<rdf:RDF xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:dct="http://purl.org/dc/terms/" xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#">
  <rdf:Description rdf:about="https://doi.org/10.5061/dryad.rbnzs7hf0">
    <dct:isReferencedBy>IMPACT4SOIL</dct:isReferencedBy>
    <dct:isReferencedBy>OpenAire</dct:isReferencedBy>
    <dct:isReferencedBy>Datacite</dct:isReferencedBy>
    <dct:license>unspecified</dct:license>
    <dct:available>2022-09-01</dct:available>
    <dc:description>unspecifiedBiochar can significantly change soil properties and improve soil quality.  However, the effects of long-term combined application of biochar (B) and  nitrogen (N) fertilizer on relationships between soil enzyme activity,  microbial community structure and crop yield are still obscure. We  characterized these relationships in a long-term (8 years) field  experiment with rice, two biochar rates of 0 and 13.5 t ha-1 year-1 (B0  and B) and two N fertilizer rates of 0 and 300 kg N ha-1 year-1 (N0 and  N). The repeated, long-term combined applications of biochar and N  fertilizer significantly increased microbial biomass carbon and nitrogen  (MBC and MBN), but biochar decreased the abundance of total bacteria,  fungi, actinomycetes, Gram-positive and Gram-negative bacteria as well as  the amount of total phospholipid fatty acids. The activity of leucine  aminopeptidase (LAP) decreased significantly in the biochar-amended and N  fertilized treatment, but the LAP activity either remained unchanged or  increased with biochar amendment at N0. The relative abundance of  bacterial phylum Chloroflexi was increased in the combined biochar and N  fertilizer treatment. The changes in soil organic matter and the activity  of &#945;-1,4-xylosidase were the major properties influencing soil bacterial  community composition, whereas the structure of fungal community was  governed by MBC, MBN and LAP activity. In addition, long-term biochar and  N fertilizer applied together significantly increased rice yield (more  than biochar and nitrogen fertilizer applied alone). Yield was  significantly positively correlated with LAP activity, but significantly  negatively correlated with the relative abundance of Chloroflexi. In  conclusion, long-term biochar and nitrogen fertilizer applications  increased rice yield, which was associated with altered soil microbial  community and enhanced activity of some enzymes. </dc:description>
    <dc:description>unspecifiedBiochar can significantly change soil properties and improve soil quality.  However, the effects of long-term combined application of biochar (B) and  nitrogen (N) fertilizer on relationships between soil enzyme activity,  microbial community structure and crop yield are still obscure. We  characterized these relationships in a long-term (8 years) field  experiment with rice, two biochar rates of 0 and 13.5 t ha-1 year-1 (B0  and B) and two N fertilizer rates of 0 and 300 kg N ha-1 year-1 (N0 and  N). The repeated, long-term combined applications of biochar and N  fertilizer significantly increased microbial biomass carbon and nitrogen  (MBC and MBN), but biochar decreased the abundance of total bacteria,  fungi, actinomycetes, Gram-positive and Gram-negative bacteria as well as  the amount of total phospholipid fatty acids. The activity of leucine  aminopeptidase (LAP) decreased significantly in the biochar-amended and N  fertilized treatment, but the LAP activity either remained unchanged or  increased with biochar amendment at N0. The relative abundance of  bacterial phylum Chloroflexi was increased in the combined biochar and N  fertilizer treatment. The changes in soil organic matter and the activity  of &#945;-1,4-xylosidase were the major properties influencing soil bacterial  community composition, whereas the structure of fungal community was  governed by MBC, MBN and LAP activity. In addition, long-term biochar and  N fertilizer applied together significantly increased rice yield (more  than biochar and nitrogen fertilizer applied alone). Yield was  significantly positively correlated with LAP activity, but significantly  negatively correlated with the relative abundance of Chloroflexi. In  conclusion, long-term biochar and nitrogen fertilizer applications  increased rice yield, which was associated with altered soil microbial  community and enhanced activity of some enzymes. The basic physical and chemical indexes were measured by the test  method and recorded directly in the excel table.&#160;&#160;For soil microbial data,  it was provided&#160; by a third party company. </dc:description>
    <dc:subject>2. Zero hunger</dc:subject>
    <dc:subject>Microbial community</dc:subject>
    <dc:subject>FOS: Agricultural sciences</dc:subject>
    <dc:subject>biochar</dc:subject>
    <dc:subject>phospholipid fatty acids</dc:subject>
