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Gene therapy has garnered increasing interest over recent decades. Several therapies employing gene transfer mechanisms have been developed, and, of these, adeno-associated virus (AAV) vectors have demonstrated viability for use with in vivo gene therapy. Several AAV-based therapeutics have received regulatory approval in the last few years including those for retinal disease, spinal muscular atrophy or aromatic L-amino acid decarboxylase deficiency. Lately, with the introduction of novel liver-directed AAV vector-based therapeutics for the treatment of haemophilia A and B, gene therapy has attracted significant attention in the hepatology community, with the liver increasingly recognised as a target for gene therapy. However, the introduction of foreign DNA into hepatocytes is associated with a risk of hepatic reactions, with raised ALT (alanine aminotransferase) and AST (aspartate aminotransferase) being – so far – the most commonly reported side effects. The complete mechanisms underlying the ALT flairs remain to be determined and the long-term risks associated with these new treatments is not yet known. The liver community is increasingly being asked to support liver-directed gene therapy to mitigate potential liver associated harm. In this review, we focus on AAV vector-based gene therapy, shedding light on this promising technique and its remarkable success in haemophilia, with a special focus on hepatic complications and their management in daily clinical practice.
Chapter I of this work addressed the piggyBac (PB) transposon system, a non-viral genome engineering tool that is capable of efficiently performing stable integration of DNA sequences into a target cells genome and has already been used in clinical trials. However, the PB transposase has the problematic property of preferentially integrating transposons near transcriptional start sites (TSSs). This increases the likelihood of causing genotoxic effects, limiting its potential use as a tool in clinical applications. It has been shown in the past that the PB transposase shows physical interactions with BET proteins (e.g. BRD4) through Co-IP experiments. Representatives of these proteins are part of the transcriptional activation complex and are abundant at TSSs. Accordingly, it was previously proposed that this interaction is the underlying cause for the biased integration preference. For the first chapter of this thesis, the goal was to disrupt this interaction potentially modifying said integration preference. A secondary structure hypothesized to be mainly responsible for said interaction was extensively mutated resulting in several PB variants that were analyzed for their interaction capacity through a series of Co-IP experiments with BRD4. In total, seven substitutions were identified (E380F, V390K, T392Y, M394R, K407C, K407Q, and K407V) which exhibited reduced interaction capacity with BRD4. Each of the aforementioned mutants were used to generate integration libraries and, through NGS, it was determined if the integration preferences of the respective mutants had changed. In the immediate range 200 base pairs up- and downstream from known TSSs all mutants used exhibited a reduced integration bias. At a wider observation window 3 kbp up- and downstream from TSSs, further mutants with the substitutions M394R, T392Y and V390K showed a reduction in integration frequency of 17.3%, 1.5% and 5.4%, respectively, compared to the wildtype. Of particular note was the M394R mutant, which showed a reduction in all window sizes analyzed with a maximum of 65% less integration preference in the immediate vicinity of TSSs, theoretically generating a safety advantage over the wildtype transposase.
