Abteilung für Molekulare Innere Medizin (in der Medizinischen Klinik und Poliklinik II)
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Keywords
- Antigen CD40 (1)
- Antikörper (1)
- CD20 (1)
- CD40 (1)
- Cytotoxischer Antikörper (1)
- Dendritische Zelle (1)
- IL-12 (1)
- Immuntherapie (1)
- Kokultur (1)
- Leukämie (1)
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.
Entwicklung CD40/DC-stimulierender rekombinanter Proteine mit Tumorantigen-restringierter Aktivität
(2013)
Dendritische Zellen (DC) sind spezielle Antigen-präsentierende Zellen und daher oft auch in die körpereigene Bekämpfung von Tumoren involviert. Über das CD40-CD40L-System stellen sie ein Ziel in der Tumorimmuntherapieforschung dar. CD40-spezifische Antikörper bewirken jedoch aufgrund der systemischen CD40-Aktivierung schwere Nebenwirkungen. Ziel dieser Arbeit war es deshalb, mit Hilfe von Tumor-spezifischen scFvs (antigenbindenden Einzelkettenfragmenten) Fusionsproteine zu generieren, die ausschließlich bzw. stark bevorzugt Tumor-lokalisiert dendritische Zellen aktivieren. In dieser Arbeit wurde anhand von Kokulturen von Tumorantigen-positiven Tumorzellen mit dendritischen Zellen gezeigt, dass dies möglich ist. Das hierfür generierte Fusionsprotein anti-CD20-Flag-CD40L führte CD20-restringiert, d.h. bei gleichzeitiger Bindung von CD20-positiven Tumorzelllinien (B-Zelllinien) zu einer deutlich verstärkten Aktivierung der DC. Mit einem solchen Fusionsprotein ist nun grundsätzlich die Möglichkeit vorhanden, DCs Tumorantigen-abhängig, das heißt im Tumorgewebe selbst verstärkt zu stimulieren. Die auf diese Weise aktivierten DCs können nun aufgrund der induzierten Veränderungen (IL-12-Produktion, Hochregulation kostimulierender Moleküle) Tumor-lokalisiert eine lokale, auf den Tumor begrenzte Immunantwort auslösen. Auf diese Weise sollte es möglich werden, Nebenwirkungen einer systemischen CD40-Aktivierung zu vermeiden bzw. zu reduzieren. Zudem stellt der Einsatz von anti-CD20-Flag-CD40L möglicherweise sogar eine Option zur Behandlung maligner B-Zell-Lymphome sowie Rituximab-resistenter Lymphome dar.