Engineered phytases and methods of using the same
Methods for enhancing phytase thermal stability by fusing binding elements to target phytases are provided. Engineered phytases that include binding elements fused to target phytases to cause cyclization of the engineered phytases and enhance thermal stability of the target phytases are described. Engineered nucleic acids encoding engineered phytases and hosts engineered to express engineered nucleic acids are also provided. Methods for incorporating engineered phytases in animal feed and animal feed including the same are described.
1. An engineered phytase comprising a target phytase, a first binding element and a second binding element, wherein the C-terminus of the first binding element is fused to the N-terminus of the target phytase and the N-terminus of the second binding element is fused to the C-terminus of the target phytase, wherein the first binding element interacts with the second binding element to cause cyclization of the engineered phytase, and enhance thermal stability of the target phytase, wherein the first binding element comprises a C-intein of an intein, and the second binding element comprises an N-intein of an intein, and wherein the engineered phytase comprises an amino acid sequence having at least 90% sequence identity to the amino acid sequence set forth in SEQ ID NO: 201.
2. The engineered phytase of claim 1 , wherein the engineered phytase has stable activity at a temperature in a range from 70° C. to 90° C.
3. The engineered phytase of claim 1 comprising the amino acid sequence set forth in SEQ ID NO: 201.