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Savannas provide essential ecosystem services for human well-being in West Africa. Thus, ecosystem change not only directly affects biodiversity but also human livelihoods. Human land use considerably shaped these savanna ecosystems for millennia, particularly agriculture, livestock grazing, logging and the collection of non-timber forest products (NTFPs). NTFPs are wild plant products and comprise all organic matter from herbaceous plants, shrubs, and trees (excluding timber). Current increasing land use pressure through fast demographic changes is widely esteemed as a severe threat for savanna biodiversity and the socio-economy of rural communities. In consideration of the pivotal role of NTFP species for biodiversity and livelihoods, it is important to evaluate the effect of increasing land use change on savanna vegetation and on its provisioning service for human well-being. Thus, the major aim of this thesis is to investigate the impacts of land use intensification on vegetation composition, diversity and function and its consequences for provisioning ecosystem services (NTFPs) and human well-being in a West African savanna.
The research for this study was conducted in the North Sudanian vegetation zone of south-eastern Burkina Faso, where population growth exceeds the nationwide trend. Generally, Burkina Faso belongs to the worldwide poorest countries, where nearly one quarter of the population suffers from malnutrition (FAO 2014). The integration of NTFPs and particularly wild food species into rural household economies is, thus, an important measure in the national combat against poverty and food insecurity (FAO 2014). Against this background, I focus on vegetation changes, the economic importance of NTFPs as well as the decrease and substitution of wild food species in this study.
Vegetation resurveys of different vegetation types since the early 1990s showed that land use change led to more pronounced changes in the herbaceous than in the woody vegetation layer. Most woody vegetation types stayed stable in species composition and richness, even though some highly useful tree species (Vitellaria paradoxa, Parkia biglobosa) declined in some woody vegetation types. In contrast, in most herbaceous vegetation types species richness increased and species composition considerably changed. This change might be explained by a general ruderalisation process through a pronounced increase of wide-ranging herbaceous species. However, in spite of a general species increase in the herbaceous layer, a decrease of preferred herbaceous fodder species was found. Thus, the decline of useful species in both layers is alarming. Herbaceous vegetation types also showed more pronounced changes in plant functional trait characteristics in comparison to woody vegetation types. However, an increase of smaller plant species and species with a high diaspore terminal velocity (VTerm) was found in both vegetation layers. Since these two trait responses are generally related to grazing and browsing, the strong increase of livestock herds is likely to be responsible for the detected vegetation changes.
In addition to the vegetation study, interviews showed that all useful food species were widely considered to decline. The two economically most important tree species, the shea tree (Vitellaria paradoxa) and the locust bean tree (Parkia biglobosa) that contribute with 70% to wild food income, were considered among the most declining species of all cited wild food species. On this matter, local perceptions of species decline and results from field observations are in accordance. However, a wide range of cited substitutes indicated a great knowledge on alternative plant species in the area. Most wild food species are, however, substituted by other highly valued wild food species. Although our results suggest that rural communities are able to cope with the decrease or absence of wild food species, growing decline of one species would concurrently increase the pressure on other native food species. Therefore, the need to counteract the decrease of highly useful wild food species should be of high priority in management measures. In general, I showed that NTFPs are an essential component in rural households, since it contributed with 45 % to total household income. Significant differences in NTFP dependency between the two investigated villages and across the three main ethnic groups were detected, reflecting different traditional uses and harvesting practices. In general, it was shown that poorer households depend more on NTFP income than wealthier households. Against the background of this study, management strategies for agroforestry systems and poverty alleviation should consider local differences, and ethnicity-dependent NTFP-use patterns.
Overall, the combination of field studies on temporal and functional vegetation change with socio-economic and ethno-botanic interviews increases the knowledge on qualitative and quantitative vegetation changes and on the consequences for rural populations. This thesis gives a thorough insight into decreasing trends of economically valued plant species and thus gives evidence on the consequences of vegetation changes for ecosystem services of West African savanna ecosystems. Further, different NTFP-dependencies and use preferences according to socio-economic and cultural variables, such as ethnicity, present a valuable basis for specific decision-making and should be considered in management plans.
