TY - JOUR A1 - Çabuk, Uğur A1 - Ünlü, Ercan Selçuk T1 - A combined de novo assembly approach increases the quality of prokaryotic draft genomes JF - Folia microbiologica : international journal for general, environmental and applied microbiology, and immunology N2 - Next-generation sequencing methods provide comprehensive data for the analysis of structural and functional analysis of the genome. The draft genomes with low contig number and high N50 value can give insight into the structure of the genome as well as provide information on the annotation of the genome. In this study, we designed a pipeline that can be used to assemble prokaryotic draft genomes with low number of contigs and high N50 value. We aimed to use combination of two de novo assembly tools (SPAdes and IDBA-Hybrid) and evaluate the impact of this approach on the quality metrics of the assemblies. The followed pipeline was tested with the raw sequence data with short reads (< 300) for a total of 10 species from four different genera. To obtain the final draft genomes, we firstly assembled the sequences using SPAdes to find closely related organism using the extracted 16 s rRNA from it. IDBA-Hybrid assembler was used to obtain the second assembly data using the closely related organism genome. SPAdes assembler tool was implemented using the second assembly, produced by IDBA-hybrid as a hint. The results were evaluated using QUAST and BUSCO. The pipeline was successful for the reduction of the contig numbers and increasing the N50 statistical values in the draft genome assemblies while preserving the coverage of the draft genomes. KW - De novo assembly KW - Prokaryotes KW - Bacteria KW - NGS KW - Short reads KW - Draft genome Y1 - 2022 U6 - https://doi.org/10.1007/s12223-022-00980-7 SN - 0015-5632 SN - 1874-9356 VL - 67 SP - 801 EP - 810 PB - Springer CY - Dordrecht ER - TY - JOUR A1 - Zurell, Damaris A1 - König, Christian A1 - Malchow, Anne-Kathleen A1 - Kapitza, Simon A1 - Bocedi, Greta A1 - Travis, Justin M. J. A1 - Fandos, Guillermo T1 - Spatially explicit models for decision-making in animal conservation and restoration JF - Ecography : pattern and diversity in ecology / Nordic Ecologic Society Oikos N2 - Models are useful tools for understanding and predicting ecological patterns and processes. Under ongoing climate and biodiversity change, they can greatly facilitate decision-making in conservation and restoration and help designing adequate management strategies for an uncertain future. Here, we review the use of spatially explicit models for decision support and to identify key gaps in current modelling in conservation and restoration. Of 650 reviewed publications, 217 publications had a clear management application and were included in our quantitative analyses. Overall, modelling studies were biased towards static models (79%), towards the species and population level (80%) and towards conservation (rather than restoration) applications (71%). Correlative niche models were the most widely used model type. Dynamic models as well as the gene-to-individual level and the community-to-ecosystem level were underrepresented, and explicit cost optimisation approaches were only used in 10% of the studies. We present a new model typology for selecting models for animal conservation and restoration, characterising model types according to organisational levels, biological processes of interest and desired management applications. This typology will help to more closely link models to management goals. Additionally, future efforts need to overcome important challenges related to data integration, model integration and decision-making. We conclude with five key recommendations, suggesting that wider usage of spatially explicit models for decision support can be achieved by 1) developing a toolbox with multiple, easier-to-use methods, 2) improving calibration and validation of dynamic modelling approaches and 3) developing best-practise guidelines for applying these models. Further, more robust decision-making can be achieved by 4) combining multiple modelling approaches to assess uncertainty, and 5) placing models at the core of adaptive management. These efforts must be accompanied by long-term funding for modelling and monitoring, and improved communication between research and practise to ensure optimal conservation and restoration outcomes. KW - adaptive management KW - biodiversity conservation KW - cost optimisation KW - ecosystem restoration KW - global change KW - predictive models Y1 - 2021 U6 - https://doi.org/10.1111/ecog.05787 SN - 1600-0587 IS - 4 SP - 1 EP - 16 PB - Wiley-Blackwell CY - Oxford ER - TY - JOUR A1 - Zoccarato, Luca A1 - Sher, Daniel A1 - Miki, Takeshi A1 - Segre, Daniel A1 - Grossart, Hans-Peter T1 - A comparative whole-genome approach identifies bacterial traits for marine microbial interactions JF - Communications biology N2 - Luca Zoccarato, Daniel Sher et al. leverage publicly available bacterial genomes from marine and other environments to examine traits underlying microbial interactions. Their results provide a valuable resource to investigate clusters of functional and linked traits to better understand marine bacteria community assembly and dynamics. Microbial interactions shape the structure and function of microbial communities with profound consequences for biogeochemical cycles and ecosystem health. Yet, most interaction mechanisms are studied only in model systems and their prevalence is unknown. To systematically explore the functional and interaction potential of sequenced marine bacteria, we developed a trait-based approach, and applied it to 473 complete genomes (248 genera), representing a substantial fraction of marine microbial communities. We identified genome functional clusters (GFCs) which group bacterial taxa with common ecology and life history. Most GFCs revealed unique combinations of interaction traits, including the production of siderophores (10% of genomes), phytohormones (3-8%) and different B vitamins (57-70%). Specific GFCs, comprising Alpha- and Gammaproteobacteria, displayed more interaction traits than expected by chance, and are thus predicted to preferentially interact synergistically and/or antagonistically with bacteria and phytoplankton. Linked trait clusters (LTCs) identify traits that may have evolved to act together (e.g., secretion systems, nitrogen metabolism regulation and B vitamin transporters), providing testable hypotheses for complex mechanisms of microbial interactions. Our approach translates multidimensional genomic information into an atlas of marine bacteria and their putative functions, relevant for understanding the fundamental rules that govern community assembly and dynamics. Y1 - 2022 U6 - https://doi.org/10.1038/s42003-022-03184-4 SN - 2399-3642 VL - 5 IS - 1 PB - Springer Nature CY - Berlin ER - TY - THES A1 - Zinke, Jann Felix T1 - Herstellung von Gießharzpräparaten für den Einsatz im Biologieunterricht T1 - Production of casting resin preparations to use in biology classes N2 - Das Ziel des hier beschriebenen Masterprojekts war es, eine Methode zu etablieren, mit der Insekten in Gießharz eingeschlossen werden können, damit sie dauerhaft konserviert für mikroskopische Untersuchungen im Biologieunterricht zur Verfügung stehen. Die Masterarbeit enthält eine ausführliche Anleitung zur Herstellung von Gießharzpräparaten mit darin eingebetteten Insekten. Sie soll als Handreichung vor allem für Biologie-Lehrkräfte dienen, um selbstständig hochwertige Lehrpräparate für ihren Unterricht herstellen zu können. Aufgrund der Komplexität des Themas werden Naturschutzbestimmungen und die Beschaffung der Insekten genauso beleuchtet wie deren anschließende Präparation, die Konstruktion einer eigenen Gießform, die Einbettung der Insekten in Gießharz und die Nachbehandlung des Gießlings. Wichtige Einflussfaktoren, die die Qualität der Präparate entscheidend beeinflussen und mögliche Fehlerquellen, werden ausführlich erläutert. Mittels dieser detaillierten Eingießanleitung können mit relativ einfachen und kostengünstigen Mitteln faszinierende Studienobjekte für einen anschaulichen Biologieunterricht entstehen. N2 - This master thesis aims at the establishment of a method in order to embed insects into cast resin, so that the insects are permanently preserved and available for microscopic studies in biology classes. This master thesis contains a detailed guide to produce cast resin preparations with embedded insects. It is primarily intended to serve as a guide to enable teachers in order to independently create high-quality teaching materials for their classes. Due to the complexity of the topic, environmental protection regulations and the procurement of insects are examined as well as their subsequent preparations, the construction of own casting moulds, the embedding of the insects into the casting resin and the post-treatment of the casting. Important factors which have a decisive influence on quality of the preparations and possible sources of error are particularly described. These detailed casting instructions open new possibilities for teachers to create fascinating teaching objects for vivid biology classes using relatively simple and inexpensive means. KW - Gießharz KW - Gießharzpräparate KW - Biologieunterricht KW - Herstellung KW - Präparate KW - Insekten KW - casting resin KW - preparation KW - insects KW - biology classes KW - production Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-615028 ER - TY - JOUR A1 - Zielhofer, Christoph A1 - Schmidt, Johannes A1 - Reiche, Niklas A1 - Tautenhahn, Marie A1 - Ballasus, Helen A1 - Burkart, Michael A1 - Linstädter, Anja A1 - Dietze, Elisabeth A1 - Kaiser, Knut A1 - Mehler, Natascha T1 - The lower Havel River Region (Brandenburg, Germany) BT - a 230-Year-Long historical map record indicates a decrease in surface water areas and groundwater levels JF - Water N2 - Instrumental data show that the groundwater and lake levels in Northeast Germany have decreased over the past decades, and this process has accelerated over the past few years. In addition to global warming, the direct influence of humans on the local water balance is suspected to be the cause. Since the instrumental data usually go back only a few decades, little is known about the multidecadal to centennial-scale trend, which also takes long-term climate variation and the long-term influence by humans on the water balance into account. This study aims to quantitatively reconstruct the surface water areas in the Lower Havel Inner Delta and of adjacent Lake Gulpe in Brandenburg. The analysis includes the calculation of surface water areas from historical and modern maps from 1797 to 2020. The major finding is that surface water areas have decreased by approximately 30% since the pre-industrial period, with the decline being continuous. Our data show that the comprehensive measures in Lower Havel hydro-engineering correspond with groundwater lowering that started before recent global warming. Further, large-scale melioration measures with increasing water demands in the upstream wetlands beginning from the 1960s to the 1980s may have amplified the decline in downstream surface water areas. KW - long-term hydrological changes KW - historical maps KW - review of written KW - sources KW - preindustrial to industrial period KW - hydro-engineering history; KW - effects of global warming KW - drying trend KW - wetlands KW - drainage works to KW - create cropland KW - Lower Havel River Region KW - Brandenburg KW - Germany Y1 - 2022 U6 - https://doi.org/10.3390/w14030480 SN - 2073-4441 VL - 14 IS - 3 PB - MDPI CY - Basel ER - TY - THES A1 - Ziege, Ricardo T1 - Growth dynamics and mechanical properties of E. coli biofilms T1 - Wachstumsdynamik und mechanische Eigenschaften von E. coli Biofilmen N2 - Biofilms are complex living materials that form as bacteria get embedded in a matrix of self-produced protein and polysaccharide fibres. The formation of a network of extracellular biopolymer fibres contributes to the cohesion of the biofilm by promoting cell-cell attachment and by mediating biofilm-substrate interactions. This sessile mode of bacteria growth has been well studied by microbiologists to prevent the detrimental effects of biofilms in medical and industrial settings. Indeed, biofilms are associated with increased antibiotic resistance in bacterial infections, and they can also cause clogging of pipelines or promote bio-corrosion. However, biofilms also gained interest from biophysics due to their ability to form complex morphological patterns during growth. Recently, the emerging field of engineered living materials investigates biofilm mechanical properties at multiple length scales and leverages the tools of synthetic biology to tune the functions of their constitutive biopolymers. This doctoral thesis aims at clarifying how the morphogenesis of Escherichia coli (E. coli) biofilms is influenced by their growth dynamics and mechanical properties. To address this question, I used methods from cell mechanics and materials science. I first studied how biological activity in biofilms gives rise to non-uniform growth patterns. In a second study, I investigated how E. coli biofilm morphogenesis and its mechanical properties adapt to an environmental stimulus, namely the water content of their substrate. Finally, I estimated how the mechanical properties of E. coli biofilms are altered when the bacteria express different extracellular biopolymers. On nutritive hydrogels, micron-sized E. coli cells can build centimetre-large biofilms. During this process, bacterial proliferation and matrix production introduce mechanical stresses in the biofilm, which release through the formation of macroscopic wrinkles and delaminated buckles. To relate these biological and mechanical phenomena, I used time-lapse fluorescence imaging to track cell and matrix surface densities through the early and late stages of E. coli biofilm growth. Colocalization of high cell and matrix densities at the periphery precede the