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Updated: Mar 28, 2026

Defining Substrate Specificities for Lipase and Phospholipase Candidates
Published on: November 23, 2016
Rational Engineering of Phospholipase D Unlocks Robust Catalysis for Phosphatidylserine Formation
Xurui Zhao1,2, Xiufeng Wang3, Yijie Sheng4
1Department of Chemical and Biochemical Engineering, College of Chemistry and Chemical Engineering, Key Laboratory for Synthetic Biotechnology of Xiamen City, Xiamen University, Xiamen 361005, Fujian, China.
Abstract:
Phosphatidylserine (PS), a major brain phospholipid, supports the central nervous system's health and may alleviate cognitive decline, including in Alzheimer's disease. A key challenge in green enzymatic PS synthesis is the suppression of hydrolysis while enhancing PLD-catalyzed transphosphatidylation. Here, we developed a mechanism-guided engineering strategy for Streptomyces antibioticus phospholipase D (SaPLD). The substitution of W187I increased the PS yield to 58.3%, while V380W improved thermostability. Combining beneficial mutations generated SaPLD-R7 (W187I/V380W/G381A), which overcame the activity-stability trade-off and achieved up to 95.8% PS yield using the enzyme produced by 5 L scale fermentation. Molecular dynamics simulations showed that SaPLD-R7 enhanced substrate binding and catalysis by shortening the key active site distances and reducing local flexibility. Solvent contact and energy analyses further indicated improved stability. This work establishes a structure-mechanism-function framework for enhancing PLD transphosphatidylation and provides a robust enzymatic route for high-efficiency PS production as a valuable functional food ingredient.
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