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Protein Mis-Termination Initiates Genetic Diseases, Cancers, and Restricts Bacterial Genome Expansion
Tit-Yee Wong1, Steve D Schwartzbach
1a Department of Biological Sciences , University of Memphis , Memphis , Tennessee , USA.
Abstract:
Protein termination is an important cellular process. Protein termination relies on the stop-codons in the mRNA interacting properly with the releasing factors on the ribosome. One third of inherited diseases, including cancers, are associated with the mutation of the stop-codons. Many pathogens and viruses are able to manipulate their stop-codons to express their virulence. The influence of stop-codons is not limited to the primary reading frame of the genes. Stop-codons in the second and third reading frames are referred as premature stop signals (PSC). Stop-codons and PSCs together are collectively referred as stop-signals. The ratios of the stop-signals (referred as translation stop-signals ratio or TSSR) of genetically related bacteria, despite their great differences in gene contents, are much alike. This nearly identical Genomic-TSSR value of genetically related bacteria may suggest that bacterial genome expansion is limited by their unique stop-signals bias. We review the protein termination process and the different types of stop-codon mutation in plants, animals, microbes, and viruses, with special emphasis on the role of PSCs in directing bacterial evolution in their natural environments. Knowing the limit of genomic boundary could facilitate the formulation of new strategies in controlling the spread of diseases and combat antibiotic-resistant bacteria.
Insights
Protein termination involves stop-codons and releasing factors. Premature stop signals (PSCs) influence bacterial evolution, and understanding stop-signal ratios may limit genome expansion and disease spread.
Area of Science:
- Molecular Biology
- Genetics
- Evolutionary Biology
Background:
- Protein termination is crucial, relying on stop-codon and releasing factor interactions.
- Mutations in stop-codons are linked to inherited diseases like cancer.
- Pathogens and viruses exploit stop-codons for virulence.
Purpose of the Study:
- To review protein termination, stop-codon mutations, and the role of premature stop signals (PSCs).
- To emphasize PSCs in directing bacterial evolution.
- To explore the implications of stop-signal ratios for bacterial genome expansion and disease control.
Main Methods:
- Literature review of protein termination mechanisms.
- Analysis of stop-codon mutations across diverse organisms (plants, animals, microbes, viruses).
- Examination of premature stop signals (PSCs) and their evolutionary impact.
Main Results:
- Stop-codon mutations affect inherited diseases and pathogen virulence.
- Premature stop signals (PSCs) play a significant role in bacterial evolution.
- Genetically related bacteria exhibit similar genomic translation stop-signals ratios (TSSR), suggesting a limit on genome expansion.
Conclusions:
- Understanding stop-signal biases and genomic boundaries can inform strategies against diseases and antibiotic resistance.
- PSCs are key regulators of bacterial evolution in natural settings.
- The conserved TSSR among related bacteria may indicate a fundamental constraint on genome size.
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