Synergistic metabolism of carbon and nitrogen: Cyanate drives nitrogen cycle to conserve nitrogen in composting system

Bioresour Technol. 2022 Oct:361:127708. doi: 10.1016/j.biortech.2022.127708. Epub 2022 Jul 27.

Abstract

In this study, HCO3- was used as a co-substrate for cyanate metabolism to investigate its effect on nitrogen cycle in composting. The results showed that the carbamate content in experimental group (T) with HCO3- added was higher than that in control group (CP) during cooling period. Actinobacteria and Proteobacteria were the dominant phyla for cyanate metabolism, and the process was mediated by cyanase gene (cynS). The cynS abundance was 16.6% higher in T than CP. In cooling period, the nitrification gene hao in T was 8.125% higher than CP. Denitrification genes narG, narH, nirK, norB, and nosZ were 25.64%, 35.33%, 45.93%, 36.62%, and 36.12% less than CP, respectively. The nitrogen fixation gene nifH in T was consistently higher than CP in the late composting period. Conclusively, cyanate metabolism drove the nitrogen cycle by promoting nitrification, nitrogen fixation, and inhibiting denitrification, which improved nitrogen retention and compost quality.

Keywords: Aerobic composting; Bicarbonate; Carbamate; Functional genes.

MeSH terms

  • Carbon
  • Composting*
  • Cyanates / metabolism
  • Denitrification
  • Nitrogen / metabolism
  • Nitrogen Cycle
  • Soil

Substances

  • Cyanates
  • Soil
  • Carbon
  • Nitrogen