0
Article Tier 2 Sign in to save

Plastics and associated chemical contaminants in black soldier fly larvae food waste bioconversion

AI summary Read the abstract

This review looks at whether black soldier fly larvae, increasingly used to recycle food waste into animal feed, can safely handle plastic contamination in that waste. While larvae seem to shed most plastic bits, chemicals like phthalates and PFAS (found in plastics and known to disrupt hormones) don't always break down and may build up in leftover waste or byproducts. More realistic testing and clearer safety rules are needed before scaling this up, since contaminants could eventually reenter our food supply.

Insect-based food waste valorization is expanding globally, particularly through the use of black soldier fly larvae (BSFL). However, post-consumer food waste often contains plastic debris and associated persistent chemical contaminants, raising safety concerns for food, feed, and environmental health within circular economy systems. This review examines the fate of micro- and nanoplastics and associated chemical co-contaminants, specifically phthalates, brominated flame retardants (BFRs), and per- and polyfluoroalkyl substances (PFAS), selected due to their widespread occurrence in plastics, persistence, and potential for transfer through waste streams. Current evidence suggests BSFL are relatively robust to microplastic exposure. Larger microplastics are typically egested, while retention time depends on polymer type, particle size, and larval composition. In contrast, the behavior of nanoplastics remains poorly understood due to analytical limitations and limited experimental evidence. Chemical contaminant fate is strongly governed by compound chemistry. Phthalates may undergo partial microbial transformation within BSFL systems, although the toxicological implications of metabolites such as monophthalates remain unclear. PFAS show inconsistent bioaccumulation patterns across studies, while the behavior of BFRs in BSFL systems remains largely uncharacterized. Many contaminants partition into frass, raising concerns about soil accumulation and potential reentry into food chains. Post-harvest processing, such as blanching or drying, may redistribute rather than eliminate contaminants, depending on their solubility and binding behavior. Most studies rely on spiked exposure designs that poorly represent real waste streams. Harmonized contaminant screening, realistic exposure studies, and fit-for-purpose regulation are needed to ensure safe scaling of insect-based circular bioeconomy systems.

More Papers Like This

Article Tier 2

Black Soldier Fly Larvae for Organic Waste Valorization: Environmental Benefits, Contaminant Risks, and Circular Bioeconomy Readiness

AI summary Read the abstract

This review pulls together existing research on using black soldier fly larvae to recycle food scraps and manure into animal feed, fertilizer, and other useful products. The good news: turning clean organic waste into these products is well-supported by science, but the review flags a catch worth knowing, contaminants like heavy metals, microplastics, and "forever chemicals" (PFAS) in the original waste can potentially carry through into the larvae and end up in products that eventually reach our food supply. This matters because before this insect-based recycling scales up widely, more testing is needed to confirm these products are safe for consumption.

Article Tier 2

Organic side streams (bioproducts) as substrate for black soldier fly (Hermetia illucens) intended as animal feed: chemical safety issues

AI summary Read the abstract

This review examines chemical safety hazards of black soldier fly larvae reared on organic waste substrates as animal feed, finding that larvae can accumulate heavy metals, excrete mycotoxins, and reduce pesticide concentrations, while microplastics and organic pollutants do not appear to alter larval growth or composition.

Article Tier 2

Impact of heavy metals, microplastics, and food pathogens on black soldier fly larvae

AI summary Read the abstract

Researchers fed black soldier fly larvae substrates contaminated with heavy metals, microplastics, and food pathogens to evaluate tolerance and bioconversion efficiency, finding that certain contaminants reduced larval performance and bioconversion rates with implications for insect-based waste recycling.

Article Tier 2

Bioaccumulation and biotransformation of plasticisers diisononyl phthalate and di(2-ethylhexyl) terephthalate in black soldier fly larvae reared on (micro)plastic-contaminated food waste

AI summary Read the abstract

Researchers examined bioaccumulation and biotransformation of the plasticizers diisononyl phthalate and di(2-ethylhexyl) terephthalate in black soldier fly larvae reared on food waste for animal feed production. The study found that larvae accumulate and metabolize these plastic-associated chemicals from contaminated organic waste substrates.

Article Tier 2

Trace metal elements and microplastics ingestion during biowaste recycling by black soldier larvae

AI summary Read the abstract

Researchers examined the ingestion of trace metal elements and microplastics by black soldier fly larvae during biowaste recycling, assessing whether this valorization pathway introduces contaminant risks into the insect biomass and resulting frass.

Research digests by email

When a large batch of papers lands in the Atlas, we read through it and send a short write-up of what stood out.

Email me about

Share this paper