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In global hydrological models, groundwater (GW) is typically represented by a bucket-like linear groundwater reservoir. Reservoir models, however, (1) can only simulate GW discharge to surface water (SW) bodies but not recharge from SW to GW, (2) provide no information on the location of the GW table, and (3) assume that there is no GW flow among grid cells. This may lead, for example, to an underestimation of groundwater resources in semiarid areas where GW is often replenished by SW or to an underestimation of evapotranspiration where the GW table is close to the land surface. To overcome these limitations, it is necessary to replace the reservoir model in global hydrological models with a hydraulic head gradient-based GW flow model.
We present G3M, a new global gradient-based GW model with a spatial resolution of 5′ (arcminutes), which is to be integrated into the 0.5∘ WaterGAP Global Hydrology Model (WGHM). The newly developed model framework enables in-memory coupling to WGHM while keeping overall runtime relatively low, which allows sensitivity analyses, calibration, and data assimilation. This paper presents the G3M concept and model design decisions that are specific to the large grid size required for a global-scale model. Model results under steady-state naturalized conditions, i.e., neglecting GW abstractions, are shown. Simulated hydraulic heads show better agreement to observations around the world compared to the model output of de Graaf et al. (2015). Locations of simulated SW recharge to GW are found, as is expected, in dry and mountainous regions but areal extent of SW recharge may be underestimated. Globally, GW discharge to rivers is by far the dominant flow component such that lateral GW flows only become a large fraction of total diffuse and focused recharge in the case of losing rivers, some mountainous areas, and some areas with very low GW recharge. A strong sensitivity of simulated hydraulic heads to the spatial resolution of the model and the related choice of the water table elevation of surface water bodies was found. We suggest to investigate how global-scale groundwater modeling at 5′ spatial resolution can benefit from more highly resolved land surface elevation data.
The haloarchaeon Haloferax volcanii contains nearly 2800 small non-coding RNAs (sRNAs). One intergenic sRNA, sRNA132, was chosen for a detailed characterization. A deletion mutant had a growth defect and thus underscored the importance of sRNA132. A microarray analysis identified the transcript of an operon for a phosphate-specific ABC transporter as a putative target of sRNA132. Both the sRNA132 and the operon transcript accumulated under low phosphate concentrations, indicating a positive regulatory role of sRNA132. A kinetic analysis revealed that sRNA132 is essential shortly after the onset of phosphate starvation, while other regulatory processes take over after several hours. Comparison of the transcriptomes of wild-type and the sRNA132 gene deletion mutant 30 min after the onset of phosphate starvation revealed that sRNA132 controls a regulon of about 40 genes. Remarkably, the regulon included a second operon for a phosphate-specific ABC transporter, which also depended on sRNA132 for rapid induction in the absence of phosphate. Competitive growth experiments of the wild-type and ABC transporter operon deletion mutants underscored the importance of both transporters for growth at low phosphate concentrations. Northern blot analyses of four additional members of the sRNA132 regulon verified that all four transcripts depended on sRNA132 for rapid regulation after the onset of phosphate starvation. Importantly, this is the first example for the transient importance of a sRNA for any archaeal and bacterial species. In addition, this study unraveled the first sRNA regulon for haloarchaea.
"We have always been living in bubbles" The opportunities and risks in the digitalisation of media
(2019)
The digitalisation of communication started as early as the 1980s. With the rise of the internet in the mid-90s the digitalisation process intensified; then it took on another dimension with the spread of social media and smartphones in the mid noughties. These new technologies are providing new possibilities that are unveiling, or rather, strengthening societal trends. What’s more, traditional forms of organisation are also being transformed at breakneck speed. This publication provides an overview of both developments: On the one hand we have societal developments such as the blurring of boundaries between real and digital worlds, constant connectivity, fake news, and social media outrage. On the other, we have the effects on traditional media, the workplace, schools, non-governmental organisations and sports. ...
Der menschliche Knochen besitzt, als Folge einer Verletzung oder eines chirurgischen Eingriffs, eine große Fähigkeit zur Reparatur und Regeneration. Die Knochenheilung beinhaltet ein komplexes Zusammenspiel von Zellen, Wachstumsfaktoren, Zytokinen sowie der extrazellulären Matrix (Hoerth et al. 2014). Nichtsdestotrotz führt ein Knochenbruch zu einer dramatischen Veränderung der mechanischen Belastbarkeit an der Verletzungsstelle. Der Abstand zwischen den beiden Frakturenden bildet einen entscheidenden Faktor in der Knochenheilung. Hier wird zwischen der primären, der osteonalen Knochenheilung und der sekundären, der kallusformierenden Knochenheilung unterschieden. Umso größer der Frakturspalt ist, desto größer wird die Instabilität, die Heilungsverzögerung und damit auch die Gefahr einer Pseudoarthrose (Hoerth et al., 2014; Marsell et Einhorn, 2011).
Große diaphysale Defekte werden meistens durch Traumata, Infektionen oder Tumore bedingt. Sie werden als critical size defects (CSD) bezeichnet, wenn eine chirurgische Intervention zur Heilung notwendig ist (Rosset et al., 2014). Langstreckige Knochendefekte stellen immer noch eine sehr große Herausforderung in der rekonstruktiven Chirurgie dar. Deswegen ist die Untersuchung und Weiterentwicklung von implantierbaren biomedizinischen Materialien bei der Behandlung von CSD eine wichtige Aufgabe.