onset of mechanical instabilities at this annular region. Early growth is detected at this outer annulus, which was analysed by adding fluorescent microspheres to the bacterial inoculum. But only when high rates of matrix production are present in the biofilm centre, does overall biofilm spreading initiate along the solid-air interface. By tracking larger fluorescent particles for a long time, I could distinguish several kinematic stages of E. coli biofilm expansion and observed a transition from non-linear to linear velocity profiles, which precedes the emergence of wrinkles at the biofilm periphery. Decomposing particle velocities to their radial and circumferential components revealed a last kinematic stage, where biofilm movement is mostly directed towards the radial delaminated buckles, which verticalize. The resulting compressive strains computed in these regions were observed to substantially deform the underlying agar substrates. The co-localization of higher cell and matrix densities towards an annular region and the succession of several kinematic stages are thus expected to promote the emergence of mechanical instabilities at the biofilm periphery. These experimental findings are predicted to advance future modelling approaches of biofilm morphogenesis. E. coli biofilm morphogenesis is further anticipated to depend on external stimuli from the environment. To clarify how the water could be used to tune biofilm material properties, we quantified E. coli biofilm growth, wrinkling dynamics and rigidity as a function of the water content of the nutritive substrates. Time-lapse microscopy and computational image analysis revealed that substrates with high water content promote biofilm spreading kinetics, while substrates with low water content promote biofilm wrinkling. The wrinkles observed on biofilm cross-sections appeared more bent on substrates with high water content, while they tended to be more vertical on substrates with low water content. Both wet and dry biomass, accumulated over 4 days of culture, were larger in biofilms cultured on substrates with high water content, despite extra porosity within the matrix layer. Finally, the micro-indentation analysis revealed that substrates with low water content supported the formation of stiffer biofilms. This study shows that E. coli biofilms respond to the water content of their substrate, which might be used for tuning their material properties in view of further applications. Biofilm material properties further depend on the composition and structure of the matrix of extracellular proteins and polysaccharides. In particular, E. coli biofilms were suggested to present tissue-like elasticity due to a dense fibre network consisting of amyloid curli and phosphoethanolamine-modified cellulose. To understand the contribution of these components to the emergent mechanical properties of E. coli biofilms, we performed micro-indentation on biofilms grown from bacteria of several strains. Besides showing higher dry masses, larger spreading diameters and slightly reduced water contents, biofilms expressing both main matrix components also presented high rigidities in the range of several hundred kPa, similar to biofilms containing only curli fibres. In contrast, a lack of amyloid curli fibres provides much higher adhesive energies and more viscoelastic fluid-like material behaviour. Therefore, the combination of amyloid curli and phosphoethanolamine-modified cellulose fibres implies the formation of a composite material whereby the amyloid curli fibres provide rigidity to E. coli biofilms, whereas the phosphoethanolamine-modified cellulose rather acts as a glue. These findings motivate further studies involving purified versions of these protein and polysaccharide components to better understand how their interactions benefit biofilm functions. All three studies depict different aspects of biofilm morphogenesis, which are interrelated. The first work reveals the correlation between non-uniform biological activities and the emergence of mechanical instabilities in the biofilm. The second work acknowledges the adaptive nature of E. coli biofilm morphogenesis and its mechanical properties to an environmental stimulus, namely water. Finally, the last study reveals the complementary role of the individual matrix components in the formation of a stable biofilm material, which not only forms complex morphologies but also functions as a protective shield for the bacteria it contains. Our experimental findings on E. coli biofilm morphogenesis and their mechanical properties can have further implications for fundamental and applied biofilm research fields. N2 - Biofilme sind