Melanization slows the rapid movement of fungal necromass carbon and nitrogen into both bacterial and fungal decomposer communities and soils

ABSTRACT Microbial necromass contributes significantly to both soil carbon (C) persistence and ecosystem nitrogen (N) availability, but quantitative estimates of C and N movement from necromass into soils and decomposer communities are lacking. Additionally, while melanin is known to slow fungal nec...

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Published in:mSystems
Main Authors: François Maillard, Talia J. Michaud, Craig R. See, Lang C. DeLancey, Steven J. Blazewicz, Jeffrey A. Kimbrel, Jennifer Pett-Ridge, Peter G. Kennedy
Format: Article
Language:English
Published: American Society for Microbiology 2023-08-01
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Online Access:https://journals.asm.org/doi/10.1128/msystems.00390-23
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author François Maillard
Talia J. Michaud
Craig R. See
Lang C. DeLancey
Steven J. Blazewicz
Jeffrey A. Kimbrel
Jennifer Pett-Ridge
Peter G. Kennedy
author_facet François Maillard
Talia J. Michaud
Craig R. See
Lang C. DeLancey
Steven J. Blazewicz
Jeffrey A. Kimbrel
Jennifer Pett-Ridge
Peter G. Kennedy
author_sort François Maillard
collection DOAJ
container_title mSystems
description ABSTRACT Microbial necromass contributes significantly to both soil carbon (C) persistence and ecosystem nitrogen (N) availability, but quantitative estimates of C and N movement from necromass into soils and decomposer communities are lacking. Additionally, while melanin is known to slow fungal necromass decomposition, how it influences microbial C and N acquisition as well as elemental release into soils remains unclear. Here, we tracked decomposition of isotopically labeled low and high melanin fungal necromass and measured 13C and 15N accumulation in surrounding soils and microbial communities over 77 d in a temperate forest in Minnesota, USA. Mass loss was significantly higher from low melanin necromass, corresponding with greater 13C and 15N soil inputs. A taxonomically and functionally diverse array of bacteria and fungi was enriched in 13C and/or 15N at all sampling points, with enrichment being consistently higher on low melanin necromass and earlier in decomposition. Similar patterns of preferential C and N enrichment of many bacterial and fungal genera early in decomposition suggest that both microbial groups co-contribute to the rapid assimilation of resource-rich soil organic matter inputs. While overall richness of taxa enriched in C was higher than in N for both bacteria and fungi, there was a significant positive relationship between C and N in co-enriched taxa. Collectively, our results demonstrate that melanization acts as a key ecological trait mediating not only fungal necromass decomposition rate but also necromass C and N release and that both elements are rapidly co-utilized by diverse bacterial and fungal decomposers in natural settings. IMPORTANCE Recent studies indicate that microbial dead cells, particularly those of fungi, play an important role in long-term carbon persistence in soils. Despite this growing recognition, how the resources within dead fungal cells (also known as fungal necromass) move into decomposer communities and soils are poorly quantified, particularly in studies based in natural environments. In this study, we found that the contribution of fungal necromass to soil carbon and nitrogen availability was slowed by the amount of melanin present in fungal cell walls. Further, despite the overall rapid acquisition of carbon and nitrogen from necromass by a diverse range of both bacteria and fungi, melanization also slowed microbial uptake of both elements. Collectively, our results indicate that melanization acts as a key ecological trait mediating not only fungal necromass decomposition rate, but also necromass carbon and nitrogen release into soil as well as microbial resource acquisition.
