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Analyse der Funktion der dualen Lokalisation der 3-Mercaptopyruvat Sulfurtransferase im Menschen
(2017)
Rubisco catalyses the first step of CO2 assimilation into plant biomass. Despite its crucial role, it is notorious for its low catalytic rate and its tendency to fix O2 instead of CO2, giving rise to a toxic product that needs to be recycled in a process known as photorespiration. Since almost all our food supply relies on Rubisco, even small improvements in its specificity for CO2 could lead to an improvement of photosynthesis and ultimately, crop yield. In this work, we attempted to improve photosynthesis by decreasing photorespiration with an artificial CCM based on a fusion between Rubisco and a carbonic anhydrase (CA).
A preliminary set of plants contained fusions between one of two CAs, bCA1 and CAH3, and the N- or C-terminus of RbcL connected by a small flexible linker of 5 amino acids. Subsequently, further fusion proteins were created between RbcL C-terminus and bCA1/CAH3 with linkers of 14, 23, 32, and 41 amino acids. The transplastomic tobacco plants carrying fusions with bCA1 were able to grow autotrophically even with the shortest linkers, albeit at a low rate, and accumulated very low levels of the fusion protein. On the other hand, plants carrying fusions with CAH3 were autotrophic only with the longer linkers. The longest linker permitted nearly wild-type like growth of the plants carrying fusions with CAH3 and increased the levels of fusion protein, but also of smaller degradation products.
The fusion of catalytically inactive CAs to RbcL did not cause a different phenotype from the fusions with catalytically active CAs, suggesting that the selected CAs were not active in the fusion with RbcL or their activity did not have an effect on CO2 assimilation. However, fusions to RbcL did not abolish RbcL catalytic activity, as shown by the autotrophic growth, gas exchange and in vitro activity measurements. Furthermore, Rubisco carboxylation rate and specificity for CO2 was not altered in some of the fusion proteins, suggesting that despite the defect in RbcL folding or assembly caused by the fusions, the addition of 60-150 amino acids to RbcL does not affect its catalytic properties. On the contrary, most growth defects of the plants carrying RbcL-CA fusions are related to their reduced Rubisco content, likely caused by impaired RbcL folding or assembly. Finally, we found that fusions with RbcL C-terminus were better tolerated than with the N-terminus, and increasing the length of the linker relieved the growth impairment imposed by the fusion to RbcL. Together, the results of this work constitute considerable relevant findings for future Rubisco engineering.
Chloroplast membranes have a unique composition characterized by very high contents of the galactolipids, MGDG and DGDG. Many studies on constitutive, galactolipid-deficient mutants revealed conflicting results about potential functions of galactolipids in photosynthetic membranes. Likely, this was caused by pleiotropic effects such as starvation artefacts because of impaired photosynthesis from early developmental stages of the plants onward. Therefore, an ethanol inducible RNAi-approach has been taken to suppress two key enzymes of galactolipid biosynthesis in the chloroplast, MGD1 and DGD1. Plants were allowed to develop fully functional source leaves prior to induction, which then could support plant growth. Then, after the ethanol induction, both young and mature leaves were investigated over time.
Our studies revealed similar changes in both MGDG- and DGDG-deficient lines, however young and mature leaves of transgenic lines showed a different response to galactolipid deficiency. While no changes of photosynthetic parameters and minor changes in lipid content were observed in mature leaves of transgenic lines, strong reductions in total chlorophyll content and in the accumulation of all photosynthetic complexes and significant changes in contents of various lipid groups occurred in young leaves. Microscopy studies revealed an appearance of lipid droplets in the cytosol of young leaves in all transgenic lines which correlates with significantly higher levels of TAGs. Since in young leaves the production of membrane lipids is lowered, the excess of fatty acids is used for storage lipids production, resulting in the accumulation of TAGs.
