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PubMed · 16568601

[Protein splicing].

Abstract

Inteins are internal polypeptide sequences that are posttranslationally excised from a protein precursor by a self-catalyzed protein-splicing reaction. Most of inteins consist of N- and C-terminal protein splicing domain and central endonuclease domain. The endonuclease domain can initiate mobility of the intein gene, this process being named intein homing. This review is focused on the recent data about the structure and function of inteins. Main intein-mediated protein-engineering applications, such as protein purification, ligation and cyclization, new forms of biosensors, are presented.

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BibTeXRIS

P L Starokadomskiĭ. [Protein splicing].. https://pubmed.ncbi.nlm.nih.gov/16568601/

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Protein splicing in cis and in trans.

Intein-mediated protein splicing is a self-catalytic process in which the intervening intein sequence is removed from a precursor protein and the flanking extein segments are ligated with a native peptide bond. Splice junction proximal residues and internal residues within the intein direct these reactions. The identity of these residues varies in each intein, as groups of related residues populate conserved motifs. Although the basics of the four-step protein splicing pathway are known, mechanistic details are still unknown. Structural and kinetic analyses are beginning to shed some light. Several structures were reported for precursor proteins with mutations in catalytic residues, which stabilize the precursors for crystallographic study. Progress is being made despite limitations inherent in using mutated precursors. However, no uniform mechanism has emerged. Kinetic parameters were determined using conditional trans-splicing (splicing of split precursor fragments after intein reassembly). Several groups concluded that the rate of the initial acyl rearrangement step is rapid and Asn cyclization (step 3) is slow, suggesting that this latter step is rate limiting. Understanding the protein splicing pathway has allowed scientists to harness inteins for numerous applications.

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Transgenes in plastids are contained by stringent maternal inheritance in most cultivated plant species and their expression yields high levels of protein with bona fide structure. Nevertheless, transfer of plastid genes to the nucleus has been reported, with implications for transgene containment. The significance of these transfers will depend on the likelihood that they will become functional nuclear genes. Recently a novel approach, intein-mediated protein trans-splicing, has been demonstrated promising to yield transgenic plants with greatly reduced risk of genetic outcrossing.

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