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Inhaltsübersicht zum Schwerpunktthema: - Neue Verfahren gegen Krebs, Allergie und Infektion: Die Immuntherapie - Orientbeule: Parasiten lassen Geschwüre auf der Haut wuchern - Diabetes: Hilfe aus dem Tierreich - "Antibiotika bieten auf Dauer keinen Schutz" - Biotech -Firmen entwickeln Medikamente für die Immuntherapie u.a.
Adoptive cellular immunotherapy with chimeric antigen receptor (CAR) T cells is highly effective in haematological malignancies. This success, however, has not been achieved in solid tumours so far. In contrast to hematologic malignancies, solid tumours include a hostile tumour microenvironment (TME), that poses additional challenges for curative effects and consistent therapeutic outcome. These challenges manifest in physical and immunological barriers that dampen efficacy of the CAR T cells. Preclinical testing of novel cellular immunotherapies is performed mainly in 2D cell culture and animal experiments. While 2D cell culture is an easy technique for efficacy analysis, animal studies reveal information about toxicity in vivo. However, 2D cell culture cannot fully reflect the complexity observed in vivo, because cells are cultured without anchorage to a matrix and only short-term periods are feasible. Animal studies provide a more complex tissue environment, but xenografts often lack human stroma and tumour inoculation occurs mostly ectopically. This emphasises the need for standardisable and scalable tumour models with incorporated TME-aspects, which enable preclinical testing with enhanced predictive value for the clinical outcome of immunotherapies. Therefore, microphysiologic 3D tumour models based on the biological SISmuc (Small Intestinal mucosa and Submucosa) matrix with preserved basement membrane were engaged and improved in this work to serve as a modular and versatile tumour model for efficacy testing of CAR T cells. In order to reflect a variety of cancer entities, TME-aspects, long-term stability and to enhance the read-out options they were further adapted to achieve scalable and standardisable defined microphysiologic 3D tumour models. In this work, novel culture modalities (semi-static, sandwich-culture) were characterised and established that led to an increased and organised tissue generation and long-term stability. Application of the SISmuc matrix was extended to sarcoma and melanoma models and serial bioluminescence intensity (BLI)-based in vivo imaging analysis was established in the microphysiologic 3D tumour models, which represents a time-efficient read-out method for quality evaluation of the models and treatment efficacy analysis, that is independent of the cell phenotype. Isolation of cancer-associated-fibroblasts (CAFs) from lung (tumour) tissue was demonstrated and CAF-implementation further led to stromal-enriched microphysiologic 3D tumour models with in vivo-comparable tissue-like architecture. Presence of CAFs was confirmed by CAF-associated markers (FAP, α-SMA, MMP-2/-9) and cytokines correlated with CAF phenotype, angiogenesis, invasion and immunomodulation. Additionally, an endothelial cell barrier was implemented for static and dynamic culture in a novel bioreactor set-up, which is of particular interest for the analysis of immune cell diapedesis. Studies in microphysiologic 3D Ewing’s sarcoma models indicated that sarcoma cells could be sensitised for GD2-targeting CAR T cells. After enhancing the scale of assessment of the microphysiologic 3D tumour models and improving them for CAR T cell testing, the tumour models were used to analyse their sensitivity towards differently designed receptor tyrosine kinase-like orphan receptor 1 (ROR1) CAR T cells and to study the effects of the incorporated TME-aspects on the CAR T cell treatment respectively. ROR1 has been described as a suitable target for several malignancies including triple negative breast cancer (TNBC), as well as lung cancer. Therefore, microphysiologic 3D TNBC and lung cancer models were established. Analysis of ROR1 CAR T cells that differed in costimulation, spacer length and targeting domain, revealed, that the microphysiologic 3D tumour models are highly sensitive and can distinguish optimal from sub-optimal CAR design. Here, higher affinity of the targeting domain induced stronger anti-tumour efficacy and anti-tumour function depended on spacer length, respectively. Long-term treatment for 14 days with ROR1 CAR T cells was demonstrated in dynamic microphysiologic 3D lung tumour models, which did not result in complete tumour cell removal, whereas direct injection of CAR T cells into TNBC and lung tumour models represented an alternative route of application in addition to administration via the medium flow, as it induced strong anti-tumour response. Influence of the incorporated TME-aspects on ROR1 CAR T cell therapy represented by CAF-incorporation and/or TGF-β supplementation was analysed. Presence of TGF-β revealed that the specific TGF-β receptor inhibitor SD-208 improves ROR1 CAR T cell function, because it effectively abrogated immunosuppressive effects of TGF-β in TNBC models. Implementation of CAFs should provide a physical and immunological barrier towards ROR1 CAR T cells, which, however, was not confirmed, as ROR1 CAR T cell function was retained in the presence of CAFs in stromal-enriched microphysiologic 3D lung tumour models. The absence of an effect of CAF enrichment on CAR T cell efficacy suggests a missing component for the development of an immunosuppressive TME, even though immunomodulatory cytokines were detected in co-culture models. Finally, improved gene-edited ROR1 CAR T cells lacking exhaustion-associated genes (PD-1, TGF-β-receptor or both) were challenged by the combination of CAF-enrichment and TGF-β in microphysiologic 3D TNBC models. Results indicated that the absence of PD-1 and TGF-β receptor leads to improved CAR T cells, that induce strong tumour cell lysis, and are protected against the hostile TME. Collectively, the microphysiologic 3D tumour models presented in this work reflect aspects of the hostile TME of solid tumours, engage BLI-based analysis and provide long-term tissue homeostasis. Therefore, they present a defined, scalable, reproducible, standardisable and exportable model for translational research with enhanced predictive value for efficacy testing and candidate selection of cellular immunotherapy, as exemplified by ROR1 CAR T cells.