Our data indicate that both investigated galactolipids serve as structural lipids since changes in photosynthetic parameters were mainly the result of reduced amounts of all photosynthetic constituents. In response to restricted galactolipid synthesis, thylakoid biogenesis is precisely readjusted to keep the proper stoichiometry and functionality of the photosynthetic apparatus. Ultimately, the data revealed that downregulation of one galactolipid triggers changes not only in chloroplasts but also in the nucleus as shown by downregulation of nuclear encoded subunits of the photosynthetic complexes.
Plant cells host two important organelles: mitochondria, known as the cell’s ‘powerhouse’, which act by converting oxygen and nutrients into ATP, and plastids, which perform photosynthesis. These organelles contain their own genomes that encode proteins required for gene expression and energy metabolism. Transformation technologies offer great potential for investigating all aspects of the physiology and gene expression of these organelles in vivo. In addition, organelle transformation can be a valuable tool for biotechnology and molecular plant breeding. Plastid transformation systems are well-developed for a few higher plants, however, mitochondrial transformation has so far only been reported for Saccharomyces cerevisiae and the unicellular alga Chlamydomonas reinhardtii.
Development of an efficient new selection marker for plastid transformation is important for several reasons, including facilitating supertransformation of the plastid genome for metabolic engineering purposes and for producing multiple knock-outs or site-directed mutagenesis of two unlinked genes. In this work, we developed a novel selection system for Nicotiana tabacum (tobacco) chloroplast transformation with an alternative marker. The marker gene, aac(6′)-Ie/aph(2′′)-Ia, was cloned into different plastid transformation vectors and several candidate aminoglycoside antibiotics were investigated as selection agents. Generally, the efficiency of selection and the transformation efficiency with aac(6′)-Ie/aph(2′′)-Ia as selectable marker in combination with the aminoglycoside antibiotic tobramycin was similarly high as that with the standard marker gene aadA and spectinomycin selection. Furthermore, our new selection system may be useful for the development of plastid transformation for new species, including cereals, the world’s most important food crops, and could also be helpful for the establishment of a selection system for mitochondrial transformation.
To date, all attempts to achieve mitochondrial transformation for higher plants have been unsuccessful. A mitochondrial transformation system for higher plants would not only provide a potential for studying mitochondrial physiology but could also provide a method to introduce cytoplasmic male sterility into crops to produce hybrid seeds. Establishing a stable mitochondrial transformation system in higher plants requires several steps including delivery of foreign DNA, stable integration of the foreign sequences into the mitochondrial genome, efficient expression of the transgene, a highly regenerable tissue culture system that allows regeneration of the transformed cells into plants, and finally, a suitable selection system to identify cells with transformed mitochondrial genomes. Among all these requirements, finding a good selection is perhaps the most important obstacle towards the development of a mitochondrial transformation system for higher plants. In this work, two selection systems were tested for mitochondrial transformation: kanamycin as a selection system in combination with the antibiotic-inactivating marker gene nptII, and sulfadiazine as a selection agent that inhibits the folic acid biosynthesis pathway residing in plant mitochondria in combination with the sul gene encoding an enzyme that is insensitive to inhibition by sulfadiazine. Nuclear transformation experiments were considered as proof of the specificity of the sulfadiazine selection system for mitochondria. We showed that an optimized sulfadiazine selection system, with the Sul protein targeted to mitochondria, is much more efficient than the previous sulfadiazine selection system, in which the Sul protein was targeted to the chloroplast. We also showed by systematic experiments that the efficiency of selection and nuclear transformation of the optimized sulfadiazine selection was higher compared to the standard kanamycin selection system. Finally, we also investigated the suitability of this selection system for nuclear transformation of the model alga Chlamydomonas reinhardtii, obtaining promising results. Although we designed several mitochondrial transformation vectors with different expression elements and integration sites in the mitochondrial genome based on the sulfadiazine system, and different tissue culture condition were also considered, we were not able to obtain mitochondrial transformation with this system. Nonetheless, establishing the sul gene as an efficient and specific selection marker for mitochondria addresses one of the major bottlenecks and may pave the way to achieve mitochondrial transformation in higher plants.
