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17 results for “home-field advantage”

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dryad36/100

What makes decomposition faster under conspecific trees? The factors controlling the magnitude of home-field advantage

<p>The "home-field advantage (HFA)" for decomposition means that leaf litter decomposes faster on soils under the conspecific species (i.e., the home field) than on soils under different species (i.e., "away"). Many previous studies have demonstrated the HFA, but the underlying mechanisms remain unclear. We conducted a reciprocal litter-decomposition experiment using two species with different leaf traits: <em>Abies mariesii</em>, an evergreen conifer, and <em>Fagus crenata</em>, a deciduous broad-leaved tree. The dominance of these species shifts along an elevation gradient with a transition zone where both species coexist. In mixed forests of the transition zone along the elevation gradient, we explored how the magnitude of HFA between these two species was influenced by temperature, soil properties, or leaf litter traits which could directly affect the decomposition rate. The magnitude of HFA observed between the two species varied widely from -3.89% to 28.3%. Our modeling showed that the magnitude of HFA increased with decreasing soil pH and leaf litter N, i.e., in more acidic soil and for less decomposable litter. Soil pH affected leaf litter decomposition in the home plots of each species, whereas leaf litter N did not. The magnitude of the HFA increased as the difference in soil pH between the <em>F. crenata </em>and <em>A. mariesii</em> plots at the same elevation became greater, but decreased as the difference in soil C became greater. Thus, the response of leaf litter decomposition to environmental changes might vary not only through direct effects of vegetation traits but also through indirect effects of the HFA. This highlights the importance of considering HFA for accurately predicting the response of local carbon and nutrient cycles to climate change, particularly in communities where a replacement of dominant species by others is expected due to climate change.</p>

opencc-zeroJun 2024View details →
dryad36/100

Home-field advantage meets priming effect in root decomposition: Implications for belowground carbon dynamics

<p>1. Home-field advantage (HFA) states that litter decomposes faster in 'home' than in 'away' soil, due to the specialization of decomposer organisms in decomposing litter derived from their local plant community. Demonstration of the HFA effect has been overwhelmingly based on aboveground leaf litter despite the fact that roots play a pivotal role in carbon (C) and nutrient cycling.</p> <p>2. Labile C input in root exudates and newly shed root litters can enhance the activity of soil microorganisms, which in turn can favor the breakdown of older root litter, also referred to as the priming effect. It remains, however, unclear how the addition of fresh root-derived inputs affects HFA on the decomposition of absorptive roots (ARs) and transport roots (TRs), which have a different chemical composition.</p> <p>3. Here, we conducted a two-stage (endogenous C consumption versus exogenous C priming) reciprocal transplant microcosm experiment to explore the effects of HFA on the decomposition of lower-quality ARs and higher-quality TRs of two subtropical tree species (Pinus elliottii and Cunninghamia lanceolata) and their responses to either labile (glucose) or recalcitrant (fresh ARs) C additions.</p> <p>4. Decomposition of lower-quality ARs exhibited neutral HFA, while decomposition of higher-quality TRs exhibited positive HFA. The absence of HFA for short-lived ARs was possibly due to the legacy effect of their chemical defenses on decomposition. The neutral HFA for ARs became negative with glucose addition, which was linked to the dissimilarity of fungal community between the home and away soils. Neither glucose nor fresh ARs additions changed the HFA pattern of TRs, implying that these long-lived roots play a reinforced role in soil C accumulation when they decompose away from their origins.</p> <p>5. These results indicate that the effect of HFA on decomposition differs between ARs and TRs, and could be modified by the priming effect induced by the root-derived C input. In general, our findings highlight that complex 'HFA-priming' interactions on root decomposition should be explicitly considered in the paradigm of belowground C dynamics.</p>

opencc-zeroDec 2022View details →
dryad36/100

No home-field advantage in litter decomposition from the desert to temperate forest