Im Augenblick ist die häufigste Behandlungsmethode großer diaphysaler Defekte die Autologe Spongiosaplastik (ASP) und wird als Goldstandart der Therapie bezeichnet. Jedoch stehen die autologen Knochenmaterialien nur begrenzt zur Verfügung und verursachen viele Entnahmemorbiditäten. Darüber hinaus gibt es allogene, xenogene und synthetische Knochentransplantate. Dennoch ist noch keine der Therapiemöglichkeiten so ausgereift, dass die ASP dadurch ersetzt werden könnte. Die allogenen und xenogenen Materialien sind von der Menge unbegrenzt, besitzen aber eine niedrigere Biokompatibilität, höhere Infektionsgefahr und schlechtere Ergebnisse in der Langzeitwirkung (Wang et al., 2014).
Ein weiterer Nachteil gegenüber der ASP besteht darin, dass die synthetischen Knochenersatzmaterialien keine osteoinduktiven und osteogenen Eingenschaften besitzen. Eine Möglichkeit diese Qualitäten zu erhalten ist, sie mit Zellsuspensionen, wie z.B. bone marrow mononuclear cells (BMC), zu kombinieren und somit zu versuchen ein ausgereiftes Therapiekonzept zu entwickeln.
Zugleich beschreibt Masquelet et al. (2000) eine neue Technik, ein zweistufiges Verfahren zur Rekonstruktion von Knochendefekten. Es wird eine biologisch aktive Membran induziert, welche verschiedene Wachstumsfaktoren (wie z.B. VEGF, TGF beta1, BMP-2) sezerniert, die osteoinduktiv wirksam sind. Mit diesem operativen Verfahren wurden bereits gute klinische Ergebnisse bei Knochendefekten nach Tumorresektionen und Traumata erzielt.
Das Ziel dieser Studie ist es einen anorganischen Knochenersatzstoff von Heraeus Herafill unter Verwendung der induzierten Membrantechnik nach Masquelet am Rattenfemur zu testen. Die Forschung erfolgt dabei unter der Hypothese, dass die Korngröße des Knochenersatzmaterials Herafill in Kombination mit BMC-Besiedelung Einfluss auf die Heilung eines kritischen Knochendefekts hat.
Cytokine-induced killer (CIK) cells are an immunotherapeutic approach to combat relapse following allogeneic hematopoietic stem cell transplantation (HSCT) in acute leukemia or myelodysplastic syndrome (MDS) patients. Prompt and sequential administration of escalating cell doses improves the efficacy of CIK cell therapy without exacerbating graft vs. host disease (GVHD). This study addresses manufacturing-related issues and aimed to develop a time-, personal- and cost-saving good manufacturing process (GMP)-compliant protocol for the generation of ready-for-use therapeutic CIK cell doses starting from one unstimulated donor-derived peripheral blood (PB) or leukocytapheresis (LP) products. Culture medium with or without the addition of either AB serum, fresh frozen plasma (FFP) or platelet lysate (PL) was used for culture. Fresh and cryopreserved CIK cells were compared regarding expansion rate, viability, phenotype, and ability to inhibit leukemia growth. Cell numbers increased by a median factor of 10-fold in the presence of FFP, PL, or AB serum, whereas cultivation in FFP/PL-free or AB serum-free medium failed to promote adequate CIK cell proliferation (p < 0.01) needed to provide clinical doses of 1 × 106 T cells/kG, 5 × 106 T cells/kG, 1 × 107 T cells/kG, and 1 × 108 T cells/kG recipient body weight. CIK cells consisting of T cells, T- natural killer (T-NK) cells and a minor fraction of NK cells were not significantly modified by different medium supplements. Moreover, neither cytotoxic potential against leukemic THP-1 cells nor cell activation shown by CD25 expression were significantly influenced. Moreover, overnight and long-term cryopreservation had no significant effect on the composition of CIK cells, their phenotype or cytotoxic potential. A viability of almost 93% (range: 89–96) and 89.3% (range: 84–94) was obtained after freeze-thawing procedure and long-term storage, respectively, whereas viability was 96% (range: 90-97) in fresh CIK cells. Altogether, GMP-complaint CIK cell generation from an unstimulated donor-derived PB or LP products was feasible. Introducing FFP, which is easily accessible, into CIK cell cultures was time- and cost-saving without loss of viability and potency in a 10-12 day batch culture. The feasibility of cryopreservation enabled storage and delivery of sequential highly effective ready-for-use CIK cell doses and therefore reduced the number of manufacturing cycles.
Inhibition is a central component of human behavior. It enables flexible and adaptive behavior by suppressing prepotent motor responses. In former studies, it has been shown that sport athletes acting in dynamic environments exhibit superior motor inhibitory control based on sensory stimuli. So far, existing studies have corroborated this in manual motor response settings only. Therefore, this study addresses the effector specificity of the inhibition benefit in elite athletes compared to physically active controls. A sport-unspecific stop-signal task has been adapted for hand as well as feet usage and 30 elite handball players as well as 30 controls were tested. A repeated-measures ANOVA with the two factors “effector” (hands, feet) and “group” (expert, recreational athletes) was conducted. Our results suggest no group differences in two-choice response times, but a convincing superiority of handball players in inhibitory control (i.e., shorter stop-signal reaction times), predominantly when responding with their hands, with weaker differential effects when responding with their feet. This suggests that motor inhibition might be a comprehensive performance characteristic of sport athletes acting in dynamic environments, detectable predominantly in eye-hand coordination tasks.