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Updated: Jan 24, 2026

Alternating Magnetic Field-Responsive Hybrid Gelatin Microgels for Controlled Drug Release
Published on: February 13, 2016
Bioremediation of ether PFAS alternatives: A structure-reactivity-partitioning framework for hybrid treatment design
Huimin Zhang1, Panpan Liu1, Chichedo I Duru1
1Center for Research Excellence in Wastewater-Based Epidemiology, Morgan State University, Baltimore, USA; Bioenvironmental Science Program, Morgan State University, Baltimore, USA.
Abstract:
Ether-based PFAS such as HFPO-DA (GenX), ADONA, and chlorinated PFESAs (F-53B) have replaced legacy PFOS and PFOA but remain environmentally persistent and biologically recalcitrant. Their ether linkages, electron-withdrawing headgroups, and perfluorinated backbones hinder enzymatic access and CF bond cleavage. Current evidence indicates slow oxidative modification for GenX, while ADONA remains largely resistant and undergoes only chemical (total oxidizable precursor (TOP)-like) oxidation to PFMOPrA; F-53B is subject to reductive dechlorination to 6:2H-PFESA without defluorination. This review synthesizes molecular-to-process-level insights on bioremediation of ether-PFAS substitutes, consolidating recent data from microbial, fungal, enzymatic, and plant systems. A clear structure-reactivity rule was identified: α-C-H/α-CHF or CCl "handles" facilitate transformation, whereas full fluorination and steric shielding enforce persistence. Because intrinsic biological turnover is slow, hybrid treatment trains that combine physicochemical pre-activation (UV/sulfite, electro-Fenton, plasma, or vitamin B12/sulfide reduction) with aerobic or rhizospheric bio-polishing offer a credible route to partial mineralization (≈10-30% defluorination). Emerging genetically enhanced systems: engineered microbes expressing oxygenases, dehalogenases, or fluoride-export modules, and transgenic plants harboring oxidative enzymes, represent the next frontier for bridging chemical activation and biological degradation. A technology-readiness matrix ranks feasible chemo-bio scenarios across water, sludge, and soil environments. This review outlines a research agenda that integrates enzyme design, synthetic biology chassis optimization, and structure-guided modeling to predict degradability. Embedding molecular persistence into regulatory assessment is essential to prevent future "regrettable replacements."
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Bioremediation
Structure and Nomenclature of Ethers
Ethers are organic compounds with an ether functional group which is characterized by an oxygen atom connected to two — identical or different — alkyl, aryl, or vinyl groups. The C–O–C linkage in dimethyl ether — the simplest ether — has an approximately tetrahedral bond angle of 110.3 degrees. The oxygen atom is sp3- hybridized, with the C–O distance being about 140 pm.
Classification of Ethers
Based on their attached substituent...
Resonance and Hybrid Structures
Resonance Structures and Resonance Hybrids
The Lewis structure of a nitrite anion (NO2−) may actually be drawn in two different ways, distinguished by the locations of the N–O and N=O bonds.
Ethers from Alcohols: Alcohol Dehydration and Williamson Ether Synthesis
Ethers can be prepared from organic compounds by various methods. Some of them are discussed below,
Preparation of Ethers by Alcohol Dehydration
In this method, in the presence of protic acids, alcohol dehydrates to produce alkenes and ethers under different conditions. For example, in the presence of sulphuric acid, dehydration of ethanol at 413 K yields ethoxyethane, whereas it yields ethene at 443 K.
Crown Ethers
Group Design