<p>1. Litter decomposition rates are determined by the interplay of climate, decomposer organisms and litter quality. It has been suggested that the decomposer community may be locally adapted to litter quality, providing a home-field advantage (HFA) resulting in accelerated decomposition of local compared to non-local litter, after accounting for decomposition differences due to litter quality and the functional capacity of microorganisms. Although widely tested in forests, this hypothesis remains controversial and lacks a general support of its generality across climates.</p> <p>2. We therefore tested the HFA hypothesis for litter decomposition in four contrasting ecosystems along an extensive climatic gradient in Chile, using a translocation experiment involving litter from 20 species. In addition to comparing mass loss, we adopted a novel way to disentangle decomposer effects from climate effects, based on loss rates of elements that are actively released from the litter by decomposers during its breakdown vs. elements that are simply leached by precipitation. We used the ratios of nitrogen and potassium losses (N/K loss) and phosphorus and potassium losses (P/K loss) to unravel the relative role of microbial breakdown (N and P loss) vs. physical leaching (K loss) along the climate gradient. Thus, at each site, we tested whether litter mass loss, N/K loss and P/K loss presented an additional loss due to a HFA for local compared to non-local litter.</p> <p>3. Across a wide range of environments and 20 different litter types, our findings unequivocally contradicted the HFA hypothesis. We observed no significantly positive HFA along the gradient, however litter quality and the general ability of the decomposer community influenced litter decomposition much more strongly than origin or location of the litter.</p> <p>4. Our study questions the applicability of the HFA for litter decomposition and calls for more studies that include a large range of climatic conditions to understand the context-dependency of HFA.</p>

opencc-zeroJan 2023View details →
dryad36/100

What makes decomposition faster under conspecific trees? The factors controlling the magnitude of home-field advantage

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publicJun 2024View details →
dryad36/100

Data from: Fungi rather than bacteria explain home-field advantage for decomposition of litter carbon fractions

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publicDec 2025View details →
dryad36/100

Home-field advantage meets priming effect in root decomposition: Implications for belowground carbon dynamics

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publicDec 2022View details →
dryad36/100

No home-field advantage in litter decomposition from the desert to temperate forest

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publicJan 2023View details →
dryad32/100

Data from: Variation in home-field advantage and ability in leaf litter decomposition across successional gradients

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publicMar 2019View details →
dryad32/100

Data from: Relationships between fungal community composition in decomposing leaf litter and home-field advantage effects

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publicApr 2019View details →
dryad32/100

Low-quality carbon and lack of nutrients result in a stronger fungal than bacterial home-field advantage during the decomposition of leaf litter

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publicMay 2021View details →
dryad28/100

Data from: Song sparrows Melospiza melodia have a home-field advantage in defending against sympatric malarial parasites

Hosts and parasites interact on both evolutionary and ecological timescales. The outcome of these interactions, specifically whether hosts are more resistant to their local parasites (sympatric) than to parasites from another location (allopatric), is likely to affect the spread of infectious disease and the fitness consequences of host dispersal. We conducted a cross-infection experiment to determine whether song sparrows (Melospiza melodia) have an advantage in dealing with sympatric parasites. We captured birds from two breeding sites 437 km apart, and inoculated them with avian malaria (Plasmodium spp.) cultured either from their capture site or from the other site. Infection risk was lower for birds exposed to sympatric than to allopatric Plasmodium lineages, suggesting that song sparrows may have a home-field advantage in defending against local parasite strains. This pattern was more pronounced at one capture site than at the other, consistent with mosaic models of host–parasite interactions. Home-field advantage may arise from evolutionary processes, whereby host populations become adapted to their local parasites, and/or from ecological interactions, whereby host individuals develop resistance to the local parasites through previous immune exposure. Our findings suggest that greater susceptibility to novel parasites may represent a fitness consequence of natal dispersal.

opencc-zeroDec 2015View details →
dryad28/100

Data from: Environmental factors and traits that drive plant litter decomposition do not determine home-field advantage effects

