Optimizing liquid fermentation for Wolfiporia cocos: gene expression and biosynthesis of pachymic acid and mycelial biomass

Author:

Noushahi Hamza Armghan12,Khan Aamir Hamid3,Khan Hamza Ali2,Kiedrzyński Marcin3,Akbar Adnan3,Shahzad Raheel4,Koerniati Sri4,Alrefaei Abdulwahed Fahad5,Shu Shaohua1

Affiliation:

1. College of Plant Science and Technology, Huazhong Agricultural University , Wuhan 430070 , China

2. Plant Breeding and Phenomic Centre, Faculty of Agricultural Sciences, University of Talca , Talca 3460000 , Chile

3. Department of Biogeography, Paleoecology and Nature Conservation, Faculty of Biology and Environmental Protection, University of Lodz , Banacha 1/3, 90-237 Lodz , Poland

4. Research Center for Genetics Engineering, National Research and Innovation Agency (BRIN) , KST-Cibinong, JI Raya Bogor KM46, Cibinong 16911 , Indonesia

5. Department of Zoology, College of Science, King Saud University , P.O. Box 2455, Riyadh 11451 , Saudi Arabia

Abstract

Abstract Wolfiporia cocos, a versatile fungus acclaimed for its nutritional and therapeutic benefits in Traditional Chinese Medicine, holds immense potential for pharmaceutical and industrial applications. In this study, we aimed to optimize liquid fermentation techniques and culture medium composition to maximize mycelial biomass (MB) yield, pachymic acid (PA) concentration, and overall PA production. Additionally, we investigated the molecular basis of our findings by quantifying the expression levels of genes associated with PA and MB biosynthesis using quantitative real-time polymerase chain reaction. Under the optimized fermentation conditions, significant results were achieved, with maximum MB reaching 6.68 g l−1, PA content peaking at 1.25 mg g−1, and a total PA yield of 4.76 g l−1. Notably, among the four examined genes, squalene monooxygenase, exhibited enhanced expression at 0.06 ratio under the optimized conditions. Furthermore, within the realm of carbohydrate-active enzymes, the glycoside hydrolases 16 family displayed elevated expression levels at 21 ratios, particularly during MB production. This study enhances understanding of genetic mechanism governing MB and PA production in W. cocos, highlighting the roles of squalene monooxygenase and glycoside hydrolases 16 carbohydrate-active enzymes.

Funder

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

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