Dendrites form predominantly binary trees that are exquisitely embedded in the networks of the brain. While neuronal computation is known to depend on the morphology of dendrites, their underlying topological blueprint remains unknown. Here, we used a centripetal branch ordering scheme originally developed to describe river networks—the Horton-Strahler order (SO)–to examine hierarchical relationships of branching statistics in reconstructed and model dendritic trees. We report on a number of universal topological relationships with SO that are true for all binary trees and distinguish those from SO-sorted metric measures that appear to be cell type-specific. The latter are therefore potential new candidates for categorising dendritic tree structures. Interestingly, we find a faithful correlation of branch diameters with centripetal branch orders, indicating a possible functional importance of SO for dendritic morphology and growth. Also, simulated local voltage responses to synaptic inputs are strongly correlated with SO. In summary, our study identifies important SO-dependent measures in dendritic morphology that are relevant for neural function while at the same time it describes other relationships that are universal for all dendrites.
Background: Root and tuber crops are a major food source in tropical Africa. Among these crops are several species in the monocotyledonous genus Dioscorea collectively known as yam, a staple tuber crop that contributes enormously to the subsistence and socio-cultural lives of millions of people, principally in West and Central Africa. Yam cultivation is constrained by several factors, and yam can be considered a neglected “orphan” crop that would benefit from crop improvement efforts. However, the lack of genetic and genomic tools has impeded the improvement of this staple crop.
Results: To accelerate marker-assisted breeding of yam, we performed genome analysis of white Guinea yam (Dioscorea rotundata) and assembled a 594-Mb genome, 76.4% of which was distributed among 21 linkage groups. In total, we predicted 26,198 genes. Phylogenetic analyses with 2381 conserved genes revealed that Dioscorea is a unique lineage of monocotyledons distinct from the Poales (rice), Arecales (palm), and Zingiberales (banana). The entire Dioscorea genus is characterized by the occurrence of separate male and female plants (dioecy), a feature that has limited efficient yam breeding. To infer the genetics of sex determination, we performed whole-genome resequencing of bulked segregants (quantitative trait locus sequencing [QTL-seq]) in F1 progeny segregating for male and female plants and identified a genomic region associated with female heterogametic (male = ZZ, female = ZW) sex determination. We further delineated the W locus and used it to develop a molecular marker for sex identification of Guinea yam plants at the seedling stage.
Conclusions: Guinea yam belongs to a unique and highly differentiated clade of monocotyledons. The genome analyses and sex-linked marker development performed in this study should greatly accelerate marker-assisted breeding of Guinea yam. In addition, our QTL-seq approach can be utilized in genetic studies of other outcrossing crops and organisms with highly heterozygous genomes. Genomic analysis of orphan crops such as yam promotes efforts to improve food security and the sustainability of tropical agriculture.
In dieser Arbeit wurde der Hefepilz Xanthophyllomyces dendrorhous als vielseitige biotechnologische Plattform für die Produktion von Carotinoiden verwendet. Durch genetische Modifikationen der Carotinoidbiosynthese wurde ein Astaxanthin-Hochproduzent zur Akkumulation des farblosen Phytoens, das die menschliche Haut vor der schädlichen Wirkung der UV-Strahlung schützt und des gelben Zeaxanthins, das zur Förderung und Erhalt der Sehfähigkeit beiträgt, befähigt. Zur Generierung eines Phytoen-Hochproduzenten wurde das Gen crtI (Phytoen-Desaturase) inaktiviert und der Phytoengehalt durch Überexpression der Gene HMGR, crtE und crtYB gesteigert. Die Generierung eines Zeaxanthin-Hochproduzenten beinhaltete die Inaktivierung des Gens asy (Astaxanthin-Synthase) und die heterologe Expression einer bakteriellen ß-Carotin-Hydroxylase CrtZoXd.
Die Inaktivierung der Gene erfolgte mit spezifischen Knock-Out-Konstrukten, die mittels homologer Rekombination in crtI oder asy integrierten. Nachdem die Transgene auf Vektoren mit verschiedenen Antibiotikaresistenzen kloniert wurden, wurde die Überexpression durch genomische Integration in die ribosomale DNA erreicht. Anschließend wurde die Carotinoidzusammensetzung der Zellextrakte durch Hochleistungsflüssigkeitschromatographie an einer C18-Trennsäule oder durch Dünnschichtchromatographie bestimmt. Der Knock-Out-Nachweis erfolgte mittels Polymerase-Kettenreaktion und Amplifikation der Genloci, während die Anzahl integrierter Carotinoidgene durch quantitative Real-Time-PCR bestimmt wurde. Die Kultivierungen von X. dendrorhous wurden sowohl in Schikanekolben als auch in einem 2L-Bioreaktor durchgeführt.
