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Einige Arten der Braun- und Weißfäulepilze sind in der Lage, selektiv entweder Lignin oder Cellulose im Holz abzubauen. Diese Pilze können für eine energiesparende Vorbehandlung lignocellulosehaltiger Biomasse für Bioraffinerien genutzt werden, ohne auf technisch aufwändige Aufschlussapparate zurückgreifen zu müssen. Weißfäulepilze bauen bevorzugt Lignin ab, wodurch die verbleibende Cellulose leichter für enzymatische Hydrolysen in das Monosaccharid Glucose zugänglich wird. Braunfäulepilze bauen dagegen Cellulose und Hemicellulose ab. Die Auswirkungen der Behandlung von Weizenstroh mit verschiedenen Pilzarten werden zurzeit untersucht. Dabei werden die Veränderung der enzymatischen Hydrolysierbarkeit des Substrats sowie die gebildeten Ligninderivate bestimmt. Detaillierte Betrachtungen der Biomasseveränderung werden mithilfe spezifischer Färbemethoden durchgeführt, durch die morphologische Veränderungen der Pflanzengewebe in der 3D-Lichtmikroskopie dargestellt werden können.
Die Teilefertigung durch Rapid Prototyping (RP) verkürzt den Weg von der Idee bis zum Produkt, wobei unter anderem Optimierungszyklen in geringer Zeit durchlaufen werden können. Ferner eröffnen neue Entwicklungen in diesem Bereich die Möglichkeit individueller Produktionsverfahren. Im Unterschied zur klassischen Fertigung von Prototypen wird beim RP mit additiver Schichtfertigung (Additive Layer Manufacturing, ALM) gearbeitet. Je nach Methode werden Flüssigkeiten oder Pulver nach Vorgaben eines 3D-Computermodells sequentiell aufgetragen. Diese Verfahren existieren seit ca. 25 Jahren, jedoch sind seit kurzem ausgesprochen günstige Geräte verfügbar, die Objekte mit Genauigkeiten bis 20 lm fertigen können. Das RP hat in klinischen Anwendungsgebieten bzw. im Bereich des Tissue Engineering bereits vielfach Einzug gefunden. Aber auch chemisch-biotechnologische Entwicklungen können von den Verfahren profitieren. So wurden Mikrofluidiksysteme und Bioreaktoren bereits erfolgreich durch RP gefertigt. Durch ALM ist ebenso die Herstellung von Reaktionseinheiten aus biokompatiblen Materialien wie ionotropen Gelen möglich. Ferner sind sehr komplexe Strukturierungen von Oberflächen im Nanometerbereich realisierbar, die für die Auftragung heterogener Katalysatoren oder auch Mikroorganismen eingesetzt werden können. Auch der Bereich Reaktoren- und Apparatebau kann von den Fortschritten in der additiven Fertigung profitieren. Verfahren wie selektives Laser- oder Elektronenstrahlschmelzen erlauben es, metallische Komponenten in nahezu beliebigen Geometrien zu fertigen. Somit können Strukturen verwirklicht werden, die mit konventionellen Fertigungstechniken nur sehr schwer oder überhauptnicht herstellbar wären. Durch Anwendung von rechnergestützter Modellierung können optimale Strukturen identifiziert und additiv gefertigt werden. Eine anschließende katalytische Funktionalisierung der Oberfläche ermöglicht die Herstellung strukturierter Reaktoren mit maßgeschneiderten Eigenschaften.
