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Keywords
The concept of an injective affine embedding of the quantum states into a set of classical states, i.e., into the set of the probability measures on some measurable space, as well as its relation to statistically complete observables is revisited, and its limitation in view of a classical reformulation of the statistical scheme of quantum mechanics is discussed. In particular, on the basis of a theorem concerning a non-denseness property of a set of coexistent effects, it is shown that an injective classical embedding of the quantum states cannot be supplemented by an at least approximate classical description of the quantum mechanical effects. As an alternative approach, the concept of quasi-probability representations of quantum mechanics is considered.
In der Biotechnologie stellt Einzelstrang-DNA (ssDNA) eine Schlüsselrolle dar und fungiert z. B. als Baustein für die nanoskalige Feinmechanik oder als Affinitätsligand, ein sog. Aptamer. Hinsichtlich der industriellen Verwendung bieten Aptamere im Vergleich zu Antikörpern viele Vorteile, wie z. B. eine gute Renaturierung bzw. die Selektion für cytotoxische Moleküle. Aktuell wächst die Nachfrage für chimäre Aptamere von bis zu 200 n, um die simultane Bindung bzw. die Modifikation mehrerer Moleküle zu realisieren. Bis heute wird ssDNA mittels einer sequentiellen Synthese hergestellt, die eine Effizienz von ca. 99,5 % je Zyklus und bereits bei einer Produktlänge von 100 n nur noc hAusbeuten von max. 60 % zeigt. Um dem Bedarf an ssDNA im Bereich > 100 n zu entsprechen, wurden zwei enzymatische Verfahren zur Produktion dieser Makronukleotide entworfen. Die erste Technik basiert auf einerFestphasen-PCR und ermöglicht sowohlein Primer- als auch ein Templatrecycling. Das zweite Verfahren beruht auf einer Plasmidbasierten In-vivo-Amplifikation, der sog. AptaGENE®-Technologie. In einer einzigen Klonierung werden bis zu 100 Kopien des Monomers in einen Vektor kloniert. Nach einer Transformation folgt der reguläre Produktionsprozess in Form einer Kultivierung, Plasmidpräparation und sequenziellen Aufarbeitung von bis zu 6 · 10¹⁵ Makronukleotiden pro Milliliter Fermentationsvolumen.
Picosecond dynamics in haemoglobin from different species: A quasielastic neutron scattering study
(2014)
The ideal combination among biomolecules and nanomaterials is the key for reaching biosensing units with high sensitivity. The challenge, however, is to find out a stable and sensitive film architecture that can be incorporated on the sensor’s surface. In this paper, we report on the benefits of incorporating a layer-by-layer (LbL) nanofilm of polyamidoamine (PAMAM) dendrimer and carbon nanotubes (CNTs) on capacitive electrolyte-insulator-semiconductor (EIS) field-effect sensors for detecting urea. Three sensor arrangements were studied in order to investigate the adequate film architecture, involving the LbL film with the enzyme urease: (i) urease immobilized directly onto a bare EIS [EIS-urease] sensor; (ii) urease atop the LbL film over the EIS [EIS-(PAMAM/CNT)-urease] sensor; and (iii) urease sandwiched between the LbL film and another CNT layer [EIS-(PAMAM/CNT)-urease-CNT]. The surface morphology of all three urea-based EIS biosensors was investigated by atomic force microscopy (AFM), while the biosensing abilities were studied by means of capacitance–voltage (C/V) and dynamic constant-capacitance (ConCap) measureaments at urea concentrations ranging from 0.1 mM to 100 mM. The EIS-urease and EIS-(PAMAM/CNT)-urease sensors showed similar sensitivity (∼18 mV/decade) and a nonregular signal behavior as the urea concentration increased. On the other hand, the EIS-(PAMAM/CNT)-urease-CNT sensor exhibited a superior output signal performance and higher sensitivity of about 33 mV/decade. The presence of the additional CNT layer was decisive to achieve a urea based EIS sensor with enhanced properties. Such sensitive architecture demonstrates that the incorporation of an adequate hybrid enzyme-nanofilm as sensing unit opens new prospects for biosensing applications using the field-effect sensor platform.
A semiconductor field-effect device has been used for an enzymatically catalyzed degradation of biopolymers for the first time. This novel technique is capable to monitor the degradation process of multiple samples in situ and in real-time. As model system, the degradation of the biopolymer poly(D, L-lactic acid) has been monitored in the degradation medium containing the enzyme lipase from Rhizomucor miehei. The obtained results demonstrate the potential of capacitive field-effect sensors for degradation studies of biodegradable polymers.