komplexe lebende Materialien, die sich bilden, wenn Bakterien in eine Matrix aus selbstproduzierten Protein- und Polysaccharidfasern eingebettet werden. Die Bildung eines Netzwerks aus extrazellulären Biopolymerfasern trägt zum Zusammenhalt des Biofilms bei, indem sie die Zell-Zell-Anhaftung fördert und die Wechselwirkungen zwischen Biofilm und Substrat vermittelt. Diese sessile Form des Bakterienwachstums wurde von Mikrobiologen eingehend untersucht, um die schädlichen Auswirkungen von Biofilmen in der Medizin und Industrie zu verhindern. Biofilme werden nämlich mit einer erhöhten Antibiotikaresistenz bei bakteriellen Infektionen in Verbindung gebracht, und sie können auch zur Verstopfung von Rohrleitungen führen oder Biokorrosion fördern. Biofilme sind jedoch auch für die Biophysik von Interesse, da sie während ihres Wachstums komplexe morphologische Muster bilden können. In jüngster Zeit werden auf dem aufstrebenden Gebiet der künstlich hergestellten lebenden Materialien die mechanischen Eigenschaften von Biofilmen auf verschiedenen Längenskalen untersucht und die Werkzeuge der synthetischen Biologie genutzt, um die Funktionen ihrer konstitutiven Biopolymere zu beeinflussen. In dieser Doktorarbeit soll geklärt werden, wie die Morphogenese von Escherichia coli (E. coli)-Biofilmen durch deren Wachstumsdynamik und mechanische Eigenschaften beeinflusst wird. Um dieser Frage nachzugehen, habe ich Methoden aus der Zellmechanik und der Materialwissenschaft verwendet. Zunächst habe ich untersucht, wie die biologische Aktivität in Biofilmen zu ungleichmäßigen Wachstumsmustern führt. In einer zweiten Studie untersuchte ich, wie sich die Morphogenese von E. coli-Biofilmen und ihre mechanischen Eigenschaften an einen Umweltstimulus, nämlich den Wassergehalt des Substrats, anpassen. Schließlich habe ich abgeschätzt, wie sich die mechanischen Eigenschaften von E. coli-Biofilmen verändern, wenn die Bakterien verschiedene extrazelluläre Biopolymere exprimieren. Auf nährstoffhaltigen Hydrogelen können mikrometergroße E. coli-Zellen zentimetergroße Biofilme bilden. Während dieses Prozesses führen die bakterielle Vermehrung und die Matrixproduktion zu mechanischen Spannungen im Biofilm, die sich durch die Bildung von makroskopischen Falten und delaminierten Knicken entladen. Um diese biologischen und mechanischen Phänomene miteinander in Beziehung zu setzen, habe ich mit Hilfe von Zeitraffer-Fluoreszenzaufnahmen die Zell- und Matrixoberflächendichte in den frühen und späten Phasen des E. coli-Biofilmwachstums verfolgt. Die Kolokalisierung hoher Zell- und Matrixdichten an der Peripherie geht dem Auftreten mechanischer Instabilitäten in diesem ringförmigen Bereich voraus. An diesem äußeren Ring wird ein frühes Wachstum festgestellt, das durch Zugabe von fluoreszierenden Mikrokugeln zum bakteriellen Inokulum analysiert wurde. Aber nur wenn im Zentrum des Biofilms hohe Raten der Matrixproduktion vorhanden sind, beginnt die Ausbreitung des gesamten Biofilms entlang der Feststoff-Luft-Grenzfläche. Indem ich größere fluoreszierende Partikel über einen längeren Zeitraum verfolgte, konnte ich mehrere kinematische Stadien der E. coli-Biofilmexpansion unterscheiden und einen Übergang von nichtlinearen zu linearen Geschwindigkeitsprofilen beobachten, der dem Auftreten von Falten an der Biofilmperipherie vorausgeht. Die Zerlegung der Partikelgeschwindigkeiten in ihre radialen und umlaufenden Komponenten ergab ein letztes kinematisches Stadium, in dem die Bewegung des Biofilms hauptsächlich auf die radialen delaminierten Knicke gerichtet ist, die sich vertikalisieren. Die in diesen Regionen berechneten Druckspannungen verformen die darunter liegenden Agarsubstrate erheblich. Die gleichzeitige Ansammlung höherer Zell- und Matrixdichten in einer ringförmigen Region und die Abfolge mehrerer kinematischer Stadien dürften somit das Entstehen mechanischer Instabilitäten an der Biofilm-Peripherie fördern. Diese experimentellen Ergebnisse werden voraussichtlich zukünftige Modellierungsansätze der Biofilmmorphogenese voranbringen. Die Morphogenese des E. coli-Biofilms wird voraussichtlich auch von externen Stimuli aus der Umwelt abhängen. Um zu klären, wie das Wasser zur Einstellung der Materialeigenschaften von Biofilmen genutzt werden könnte, haben wir das Wachstum, die Faltenbildung und die Steifigkeit von E. coli-Biofilmen in Abhängigkeit vom Wassergehalt der Nährsubstrate quantifiziert. Zeitraffermikroskopie und computergestützte Bildanalyse zeigten, dass Substrate mit hohem Wassergehalt die Ausbreitungskinetik des Biofilms fördern, während Substrate mit niedrigem Wassergehalt die Faltenbildung des Biofilms begünstigen. Die auf Biofilm-Querschnitten