Der Schimmelpilz Aspergillus (A.) fumigatus stellt den häufigsten Erreger der invasiven Aspergillose (IA) dar, die vor allem bei immunsupprimierten Patienten auftritt. Unter den unspezifischen klinischen Symptomen dieser Erkrankung ist Fieber das häufigste. Dennoch wurden physiologische Aspekte wie eine erhöhte Körpertemperatur in Arbei-ten zur Interaktion menschlicher Immunzellen mit A. fumigatus bisher nicht berück-sichtigt. Zahlreiche Studien konnten den Einfluss einer erhöhten Temperatur auf den Verlauf von Infektionserkrankungen in vivo sowie auf die Funktionen verschiedener Immunzellen – einschließlich dendritischer Zellen (DCs) – in vitro zeigen. DCs spielen eine wichtige Rolle in der Immunabwehr gegenüber A. fumigatus, ihre besondere Be-deutung liegt in der Verknüpfung der angeborenen mit der erworben Immunantwort.
Ziel dieser Arbeit war die in vitro Analyse des Einflusses einer erhöhten Temperatur auf die Immunantwort humaner DCs gegenüber A. fumigatus. Dazu wurden DCs mit A. fumigatus oder Zymosan, einem ß-1,3-Glucan, bei Normo- (37 °C) und Hyperthermie (40 °C) für bis zu 24 h inkubiert und spezifische DC-Funktionen charakterisiert. Hierbei tolerierten DCs die Inkubation und Stimulation unter Hyperthermie ohne signifikanten Viabilitätsverlust. Die Zytokinexpression und -sekretion durch A. fumigatus-Stimulation wurde durch Hyperthermie nicht signifikant verändert. Die Fähigkeit zur Aufnahme von A. fumigatus-Konidien wurde durch eine kurzzeitige (1 h) Hyperthermie nicht beein-flusst, längerfristige (24 h) Hyperthermie reduzierte diese Fähigkeit jedoch signifikant. Ebenso bestand unter Hyperthermie eine verstärkte Expression von CD86 und HLA-DR auf unstimulierten DCs sowie von CD80, CD86 und HLA-DR auf stimulierten DCs.
Die reduzierte Aufnahmekapazität für A. fumigatus-Konidien und die verstärkte
Expression der kostimulatorischen Moleküle unter Hyperthermie zeigten, dass Hyper-thermie in vitro einen reiferen Phänotyp unstimulierter DCs bewirkt sowie die DC-Reifung durch A. fumigatus-Stimulation verstärken kann. Diese reiferen DCs könnten zu einer verbesserten T-Zell-Aktivierung und Abwehr von A. fumigatus und zu einem verbesserten Outcome der IA beitragen. Außerdem könnte Hyperthermie als Adjuvans zur in vitro Generierung A. fumigatus-spezifischer DCs eingesetzt werden.