The 'home-field advantage' (HFA) hypothesis predicts that plant litter is decomposed faster than expected underneath the plant from which it originates ('home') than underneath other plants ('away'), because decomposer communities are specialized to break down litter from the plants they associate with. However, empirical evidence shows that the occurrence of HFA is highly variable, and the reasons for this are little understood. In our study we progress our understanding by investigating whether HFA is stronger for more recalcitrant litter types and under colder conditions and how soil properties and plant functional traits affect the magnitude and direction of HFA. In subarctic tundra in northern Sweden we set up a reciprocal transplant litter decomposition experiment along an elevational gradient where three highly contrasting vegetation types (heath, meadow and Salix) occur at all elevations, and where temperature decreases strongly with elevation. In this study, we used a litter bag approach where litters from each elevation × vegetation type combination were decomposed in all combinations of elevation × vegetation type. We also measured community-level plant functional traits, such as leaf and litter nutrient content. We determined soil biotic and abiotic properties, such as microbial biomass and soil nutrient content, in soil cores collected for each elevation × vegetation type combination. We found that mass loss increased with plant and litter nutrient content and with soil temperature. In contrast, the occurrence of HFA was limited in our study system, and its magnitude and direction could not be explained by vegetation type, elevation, plant traits or soil properties, despite these factors serving as powerful drivers of litter mass loss in our study. We conclude that although vegetation type and climate are major drivers of litter mass loss, they do not emerge as important determinants of HFA. Therefore, while rapid shifts in plant community composition or temperature due to global change are likely to influence litter mass loss directly by altering environmental conditions, plant trait spectra and litter quality, indirect effects of global change resulting from decoupling of specialist interactions between litter and decomposer communities appears to be of less importance.

opencc-zeroDec 2014View details →
dryad28/100

Evaluating the roles of microbial functional breadth and home-field advantage in leaf litter decomposition

<p><span>Soil biota are increasingly recognized as a primary control on litter decomposition at both local and regional scales, but the precise mechanisms by which biota influence litter decomposition have yet to be identified.</span></p> <p><br><span>There are multiple hypothesized mechanisms by which biotic communities may influence litter decomposition – for example, decomposer communities may be specially adapted to local litter inputs and therefore decompose litter from their home ecosystem at elevated rates. This mechanism is known as the home-field advantage (HFA) hypothesis. Alternatively, litter decomposition rates may simply depend upon the range of metabolic functions present within a decomposer community. This mechanism is known as the functional breadth (FB) hypothesis. However, the relative importance of HFA and FB in litter decomposition are unknown, as are the microbial community drivers of HFA and FB. Potential relationships/tradeoffs between microbial HFA and FB are also unknown.</span></p> <p><br><span>To investigate the roles of HFA and FB in litter decomposition, we collected litter and soil from six different ecosystems across the continental US and conducted a full factorial litter × soil inoculum experiment. We measured litter decomposition (i.e., cumulative CO2-C respired) over 150 days and used an analytical model to calculate the HFA and FB of each microbial decomposer community.</span></p> <p><br><span> Our results indicated clear functional differences among decomposer communities, i.e., litter sources were decomposed differently by different decomposer communities. These differences were primarily due to differences in FB between different communities, while HFA effects were less evident.</span></p> <p><br><span>We observed a positive relationship between HFA and the disturbance-sensitive bacterial phylum Verruomicrobia, suggesting that HFA may be an important mechanism in undisturbed environments. We also observed a negative relationship between bacterial r vs. K strategists and FB, suggesting an important link between microbial life history strategies and litter decomposition functions.</span></p> <p><br><span>Microbial FB and HFA exhibited a strong unimodal relationship, where high HFA was observed at intermediate FB values, while low HFA was associated with both low and high FB. This suggests that adaptation of decomposers to local plant inputs (i.e., high HFA) constrains FB, which requires broad rather than specialized functionality. Further, this relationship suggests that HFA effects will not be apparent when communities exhibit high FB and therefore decompose all litters well and also when FB is low and communities decompose all litters poorly. Overall, our study provides new insights into the mechanisms by which microbial communities influence the decomposition of leaf litter.</span></p>

opencc-zeroMar 2022View details →
dryad28/100

Evaluating the roles of microbial functional breadth and home-field advantage in leaf litter decomposition

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publicMar 2022View details →
dryad28/100

Data from: Environmental factors and traits that drive plant litter decomposition do not determine home-field advantage effects

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publicFeb 2016View details →
dryad28/100

Data from: Home-field advantages of litter decomposition increase with increasing N deposition rates: a litter and soil perspective

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publicFeb 2018View details →
dryad28/100

Data from: Song sparrows Melospiza melodia have a home-field advantage in defending against sympatric malarial parasites

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publicJul 2016View details →

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