beobachteten Falten erschienen auf Substraten mit hohem Wassergehalt stärker gebogen, während sie auf Substraten mit niedrigem Wassergehalt eher vertikal verliefen. Sowohl die feuchte als auch die trockene Biomasse, die während der 4-tägigen Kultur akkumuliert wurde, war in Biofilmen, die auf Substraten mit hohem Wassergehalt gezüchtet wurden, größer, trotz der zusätzlichen Porosität innerhalb der Matrixschicht. Schließlich ergab die Mikroindentationsanalyse, dass Substrate mit niedrigem Wassergehalt die Bildung von steiferen Biofilmen begünstigten. Diese Studie zeigt, dass E. coli-Biofilme auf den Wassergehalt ihres Substrats reagieren, was für die Abstimmung ihrer Materialeigenschaften im Hinblick auf weitere Anwendungen genutzt werden könnte. Die Materialeigenschaften von Biofilmen hängen außerdem von der Zusammensetzung und Struktur der Matrix aus extrazellulären Proteinen und Polysacchariden ab. Insbesondere wurde vermutet, dass E. coli-Biofilme aufgrund eines dichten Fasernetzwerks aus Amyloid-Curli und Phosphoethanolamin-modifizierter Cellulose eine gewebeähnliche Elastizität aufweisen. Um den Beitrag dieser Komponenten zu den entstehenden mechanischen Eigenschaften von E. coli-Biofilmen zu verstehen, führten wir an Biofilmen, die aus Bakterien verschiedener Stämme gewachsen waren, Mikroeindrücke durch. Biofilme, die beide Hauptmatrixkomponenten enthalten, wiesen nicht nur eine höhere Trockenmasse, einen größeren Ausbreitungsdurchmesser und einen leicht verringerten Wassergehalt auf, sondern auch eine hohe Steifigkeit im Bereich von mehreren hundert kPa, ähnlich wie Biofilme, die nur Curli-Fasern enthalten. Das Fehlen von Amyloid-Curli-Fasern führt dagegen zu deutlich höheren Adhäsionsenergien und einem viskoelastischeren, flüssigkeitsähnlichen Materialverhalten. Die Kombination von Amyloid-Curli-Fasern und Phosphoethanolamin-modifizierten Cellulosefasern impliziert daher die Bildung eines Verbundmaterials, bei dem die Amyloid-Curli-Fasern den E. coli-Biofilmen Steifigkeit verleihen, während die Phosphoethanolamin-modifizierte Cellulose eher als Klebstoff wirkt. Diese Ergebnisse motivieren zu weiteren Studien mit gereinigten Versionen dieser Protein- und Polysaccharidkomponenten, um besser zu verstehen, wie ihre Interaktionen die Funktionen des Biofilms unterstützen. Alle drei Studien zeigen verschiedene Aspekte der Biofilm-Morphogenese, die miteinander verbunden sind. Die erste Arbeit zeigt den Zusammenhang zwischen ungleichmäßigen biologischen Aktivitäten und dem Auftreten mechanischer Instabilitäten im Biofilm auf. Die zweite Arbeit bestätigt die Anpassungsfähigkeit der Morphogenese des E. coli-Biofilms und seiner mechanischen Eigenschaften an einen Umweltreiz, nämlich Wasser. Die letzte Studie schließlich zeigt die komplementäre Rolle der einzelnen Matrixkomponenten bei der Bildung eines stabilen Biofilmmaterials, das nicht nur komplexe Morphologien bildet, sondern auch als Schutzschild für die darin enthaltenen Bakterien fungiert. Unsere experimentellen Erkenntnisse über die Morphogenese von E. coli-Biofilmen und ihre mechanischen Eigenschaften können weitere Auswirkungen auf grundlegende und angewandte Biofilm-Forschungsbereiche haben. KW - biofilm KW - E. coli KW - living materials KW - mechanobiology KW - E. coli KW - Biofilm KW - lebende Materialien KW - Mechanobiologie Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-559869 ER - TY - JOUR A1 - Zhang, Shanshan A1 - Liu, Yue A1 - Machatschek, Rainhard Gabriel A1 - Lendlein, Andreas T1 - Ultrathin collagen type I films formed at the air-water interface JF - MRS advances : a journal of the Materials Research Society (MRS) N2 - Collagen-based biomaterials with oriented fibrils have shown great application potential in medicine. However, it is still challenging to control the type I collagen fibrillogenesis in ultrathin films. Here, we report an approach to produce cohesive and well-organized type I collagen ultrathin films of about 10 nm thickness using the Langmuir-Blodgett technique. Ellipsometry, rheology, and Brewster angle microscopy are applied to investigate in situ how the molecules behave at the air-water interface, both at room temperature and 37 degrees C. The interfacial storage modulus observed at room temperature vanishes upon heating, indicating the existence and disappearance of the network structure in the protein nanosheet. The films were spanning over holes as large as 1 mm diameter when transferred at room temperature, proving the strong cohesive interactions. A highly aligned and fibrillar structure was observed by atomic force microscopy (AFM) and optical microscopy. Y1 - 2022 U6 - https://doi.org/10.1557/s43580-021-00160-8 SN - 