Adoptive immunotherapy using chimeric antigen receptor (CAR)-modified T cells is an effective treatment for hematological malignancies that are refractory to conventional chemotherapy. To address a wider variety of cancer entities, there is a need to identify and characterize additional target antigens for CAR-T cell therapy. The two members of the receptor tyrosine kinase-like orphan receptor family, ROR1 and ROR2, have been found to be overexpressed on cancer cells and to correlate with aggressive cancer phenotypes. Recently, ROR1-specific CAR-T cells have entered testing in phase I clinical trials, encouraging us to assess the suitability of ROR2 as a novel target for CAR-T cell therapy. To study the therapeutic potential of targeting ROR2 in solid and hematological malignancies, we selected two representative cancer entities with high unmet medical need: renal cell carcinoma and multiple myeloma.
Our data show that ROR2 is commonly expressed on primary samples and cell lines of clear cell renal cell carcinoma and multiple myeloma. To study the efficacy of ROR2-specific CAR T cell therapy, we designed two CAR constructs with 10-fold binding affinity differences for the same epitope of ROR2. We found both cell products to exhibit antigen-specific anti-tumor reactivity in vitro, including tumor cell lysis, secretion of the effector cytokines interleukin-2 (IL-2) and interferon-gamma (IFNγ), and T cell proliferation. In vivo studies revealed ROR2 specific CAR-T cells to confer durable responses, significant survival benefits and long-term persistence of CAR-expressing T cells. Overall, there was a trend towards more potent anti-tumor efficacy upon treatment with T cells that expressed the CAR with higher affinity for ROR2, both in vitro and in vivo.
We performed a preclinical safety and toxicology assessment comprising analyses of ROR2 expression in healthy human and murine tissues, cross-reactivity, and adoptive T cell transfer in immunodeficient mice. We found ROR2 expression to be conserved in mice, and low-level expression was detectable in the male and female reproductive system as well as parts of the gastrointestinal tract. CAR-T cells targeting human ROR2 were found to elicit similarly potent reactivity upon recognition of murine ROR2. In vivo analyses showed transient tissue-specific enrichment and activation of ROR2-specific CAR-T cells in organs with high blood circulation, such as lung, liver, or spleen, without evidence for clinical toxicity or tissue damage as determined by histological analyses.
Furthermore, we humanized the CAR binding domain of ROR2-specific CAR-T cells to mitigate the risk of adverse immune reactions and concomitant CAR-T cell rejection. Functional analyses confirmed that humanized CARs retained their specificity and functionality against ROR2-positive tumor cells in vitro.
In summary, we show that ROR2 is a prevalent target in RCC and MM, which can be addressed effectively with ROR2-specific CAR-T cells in preclinical models. Our preliminary toxicity studies suggest a favorable safety profile for ROR2-specific CAR-T cells. These findings support the potential to develop ROR2-specific CAR-T cells clinically to obtain cell products with broad utility.
In this study, we developed an innovative nanoparticle formulation to facilitate the delivery of antitumor antibodies to tumor sites. The study commenced with the utilization of 13 bispecific antibody fusion proteins, which targeted the Fn14 receptor, thereby validating the pivotal role of crosslinking in Fn14 receptor activation. Subsequently, gold nanoparticles were activated using COOH-PEG-SH in combination with EDC/NHS, and subsequently conjugated with two Fn14-targeting antibodies, PDL192 and 5B6. Following this, a pH-sensitive shell was generated on the outer layer of the antibody-coupled gold nanoparticles through the application of chemically modified polylysine. The resultant complexes, termed MPL-antibody-AuNP, demonstrated a release profile reminiscent of the tumor microenvironment (TME). Notably, these complexes released antibody-AuNPs only in slightly acidic conditions while remaining intact in neutral or basic environments. Functionality analysis further affirmed the pH-sensitive property of MPL-antibody-AuNPs, demonstrating that the antibodies only initiated potent Fn14 activation in slightly acidic environments. This formulation holds potential for applicability to antibodies or ligands targeting the 80 TNFRSF family, given that gold nanoparticles successfully served as platforms for antibody crosslinking, thereby transforming these antibodies into potent agonists. Moreover, the TME disintegration profile of MPL mitigates the potential cytotoxic effects of antibodies, thereby circumventing associated adverse side effects. This study not only showcases the potential of nanoparticle formulations in targeted therapy, but also provides a solid foundation for further investigations on their clinical application in the context of targeting category II TNFRSF receptors with antibodies or ligands.
