used in all subsequent experiments.
Immunodepletion of GPVI from circulating human platelets using monovalent Fab fragments of the murine GPVI-specific mAb, 6B12
Nonactivating, GPVI-specific mAbs that dampen platelet responses to collagen have potential therapeutic applications as antithrombotic agents; however, they have not to date been shown to be capable of removing GPVI from the surface of human platelets. The finding that human platelets can circulate in NOD/SCID mice for more than 24 hours (Figure 1) allowed us to investigate the consequences of antibody binding to human GPVI under in vivo conditions. Evidence that the nonfunction-blocking, GPVI-specific mAb, 6B12, does not activate platelets, even in divalent form, is provided in Figure 2A. When Fab fragments of 6B12 were introduced into NOD/SCID mice together with approximately 4 x 108 human platelets, approximately 50% of circulating human platelets lost GPVI expression within 24 hours (Figure 2B, lower right). In contrast, Fab fragments specific for PECAM-1 (Figure 2B, upper right) or an isotype control Fab (not shown) had no effect of GPVI surface expression. The ability of monovalent Fab fragments to remove GPVI from the surface of human platelets demonstrates that clustering of the GPVI/FcR 6B12 treatment results in loss of GPVI-specific agonist responses as well as diminished responsiveness to agonists for G-proteincoupled receptors
To determine whether in vivo introduction of mAb 6B12 could effectively dampen the response of circulating human platelets to GPVI-mediated activation signals, we examined their ability to bind the fibrinogen-mimetic mAb, PAC-1, following exposure to the GPVI-specific agonist, CRP. As shown in Figure 3A, human platelets taken from mice treated with 6B12 Fabs for 24 hours lost almost half of their reactivity to high-dose CRP, as reported by PAC-1 binding, compared with human platelets derived from control mice that had been treated with PECAM 1.3 Fabs for 24 hours. Somewhat unexpectedly, human platelets taken from 6B12-treated mice also consistently exhibited slightly deceased (
Soluble, truncated form of human GPVI is shed into mouse plasma as a result of 6B12-induced immunodepletion Although a number of recent in vitro studies suggest that agents that either cause mitochondrial damage12 or activate platelets via GPVI13,14 can lead to platelet-associated metalloproteinase-mediated shedding of GPVI into the extracellular milieu, the mechanism by which nonactivating, GPVI-specific mAbs are able to effect GPVI depletion, particularly from the surface of human platelets, still is not known. Because the latter class of reagents is likely to be more clinically useful, and to investigate whether 6B12 treatment caused GPVI shedding in vivo, human platelets were injected into mice in the presence of anti-GPVI or antiPECAM-1 Fabs and allowed to circulate for 24 hours. Plasma samples were then collected and subjected to immunoprecipitation using streptavidin-Sepharose beads that had been saturated with biotinylated 11A12-a murine anti-GPVI mAb that binds an epitope on human GPVI distinct from that for 6B12 and therefore does not compete for binding. Immunocaptured proteins were acid-eluted from the streptavidin-11A12 beads, subjected to sodium dodecyl sulfate polyacrylamide gel electrophoresis (SDS PAGE), and Western blotted with 6B12. As shown in Figure 4, plasma obtained from 6B12-treated (lanes 3), but not PECAM-1.3treated (lanes 2), mice contained a prominent 50-kDa soluble form of human GPVI that reacted with an antibody to the extracellular, but not cytoplasmic, domain of GPVI, indicating that this fragment is composed of a truncated, cleaved form of GPVI. GPVI derived from human platelet lysate (HPL) reacted with both antibodies, as expected. These data are consistent with proteolytic cleavage being, at least in part, responsible for the mechanism by which 6B12 depletes GPVI from the platelet surface.
The major findings of the present investigation are that (1) monovalent murine antihuman GPVI Fabs can effectively deplete GPVI from the surface of human platelets in vivo, (2) they appear to act largely by inducing ectodomain shedding, and (3) the NOD/SCID mouse model that we describe herein may be useful for future investigations in which the function and/or survival of circulating human platelets following treatment with various antiplatelet agents needs to be examined. Immunodepletion of GPVI from the platelet surface was first observed in a murine model that involved injecting mice with rat antimouse GPVI mAbs, JAQ1, JAQ2, or JAQ3.8-10 JAQ mAb-treated mice exhibited mild, transient thrombocytopenia, long-term immunodepletion of GPVI, and diminished platelet responsiveness to collagen. More recent studies suggest that antibody-mediated loss of GPVI can also take place on human platelets, as evidenced by a recently described patient with autoimmune thrombocytopenia caused by an autoantibody specific for GPVI, concomitant with a loss of platelet responsiveness to GPVI-specific agonists and a mild bleeding diathesis.11 That antibody-induced GPVI removal has now been demonstrated in both humans and mice raised the intriguing possibility that antibodies to GPVI might be used as adjunct therapy to temporarily pacify platelets during a thrombotic episode (ie, myocardial infarction or stroke, during unstable angina, or prior to clinical procedures such as percutaneous transluminal coronary angioplasty that are associated with increased incidence of mural thrombus formation). Several obstacles to making further progress in this area, however, exist. First, studies performed in mice using rat antimouse GPVI reagents of the JAQ series, which by themselves do not activate platelets, have demonstrated that these antibodies immunodeplete GPVI only when administered in vivo (ie, addition of anti-GPVI mAbs to platelets in vitro has no effect on GPVI surface expression).8 Second, there currently exists no suitable animal model to evaluate the effectiveness of antihuman GPVI reagents or the consequences of GPVI elimination in human platelets. To circumvent these problems, we undertook the development of a novel NOD/SCID mouse model of GPVI-immunodepletion that uses circulating human platelets in the presence of a mouse anti-GPVI mAb and used it to begin to address the mechanism of antibody-mediated elimination of GPVI from the human platelet surface.
