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Published online before print July 14, 2008
Protein Science, DOI: 10.1110/ps.036376.108
Copyright © 2008 The Protein Society
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Recombination of protein fragments: a promising approach towards engineering proteins with novel nanomechanical properties

M. M. Balamurali, Deepak Sharma, Anderson Chang, Dingyue Khor, Ricky Chu, and Hongbin Li1

University of British Columbia

(RECEIVED May 9, 2008; ACCEPTED July 8, 2008)

Combining single molecule atomic force microscopy (AFM) and protein engineering techniques, here we demonstrate that we can use recombination-based techniques to engineer novel elastomeric proteins by recombining protein fragments from structurally homologous parent proteins. Using I27 and I32 domains from the muscle protein titin as parent template proteins, we systematically shuffled the secondary structural elements of the two parent proteins and engineered 13 hybrid daughter proteins. Although I27 and I32 are highly homologous and homology modeling predicted that the hybrid daughter proteins fold into structures that are similar to that of parent protein, we found that only eight of the 13 daughter proteins showed β-sheet dominated structures that are similar to parent proteins, and the other five recombined proteins showed signatures of the formation of significant {alpha}-helical or random coil-like structure. Single molecule AFM revealed that six recombined daughter proteins are mechanically stable and exhibit mechanical properties that are different from the parent proteins. In contrast, another four of the hybrid proteins were found to be mechanically labile and unfold at forces that are lower than the ~20 pN, as we could not detect any unfolding force peaks. The last three hybrid proteins showed interesting duality in their mechanical unfolding behaviors. These results demonstrate the great potential of using recombination based approaches to engineer novel elastomeric protein domains of diverse mechanical properties. Moreover, our results also revealed the challenges and complexity of developing recombination based approach into a laboratory-based directed evolution approach to engineer novel elastomeric proteins.

Keywords: Protein Structure/Folding; Stability and mutagenesis; Structure/function studies; Forces and stability; mechancal unfolding; protein engineering; recombination; single molecule force spectroscopy; unfolding force


1 E-mail: hongbin{at}chem.ubc.ca


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