2059-8521 VL - 7 IS - 4 SP - 56 EP - 62 PB - Springer Nature Switzerland AG CY - Cham ER - TY - JOUR A1 - Zhang, Naimeng A1 - Cao, Xianyong A1 - Xu, Qinghai A1 - Huang, Xiaozhong A1 - Herzschuh, Ulrike A1 - Shen, Zhongwei A1 - Peng, Wei A1 - Liu, Sisi A1 - Wu, Duo A1 - Wang, Jian A1 - Xia, Huan A1 - Zhang, Dongju A1 - Chen, Fahu T1 - Vegetation change and human-environment interactions in the Qinghai Lake Basin, northeastern Tibetan Plateau, since the last deglaciation JF - Catena N2 - The nature of the interaction between prehistoric humans and their environment, especially the vegetation, has long been of interest. The Qinghai Lake Basin in North China is well-suited to exploring the interactions between prehistoric humans and vegetation in the Tibetan Plateau, because of the comparatively dense distribution of archaeological sites and the ecologically fragile environment. Previous pollen studies of Qinghai Lake have enabled a detailed reconstruction of the regional vegetation, but they have provided relatively little information on vegetation change within the Qinghai Lake watershed. To address the issue we conducted a pollen-based vegetation reconstruction for an archaeological site (YWY), located on the southern shore of Qinghai Lake. We used high temporal-resolution pollen records from the YWY site and from Qinghai Lake, spanning the interval since the last deglaciation (15.3 kyr BP to the present) to quantitatively reconstruct changes in the local and regional vegetation using Landscape Reconstruction Algorithm models. The results show that, since the late glacial, spruce forest grew at high altitudes in the surrounding mountains, while the lakeshore environment was occupied mainly by shrub-steppe. From the lateglacial to the middle Holocene, coniferous woodland began to expand downslope and reached the YWY site at 7.1 kyr BP. The living environment of the local small groups of Paleolithic-Epipaleolithic humans (during 15.3-13.1 kyr BP and 9-6.4 kyr BP) changed from shrub-steppe to coniferous forest-steppe. The pollen record shows no evidence of pronounced changes in the vegetation community corresponding to human activity. However, based on a comparison of the local and regional vegetation reconstructions, low values of biodiversity and a significant increase in two indicators of vegetation degradation, Chenopodiaceae and Rosaceae, suggest that prehistoric hunters-gatherers likely disturbed the local vegetation during 9.0-6.4 kyr BP. Our findings are a preliminary attempt to study human-environment interactions at Paleolithic-Epipaleolithic sites in the region, and they contribute to ongoing environmental archaeology research in the Tibetan Plateau. KW - Quantitative vegetation reconstruction KW - Local and regional vegetation KW - dynamics KW - Paleolithic-Epipaleolithic human-environment  KW - interactions KW - Northeastern Tibetan Plateau Y1 - 2022 U6 - https://doi.org/10.1016/j.catena.2021.105892 SN - 0341-8162 SN - 1872-6887 VL - 210 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Zhang, Kai A1 - Hu, Jiege A1 - Yang, Shuai A1 - Xu, Wei A1 - Wang, Zhichao A1 - Zhuang, Peiwen A1 - Grossart, Hans-Peter A1 - Luo, Zhuhua T1 - Biodegradation of polyester polyurethane by the marine fungus Cladosporium halotolerans 6UPA1 JF - Journal of hazardous materials N2 - Lack of degradability and the accumulation of polymeric wastes increase the risk for the health of the environment. Recently, recycling of polymeric waste materials becomes increasingly important as raw materials for polymer synthesis are in short supply due to the rise in price and supply chain disruptions. As an important polymer, polyurethane (PU) is widely used in modern life, therefore, PU biodegradation is desirable to avoid its accumulation in the environment. In this study, we isolated a fungal strain Cladosporium halotolerans from the deep sea which can grow in mineral medium with a polyester PU (Impranil DLN) as a sole carbon source. Further, we demonstrate that it can degrade up to 80% of Impranil PU after 3 days of incubation at 28 celcius by breaking the carbonyl groups (1732 cm(-1)) and C-N-H bonds (1532 cm(-1) and 1247 cm(-1)) as confirmed by Fourier-transform infrared (FTIR) spectroscopy analysis. Gas chromatography-mass spectrometry (GC-MS) analysis revealed polyols and alkanes as PU degradation intermediates, indicating the hydrolysis of ester and urethane bonds. Esterase and urease activities were detected in 7 days-old cultures with PU as a carbon source. Transcriptome analysis showed a number of extracellular protein genes coding for enzymes such as cutinase, lipase, peroxidase and hydrophobic surface binding proteins A (HsbA) were