Die Rolle von bakteriellen DNA-Sequenzen (CpG) bei der Immuntherapie von retroviralen Infektionen
(2003)
Mit dieser Arbeit wird zum ersten Mal der therapeutische Einsatz von immunstimulativer DNA mit CpG-Motiv (CpG-ODN) bei einer akuten Virusinfektion beschrieben. Als experimentelles Modell wurde das Friend Virus (FV), ein muriner Retroviruskomplex, verwendet. Das FV kann in Mäusen eine tödlich verlaufende Erythroleukämie induzieren. Durch die Immuntherapie mit CpG-ODN in der akuten Phase einer FV-Infektion konnten 74% der Mäuse vor der Entstehung der Virus-induzierten Leukämie geschützt werden. Dieser Schutz ging einher mit der Reduktion der Viruslast im Blut und in der Milz der Tiere und wurde durch CpG-ODN induzierte FV-spezifische CD8+-Zellen vermittelt. FV-neutralisierende Antikörper und natürliche Killerzellen waren dagegen am CpG-ODN induzierten Schutz nicht beteiligt. Der Einsatz von CpG-ODN als Paraimmunisierung (unspezifische Immunisierung vor einer Infektion) verursachte hingegen einen schwereren FV-induzierten Leukämiever-lauf als in infizierten Mäusen ohne vorherige Behandlung. Die prophylaktische CpG-ODN Gabe führte sogar dazu, dass FV-resistente Mäuse empfänglich für eine FV-vermittelte Leukämie wurden. Der negative Effekt der prophylaktischen ODN-Behandlung wurde durch die CpG-ODN induzierte Proliferation der wichtigsten Ziel-zellen des FV (Ter119+- Erythrozytenvorläuferzellen und B-Zellen) verursacht. Durch die Stimulierung dieser Zellen konnte das Virus schneller replizieren, so dass das Immunsystem der Mäuse nicht mehr in der Lage war das Virus zu kontrollieren. Untersuchungen zum therapeutischen Einsatz von CpG-ODN in der späten, leukämi-schen Phase der Infektion zeigten, dass sich CpG-ODN auch für die Bekämpfung von FV-induzierten Tumorzellen einsetzen lassen. Das die CpG-ODN Behandlung von viralen Infektionen zu sehr unterschiedlichen Ergebnissen führen kann, konnte in der vorliegenden Arbeit gezeigt werden. Die CpG-ODN Behandlung stellte einerseits eine effektive Immuntherapie gegen die FV-induzierte Erkrankung dar, andererseits konnte sie die Viruserkrankung auch verstär-ken. Essentiell für den Erfolg der ODN-Behandlung war der richtige Behandlungs-zeitpunkt nach Infektion. Da viele Virusinfektionen durch eine CD8+ CTL-Aktivität kontrolliert werden und CpG-ODN Virus-spezifische CTL Antworten verstärken, ist der Einsatz von CpG-ODN für Behandlungen von Virusinfektionen im allgemeinen sehr interessant. Im zweiten Teil dieser Arbeit sollte eine transkutane Vakzinierung (Impfung über die Haut) gegen Retrovirus-induzierte Erkrankungen etabliert werden. CpG-ODN dienten dabei als starkes Adjuvants zur Induktion einer zellulären Immunantwort. Für die Imp-fung wurden FV-spezifische T-Zell-Epitope (CTL- und T-Helferzell-Peptide) als Anti-gene eingesetzt. Die transkutane Immunisierung schützte Mäuse vor einer FV-induzierten Leukämie. Der durch die Vakzine vermittelte Schutz reichte jedoch nicht aus, um eine persistierende Infektion mit FV zu verhindern. Die Ergebnisse der im-munologischen Untersuchungen zeigten, dass der Impfschutz von FV-spezifischen CD8+-Zellen vermittelt wurde. Die Studie belegt, daß eine nicht invasive Impfung durchaus in der Lage ist, einen Schutz gegen eine Retrovirus-induzierte Erkrankung zu vermitteln.
Cancer cells frequently escape from immune surveillance by down-regulating two important components of the immune defence: antigen-presenting MHC and costimulatory molecules. Therefore several novel anti-tumour compounds that aim to assist the immune system in recognising and fighting cancer are currently under development. Recombinant bispecific antibodies represent one group of such novel therapeutics. They target two different antigens and recruit cytotoxic effector cells to tumour cells. For cancer immunotherapy, bispecific T cell-engaging antibodies are already well characterised. These antibodies target a tumour-associated antigen and CD3ε, the constant molecule of the T cell receptor complex.
On the one hand, this study presents the development of a bispecific antibody targeting CD3ε and the rhabdomyosarcoma-associated fetal acetylcholine receptor. On the other hand, it describes a novel two-part trispecific antibody format for the treatment of leukaemia and other haematological malignancies in the context of haematopoietic stem cell transplantation (HSCT).