Im Zuge der genetischen Modifikationen konnte der Ploidiegrad des Wildtyps bestimmt werden, der bis dahin unbekannt war. Durch das Auftreten von instabilen heterozygoten Stämmen und deren Überführung zu stabilen Homozygoten wurde die Existenz eines diploiden Genoms nachgewiesen. Um die für die biotechnologische Anwendung notwendige Stabilität der Carotinoidbiosyntheseleistung zu erreichen, wurden zwei Strategien entwickelt. Hierbei erfolgte die Stabilisierung der Stämme als Folge mitotischer Rekombination nach Subkultivierung und anschließender Farbselektion oder durch Induktion des sexuellen Zyklus und Sporulation.
Der crtI-Knock-Out führte zur Akkumulation von 3,6 mg/g dw Phytoen. Anschließend wurde die Limitierung der Phytoensynthese durch crtYB-Überexpression aufgehoben und die Versorgung der Carotinoidbiosynthese mit Vorläufermolekülen durch HMGR- und crtE-Überexpression erhöht. Im Bioreaktor wurde durch die Anwendung eines dreistufigen Fed-Batch-Prozesses, der eine effiziente Glucoseverwertung sicherstellte, mit 10,4 mg/g dw die höchste bis dato publizierte zelluläre Phytoenkonzentration im stabilisierten Hochproduzenten erreicht.
Der asy-Knock-Out führte zur Akkumulation von 4,5 mg/g dw ß-Carotin, das anschließend durch heterologe Expression der codon-optimierten ß-3,3-ß-Hydroxylase crtZoXd im Hochproduzenten zu 3,5 mg/g dw Zeaxanthin umgesetzt wurde. Zur Optimierung des Vorgehens wurden Knock-In-Konstrukte entwickelt, mit denen beide Schritte (Knock-Out und Integration von Carotinoidgenen) in nur einem molekular-biologischen Schritt durchgeführt und 94 % des in einem Wildtypstamm vorhanden ß-Carotins zu Zeaxanthin umgesetzt wurden. Die Optimierung der Wachstumsbedingungen bei der Bioreaktor-Kultivierung des stabilisierten Zeaxanthinproduzenten führte mit 10,8 mg/L zu einem 5-fach höheren Zeaxanthingehalt im Vergleich zur Schikane-Kultivierung.
Durch den Einsatz der Pentosen Arabinose und Xylose als alternative Kohlenstoffquellen wurde der Carotinoidgehalt der Phytoen- und Zeaxanthin-Hochproduzenten um 70 bzw. 92 % im Vergleich zur Glucose-Kultivierung gesteigert, wobei die Gründe für diesen Effekt in einer stärkeren Kohlenstoffverwertung und der Hemmwirkung von Glucose vermutet wurden. Aus verschiedenen pflanzlichen Abfallstoffen kann Xylose durch Hydrolyse freigesetzt werden, deren Nutzung zum Aufbau einer nachhaltigen und kostengünstigen biotechnologischen Carotinoidproduktion beitragen kann.
Darüber hinaus wurden multioxigenierte Zeaxanthinderivate, von denen eine positive Wirkung auf die menschliche Gesundheit vermutet wird, durch kombinatorische Biosynthese erhalten. Durch die schrittweise Integration der Gene crtZoXd, crtG (ß-2,2-Hydroxylase) und bkt (ß-4,4-Ketolase) in eine ß-Carotinmutante wurde die Biosynthese von Zeaxanthin, Nostoxanthin und schließlich von 4-Keto-Nostoxanthin und 4,4-Diketo-Nostoxanthin erreicht. Anschließend erfolgte die chemische Reduktion zu den neuartigen Carotinoiden 4-Hydroxy-Nostoxanthin und 4,4-Dihydroxy-Nostoxanthin und der zweifelsfreie Nachweis aller vier Carotinoide anhand der mittels Massenspektrometrie bestimmten Molekülmassen und Fragmentierungsmuster.
The red yeast Xanthophyllomyces dendrorhous is an established platform for the synthesis of carotenoids. It was used for the generation of novel multi oxygenated carotenoid structures. This was achieved by a combinatorial approach starting with the selection of a β-carotene accumulating mutant, stepwise pathway engineering by integration of three microbial genes into the genome and finally the chemical reduction of the resulting 4,4’-diketo-nostoxanthin (2,3,2’,3’-tetrahydroxy-4,4’-diketo-β-carotene) and 4-keto-nostoxanthin (2,3,2’,3’-tetrahydroxy-4-monoketo-β-carotene). Both keto carotenoids and the resulting 4,4’-dihydroxy-nostoxanthin (2,3,4,2’,3’,4’-hexahydroxy-β-carotene) and 4-hydroxy-nostoxanthin (2,3,4,2’3’-pentahydroxy-β-carotene) were separated by high-performance liquid chromatography (HPLC) and analyzed by mass spectrometry. Their molecular masses and fragmentation patterns allowed the unequivocal identification of all four carotenoids.
