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May 6, 2026SynBio0 citationsOpen Access

A Minimal Synthetic IAA Pathway in Escherichia coli Using Avocado Seed Hydrolysate: A Sustainable and Didactic Platform for Synthetic Biology

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AHAna Lilia Hernández-OrihuelaLALucía Carolina Alzati-RamírezAMAgustino Martínez‐Antonio

Key Points

  • To develop a synthetic biology platform for producing indole-3-acetic acid using avocado seed hydrolysate.
  • Engineered Escherichia coli TOP10 to express iaaM and iaaH genes
  • Used avocado seed hydrolysate as a low-cost growth medium
  • Quantified indole-3-acetic acid using Salkowski assay and HPLC
  • Achieved IAA concentration of approximately 303 µg/mL at 48 hours
  • 100% root formation in tobacco leaf explants when treated with biosynthetic IAA
  • Production method is five times cheaper than traditional LB medium

Abstract

Indole-3-acetic acid (IAA) is the main natural auxin and a key regulator of plant growth. However, most commercial auxins are synthetically produced from non-renewable resources. Here, we present a minimal synthetic biology platform for microbial IAA production that also serves as a teaching model for genetic circuit design and bioprocess development. We developed codon-optimized versions of the iaaM and iaaH genes, which encode tryptophan 2-monooxygenase and indole-3-acetamide hydrolase, and assembled them into a compact expression cassette in Escherichia coli TOP10. Correct expression of both enzymes was confirmed by SDS-PAGE. The engineered strain was cultivated in a low-cost medium made from avocado seed hydrolysate, an agro-industrial waste, supplemented with tryptophan as a precursor. IAA was quantified using the Salkowski colorimetric assay and further validated by HPLC, reaching approximately 303 µg/mL at 48 h, with the medium costing five times less locally than traditional LB. The supernatants containing biosynthetic IAA induced root formation in 100% of tobacco leaf explants, outperforming the commercial standard at the same concentration and confirming biological activity. Since this workflow follows the Design–Build–Test–Learn (DBTL) cycle, Design (pathway selection and codon optimization), Build (plasmid assembly), Test (protein expression, metabolite quantification, plant bioassays), and Learn (medium and process optimization), it provides a sustainable production method and an accessible educational platform for synthetic biology.

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Cite This Study

Hernández-Orihuela et al. (2026) studied this question.

synapsesocial.com/papers/69fa8e0b04f884e66b5305cahttps://doi.org/10.3390/synbio4020008
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