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Hyaluronic acid production by Streptococcus zooepidemicus MW26985 using potato peel waste hydrolyzate
Seyedali Mousavi1, Razieh Esfandiar1, Ghasem Najafpour-Darzi2
1Biotechnology Research Laboratory, Department of Biochemical Engineering, Faculty of Chemical Engineering, Babol Noshirvani University of Technology, P.O. Box 47148-71167, Babol, Iran.
Abstract:
In this research, we examined the production of hyaluronic acid (HA) by Streptococcus zooepidemicus strain MW26985 using different substrates and potato peel waste (PPW) as an affordable substrate. First, culture medium components, including carbon and nitrogen sources, were optimized for bacterial HA production. Five different carbon sources (glucose, sucrose, lactose, sago starch, and potato starch, at a concentration of 30 g/L) and three distinct nitrogen sources (peptone, yeast extract, and ammonium sulfate, at a concentration of 10 g/L) were investigated. Glucose, among the carbon sources, and yeast extract, among nitrogen sources, produced the most HA which was determined as 1.41 g/L. Afterward, potato peel sugars were extracted by dilute acid and enzymatic hydrolysis and then employed as a cost-effective carbon source for the growth of S. zooepidemicus. Based on the results, the fermentation process yielded 0.59 g/L HA from potato peel sugars through acid hydrolysis and 0.92 g/L HA from those released by enzymatic hydrolysis. The supplementation of both hydrolyzates with glucose as an additional carbon source enhanced HA production to 0.95 g/L and 1.18 g/L using acidic and enzymatic hydrolyzates, respectively. The cetyltrimethylammonium bromide (CTAB) turbidimetric method was used to evaluate the concentration of HA in the fermentation broth using the colorimetric method. Also, the peaks observed by Fourier transform infrared (FTIR) spectroscopy confirmed that the exopolysaccharide (EPS) was composed of HA. These observations demonstrate that potato peel residues can be a novel alternative as a carbon source for the economical production of HA by S. zooepidemicus.
Insights
This study optimized hyaluronic acid (HA) production by Streptococcus zooepidemicus using potato peel waste. Enzymatic hydrolysis of potato peel waste yielded higher HA concentrations, demonstrating its potential as an economical substrate.
Area of Science:
- Biotechnology
- Microbial Fermentation
- Biopolymer Production
Background:
- Hyaluronic acid (HA) is a valuable biopolymer with diverse applications.
- Economical and sustainable production methods for HA are in high demand.
- Potato peel waste (PPW) presents an underutilized resource for bioprocesses.
Purpose of the Study:
- To optimize the production of hyaluronic acid (HA) by Streptococcus zooepidemicus.
- To evaluate potato peel waste (PPW) as a cost-effective carbon source for HA biosynthesis.
- To compare different hydrolysis methods for extracting sugars from PPW for fermentation.
Main Methods:
- Optimization of carbon and nitrogen sources for Streptococcus zooepidemicus culture.
- Extraction of sugars from potato peel waste using dilute acid and enzymatic hydrolysis.
- Fermentation of S. zooepidemicus using PPW-derived sugars and supplementation.
- Quantification of HA using the CTAB turbidimetric method.
- Characterization of exopolysaccharide (EPS) using FTIR spectroscopy.
Main Results:
- Glucose and yeast extract were identified as optimal carbon and nitrogen sources, yielding 1.41 g/L HA.
- Enzymatic hydrolysis of PPW yielded higher HA (0.92 g/L) compared to acid hydrolysis (0.59 g/L).
- Supplementation with glucose further enhanced HA production to 1.18 g/L with enzymatic hydrolysates.
Conclusions:
- Potato peel waste is a viable and economical alternative carbon source for hyaluronic acid production.
- Enzymatic hydrolysis is more effective than acid hydrolysis for releasing fermentable sugars from PPW.
- This research offers a sustainable approach to HA biosynthesis using agricultural waste.
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