Die Hybridomtechnik zur Produktion von monoklonalen Antikörpern ermöglichte einen großen Schritt in der Entwicklung von Immunoassays für die biochemische Forschung und klinische Diagnostik. Auch die Produktion von Antikörpern gegen niedermolekulare Analyten, Haptene, typische Targets in der Lebensmittel- und Umweltanalytik, erlangte in den letzten Jahren eine immer größere Bedeutung. Im Zuge der Durchführung der Hybridomtechnik werden tausende Antikörper-sezernierende und nicht-sezernierende Zellen generiert. Die Selektion der wenigen antigenselektiven Hybridomzellen zählt dabei zu den herausforderndsten Schritten für die Antikörpergewinnung. Bisherige Selektionsverfahren, wie die Limiting-Dilution-Klonierung in Verbindung mit Enzyme-linked Immunosorbent Assays (ELISAs), garantieren keine Monoklonalität und erlauben nur das Screening von einigen wenigen Zellklonen. Hingegen ermöglichen Hochdurchsatz-Selektionsmethoden, wie die Fluoreszenz-aktivierte Zellsortierung (FACS), einen sehr hohen Probendurchsatz. Eine Einzelzellablage garantiert hierbei Monoklonalität. Jedoch sind die dafür erforderlichen Zellmarkierungen oftmals zellschädigend oder aufwendig zu generieren. Auch ist bisher noch keine Markierungsmethode bekannt, die es ermöglicht, Hapten-selektive Hybridomzellen durchflusszytometrisch zu analysieren und eine FACS-Selektion durchzuführen.
Aus diesem Grund wurden in dieser Arbeit zwei Zellmarkierungsmethoden entwickelt, die dies ermöglichen sollten. Die membranständigen Antikörper von Hybridomzellen sollten entweder direkt oder indirekt immunfluoreszenz-markiert und dadurch für die Durchflusszytometrie und FACS-Selektion zugänglich gemacht werden. Die direkte Markierung wurde mittels eines Hapten-Fluorophor-Konjugats durchgeführt. Sie ermöglichte erstmalig den Anteil an Haptenselektiven Hybridomzellen in einer Hybridomzelllinie zu überprüfen. Dies konnte für zwei Hapten-selektive Hybridomzelllinien, die Antikörper gegen das Hormon 17β-Estradiol und das Cardenolid Digoxigenin bilden, gezeigt werden. Durchflusszytometrie und ELISAs lieferten vergleichbare Ergebnisse. Zellen, die Hapten-selektiv markiert werden konnten, sezernierten ebenfalls Hapten-selektive Antikörper. Des Weiteren konnte die direkte Markierung dazu genutzt werden, zwei Mykotoxin-selektive Hybridomzelllinien, welche Antikörper gegen Aflatoxin und Zearalenon bilden, auf Monoklonalität zu testen. Dies ist mittels ELISA nicht möglich. Die Markierungsmethode eignete sich jedoch nur für fixierte Hybridomzellen. Eine Markierung von lebenden Zellen konnte weder durchflusszytometrisch noch mittels konfokaler Laser-Scanning-Mikroskopie gezeigt werden.
Dies gelang erst mit einer neu entwickelten indirekten Immunfluoreszenzmarkierung. Dabei wurden die Zellen zunächst mit einem Hapten-Peroxidase-Konjugat inkubiert, gefolgt von einem Fluorophor-markierten anti-HRP-Antikörper-Konjugat. Dies wurde für zwei Analyten, das Hormon Estron und das Antiepileptikum Carbamazepin, gezeigt. Die indirekte Markierung wurde erfolgreich dazu verwendet, Carbamazepin-selektive Hybridomzellen aus einem Fusionsansatz für die monoklonale Antikörperproduktion auszusortieren. Damit wurde erstmalig eine Zellmarkierungsmethode entwickelt, die eine Hochdurchsatz-Selektion lebender Hybridomzellen aus einem Fusionsansatz ermöglicht. Sie ist nicht zellschädigend und kann zusätzlich zur Selektion Hapten-selektiver Plasmazellen verwendet werden.