Next Nanotechnology· 2026Q2
Enhanced rhizobial survival through mitigation of cytotoxicity and oxidative stress by alginate-functionalized graphene oxide aerogels
- 0citations
- Q2SCImago
- 2026year
Short summary
Alginate-functionalized graphene oxide aerogels (SA-EGO) significantly enhance the survival and metabolic activity of Bradyrhizobium japonicum, with viable counts reaching 92% at 50 µg mL−1 on day 6, compared to unmodified graphene oxide.
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Key points
- Alginate functionalization of electrochemically synthesized graphene oxide (SA-EGO) aerogels mitigates toxicity to Bradyrhizobium japonicum.
- SA-EGO aerogels maintained rhizobial relative viable counts at 92% (50 µg mL−1, day 6) and above 63% (day 12).
- Alginate coating preserved rhizobial membrane integrity, metabolic activity, and oxidative stress homeostasis.
- Structural characterization confirmed the porous SA-EGO aerogel network formation.
AI-generated from the title and abstract; the full text is not read.
Abstract
Graphene-based nanomaterials possess exceptional physicochemical properties and are increasingly used in environmental and agricultural applications. However, direct application of graphene oxide (GO) remains limited due to its cytotoxic interactions with rhizobacteria. In this study, a sodium alginate-electrochemically synthesized graphene oxide (SA-EGO) aerogel was developed as a biocompatible carrier for Bradyrhizobium japonicum (CB1809), providing evidence that alginate functionalization mitigates EGO-associated toxicity. Structural characterization using SEM, XRD, XPS, FTIR, and BET analysis confirmed the successful formation of a porous SA-EGO aerogel network. The performance of SA-EGO aerogel was evaluated alongside EGO, sodium alginate (SA), peat, and control across concentrations (5, 10, and 50 µg mL −1 ) and incubation periods (1, 6, and 12 days). Across all treatments, SA-EGO aerogel consistently improved relative viable count, metabolic activity, and membrane integrity across all tested concentrations and incubation periods. Rhizobial relative viable counts reached 66%, 73%, and 92% at 5, 10, and 50 µg mL −1 , respectively, on day 6, and remained above 63% after 12 days of incubation. Live/Dead staining, XTT metabolic activity assay, and glutathione (GSH) measurements, together with SEM observations, indicated that SA-EGO aerogel mitigated EGO-associated cytotoxicity by maintaining membrane integrity, cellular metabolic activity, and oxidative stress homeostasis. The improved performance of SA-EGO aerogel was associated with a protective alginate network, which likely reduced direct interactions between EGO nanosheets and rhizobial cells while preserving the beneficial physicochemical properties of EGO. Overall, these findings indicate that alginate functionalization improves biocompatibility towards rhizobia, highlighting its potential for nano-enabled microbial delivery systems in sustainable agriculture.
The authors' abstract, as published at the source. Next Nanotechnology, 2026 · DOI ↗
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Field: Biomedical Engineering
Biomedical EngineeringEngineering