科研速览 · Science Skim继续刷下去 · Keep skimming →
◆ ACS Sustainable Chemistry & Engineering2026-06-01· Biodegradation

Microbiome-SoilInteractions Drive the Biodegradationof a Dialdehyde Cellulose-Based Superabsorbent Polymer

Samir Errahali, Hicham Aitbella, Ahmed Yassine Boussif, Mohamed Chtouki, Yassine Imlil, Salma Qetrani, Mohammed Bezbiz, Larbi Belachemi, Hicham Ben Youcef, Hamid Kaddami

原始摘要(英文原文)· Original abstract
Abstract The rising interest in eco-friendly technological solutions for agroecosystems has stimulated the development of biodegradable polymeric hydrogels as alternatives to commercially available synthetic materials. In this work, the biodegradation behavior of two polymer-type materials was assessed under soil-burial conditions: a hybrid biobased material (DAC-BioSAP) composed of dialdehyde cellulose (DAC), itaconic acid, and acrylic acid, and a commercial potassium polyacrylate superabsorbent (C-SAP). Their effects on soil microbial structure, taxonomic composition, and relative abundance were examined using metagenomic analysis and compared with the unamended soil (CK). Soil enzyme activities, CO2 emission kinetics, weight-loss monitoring, and complementary physicochemical analyses of both materials were also conducted. DAC-BioSAP exhibited significant biodegradation, losing ∼26% of its initial weight after 160 days. Metagenomic profiling of bacterial 16S sequences revealed that DAC-BioSAP promoted a more balanced microbial community, marked by increased abundances of Chloreflexi, Gemmatimonadota, and Acidobacteriota, and was associated with higher CO2 release compared to C-SAP and CK. In contrast, statistical analysis revealed that DAC-BioSAP-amended soils exhibited a pronounced decline in Firmicutes and related taxa compared to CK. These findings demonstrate that the incorporation of DAC and itaconic acid into BioSAP materials induces faster decomposition in the soil than commercial synthetic SAP and that bacterial communities primarily mediate its biodegradation.
读原文 · Read the paper ↗

AI 追问PRO

登录后使用 AI 追问

讨论区

登录后参与讨论

相关论文 · Related

Microbiome-SoilInteractions Drive the Biodegradationof a Dialdehyde Cellulose-Based Superabsorbent Polymer — 科研速览 Science Skim