Morphological malformations induced by tributyltin (TBT) exposure during embryonic development have already been characterized in various taxonomic groups, but, nonetheless, the molecular processes underlying these changes remain obscure. The present study provides the first genome-wide screening for differentially expressed genes that are linked to morphological alterations of gonadal tissue from chicken embryos after exposure to TBT. We applied a single injection of TBT (between 0.5 and 30 pg as Sn/g egg) into incubated fertile eggs to simulate maternal transfer of the endocrine disruptive compound. Methyltestosterone (MT) served as a positive control (30 pg/g egg). After 19 days of incubation, structural features of the gonads as well as genome-wide gene expression profiles were assessed simultaneously. TBT induced significant morphological and histological malformations of gonadal tissue from female embryos that show a virilization of the ovaries. This phenotypical virilization was mirrored by altered expression profiles of sex-dependent genes. Among these are several transcription and growth factors (e.g. FGF12, CTCF, NFIB), whose altered expression might serve as a set of markers for early identification of endocrine active chemicals that affect embryonic development by transcriptome profiling without the need of elaborate histological analyses.
Molluscs are the second most species-rich phylum in the animal kingdom, yet only 11 genomes of this group have been published so far. Here, we present the draft genome sequence of the pulmonate freshwater snail Radix auricularia. Six whole genome shotgun libraries with different layouts were sequenced. The resulting assembly comprises 4,823 scaffolds with a cumulative length of 910 Mb and an overall read coverage of 72×. The assembly contains 94.6% of a metazoan core gene collection, indicating an almost complete coverage of the coding fraction. The discrepancy of ∼690 Mb compared with the estimated genome size of R. auricularia (1.6 Gb) results from a high repeat content of 70% mainly comprising DNA transposons. The annotation of 17,338 protein coding genes was supported by the use of publicly available transcriptome data. This draft will serve as starting point for further genomic and population genetic research in this scientifically important phylum.
Rho GTPases control fundamental cellular processes and Cdc42 is a well-studied member of the family that controls filopodia formation and cell migration. Although the regulation of Cdc42 activity by nucleotide binding is well documented, the mechanisms driving its proteostasis are not clear. Here, we demonstrate that the highly conserved, RING domain containing E3 ubiquitin ligase XIAP controls the protein stability of Cdc42. XIAP binds to Cdc42 and directly conjugates poly ubiquitin chains to the Lysine 166 of Cdc42 targeting it for proteasomal degradation. Depletion of XIAP led to an increased protein stability and activity of Cdc42 in normal and tumor cells. Consistently, loss of XIAP enhances filopodia formation in a Cdc42-dependent manner and this phenomenon phenocopies EGF stimulation. Further, XIAP depletion promotes lung colonization of tumor cells in mice in a Cdc42-dependent manner. These observations shed molecular insights into ubiquitin-dependent regulation of Cdc42 and that of actin cytoskeleton.
Cytokine regulation of high-output nitric oxide (NO) derived from inducible NO synthase (iNOS) is critically involved in inflammation biology and host defense. Herein, we set out to characterize the role of type I interferon (IFN) as potential regulator of hepatic iNOS in vitro and in vivo. In this regard, we identified in murine Hepa1-6 hepatoma cells a potent synergism between pro-inflammatory interleukin-β/tumor necrosis factor-α and immunoregulatory IFNβ as detected by analysis of iNOS expression and nitrite release. Upregulation of iNOS by IFNβ coincided with enhanced binding of signal transducer and activator of transcription-1 to a regulatory region at the murine iNOS promoter known to support target gene expression in response to this signaling pathway. Synergistic iNOS induction under the influence of IFNβ was confirmed in alternate murine Hepa56.1D hepatoma cells and primary hepatocytes. To assess iNOS regulation by type I IFN in vivo, murine acetaminophen (APAP)-induced sterile liver inflammation was investigated. In this model of acute liver injury, excessive necroinflammation drives iNOS expression in diverse liver cell types, among others hepatocytes. Herein, we demonstrate impaired iNOS expression in type I IFN receptor-deficient mice which associated with diminished APAP-induced liver damage. Data presented indicate a vital role of type I IFN within the inflamed liver for fine-tuning pathological processes such as overt iNOS expression.