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Bisphenol A (BPA) toxicity assessment and insights into current remediation strategies

Ocean Science Journal 2024 27 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Joshua O. Ighalo, Setyo Budi Kurniawan, Banlambhabok Khongthaw, Junaidah Buhari, Priyanka Chauhan, Jordana Georgin, Dison S.P. Franco

Summary

This review examines how bisphenol A (BPA), a widespread industrial chemical found in polycarbonate plastics, disrupts endocrine function and neurological development, then evaluates biological, physical, and chemical remediation techniques — including membrane filtration, adsorption, and photocatalysis — for removing BPA from aqueous environments.

Bisphenol A (BPA) raises concerns among the scientific community as it is one of the most widely used compounds in industrial processes and a component of polycarbonate plastics and epoxy resins. In this review, we discuss the mechanism of BPA toxicity in food-grade plastics. Owing to its proliferation in the aqueous environment, we delved into the performance of various biological, physical, and chemical techniques for its remediation. Detailed mechanistic insights into these removal processes are provided. The toxic effects of BPA unravel as changes at the cellular level in the brain, which can result in learning difficulties, increased aggressiveness, hyperactivity, endocrine disorders, reduced fertility, and increased risk of dependence on illicit substances. Bacterial decomposition of BPA leads to new intermediates and products with lower toxicity. Processes such as membrane filtration, adsorption, coagulation, ozonation, and photocatalysis have also been shown to be efficient in aqueous-phase degradation. The breakdown mechanism of these processes is also discussed. The review demonstrates that high removal efficiency is usually achieved at the expense of high throughput. For the scalable application of BPA degradation technologies, removal efficiency needs to remain high at high throughput. We propose the need for process intensification using an integrated combination of these processes, which can solve multiple associated performance challenges.

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