Primäre Ziele der Hydrolyse pflanzlicher nachwachsender Rohstoffe sind möglichst hohe Zuckerkonzentrationen für nachfolgende Fermentationen und eine Maximierung der Produktivität. Zur Optimierung dieser Prozesse wird Organosolv-aufgeschlossene Buchenholz-Cellulose verwendet. Die Hydrolyse des Faserstoffes erfolgt mithilfe von Novozymes CTec2-Enzymen. Die Hydrolysen konnten durch neue Rührerelemente auf einen Maßstab von 1000 L übertragen werden. Dabei konnten maximale Ausbeuten (g Glucose g –1 Glucose im Faserstoff) bis 81 g g – 1 und Konzentrationen von 152 g L –1 erreicht werden. Zurzeit können unter Einsatz eines Feststoffreaktors Cellulosefasern in einer Konzentration bis 400 g L –1 enzymatisch hydrolysiert werden. Die cellulolytischen Enzyme stoßen bei hohen Feststoffkonzentrationen an ihre Grenzen. Mit steigendem Feststoffgehalt nimmt die Hydrolyseausbeute ab. Ein Ansatz zur Steigerung der Effizienz ist der Einsatz ligninolytischer Enzyme, die Ligninreste an der Organosolv-Cellulose aufschließen können. Eine solche Verbesserung der Zugänglichkeit für cellulolytische Enzyme an ihr Substrat wurde durch Kulturüberstände verschiedener ligninolytischer Pilze erreicht. Mit Kulturüberständen von Stereum sp. sind Steigerungen der Glucoseausbeuten um bis zu 30 % möglich.
Prozessintegrierte Magnetseparation im Labormaßstab mittels High-Gradient Magnetic Separator (HGMS)
(2014)
Die Hochgradient-Magnetseparation (HGMS) stellt eine Alternative zu konventionellen Methoden der Proteinaufarbeitung wie Filtration und Chromatographie dar und dient zudem als Prozessintensivierung. Bisherige Separatoren sind für Anwendungen von mehreren Litern Prozessvolumina Fermentationsmedium und Gramm Magnetpartikel ausgelegt. Bei der Entwicklung und Anwendung neuartiger Magnetpartikeloberflächen ist die Verfügbarkeit großer Mengen nicht gegeben. Bisherige Filterkammern erhöhen zudem den Arbeitsaufwand und verursachen größere Partikelverluste bei Spülvorgängen oder der Reinigung aufgrund der Partikeladsorption. Für Anwendungen im Maßstab < 500 mL wird deshalb ein Miniatur-Hochgradientfilter (miniHGF) entwickelt. Das Modell wird im 3D-Drucker Makerbot Replicator 2 gefertigt und magne-isierbare Drähte zur Partikelabscheidung eingesetzt. Die Vergleichbarkeit mit einem etablierten Magnetseparator wird anhand der Aufnahme von Durchbruchskurven und Bestimmung der Filtereffizienz untersucht. Die Praxistauglichkeit mit kleinen Volumina wird in wiederholten Batch-Versuchen mit auf Magnetpartikeln immobilisiertem Enzym und einem kolorimetrischen Assay geprüft.
Der zunehmende Bedarf an fossilen Rohstoffen bei gleichzeitig abnehmender Versorgungssicherheit führt zu einer intensiven Suche nach erneuerbaren Ressourcen. Ein vielversprechendes Ausgangsmaterial mit einer weltweiten Verfügbarkeit stellt Gras dar. In 2012 wurden in Deutschland 33 Millionen Tonnen (Heugewicht) Gras auf 4,82 Millionen Hektar Ackerland produziert, davon wurden 60,5 % siliert. Durch die Silierung kann Gras als Substrat zeitlich uneingeschränkt verfügbar sein, ohne dem Risiko des schnellen Verderbs ausgesetzt zu sein. Eine Schlüsselrolle im Rahmen des Silierprozesses nimmt die Produktion von Milchsäure ein. Milchsäure ist einbedeutendes biotechnologisches Produkt für die Lebensmittel- und die chemische Industrie. Im Rahmen dieser Arbeit wird die vollständige Umwandlung der fermentierbaren Zucker in der Silage zu Milchsäure angestrebt, um die maximale Ausbeute der organischen Säure zu erreichen. Im ersten Verfahrensschritt wird die Silage gepresst und der erhaltene Presskuchen einer Liquid-Hot-Water-Behandlung unterzogen. Durch diese einfache Vorbehandlung können hohe Glucoseausbeuten im nachfolgenden SSF-Schritt bei gleichzeitig geringem Enzymeinsatz und Chemikalienverbrauch realisiert werden. Zur Aufreinigung der Milchsäure wurden extraktive und chromatographische Methoden untersucht.
