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Association with pedogenic iron and aluminum: effects on soil organic carbon storage and stability in four temperate forest soils 总被引:2,自引:0,他引:2
Rachel C. Porras Caitlin E. Hicks Pries Karis J. McFarlane Paul J. Hanson Margaret S. Torn 《Biogeochemistry》2017,133(3):333-345
Soil organic carbon (SOC) can be stabilized via association with iron (Fe) and aluminum (Al) minerals. Fe and Al can be strong predictors of SOC storage and turnover in soils with relatively high extractable metals content and moderately acidic to circumneutral pH. Here we test whether pedogenic Fe and Al influence SOC content and turnover in soils with low Fe and Al content and acidic pH. In soils from four sites spanning three soil orders, we quantified the amount of Fe and Al in operationally-defined poorly crystalline and organically-complexed phases using selective chemical dissolution applied to the soil fraction containing mineral-associated carbon. We evaluated the correlations of Fe and Al concentrations, mean annual precipitation (MAP), mean annual temperature (MAT), and pH with SOC content and 14C-based turnover times. We found that poorly crystalline Fe and Al content predicted SOC turnover times (p < 0.0001) consistent with findings of previous studies, while organically-complexed Fe and Al content was a better predictor of SOC concentration (p < 0.0001). Greater site-level MAP (p < 0.0001) and colder site-level MAT (p < 0.0001) were correlated with longer SOC turnover times but were not correlated with SOC content. Our results suggest that poorly crystalline Fe and Al effectively slow the turnover of SOC in these acidic soils, even when their combined content in the soil is less than 2% by mass. However, in the strongly acidic Spodosol, organo-metal complexes tended to be less stable resulting in a more actively cycling mineral-associated SOC pool. 相似文献
144.
Mario A. Cepeda Jacob JH. Pelling Caitlin L. Evered Hon S. Leong Sashko Damjanovski 《Experimental cell research》2017,350(1):169-183
Membrane-type-1 Matrix Metalloproteinase (MT1-MMP) is a multifunctional protease that regulates ECM degradation, proMMP-2 activation, and varied cellular processes including migration and viability. MT1-MMP is believed to be a central mediator of tumourigenesis whose role is dictated by its functionally distinct protein domains. Both the localization and signal transduction capabilities of MT1-MMP are dependent on its cytoplasmic domain, exemplifying diverse regulatory functions. To further our understanding of the multifunctional contributions of MT1-MMP to cellular processes, we overexpressed cytoplasmic domain altered constructs in MCF-7 breast cancer cells and analyzed migration and viability in 2D culture conditions, morphology in 3D Matrigel culture, and tumorigenic ability in vivo. We found that the cytoplasmic domain was not needed for MT1-MMP mediated migration promotion, but was necessary to maintain viability during serum depravation in 2D culture. Similarly, during 3D Matrigel culture the cytoplasmic domain of MT1-MMP was not needed to initiate a protrusive phenotype, but was necessary to prevent colony blebbing when cells were serum deprived. We also tested in vivo tumorigenic potential to show that cells expressing cytoplasmic domain altered constructs demonstrated a reduced ability to vascularize tumours. These results suggest that the cytoplasmic domain regulates MT1-MMP function in a manner required for cell survival, but is dispensable for cell migration. 相似文献
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Branch lengths, support, and congruence: testing the phylogenomic approach with 20 nuclear loci in snakes 总被引:2,自引:0,他引:2
Wiens JJ Kuczynski CA Smith SA Mulcahy DG Sites JW Townsend TM Reeder TW 《Systematic biology》2008,57(3):420-431
Many authors have claimed that short branches in the Tree of Life will be very difficult to resolve with strong support, even with the large multilocus data sets now made possible by genomic resources. Short branches may be especially problematic because the underlying gene trees are expected to have discordant phylogenetic histories when the time between branching events is very short. Although there are many examples of short branches that are difficult to resolve, surprisingly, no empirical studies have systematically examined the relationships between branch lengths, branch support, and congruence among genes. Here, we examine these fundamental relationships quantitatively using a data set of 20 nuclear loci for 50 species of snakes (representing most traditionally recognized families). A combined maximum likelihood analysis of the 20 loci gives strong support for 69% of the nodes, but many remain weakly supported, with bootstrap values for 20% ranging from 21% to 66%. For the combined-data tree, we find significant correlations between the length of a branch, levels of bootstrap support, and the proportion of genes that are congruent with that branch in the separate analyses of each gene. We also find that strongly supported conflicts between gene trees over the resolution of individual branches are common (roughly 35% of clades), especially for shorter branches. Overall, our results support the hypothesis that short branches may be very difficult to confidently resolve, even with large, multilocus data sets. Nevertheless, our study provides strong support for many clades, including several that were controversial or poorly resolved in previous studies of snake phylogeny. 相似文献
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David L. Kimbro Edwin D. Grosholz Adam J. Baukus Nicholas J. Nesbitt Nicole M. Travis Sarikka Attoe Caitlin Coleman-Hulbert 《Oecologia》2009,160(3):563-575
Although invasive species often resemble their native counterparts, differences in their foraging and anti-predator strategies
may disrupt native food webs. In a California estuary, we showed that regions dominated by native crabs and native whelks
have low mortality of native oysters (the basal prey), while regions dominated by invasive crabs and invasive whelks have
high oyster mortality and are consequently losing a biologically diverse habitat. Using field experiments, we demonstrated
that the invasive whelk’s distribution is causally related to a large-scale pattern of oyster mortality. To determine whether
predator–prey interactions between crabs (top predators) and whelks (intermediate consumers) indirectly control the pattern
of oyster mortality, we manipulated the presence and invasion status of the intermediate and top trophic levels in laboratory
mesocosms. Our results show that native crabs indirectly maintain a portion of the estuary’s oyster habitat by both consuming
native whelks (density-mediated trophic cascade) and altering their foraging behavior (trait-mediated trophic cascade). In
contrast, invasive whelks are naive to crab predators and fail to avoid them, thereby inhibiting trait-mediated cascades and
their invasion into areas with native crabs. Similarly, when native crabs are replaced with invasive crabs, the naive foraging
strategy and smaller size of invasive crabs prevents them from efficiently consuming adult whelks, thereby inhibiting strong
density-mediated cascades. Thus, while trophic cascades allow native crabs, whelks, and oysters to locally co-exist, the replacement
of native crabs and whelks by functionally similar invasive species results in severe depletion of native oysters. As coastal
systems become increasingly invaded, the mismatch of evolutionarily based strategies among predators and prey may lead to
further losses of critical habitat that support marine biodiversity and ecosystem function.
Electronic supplementary material The online version of this article (doi:) contains supplementary material, which is available to authorized users. 相似文献