Chapter II was dedicated to the overall safety improvement for transposon-based gene modification and addresses the time point after the transgene has already been integrated and serious side effects may not be preventable. With this in mind, the aim was to develop a novel suicide-switch that can be stably introduced into cells via transposition, and reliably leads to cell death of the modified cells once activated. A system based on CRISPR/Cas9 was developed, where single guide RNAs were used to guide the Cas9 nuclease to Alu elements. These are short, repetitive sequences, which are distributed over the human genome in more than one million copies. Inducing double strand breaks within these elements would lead to genomic fragmentation and cell death. To be inducible, a transcriptional as well as post- translational control mechanism was added. Transcription of the Cas9 nuclease was regulated using a tet-on system, making expression dependent on doxycycline (DOX) supplementation. Furthermore, a version of the Cas9 nuclease called arC9 was used that allows double strand break generation only in the presence of 4-Hydroxytamoxifen (4-HT). Together with an expression cassette for the Alu-specific guide RNA and an expression cassette for the reverse tetracycline controlled transactivator all components were arranged between transposase-specific recognition sequences on a plasmid to allow transposon-system based gene transfer. The system was tested in HeLa cells. First, conditional expression of the arC9 nuclease was confirmed by addition of 1 μg/ml DOX. Second, the suicide-switch was further induced by adding 200 nM 4-HT and protein extracts were assayed for the KAP1 phosphorylation. Only upon induction with DOX and 4-HT phosphorylated KAP1 was detected, indicating DNA damage. Further, extensive growth and survival experiments were conducted to determine the effect of suicide-switch induction on cell proliferation and survival. Between 24 and 48 hours after induction, a halt in cell division was detected, after which extensive cell death was observed. Within 5 days post induction, >99% of all cells were eliminated. In the absence of both inducers, no significant differences in survival were observed compared to control cells line lacking Alu-specific guide RNAs. Microscopic examinations of the <1% surviving cell fraction revealed a senescence-associated phenotype and showed no signs of resumption of the cell division process. Accordingly, the second chapter of this thesis also achieved its goal in developing a functional suicide-switch that can be inserted into human cells via transposition, is highly dependent on the necessary induction signals, and exhibits excellent elimination capabilities in the context tested.
Hematopoietic stem cell transplantation (HSCT) is the therapeutic concept to cure the blood/immune system of patients suffering from malignancies, immunodeficiencies, red blood cell disorders, and inherited bone marrow failure syndromes. Yet, allogeneic HSCT bear considerable risks for the patient such as non-engraftment, or graft-versus host disease. Transplanting gene modified autologous HSCs is a promising approach not only for inherited blood/immune cell diseases, but also for the acquired immunodeficiency syndrome. However, there is emerging evidence for substantial heterogeneity of HSCs in situ as well as ex vivo that is also observed after HSCT. Thus, HSC gene modification concepts are suggested to consider that different blood disorders affect specific hematopoietic cell types. We will discuss the relevance of HSC heterogeneity for the development and manufacture of gene therapies and in exemplary diseases with a specific emphasis on the key target HSC types myeloid-biased, lymphoid-biased, and balanced HSCs.
New technologies and therapies designed to facilitate development of personalized treatments are rapidly emerging in the field of biomedicine. Strikingly, the goal of personalized medicine refined the concept of therapy by developing cell-based therapies, the so-called “living drugs”. Breakthrough advancements were achieved in this regard in the fields of gene therapy, cell therapy, tissue-engineered products and advanced therapeutic techniques. The Advanced Therapies in Healthcare symposium, organized by the Clinical Research Center Department of Sidra Medicine, in Doha, Qatar (October 2017), brought together world-renowned experts from the fields of oncology, hematology, immunology, inflammation, autoimmune disorders, and stem cells to offer a comprehensive picture of the status of worldwide advanced therapies in both pre-clinical and clinical development, providing insights to the research phase, clinical data and regulatory aspects of these therapies. Highlights of the meeting are provided in this meeting report.
