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Published on: March 15, 2012
Enhanced production of phomapyrrolidone a through culture-condition optimization and morphological regulation in
Weiyan Zhou1, Zhongyuan Chen1, Jiacheng Guo1
1State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, 130 Mei Long Road, Shanghai, 200237, China.
Abstract:
Phomapyrrolidone A (Ppd A) is a hirsutellone-type macrocyclic alkaloid derived from marine fungi, exhibiting significant activity against triple-negative breast cancer (TNBC). However, its low fermentation yield has limited further drug development. This study established a systematic optimization strategy integrating medium optimization, mycelial morphology regulation, and computational fluid dynamics (CFD) to enhance Ppd A production by the marine-derived filamentous fungus Didymella sp. FATR0054. Medium composition and fermentation parameters were optimized, increasing shake-flask production from 4.52 mg/L to 289.36 mg/L. The process was successfully scaled up in a 5-L bioreactor. Exogenous co-supplementation further increased production by 26% to 365 mg/L. Morphological regulation proved critical for productivity. Mechanical pre-grinding of the seed culture reduced mycelial pellet diameter to approximately 1 mm, creating compact and uniform pellets. This increased Ppd A production to 389.25 mg/L, representing an 86-fold improvement. CFD analysis of the interactions among the flow field, fungal pellet diameter distribution, and product formation identified 450 rpm as a candidate operating compromise for the current 5-L bioreactor, based on the simulated spatial uniformity of the Ppd A concentration field, local energy dissipation, and pellet fragmentation. This study establishes an integrated fermentation intensification strategy combining experimental optimization and flow-field modeling for large-scale production of Ppd A and process regulation in filamentous fungal fermentation.
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