Vigil Toriana N, Schwendeman Nikolas K, Grogger Melanie L M, Morrison Victoria L, Warner Margaret C, Bone Nathaniel B, Vance Morgan T, Morris David C, McElmurry Kristi, Berger Bryan W, Steel J Jordan
Department of Chemical Engineering, University of Virginia, Charlottesville, VA, United States.
Department of Biology, United States Air Force Academy, Colorado Springs, CO, United States.
Front Syst Biol. 2024 May 30;4:1377188. doi: 10.3389/fsysb.2024.1377188. eCollection 2024.
Biocementation is an exciting biomanufacturing alternative to common cement, which is a significant contributor of CO greenhouse gas production. In nature biocementation processes are usually modulated via ureolytic microbes, such as precipitating calcium carbonate to cement particles together, but these ureolytic reactions also produce ammonium and carbonate byproducts, which may have detrimental effects on the environment. As an alternative approach, this work examines biosilicification via surface-displayed silicatein-α in bio-engineered as an biocementation strategy. The surface-display of silicatein-α with ice nucleation protein is a novel protein fusion combination that effectively enables biosilicification, which is the polymerization of silica species in solution, from the surface of bacterial cells. Biosilicification with silicatein-α produces biocementation products with comparable compressive strength as This biosilicification approach takes advantage of the high silica content found naturally in sand and does not produce the ammonium and carbonate byproducts of ureolytic bacteria, making this a more environmentally friendly biocementation strategy.
生物矿化是一种令人兴奋的生物制造方法,可替代普通水泥,普通水泥是二氧化碳温室气体产生的重要来源。在自然界中,生物矿化过程通常由尿素分解微生物调节,例如将碳酸钙沉淀到水泥颗粒上使其结合在一起,但这些尿素分解反应也会产生铵和碳酸盐副产物,这可能对环境产生有害影响。作为一种替代方法,这项工作研究了通过在生物工程细菌中表面展示硅酸酶α来进行生物硅化作用,作为一种生物矿化策略。硅酸酶α与冰核蛋白的表面展示是一种新型蛋白质融合组合,可有效地实现生物硅化作用,即溶液中的硅物种从细菌细胞表面聚合。用硅酸酶α进行生物硅化作用产生的生物矿化产物具有与普通水泥相当的抗压强度。这种生物硅化方法利用了沙子中天然存在的高硅含量,并且不会产生尿素分解细菌的铵和碳酸盐副产物,使其成为一种更环保的生物矿化策略。