For HSCT, an HLA-identical donor is preferred, but very rarely available. In an HLA-mismatched setting, the HLA disparity could be exploited for targeted cancer treatment. In the present study, a two-part trispecific HLA-A2 × CD45 × CD3 antibody was developed for potential cases in which the patient is HLA-A2-positive, but the donor is not. This holds true for about half the cases in Germany, since HLA-A2 is the most common HLA molecule found here. Combinatorial targeting of HLA-A2 and the leucocyte-common antigen CD45 allows for highly specific dual-antigen restricted tumour targeting.
More precisely, two single-chain antibody constructs were developed: i) a single-chain variable fragment (scFv) specific for HLA-A2, and ii) a scFv against CD45, both linked to the VL and the VH domain of a CD3ε-specific antibody, respectively. It turned out that, after the concomitant binding of these constructs to the same HLA-A2- and CD45-expressing cell, the unpaired variable domains of a CD3ε-specific antibody assembled to a functional scFv. In a therapeutic situation, this assembly should exclusively occur on the recipient’s blood cancer cells, leading to T cell-mediated cancer cell destruction. In this way, a relapse of disease might be prevented, and standard therapy (radiation and chemotherapy) might be omitted.
For both approaches, the antibody constructs were periplasmically expressed in E. coli, purified via His tag, and biochemically characterised. Their binding to the respective targets was proven by flow cytometry. The stimulatory properties of the antibodies were assayed by measuring IL-2 release after incubation with T cells and antigen-expressing target cells. Both the bispecific antibody against rhabdomyosarcoma and the assembled trispecific antibody against blood cancer mediated T-cell activation in a concentration-dependent manner at nanomolar concentrations. For the trispecific antibody, this effect indeed proved to be dual antigen-restricted, as it could be blocked by prior incubation of either HLA-A2- or CD45-specific scFv and did not occur on single-positive (CD45+) or double-negative (HLA-A2- CD45-) target cells. Furthermore, antibodies from both approaches recruited T cells for tumour cell destruction in vitro.
The advances in genetic engineering have enabled us to confer T cells new desired functions or delete their specific undesired endogenous properties for improving their antitumor function. Due to their efficient gene delivery, viral vectors have been successfully used in T-cell engineering to provide gene transfer medicinal products for the treatment of human disease. One example is adoptive cell therapy with T cells that were genetically modified with gamma-retroviral and lentiviral (LV) delivery vectors to express a CD19-specific chimeric antigen receptor (CAR) for cancer treatment. This therapeutic approach has shown remarkable results against B-cell malignancies in pilot clinical trials. Consequently, there is a strong desire to make CAR T cell therapy scalable and globally available to patients. However, there are persistent concerns and limitations with the use of viral vectors for CAR T cell generation with regard to safety, cost and scale of vector production. In order to address these concerns, we aimed to improve non-viral gene transfer and genome editing tools as an effective, safe and broadly applicable alternative to viral delivery methods for T-cell engineering.
In the first part of the study, we engineered CAR T cells through non-viral Sleeping Beauty (SB) transposition of CAR genes from minimalistic DNA vectors called minicircles rather than conventional SB plasmids. This novel approach dramatically increased stable gene transfer rate and cell viability and resulted in higher yield of CAR+ T cells without the need of long ex vivo expansion to generate therapeutic doses of CAR+ T cells. Importantly, CD19-CAR T cells modified by MC-based SB transposition were equally effective as LV transduced CD19-CAR T cells in vitro and in a murine xenograft model (NSG/Raji-ffLuc), where a single administration of CD8+ and CD4+ CAR T cells led to complete eradication of lymphoma and memory formation of CAR T cells after lymphoma clearance.
To characterize the biosafety profile of the CAR T cell products, we did the most comprehensive genomic insertion site analysis performed so far in T cells modified with SB. The data showed a close-to-random integration profile of the SB transposon with a higher number of insertions in genomic safe harbors compared to LV integrants. We developed a droplet digital PCR assay that enables rapid determination of CAR copy numbers for clinical applications.
In the second part of the study, we ablated expression of PD-1, a checkpoint and negative regulator of T cell function to improve the therapeutic index of CAR T cells. This was accomplished using non-viral CRISPR/Cas9 via pre-assemble Cas9 protein and in vitro-transcribed sgRNA (Cas9 RNP). Finally, we combined our developed Cas9 RNP tool with CAR transposition from MC vectors into a single-step protocol and successfully generated PD-1 knockout CAR+ T cells. Based on the promising results achieved from antibody-mediated PD-1 blockade in the treatment of hematological and solid tumors, we are confident that PD-1 knockout CAR T cells enhance the potency of CAR T cell therapies for treatment of cancers without the side effects of antibody-based therapies.