Human platelets are able to circulate in NOD/SCID mice for more than 1 day (Figures 1, 2), most likely because the immune deficiency of these mice23 precludes production of "heterophile" antibodies that would normally result in immediate clearance of blood cells from another species. As expected, injection of PECAM-1.3, a mouse mAb specific for the extracellular domain of PECAM-1, bound to the circulating human platelets and resulted in rapid, marked thrombocytopenia reminiscent of human ITP24 (Figure 1B). In contrast, there was noticeably less reduction in platelet number induced by mouse anti-GPVI IgG (Figure 1B), especially when Fab fragments were used (Figure 1C). Equally important, Fab fragments of mAb 6B12 triggered rapid, selective loss of GPVI from the surface of human platelets (Figure 2B), rendering them substantially less responsive to the GPVI agonist, CRP (Figure 3D). For reasons that are unclear, platelets from 6B12-treated mice also exhibit somewhat dampened reactivity to ADP and thrombin, agonists that exclusively stimulate G-proteincoupled receptor signaling pathways (Figure 3B-C). Although crosstalk between the thrombin and ADP receptors and the GPVI/FcR The degree of GPVI elimination achieved in the circulating human platelet-NOD/SCID model is less than that observed by Nieswandt et al,8 Massberg et al,9 and Schulte et al10 for murine platelets using JAQ mAbs. This may due to the fact that GPVI expression on human platelets circulating in NOD/SCID mice has to be determined 18 to 36 hours following their injection (ie, before they age and became cleared). In contrast, JAQ-induced depletion of murine platelet surface GPVI has normally been evaluated 3 or more days following JAQ treatment and thus may account for the more efficient GPVI immunodepletion observed. The kinetics of human platelet clearance in NOD/SCID mice, therefore, may represent a limitation of this model for examining the effects of antiplatelet agents whose action requires 1 or more days of systemic exposure. Nonetheless, the finding that human platelets can circulate and survive in NOD/SCID mice, albeit for a limited period of time, may prove useful for evaluating the in vivo efficacy of other antithrombotic agents and additionally provide important mechanistic insights into their mode of action. It may also be of use in evaluating the efficacy of enzymatic, biochemical, and physical manipulations that attempt to correct the so-called platelet storage lesion.26,27
The precise mechanism(s) by which anti-GPVI antibodies cause specific depletion of the GPVI/FcR
In support of a proteolytic mechanism for GPVI immunodepletion, we found (Figure 4) that a readily detectable, truncated, soluble 50-kDa fragment containing the GPVI extracellular, but not cytoplasmic, domain became liberated from human platelets into mouse plasma following in vivo exposure to monovalent Fab fragments of 6B12. To our knowledge, our observation that nonactivating anti-GPVI reagents can induce shedding of the ectodomain of GPVI from the human platelet surface has not been previously demonstrated. Several recent studies, however, have reported GPVI shedding as a consequence of (1) platelet activation following stimulation with a GPVI-specific agonist,13,14 (2) exposure to an activating GPVI-specific mAb,14 (3) inhibition of an interaction between calmodulin and the GPVI cytoplasmic domain,13 or (4) exposure to mitochondrial-damaging agents.12,15 In each of these studies, immunodepletion of GPVI could be attributed to the action of MMPs, a class of enzymes originally characterized by their ability to degrade various elements of the extracellular matrix (for a review, see Mott and Werb28), because GPVI shedding could be inhibited by the broad range MMP inhibitor, GM6001.12-14 Because MMPs are secreted from Finally, although GPIIb-IIIa receptor antagonists have been an important addition to the regimen of antithrombotics used to reduce the incidence of complications following coronary angioplasty, an undesirable side effect of this class of therapeutics is their propensity, for poorly understood reasons, to cause in approximately 1% of recipients acute, antibody-mediated platelet destruction and/or bleeding.33,34 Although still a long way from preclinical testing, GPVI-directed therapeutics have the potential to avoid these untoward complications. First, anti-GPVI mAbs, be they rat,8-10 human,11 or mouse (this study) in origin, are rapidly shed from the platelet surface on binding their target receptor, thereby sparing the platelet from clearance, thus avoiding thrombocytopenia. Second, although platelet reactivity to mural collagen,9 and perhaps mural laminin,25 exposed at sites of vascular injury is largely lost following targeted depletion of GPVI, platelets treated with anti-GPVI antibodies retain much of their ability to respond to soluble agonists (Figure 3). Taken together with the findings of the present study, nonactivating mAbs directed against GPVI may represent a novel class of compounds having antithrombotic properties without the increased incidence of unexpected bleeding. Further in vivo studies will be required to establish the efficacy of these antibodies in controlling thrombosis in primates and humans.
We thank Dr Debra K. Newman for her constructive thoughts and suggestions and for carefully reviewing this manuscript prior to its submission.
Submitted July 21, 2005; accepted March 13, 2006.
Prepublished online as Blood First Edition Paper, March 28, 2006; DOI 10.1182/blood-2005-07-2937.
Supported by the National Heart, Lung, and Blood Institute of the National Institutes of Health (grant HL-44612) (P.J.N.) and (grant HL-067311) (M.L.K.) and by the National Health and Medical Research Council of Australia (M.C.B.).
The publication costs of this article were defrayed in part by page charge payment. Therefore, and solely to indicate this fact, this article is hereby marked "advertisement" in accordance with 18 U.S.C. section 1734.
Reprints: Peter J. Newman, Blood Research Institute, BloodCenter of Wisconsin, PO Box 2178, 638 N 18th St, Milwaukee, WI 53201; e-mail: peter.newman{at}bcw.edu.
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