expressed when cultivated on Impranil PU. The yeast two-hybrid assay revealed that the hydrophobic surface binding protein ChHsbA1 directly interacts with inducible esterases, ChLip1 (lipase) and ChCut1 (cutinase). Further, the KEGG pathway for "fatty acid degradation " was significantly enriched in Impranil PU inducible genes, indicating that the fungus may use the degradation intermediates to generate energy via this pathway. Taken together, our data indicates secretion of both esterase and hydrophobic surface binding proteins by C. halotolerans plays an important role in Impranil PU absorption and subsequent degradation. Our study provides a mechanistic insight into Impranil PU biodegradation by deep sea fungi and provides the basis for future development of biotechnological PU recycling. KW - Impranil PU degradation KW - Lipase KW - Cutinase KW - HsbA KW - Fatty acid degradation Y1 - 2022 U6 - https://doi.org/10.1016/j.jhazmat.2022.129406 SN - 0304-3894 SN - 1873-3336 VL - 437 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Zappa, Luca A1 - Schlaffer, Stefan A1 - Brocca, Luca A1 - Vreugdenhil, Mariette A1 - Nendel, Claas A1 - Dorigo, Wouter T1 - How accurately can we retrieve irrigation timing and water amounts from (satellite) soil moisture? JF - International journal of applied earth observation and geoinformation N2 - While ensuring food security worldwide, irrigation is altering the water cycle and generating numerous environmental side effects. As detailed knowledge about the timing and the amounts of water used for irrigation over large areas is still lacking, remotely sensed soil moisture has proved potential to fill this gap. However, the spatial resolution and revisit time of current satellite products represent a major limitation to accurately estimating irrigation. This work aims to systematically quantify their impact on the retrieved irrigation information, hence assessing the value of satellite soil moisture for estimating irrigation timing and water amounts. In a real-world experiment, we modeled soil moisture using actual irrigation and meteorological data, obtained from farmers and weather stations, respectively. Modeled soil moisture was compared against various remotely sensed products differing in terms of spatio-temporal resolution to test the hypothesis that high-resolution observations can disclose the irrigation signal from individual fields while coarse-scale satellite products cannot. Then, in a synthetic experiment, we systematically investigated the effect of soil moisture spatial and temporal resolution on the accuracy of irrigation estimates. The analysis was further elaborated by considering different irrigation scenarios and by adding realistic amounts of random errors in the soil moisture time series. We show that coarse-scale remotely sensed soil moisture products achieve higher correlations with rainfed simulations, while high-resolution satellite observations agree significantly better with irrigated simulations, suggesting that high-resolution satellite soil moisture can inform on field-scale (similar to 40 ha) irrigation. A thorough analysis of the synthetic dataset showed that satisfactory results, both in terms of detection (F-score > 0.8) and quantification (Pearson's correlation > 0.8), are found for noise-free soil moisture observations either with a temporal sampling up to 3 days or if at least one-third of the pixel covers the irrigated field(s). However, irrigation water amounts are systematically underestimated for temporal samplings of more than one day, and decrease proportionally to the spatial resolution, i.e., coarsening the pixel size leads to larger irrigation underestimations. Although lower spatial and temporal resolutions decrease the detection and quantification accuracies (e.g., R between 0.6 and 1 depending on the irrigation rate and spatio-temporal resolution), random errors in the soil moisture time series have a stronger negative impact (Pearson R always smaller than 0.85). As expected, better performances are found for higher irrigation rates, i.e. when more water is supplied during an irrigation event. Despite the potentially large underestimations, our results suggest that high-resolution satellite soil moisture has the potential to track and quantify irrigation, especially over regions where large volumes of irrigation water are applied to the fields, and given that low errors affect the soil moisture observations. KW - remote sensing KW - soil moisture KW - irrigation KW - detection KW - quantification KW - sentinel-1 Y1 - 2022 U6 - https://doi.org/10.1016/j.jag.2022.102979 SN - 1569-8432 SN - 1872-826X VL - 113 PB - Elsevier CY - Amsterdam ER -