In conclusion, we provide a novel platform for virus-free genetic engineering of CAR T cells that can be broadly applied in T-cell cancer therapy. The high level of gene transfer rate and efficient genome editing, superior safety profile as well as ease-of-handling and production of non-viral MC vectors and Cas9 RNP position our developed non-viral strategies to become preferred approaches in advanced cellular and gene-therapy.
Staphylococcus aureus ist einer der häufigsten Erreger von nosokomialen Infektionen. Diese grampositiven Bakterien verursachen neben harmlosen oberflächlichen Hautinfektionen auch lebensbedrohliche Systeminfektionen. Ein großes Problem in der Therapie von S. aureus-Infektionen stellen die zunehmenden Multiresistenzen dar. Die Entwicklung neuer Antibiotika wird zukünftig wahrscheinlich nicht ausreichen, da immer wieder neue Resistenzen der Bakterien zu erwarten sind. Es besteht daher dringender Bedarf an der Entwicklung alternativer Therapieformen im Kampf gegen multiresistente Problemkeime wie S. aureus. Eine Möglichkeit besteht in der Immuntherapie, zum Beispiel durch Gewinnung von monoklonalen Antikörpern gegen geeignete Targetstrukturen von S. aureus. Ziel dieser Arbeit war es, zunächst zwei Proteine IsaA und IsaB herzustellen, um diese Proteine für Immunisierungsstudien zu nutzen. Zunächst wurde das gereinigte IsaA-Protein verwendet, um ein Kaninchen zu immunisieren. Mit den daraus gewonnenen Antikörpern wurden dann erste Tierversuche begonnen, um die Bedingungen für den therapeutischen Einatz von gegen IsaA-gerichteten Antikörpern zu ermitteln und die Wirksamkeit einer Antikörper-Behandlung zu evaluieren. Für die Herstellung der gewünschten Proteine wurden die Gensequenzen zunächst aus verschiedenen S. aureus-Stämmen mittels PCR amplifiziert und in den kommerziellen Expressionsvektor pQE30 kloniert. Die amplifizierte Gensequenz stammt aus den klinischen Stämmen 418 (IsaA) bzw. 134 (IsaB). Nach der Klonierung wurden geeignete Expressions- und Reinigungsstrategien entwickelt. Dabei wurden folgende Bedingungen als optimal für Wachstum und Überexpression herausgearbeitet: IsaA: Induktion der Überexpression mit 100 µM IPTG, 3 h Wachstum bei 37°C. IsaB: Induktion der Überexpression mit 100 µM IPTG, 4 h Wachstum bei 37°C. Es stellte sich auch heraus, dass IsaA zunächst in nur unzureichender Quantität vorhanden bzw. exprimiert worden war. Die Vermutung, dass IsaA überwiegend im Pellet in sogenannten Einschlusskörpern (inclusion bodies) eingeschlossen war, erklärte dieses Phänomen. Das Protein konnte erfolgreich aus dem Pellet isoliert werden. Die Produktion und Aufreinigung beider Proteine IsaA und IsaB unter optimierten Bedingungen ergab, dass beide Proteine nun in ausreichender Menge und Konzentration für die folgende Immunisierung und die weiteren Arbeiten vorlagen. Aus Kaninchen, die mit IsaA immunisiert wurden, konnten polyklonale Antikörper gewonnen werden, die die Grundlage für einen ersten Tierversuch mit 24 Ratten bildeten. Hierbei zeigte sich, dass die Tiere, die mit 1.000.000.000 Bakterien infiziert worden waren deutlich stärkere Infektionszeichen aufwiesen als diejenigen, die mit 100.000.000 Bakterien infiziert worden waren. Weiterhin wurde deutlich, dass die Tiere, die Serum (mit Antikörper gegen IsaA) erhalten hatten, gegenüber den Vergleichstieren mit Placebo einen deutlichen Vorteil hinsichtlich Infektionszeichen und Immunantwort hatten. Somit belegen die tierexperimentiellen Ergebnisse in dieser Arbeit erstmalig den therapeutischen Nutzen von Antikörpern gegen IsaA. IsaA ist demnach ein geeignetes Target für eine Immuntherapie gegen S. aureus.