An enzyme-based multi-parameter biosensor is developed for monitoring the concentration of formate, d-lactate, and l-lactate in biological samples. The sensor is based on the specific dehydrogenation by an oxidized β-nicotinamide adenine dinucleotide (NAD+)-dependent dehydrogenase (formate dehydrogenase, d-lactic dehydrogenase, and l-lactic dehydrogenase, respectively) in combination with a diaphorase from Clostridium kluyveri (EC 1.8.1.4). The enzymes are immobilized on a platinum working electrode by cross-linking with glutaraldehyde (GA). The principle of the determination scheme in case of l-lactate is as follows: l-lactic dehydrogenase (l-LDH) converts l-lactate into pyruvate by reaction with NAD+. In the presence of hexacyanoferrate(III), the resulting reduced β-nicotinamide adenine dinucleotide (NADH) is then regenerated enzymatically by diaphorase. The electrochemical detection is based on the current generated by oxidation of hexacyanoferrate(II) at an applied potential of +0.3 V vs. an Ag/AgCl reference electrode. The biosensor will be electrochemically characterized in terms of linear working range and sensitivity. Additionally, the successful practical application of the sensor is demonstrated in an extract from maize silage.
Poly(N-isopropylacrylamide) (PNIPAAm) hydrogel films with incorporated graphene oxide (GO) were developed and tested as light-stimulated actuators. GO dispersions were synthesized via Hummers method and characterized toward their optical properties and photothermal energy conversion. The hydrogels were prepared by means of photopolymerization. In addition, the influence of GO within the hydrogel network on the lower critical solution temperature (LCST) was investigated by differential scanning calorimetry (DSC). The optical absorbance and the response to illumination were determined as a function of GO concentration for thin hydrogel films. A proof of principle for the stimulation with light was performed.
An amperometric enzyme biosensor has been applied for the detection of adrenaline. The adrenaline biosensor has been prepared by modification of an oxygen electrode with the enzyme laccase that operates at a broad pH range between pH 3.5 to pH 8. The enzyme molecules were immobilized via cross-linking with glutaraldehyde. The sensitivity of the developed adrenaline biosensor in different pH buffer solutions has been studied.
Lately there has been an increasing concern about uranium toxicity in some districts of Punjab State located in the North Western part of India after the publication of a report (Blaurock-Busch et al. 2010) which showed that the concentration of uranium in hair and urine of children suffering from physical deformities, neurological and mental disorder from Malwa region (Fig. 1) of Punjab State was manifold higher than the reference ranges. A train which connects the affected region with the nearby city of Bikaner which has a Cancer Hospital has been nicknamed as Cancer Express due to the frenzy generated on account of uranium related toxicity.
We present an electromechanically coupled Finite Element model for cardiac tissue. It bases on the mechanical model for cardiac tissue of Hunter et al. that we couple to the McAllister-Noble-Tsien electrophysiological model of purkinje fibre cells. The corresponding system of ordinary differential equations is implemented on the level of the constitutive equations in a geometrically and physically nonlinear version of the so-called edge-based smoothed FEM for plates. Mechanical material parameters are determined from our own pressure-deflection experimental setup. The main purpose of the model is to further examine the experimental results not only on mechanical but also on electrophysiological level down to ion channel gates. Moreover, we present first drug treatment simulations and validate the model with respect to the experiments.
A new microfluidic assembly method for semiconductor-based biosensors using 3D-printing technologies was proposed for a rapid and cost-efficient design of new sensor systems. The microfluidic unit is designed and printed by a 3D-printer in just a few hours and assembled on a light-addressable potentiometric sensor (LAPS) chip using a photo resin. The cell growth curves obtained from culturing cells within microfluidics-based LAPS systems were compared with cell growth curves in cell culture flasks to examine biocompatibility of the 3D-printed chips. Furthermore, an optimal cell culturing within microfluidics-based LAPS chips was achieved by adjusting the fetal calf serum concentrations of the cell culture medium, an important factor for the cell proliferation.