    <dc:subject>15. Life on land</dc:subject>
    <dc:subject>6. Clean water</dc:subject>
    <dc:subject>long-term experiment</dc:subject>
    <dc:subject>nitrogen fertilizer</dc:subject>
    <dc:subject>enzyme activity</dc:subject>
    <dc:subject>rice yield</dc:subject>
    <dc:creator>Zhang, Aiping</dc:creator>
    <dc:date>2022-09-01</dc:date>
    <dct:abstract>unspecifiedBiochar can significantly change soil properties and improve soil quality.  However, the effects of long-term combined application of biochar (B) and  nitrogen (N) fertilizer on relationships between soil enzyme activity,  microbial community structure and crop yield are still obscure. We  characterized these relationships in a long-term (8 years) field  experiment with rice, two biochar rates of 0 and 13.5 t ha-1 year-1 (B0  and B) and two N fertilizer rates of 0 and 300 kg N ha-1 year-1 (N0 and  N). The repeated, long-term combined applications of biochar and N  fertilizer significantly increased microbial biomass carbon and nitrogen  (MBC and MBN), but biochar decreased the abundance of total bacteria,  fungi, actinomycetes, Gram-positive and Gram-negative bacteria as well as  the amount of total phospholipid fatty acids. The activity of leucine  aminopeptidase (LAP) decreased significantly in the biochar-amended and N  fertilized treatment, but the LAP activity either remained unchanged or  increased with biochar amendment at N0. The relative abundance of  bacterial phylum Chloroflexi was increased in the combined biochar and N  fertilizer treatment. The changes in soil organic matter and the activity  of &#945;-1,4-xylosidase were the major properties influencing soil bacterial  community composition, whereas the structure of fungal community was  governed by MBC, MBN and LAP activity. In addition, long-term biochar and  N fertilizer applied together significantly increased rice yield (more  than biochar and nitrogen fertilizer applied alone). Yield was  significantly positively correlated with LAP activity, but significantly  negatively correlated with the relative abundance of Chloroflexi. In  conclusion, long-term biochar and nitrogen fertilizer applications  increased rice yield, which was associated with altered soil microbial  community and enhanced activity of some enzymes. </dct:abstract>
    <dct:abstract>unspecifiedBiochar can significantly change soil properties and improve soil quality.  However, the effects of long-term combined application of biochar (B) and  nitrogen (N) fertilizer on relationships between soil enzyme activity,  microbial community structure and crop yield are still obscure. We  characterized these relationships in a long-term (8 years) field  experiment with rice, two biochar rates of 0 and 13.5 t ha-1 year-1 (B0  and B) and two N fertilizer rates of 0 and 300 kg N ha-1 year-1 (N0 and  N). The repeated, long-term combined applications of biochar and N  fertilizer significantly increased microbial biomass carbon and nitrogen  (MBC and MBN), but biochar decreased the abundance of total bacteria,  fungi, actinomycetes, Gram-positive and Gram-negative bacteria as well as  the amount of total phospholipid fatty acids. The activity of leucine  aminopeptidase (LAP) decreased significantly in the biochar-amended and N  fertilized treatment, but the LAP activity either remained unchanged or  increased with biochar amendment at N0. The relative abundance of  bacterial phylum Chloroflexi was increased in the combined biochar and N  fertilizer treatment. The changes in soil organic matter and the activity  of &#945;-1,4-xylosidase were the major properties influencing soil bacterial  community composition, whereas the structure of fungal community was  governed by MBC, MBN and LAP activity. In addition, long-term biochar and  N fertilizer applied together significantly increased rice yield (more  than biochar and nitrogen fertilizer applied alone). Yield was  significantly positively correlated with LAP activity, but significantly  negatively correlated with the relative abundance of Chloroflexi. In  conclusion, long-term biochar and nitrogen fertilizer applications  increased rice yield, which was associated with altered soil microbial  community and enhanced activity of some enzymes. The basic physical and chemical indexes were measured by the test  method and recorded directly in the excel table.&#160;&#160;For soil microbial data,  it was provided&#160; by a third party company. </dct:abstract>
    <dc:title>Biochar and nitrogen fertilizer promote rice yield by altering soil enzyme activity and microbial community structure</dc:title>
    <dc:identifier>10.5061/dryad.rbnzs7hf0</dc:identifier>
    <dc:type>dataset</dc:type>
    <dct:references>https://doi.org/10.5061/dryad.rbnzs7hf0</dct:references>
  </rdf:Description>
</rdf:RDF>