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July 23, 2025Insects44 citationsOpen Access

Black Soldier Fly: A Keystone Species for the Future of Sustainable Waste Management and Nutritional Resource Development: A Review

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MTMuhammad Raheel TariqSLShaojuan LiuFWFei Wang

Key Points

  • Black soldier fly larvae exhibit high waste reductions with CO2 emissions as low as 12–17 kg CO2 eq ton−1.
  • Bioconversion with black soldier fly yields nutrient-rich biomass, offering protein, lipids, and valuable micronutrients.
  • Regulatory challenges and high energy demands pose constraints to the widespread adoption of black soldier fly systems.
  • Harmonized safety standards and innovative practices are essential for scaling up black soldier fly platforms in circular economies.

Abstract

The global escalation of organic waste generation, coupled with rising protein demand and environmental pressure, necessitates innovative, circular approaches to resource management. Hermetia illucens (Black Soldier Fly, BSF) has emerged as a leading candidate for integrated waste-to-resource systems. This review examines BSF biological and genomic adaptations underpinning waste conversion efficiency, comparative performance of BSF bioconversion versus traditional treatments, nutritional and functional attributes, techno-economic, regulatory, and safety barriers to industrial scale-up. Peer-reviewed studies were screened for methodological rigor, and data on life cycle traits, conversion metrics, and product compositions were synthesized. BSF larvae achieve high waste reductions, feed-conversion efficiencies and redirect substrate carbon into biomass, yielding net CO2 emissions as low as 12–17 kg CO2 eq ton−1, an order of magnitude below composting or vermicomposting. Larval biomass offers protein, lipids (notably lauric acid), micronutrients, chitin, and antimicrobial peptides, with frass serving as a nutrient-rich fertilizer. Pathogen and antibiotic resistance gene loads decrease during bioconversion. Key constraints include substrate heterogeneity, heavy metal accumulation, fragmented regulatory landscapes, and high energy and capital demands. BSF systems demonstrate superior environmental and nutritional performance compared to conventional waste treatments. Harmonized safety standards, feedstock pretreatment, automation, and green extraction methods are critical to overcoming scale-up barriers. Interdisciplinary innovation and policy alignment will enable BSF platforms to realize their full potential within circular bio-economies.

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Cite This Study

Tariq et al. (2025) studied this question.

synapsesocial.com/papers/689a061be6551bb0af8cdabdhttps://doi.org/10.3390/insects16080750
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