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April 3, 2026Discover Applied Sciences0 citationsOpen Access

Sustainable enhancement of Monascus red pigments using agricultural wastes and biogenic iron nanoparticles

AMAmr Ahmed MostafaIMIbrahim MatterSSSalah A. Abo Sedera

Key Points

  • The research aimed to optimize the production of red pigments from Monascus ruber using sustainable methods and substrates.
  • Evaluated various culture media and growth conditions for pigment production.
  • Used Sabouraud Dextrose Broth with glucose and peptone as optimal carbon and nitrogen sources.
  • Tested physical parameters like pH, agitation speed, and temperature for pigment yield.
  • Applied biogenic iron nanoparticles to enhance pigment production.
  • Utilized agricultural wastes like corn cob hydrolysate and feather peptone as substrate alternatives.
  • Achieved a 15% increase in pigment yield with biogenic iron nanoparticles at 200 ppm.
  • Identified optimal conditions: pH 6, 150 rpm, and temperatures of 25–30 °C.
  • Successfully replaced 50% glucose and 100% peptone with agricultural wastes without compromising yield.

Abstract

This study systematically optimized the production of red pigments by Monascus ruber through the evaluation of culture media, growth conditions, and sustainable substrate alternatives. Sabouraud Dextrose Broth emerged as the optimal medium, where glucose and peptone were identified as the most effective carbon and nitrogen sources, respectively. Physical parameters, including a pH of 6, 150 rpm agitation, and temperatures of 25–30 °C, were found to support stable pigment production. The application of biologically synthesized iron nanoparticles at 200 ppm significantly enhanced pigment yield (15% increment compared to non-treated samples) by inducing controlled oxidative stress. Agricultural waste valorization was achieved using corn cob hydrolysate (chemically saccharified with 0.15 N HCl) and feather peptone, which replaced 50% of conventional glucose and 100% of peptone without compromising yield. The integration of these optimized conditions resulted in a sustainable and efficient pigment production system, demonstrating the potential of combining waste-derived substrates with nanotechnology for industrial applications.

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Cite This Study

Mostafa et al. (2026) studied this question.

synapsesocial.com/papers/69cf59635a333a821460a020https://doi.org/10.1007/s42452-025-08148-x
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