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Using SecM Arrest Sequence as a Tool to Isolate Ribosome Bound Polypeptides
Published on: June 19, 2012
Translation arrest of SecM is essential for the basal and regulated expression of SecA
Akiko Murakami1, Hitoshi Nakatogawa, Koreaki Ito
1Institute for Virus Research and Core Research for Evolutional Science and Technology, Japan Science and Technology Agency, Kyoto University, Kyoto 606-8507, Japan.
Abstract:
The SecM protein of Escherichia coli contains an arrest sequence (F(150)XXXXWIXXXXGIRAGP(166)), which interacts with the ribosomal exit tunnel to halt translation elongation beyond Pro-166. This inhibition is reversed by active export of the nascent SecM chain. Here, we studied the physiological roles of SecM. Arrest-alleviating mutations in the arrest sequence reduced the expression of secA, a downstream gene on the same mRNA. Among such mutations, the arrest-abolishing P166A substitution mutation on the chromosomal secM gene proved lethal unless the mutant cells are complemented with excess SecA. Whereas secretion defect due either to azide addition, a secY mutation, or low temperature leads to up-regulated SecA biosynthesis, this regulation was lost by a secM mutation, which synergistically retarded growth of cells with lowered secretion activity. Finally, an arrest-alleviating rRNA mutation affecting the constricted part of the exit tunnel lowered the basal level of SecA as well as its secretion defect-induced up-regulation. Thus, the arrest sequence of SecM has at least two roles in SecA translation. First, the transient elongation arrest in normal cells is required for the synthesis of SecA at levels sufficient to support cell growth. Second, the prolonged SecM elongation arrest under conditions of unfavorable protein secretion is required for the enhanced expression of SecA to cope with such conditions.
Insights
The SecM protein
Area of Science:
- Molecular Biology
- Bacterial Physiology
- Protein Synthesis Regulation
Background:
- Escherichia coli SecM protein has a translation arrest sequence that halts protein synthesis.
- This arrest is relieved by the export of the nascent SecM chain.
- SecM's function is linked to the regulation of SecA, a key protein in secretion.
Purpose of the Study:
- To investigate the physiological roles of the SecM arrest sequence.
- To understand how SecM influences SecA expression and cell viability.
- To elucidate the dual functions of SecM in regulating SecA translation under different cellular conditions.
Main Methods:
- Site-directed mutagenesis of the SecM arrest sequence.
- Analysis of secA gene expression in wild-type and mutant strains.
- Assessment of cell growth and viability under various stress conditions.
- Genetic complementation experiments with SecA.
Main Results:
- Mutations alleviating SecM arrest reduced secA expression.
- An arrest-abolishing mutation (P166A) in SecM was lethal without excess SecA.
- SecM mutations disrupted SecA upregulation during secretion stress.
- An rRNA mutation affecting the ribosomal exit tunnel mimicked SecM mutations.
Conclusions:
- The SecM arrest sequence is crucial for maintaining sufficient SecA synthesis for cell growth.
- SecM-mediated arrest enhances SecA expression during secretion stress to aid cellular adaptation.
- SecM acts as a critical regulator linking protein secretion status to SecA biosynthesis.
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