In jüngster Zeit werden vom humanen Immundefizienzvirus-1-abgeleitete lentivirale Vektoren auch in der Gentherapie eingesetzt. Obwohl diese Vektoren nicht-mitotische Zellen transduzieren können, sind sie für einen Gentransfer in primäre ruhende Zellen oft nicht geeignet. In der Abteilung „Medizinische Biotechnologie“ des Paul-Ehrlich-Insituts wurde ein vom simianen Immundefizienzvirus SIVsmmPBj-abgeleiteter lentiviraler Vektor entwickelt, welcher im Gegensatz zu HIV-1-abgeleiteten Vektoren effizient in der G0-Phase des Zellzyklus arretierte humane Fibroblasten und humane primäre Monozyten transduzieren kann (Mühlebach et al., 2005). Im dieser Arbeit wurde das Potenzial dieses neuen Vektors für mögliche Anwendungen in der Gentherapie untersucht, indem seine Transduktionsfähigkeit für weitere primäre Zellen bestimmt wurde. Dabei waren humane hämatopoetische Stammzellen von besonderem Interesse, da sie die Vorläuferzellen aller Zellen des Blutes sind und die Eigenschaft zur Selbsterneuerung besitzen. Die Effizienz des Gentransfers in unstimulierten Stammzellen mit dem SIVsmmPBj-Vektor war jedoch nicht höher als mit anderen lentiviralen Vektoren. Interessanterweise konnte aber ein Einfluss der lentiviralen Vektoren auf das in vitro-Differenzierungspotenzial der transduzierten Stammzellen in die verschiedenen Vorläuferzellen beobachtet werden: Nach Transduktion mit dem SIVsmmPBj- und einem HIV-2-abgeleiteten Vektor differenzierten die Stammzellen bevorzugt in granulozytäre Vorläuferzellen, während die Transduktion mit einem HIV-1-abgeleiteten Vektor die Anzahl aller Vorläuferzellen deutlich reduzierte und insbesonders die Differenzierung in Makrophagenvorläuferzellen verminderte. Zur Untersuchung ihres Differenzierungs-potenzials in vivo wurden transduzierte hämatopoetische Stammzellen zur Repopulierung des Knochenmarks von NOD/SCID-Mäusen eingesetzt. Hierbei wurde jedoch kein Einfluss der verschiedenen lentiviralen Vektoren auf die Differenzierung der Stammzellen beobachtet. Allerdings konnte nur in einem sehr geringen Anteil der transplantierten Zellen eine Expression des übertragenen Gens nachgewiesen werden, so dass nicht ausgeschlossen werden kann, dass die transduzierten Zellen die Fähigkeit zur Repopulierung verloren hatten. Insgesamt ist jedoch zu sagen, dass entgegen der Erwartungen der neue Vektor keinen Vorteil gegenüber HIV-1-Vektoren zur Transduktion von hämatopoetischen Stammzellen aufweist. Weiter wurde die Transduktionsfähigkeit des SIVsmmPBj-Vekors für humanen B-Lymphozyten, Makrophagen und dendritische Zellen untersucht. Auf ruhenden B-Lymphozyten besaß der SIVsmmPBj-Vektor keinen Transduktionsvorteil gegenüber einem HIV-1-abgeleiteten Vektor, während Makrophagen und dendritische Zellen mit signifikant höherer Effizienz transduziert werden konnten. Die hohe Transduktionseffizienz des SIVsmmPBj-Vektors für Monozyten und dendritische Zellen eröffnet die Möglichkeit einer Anwendung in der Immuntherapie, da dendritische Zellen die professionellsten und effektivsten Antigen-präsentierenden Zellen sind. Daher wurde die generelle Eignung des SIVsmmPBj-Vektors für immuntherapeutische Anwendungen untersucht. Ein Tumor-assoziiertes Antigen (Mart-1) wurde in Monozyten übertragen und die transduzierten Zellen zu reifen dendritischen Zellen maturiert. Diese Zellen besaßen die Fähigkeit, Antigen-spezifische zytotoxische T-Zellen zu generieren, deren Funktion durch Sekretion von Zytokinen, in Einzelfällen auch durch spezifische Lyse von Mart-exprimierenden Tumorzellen nachgewiesen wurde. Weiterhin wurde gezeigt, dass nach Transduktion von Monozyten und deren Differenzierung zu Makrophagen auch diese prinzipiell in der Lage sind, Antigen-spezifische zytotoxische T-Zellen zu generieren. Obwohl hier keine vergleichenden Untersuchungen zur Effizienz des T-Zell-Primings durchgeführt werden konnten, ist die prinzipielle Eignung des SIVsmmPBj-abgeleiteten Vektors für eine Immuntherapie damit nachgewiesen. Schließlich wurde untersucht, ob die Maus oder nicht-menschliche Primaten als Tiermodelle für eine mögliche Weiterentwicklung des Vektors in Frage kommen. Murine Monozyten konnten jedoch nicht effizient transduziert werden. Hingegen erwies sich der SIVsmmPBj-Vektor als gut geeignet zur Transduktion von simianen Monozyten, so dass ein Affenmodell für Anwendungen des SIVsmmPBj-Vektors, wie beispielsweise zur Tumor-Immuntherapie oder für Vakzinierungsstudien, in Frage kommt.