Light-stimulated hydrogel actuators with incorporated graphene oxide for microfluidic applications
(2015)
Opioid Analgesia in P450 Gene Cluster Knockout Mice: A Search for Analgesia-Relevant Isoforms
(2015)
Cytochrome b5 Is a Major Determinant of Human Cytochrome P450 CYP2D6 and CYP3A4 Activity In Vivo s
(2015)
The use of transgenic animal models has transformed our knowledge of complex biochemical pathways in vivo. It has allowed disease processes to be modelled and used in the development of new disease prevention and treatment strategies. They can also be used to define cell- and tissue-specific pathways of gene regulation. A further major application is in the area of preclinical development where such models can be used to define pathways of chemical toxicity, and the pathways that regulate drug disposition. One major application of this approach is the humanisation of mice for the proteins that control drug metabolism and disposition. Such models can have numerous applications in the development of drugs and in their more sophisticated use in the clinic.
BACKGROUND
Currently, several techniques exist for the downstream processing of protein, phytic acid and sinapic acid from rapeseed and rapeseed meal, but no technique has been developed to separate all of the components in one process. In this work, two new downstream processing strategies focusing on recovering sinapic acid, phytic acid and protein from rapeseed meal were established.
RESULTS
The sinapic acid content was enhanced by a factor of 4.5 with one method and 5.1 with the other. The isolation of sinapic acid was accomplished using a zeolite-based adsorbent with high adsorptive and optimal desorption characteristics. Phytic acid was isolated using the anion-exchange resin Purolite A200®. In addition, the processes resulted in two separated protein fractions. The ratios of globulin and albumin ratio to the total protein were 59.2% and 40.1%, respectively. The steps were then combined in two different ways: (a) a ‘sequential process’ using the zeolite and A200 in batch processes; and (b) a ‘parallel process’ using only A200 in a chromatographic system to separate all of the compounds.
CONCLUSIONS
It can be concluded that isolation of all three components was possible in both processes. These could enhance the added value of current processes using rapeseed meal as a protein source. © 2015 Society of Chemical Industry
Simultane Atline-Quantifizierung von Magnetpartikeln und Mikroorganismen bei einer HGMS-Filtration
(2015)
Es wird eine neue Atline-Messmethode vorgestellt, mit der während einer Hochgradienten-Magnetseparation (HGMS)-Filtration eine simultane Quantifizierung von Magnetpartikeln und Mikroorganismen im Filtrat vorgenommen werden kann. Dabei gelingt die Quantifizierung signifikant besser als mit bisher verwendeten Messmethoden. Mit dieser Methode ist es möglich, die Trennleistung einer HGMS-Filtration zu bestimmen und einen Filterdurchbruch durch Konzentrationsanstiege im Bereich einiger µg L−1 von Magnetpartikeln im Filtrat frühzeitig zu detektieren, ohne dass nennenswerte Partikelmengen verloren gehen.
Aufarbeitung von Polyphenolen aus Weizenmittels Zeolithen am Beispiel der Ferulasa¨ ureAlexander Thiel1, Kai Muffler1, Nils Tippko¨ tter1, Kirstin Suck2, Ulrich Sohling2, Friedrich Ruf3und Roland Ulber1,*DOI: 10.1002/cite.201400031Bei der Ferulasa¨ure handelt es sich um einen Wertstoff, der aus Weizen gewonnen und in der Lebensmittel- und Pharma-industrie eingesetzt werden kann. Der Einsatz von Weizen als nachwachsende Rohstoffquelle ist allerdings nur dann wirt-schaftlich durchfu¨hrbar, wenn eine Prozessintegration in die bestehenden industriellen Verfahren gewa¨hrleistet oder einedirekte Konkurrenz zur Mehl- und Sta¨rkeindustrie vermieden werden kann. In diesem Artikel wird ein Verfahren aufge-zeigt, welches hohe Ausbeuten ermo¨glicht und eine Konkurrenz zu bestehenden Verwertungspfaden vermeidet.
For several thousand years, biotechnology and its associated technical processes have had a great impact on the development of mankind. Based on empirical methods, in particular for the production of foodstuffs and daily commodities, these disciplines have become one of the most innovative future issues. Due to the increasing detailed understanding of cellular processes, production strains can now be optimized. In combination with modern bioprocesses, a variety of bulk and fine chemicals as well as pharmaceuticals can be produced efficiently. In this article, some of the current trends in biotechnology are discussed.
