4.2 Article

Design of a Genetically Programmed Biomimetic Lipase Nanoreactor

期刊

ACS APPLIED BIO MATERIALS
卷 4, 期 4, 页码 3518-3523

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsabm.1c00048

关键词

lipase; biodiesel; coat protein; nanoreactor; scaffold protein

资金

  1. College Undergraduate Training Program for Innovation and Entrepreneurship of LifeST, HUST [17YB-40]
  2. Fundamental Research Funds for the Central Universities [2016YXMS255]
  3. Wuhan Morning Light Plan of Youth Science and Technology [2017050304010292]
  4. Fund from Science, Technology and Innovation Commission of Shenzhen Municipality [JCYJ2017081815 3352628]
  5. Startup Fund for Talent Scholars of Huazhong University of Science and Technology

向作者/读者索取更多资源

The genetically programmable lipase nanoreactor demonstrated improved stability under various harsh conditions and achieved an 86% yield in fatty acid methyl ester synthesis at a high concentration of waste cooking oil (200 mM), showcasing its robustness and feasibility in biodiesel production.
Alternative to the traditionally independent production of lipase, chemical synthesis of nano-carriers, and then preparing nanoimmobilized enzymes, we exploit a yeast genetically programmed virus biomimetic lipase nanoreactor in a sustainable manner. The nanoreactor biogenesis process integrated lipase production, protein component (coat-protein subunit and scaffold protein) production, self-assembly of protein components, and the encapsulation of lipase into protein nanocages using a simple process. It included overexpression of nanocage components, coat-protein subunits, and fused lipase-scaffold proteins and subsequent spontaneous self-assembly and encapsulation based on the specific interaction between the coat-protein subunit and the scaffold protein fused in the target lipase enzyme. The genetically programmable lipase nanoreactor showed improved stability under various harsh conditions, and was validated in fatty acid methyl ester synthesis with 86% yield at a high concentration of waste cooking oil (200 mM), which demonstrates the robustness and feasibility of the lipase nanoreactor in biodiesel production.

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