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In response to the increasingly complex social–ecological issues facing society, there is a growing trend to conduct environmental research in large collaborative programs. This approach is described as transdisciplinary research as it transcends formal disciplinary boundaries, explicitly acknowledges that many different perspectives are relevant to the resolution of complex problems, and actively involves the users of research. This poses challenges for the evaluation of “impact” as any evaluation process must take into consideration the different expectations, values, culture, language and reward structures of the main participating groups, the funders, researchers and end users. How can these participating groups learn about the progress of a transdisciplinary research program in a way that is purposeful and structured, continues through the life of the program, and includes explicit feedback mechanisms that facilitate adaptation during the course of the program? This paper presents a framework for co-reflecting on the accomplishment of transdisciplinary research programs. The framework incorporates the perspectives of funders, researchers and users, and recognizes that while they place different emphasis on measures of achievement such as efficiency, rigor and relevance, ultimate accomplishment in terms of translating knowledge into practice requires that the needs and expectations of all three groups are adequately addressed. What emerges from the framework is the importance of early investment in processes, behaviors and relationships that foster social learning and the co-production of the knowledge and understanding that are required to ensure relevance; while maintaining emphasis in the traditional areas of formally testing evidence and mentoring young researchers to ensure rigor and build confidence and capacity in transdisciplinary approaches.  相似文献   
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The detoxification of iron cyanide in a soil–plant system was investigated to assess the total cyanide extracted from contaminated soil and allocated in the leaf tissue of willow trees(Salix caprea). They were grown in soil containing up to 1000 mg/kg dry weight(dw) of cyanide(CN),added as ~(15)N-labeled potassium ferrocyanide and prepared with a new method for synthesis of labeled iron cyanides. CN content and ~(15)N enrichment were monitored weekly over the exposure in leaf tissue of different age. The ~(15)N enrichment in the young and old leaf tissue reached up to 15.197‰ and 9063‰, respectively; it increased significantly over the exposure and with increasing exposure concentrations(p 0.05). Although the CN accumulation in the old leaf tissue was higher, compared to the young leaf tissue(p 0.05), the ~(15)N enrichment in the two tissue types did not differ statistically. This indicates a non-uniform CN accumulation but a uniform ~(15)N allocation throughout the leaf mass. Significant differences were detected between the measured CN content and the C~(15)N content, calculated from the ~(15)N enrichment(p 0.05), revealing a significant CN fraction within the leaf tissue, which could not be detected as ionic CN. The application of labeled iron CN clearly shows that CN is detoxified during uptake by the willows. However, these results do not exclude other detoxification pathways, not related to the trees. Still, they are strongly indicative of the central role the trees played in CN removal and detoxification under the experimental conditions.  相似文献   
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The nature of life on Earth provides a singular example of carbon-based, water-borne, photosynthesis-driven biology. Within our understanding of chemistry and the physical laws governing the universe, however, lies the possibility that alien life could be based on different chemistries, solvents, and energy sources from the one example provided by Terran biology. In this paper, we review some of these possibilities. Silanes may be used as functional analogs to carbon molecules in environments very different from Earth; solvents other than water may be compatible for life-supporting processes, especially in cold environments, and a variety of energy sources may be utilized, some of which have no Terran analog. We provide a detailed discussion of two possible habitats for alien life which are generally not considered as such: the lower cloud level of the Venusian atmosphere and Titan’s surface environment.  相似文献   
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We examined how reproductive state affected shifts in behavior of adult female Podarcis sicula toward chemical cues from a natural snake predator (Coronella austriaca). The oviparous P. sicula lizards do not experience a major physical burden during reproduction, but gravid females substantially increase duration of basking. Therefore, gravid lizards are likely to experience a greater risk of mortality because they are exposed to predators for longer periods. Both gravid and non-gravid females shifted patterns of locomotion when confronted with snake chemical cues, but the change was notably larger when females were non-gravid. When non-gravid, lizards responded to predator scent by increasing the number of stand-ups and starts, while such a response was not observed when females were gravid. By contrast, gravid lizards clearly reduced the time spent basking in the presence of predator scent, whereas no change in basking behavior was observed when females were non-gravid. Thus, females exhibit differential behavioral responses to predator scents that is dependent on reproductive state.  相似文献   
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Zusammenfassung  Zur Quantifizierung des Gefahrstoffeinsatzes in der Produktion ist im Rahmen der integrierten ?kologischen Bewertung des ?ko-Institutes (EcoGrade) eine eigene Methodik entwickelt worden. Indikator für den Gefahrstoffeinsatz sind Monoethylenglykol (‘MEG’)-?quivalente. Sie erm?glichen einen direkten, schadstoffbezogenen Prozess- und Produktvergleich (Bunke 2001). Die Bewertung basiert auf den R-S?tzen (Gefahrenhinweise) der Inhaltsstoffe. Die Methodik der MEG-?quivalente stellt eine Weiterentwicklung und Anwendung des Wirkfaktorenmodells der Technischen Regel für Gefahrstoffe (TRGS) 440 dar (AGS 2001). Die zur Bewertung erforderlichen Daten sind im Unternehmen vorhanden (Sicherheitsdatenbl?tter) bzw. ?ffentlich leicht zug?nglich (Gefahrstoffdatenbanken). Die Bilanzierung von Gefahrstoffen mit Hilfe der hier vorgestellten Methode erm?glicht es auch, in ?kobilanziellen Untersuchungen systematisch den Gefahrstoffeinsatz zu berücksichtigen. Die Methodik ist am Beispiel von Wohngeb?uden erprobt worden. Anmerkung: Als Gefahrstoffe, Schadstoffe, gef?hrliche Inhaltsstoffe bzw. gef?hrliche Stoffe werden in dieser Arbeit solche Stoffe definiert, die eines der Gef?hrlichkeitsmerkmale nach § 3 Chemikaliengesetz besitzen. OnlineFirst: 19. 12. 2001  相似文献   
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