Production of Y-86 and other radiometals for research purposes using a solution target system
(2015)
Analyse von Lignocellulose mittels dynamischer Differenzkalorimetrie und Infrarot – Spektrometrie
(2015)
The invention relates to a method for production of single-stranded macronucleotides by amplifying and ligating an extended monomeric single-stranded target nucleic acid sequence (targetss) into a repetitive cluster of double-stranded target nucleic acid sequences (targetds), and subsequently cloning the construct into a vector (aptagene vector). The aptagene vector is transformed into host cells for replication of the aptagene and isolated in order to optain single-stranded target sequences (targetss). The invention also relates to single-stranded nucleic acids, produced by a method of the invention.
System und Verfahren zur Durchführung von chemischen, biologischen oder physikalischen Reaktionen
(2015)
Due to their anion exchange characteristics, layered double hydroxides (LDHs) are suitable for the detoxification of aqueous, fatty acid containing fermentation substrates. The aim of this study is to examine the adsorption mechanism, using crude glycerol from plant oil esterification as a model system. Changes in the intercalation structure in relation to the amount of fatty acids adsorbed are monitored by X-ray diffraction and infra-red spectroscopy. Additionally, calcination of LDH is investigated in order to increase the binding capacity for fatty acids. Our data propose that, at ambient temperature, fatty acids can be bound to the hydrotalcite by adsorption or in addition by intercalation, depending on fatty acid concentration. The adsorption of fatty acids from crude glycerol shows a BET-like behavior. Above a fatty acid concentration of 3.5 g L−1, intercalation of fatty acids can be shown by the appearance of an increased interlayer spacing. This observation suggests a two phase adsorption process. Calcination of LDHs allows increasing the binding capacity for fatty acids by more than six times, mainly by reduction of structural CO32−.
Abstractauthoren Graphene oxide (GO) nanoparticles were incorporated in temperature-sensitive Poly(N-isopropylacrylamide) (PNIPAAm) hydrogels. The nanoparticles increase the light absorption and convert light energy into heat efficiently. Thus, the hydrogels with GO can be stimulated spatially resolved by illumination as it was demonstrated by IR thermography. The temporal progression of the temperature maximum was detected for different concentrations of GO within the polymer network. Furthermore, the compatibility of PNIPAAm hydrogels with GO and cell cultures was investigated. For this purpose, culture medium was incubated with hydrogels containing GO and the viability and morphology of chinese hamster ovary (CHO) cells was examined after several days of culturing in presence of this medium.
Four members of a homologous series of chlorinated poly(vinyl ester) oligomers CCl₃–(CH₂CH (OCO(CH₂)ₘCH₃))ₙ–Cl with degrees of polymerization of 10 and 20 were prepared by telomerisation using carbon tetrachloride. The number of side chain carbon atoms ranges from 2 (poly(vinyl acetate) to 18 (poly(vinyl stearate)). The effect of the n-alkyl side chain length and of the degree of polymerization on the thermal stability and crystallization behaviour of the synthesized compounds was investigated.
All oligomers degrade in two major steps by first losing HCl and side chains with subsequent breakdown of the backbone. The members with short side chains, up to poly(vinyl octanoate), are amorphous and show internal plasticization, whereas those with high number of side chain carbon atoms are semi-crystalline due to side-chain crystallization. A better packing for poly(vinyl stearate) is also noticeable. The glass transition and melting temperatures as well as the onset temperature of decomposition are influenced to a larger extent by the side chain length than by the degree of polymerization. Thermal stability is improved if both the size and number of side chains increase, but only a long side chain causes a significant increase of the resistance to degradation. This results in a stabilization of PVAc so that oligomers from poly(vinyl octanoate) on are stable under atmospheric conditions. Thus, the way to design stable, chlorinated PVEs oligomers is to use a long n-alkyl side chain.
Regardless of size or destination, synthetic biology starts with com-parably small information units, which need to be combined and properly arranged in order to achieve a certain goal. This may be the de novo synthesis of individual genes from oligonucleotides, a shuffling of protein domains in order to create novel biocatalysts, the assembly of multiple enzyme encoding genes in metabolic pathway design, or strain development at the production stage. The CoLibry concept has been designed in order to close the gap between recombinant production of individual genes and genome editing.