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spelling doaj-art-ecc0ddc0fca44eb8a62d37ae079d998d2025-08-19T23:19:07ZengAmerican Society for MicrobiologymSystems2379-50772023-08-018410.1128/msystems.00390-23Melanization slows the rapid movement of fungal necromass carbon and nitrogen into both bacterial and fungal decomposer communities and soilsFrançois Maillard0Talia J. Michaud1Craig R. See2Lang C. DeLancey3Steven J. Blazewicz4Jeffrey A. Kimbrel5Jennifer Pett-Ridge6Peter G. Kennedy7Department of Plant and Microbial Biology, University of Minnesota , St. Paul, Minnesota, USADepartment of Plant and Microbial Biology, University of Minnesota , St. Paul, Minnesota, USADepartment of Ecology, Evolution, and Behavior, University of Minnesota , St. Paul, Minnesota, USADepartment of Ecology, Evolution, and Behavior, University of Minnesota , St. Paul, Minnesota, USAPhysical and Life Sciences Directorate, Lawrence Livermore National Laboratory , Livermore, California, USAPhysical and Life Sciences Directorate, Lawrence Livermore National Laboratory , Livermore, California, USAPhysical and Life Sciences Directorate, Lawrence Livermore National Laboratory , Livermore, California, USADepartment of Plant and Microbial Biology, University of Minnesota , St. Paul, Minnesota, USAABSTRACT Microbial necromass contributes significantly to both soil carbon (C) persistence and ecosystem nitrogen (N) availability, but quantitative estimates of C and N movement from necromass into soils and decomposer communities are lacking. Additionally, while melanin is known to slow fungal necromass decomposition, how it influences microbial C and N acquisition as well as elemental release into soils remains unclear. Here, we tracked decomposition of isotopically labeled low and high melanin fungal necromass and measured 13C and 15N accumulation in surrounding soils and microbial communities over 77 d in a temperate forest in Minnesota, USA. Mass loss was significantly higher from low melanin necromass, corresponding with greater 13C and 15N soil inputs. A taxonomically and functionally diverse array of bacteria and fungi was enriched in 13C and/or 15N at all sampling points, with enrichment being consistently higher on low melanin necromass and earlier in decomposition. Similar patterns of preferential C and N enrichment of many bacterial and fungal genera early in decomposition suggest that both microbial groups co-contribute to the rapid assimilation of resource-rich soil organic matter inputs. While overall richness of taxa enriched in C was higher than in N for both bacteria and fungi, there was a significant positive relationship between C and N in co-enriched taxa. Collectively, our results demonstrate that melanization acts as a key ecological trait mediating not only fungal necromass decomposition rate but also necromass C and N release and that both elements are rapidly co-utilized by diverse bacterial and fungal decomposers in natural settings. IMPORTANCE Recent studies indicate that microbial dead cells, particularly those of fungi, play an important role in long-term carbon persistence in soils. Despite this growing recognition, how the resources within dead fungal cells (also known as fungal necromass) move into decomposer communities and soils are poorly quantified, particularly in studies based in natural environments. In this study, we found that the contribution of fungal necromass to soil carbon and nitrogen availability was slowed by the amount of melanin present in fungal cell walls. Further, despite the overall rapid acquisition of carbon and nitrogen from necromass by a diverse range of both bacteria and fungi, melanization also slowed microbial uptake of both elements. Collectively, our results indicate that melanization acts as a key ecological trait mediating not only fungal necromass decomposition rate, but also necromass carbon and nitrogen release into soil as well as microbial resource acquisition.https://journals.asm.org/doi/10.1128/msystems.00390-23bacteriafungisoil carbon and nitrogen cyclingforestsquantitative stable-isotope probing
spellingShingle François Maillard
Talia J. Michaud
Craig R. See
Lang C. DeLancey
Steven J. Blazewicz
Jeffrey A. Kimbrel
Jennifer Pett-Ridge
Peter G. Kennedy
Melanization slows the rapid movement of fungal necromass carbon and nitrogen into both bacterial and fungal decomposer communities and soils
bacteria
fungi
soil carbon and nitrogen cycling
forests
quantitative stable-isotope probing
title Melanization slows the rapid movement of fungal necromass carbon and nitrogen into both bacterial and fungal decomposer communities and soils
title_full Melanization slows the rapid movement of fungal necromass carbon and nitrogen into both bacterial and fungal decomposer communities and soils
title_fullStr Melanization slows the rapid movement of fungal necromass carbon and nitrogen into both bacterial and fungal decomposer communities and soils
title_full_unstemmed Melanization slows the rapid movement of fungal necromass carbon and nitrogen into both bacterial and fungal decomposer communities and soils
title_short Melanization slows the rapid movement of fungal necromass carbon and nitrogen into both bacterial and fungal decomposer communities and soils
title_sort melanization slows the rapid movement of fungal necromass carbon and nitrogen into both bacterial and fungal decomposer communities and soils
topic bacteria
fungi
soil carbon and nitrogen cycling
forests
quantitative stable-isotope probing
url https://journals.asm.org/doi/10.1128/msystems.00390-23
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