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Synergic impact mechanisms of cover crop residue on Cd and As availability and native organic carbon mineralization in Cd and As co-contaminated paddy soil.

The synergic impacts of cover crop residue on heavy metal and metalloid availability and soil organic carbon (SOC) mineralization in contaminated paddy soil and the underlying microbial mechanism remain unclear. This study investigated the availability of cadmium (Cd) and arsenic (As) and mineralization of native SOC in paddy soil treated with 0, 0.4 %, 0.8 % and 1.2 % of δ13C-labeled cover crop residue (Astragalus sinicus L.) via 90-day incubation experiments, the related functional genes and functional microbial communities were analyzed using metagenomic binning assembly. Cover crop residue with addition rate from 0.4 % to 1.2 % significantly decreased available Cd by 56 %-85 % but increased available As by 39 %-66 % compared to the control treatment. Cover crop residue resulted in a positive priming effect on native SOC mineralization but benefited SOC sequestration. Cover crop residue increased the abundance of genes encoding iron reductase (mtrABC, pilA, omcB), sulfate reductase (sir, fpr), As(V) reductase (ArsC), organic carbon hydrolases, methanogenesis, and methylotrophy. Genomes associated with Chloroflexota and Bacteroidota encoded all these key pathways, and their abundance increased with cover crop residue application. Cover crop residue decreased soil Eh, dissolved crystalline iron oxides, enriched specific microorganisms, including Chloroflexota and Bacteroidota, and then synergistically promoted the decrease in Cd availability and the increase in As availability and native SOC mineralization in the examined paddy soil. These findings provided practical and feasible guidance for achieving both safe production and carbon sequestration in contaminated paddy fields, highlighting the requirement to cautious utilization of cover crop residue in As-contaminated paddy fileds.

Soil Pollutants

[Vitality of newly hatched chicks].

Comprehensive morphologic, hematologic, biochemical, clinical, bacteriological and bacteriostatic investigations were carried out with newly hatched birds with and without visible pathologic deviations. It was found that birds of lower vitality were characterized by lower motor activity; weak response to external stimuli; lacking or weak pecking reflex; small, dull, and deep slightly moving or immobile eyes, with eyelids partially or fully covering the eyes; soft, colorless bill, empty crop, enlarged and stiff abdomen, imcompletely closed navel; the down being short, thin, lacking in brilliancy pigment, and density, wet and dirty; the birds having lower body weight and lower temperature, hemoglobin, erythrocyte, total protein, blood sugar, pseudoeosinophil, and eosine values; higher lymphocyte, basophile, and monocyte values; with enlarged gallbladder containing darkcolored and dense bile; the digestive viscera having lower volume; the gizzard with a dark-colored cuticle; dark intestinal content; enlarged residual yoke persisting for five days and more; inadequate adaptability to stress factors; higher death rate. It is concluded that the lack of vitality or the presence of weakness (Debilitas vitae) is diagnostically important so far as the health status of newly hatched birds is concerned. Debilitas vitae is expressed by atypical pathologic deviations and inadequate adaptability in view of the environmental conditions.

Age Factors