An amperometric biosensor using a substrate recycling principle was realized for the detection of low adrenaline concentrations (1 nM) by measurements in phosphate buffer and Ringer’s solution at pH 6.5 and pH 7.4, respectively. In proof-of-concept experiments, a Boolean logic-gate principle has been applied to develop a digital adrenaline biosensor based on an enzyme AND logic gate. The obtained results demonstrate that the developed digital biosensor is capable for a rapid qualitative determination of the presence/absence of adrenaline in a YES/NO statement. Such digital biosensor could be used in clinical diagnostics for the control of a correct insertion of a catheter in the adrenal veins during adrenal venous-sampling procedure.
Autoradiography is a well-established method of nuclear imaging. When different radionuclides are present simultaneously, additional processing is needed to distinguish distributions of radionuclides. In this work, a method is presented where aluminium absorbers of different thickness are used to produce images with different cut-off energies. By subtracting images pixel-by-pixel one can generate images representing certain ranges of β-particle energies. The method is applied to the measurement of irradiated reactor graphite samples containing several radionuclides to determine the spatial distribution of these radionuclides within pre-defined energy windows. The process was repeated under fixed parameters after thermal treatment of the samples. The greyscale images of the distribution after treatment were subtracted from the corresponding pre-treatment images. Significant changes in the intensity and distribution of radionuclides could be observed in some samples. Due to the thermal treatment parameters the most significant differences were observed in the ³H and ¹⁴C inventory and distribution.
NVS123 is a poorly water-soluble protease 56 inhibitor in clinical development. Data from in vitro hepatocyte studies suggested that NVS123 is mainly metabolized by CYP3A4. As a consequence of limited solubility, NVS123 therapeutic plasma exposures could not be achieved even with high doses and optimized formulations. One approach to overcome NVS123 developability issues was to increase plasma exposure by coadministrating it with an inhibitor of CYP3A4 such as ritonavir. A clinical boost effect was predicted by using physiologically based pharmacokinetic (PBPK) modeling. However, initial boost predictions lacked sufficient confidence because a key parameter, fraction of drug metabolized by CYP3A4 (ƒₘCYP3A4), could not be estimated with accuracy on account of disconnects between in vitro and in vivo preclinical data. To accurately estimate ƒₘCYP3A4 in human, an in vivo boost effect study was conducted using CYP3A4-humanized mouse model which showed a 33- to 56-fold exposure boost effect. Using a top-down approach, human ƒₘCYP3A4 for NVS123 was estimated to be very high and included in the human PBPK modeling to support subsequent clinical study design. The combined use of the in vivo boost study in CYP3A4-humanized mouse model mice along with PBPK modeling accurately predicted the clinical outcome and identified a significant NVS123 exposure boost (∼42-fold increase) with ritonavir.
Breast cancer resistance protein (BCRP) is expressed in various tissues, such as the gut, liver, kidney and blood brain barrier (BBB), where it mediates the unidirectional transport of substrates to the apical/luminal side of polarized cells. Thereby BCRP acts as an efflux pump, mediating the elimination or restricting the entry of endogenous compounds or xenobiotics into tissues and it plays important roles in drug disposition, efficacy and safety. Bcrp knockout mice (Bcrp−/−) have been used widely to study the role of this transporter in limiting intestinal absorption and brain penetration of substrate compounds. Here we describe the first generation and characterization of a mouse line humanized for BCRP (hBCRP), in which the mouse coding sequence from the start to stop codon was replaced with the corresponding human genomic region, such that the human transporter is expressed under control of the murine Bcrp promoter. We demonstrate robust human and loss of mouse BCRP/Bcrp mRNA and protein expression in the hBCRP mice and the absence of major compensatory changes in the expression of other genes involved in drug metabolism and disposition. Pharmacokinetic and brain distribution studies with several BCRP probe substrates confirmed the functional activity of the human transporter in these mice. Furthermore, we provide practical examples for the use of hBCRP mice to study drug-drug interactions (DDIs). The hBCRP mouse is a promising model to study the in vivo role of human BCRP in limiting absorption and BBB penetration of substrate compounds and to investigate clinically relevant DDIs involving BCRP.