Table of contents
- 1. Introduction to Genetics51m
- 2. Mendel's Laws of Inheritance3h 37m
- 3. Extensions to Mendelian Inheritance2h 41m
- 4. Genetic Mapping and Linkage2h 28m
- 5. Genetics of Bacteria and Viruses1h 21m
- 6. Chromosomal Variation1h 48m
- 7. DNA and Chromosome Structure56m
- 8. DNA Replication1h 10m
- 9. Mitosis and Meiosis1h 34m
- 10. Transcription1h 0m
- 11. Translation58m
- 12. Gene Regulation in Prokaryotes1h 19m
- 13. Gene Regulation in Eukaryotes44m
- 14. Genetic Control of Development44m
- 15. Genomes and Genomics1h 50m
- 16. Transposable Elements47m
- 17. Mutation, Repair, and Recombination1h 6m
- 18. Molecular Genetic Tools19m
- 19. Cancer Genetics29m
- 20. Quantitative Genetics1h 26m
- 21. Population Genetics50m
- 22. Evolutionary Genetics29m
11. Translation
Ribosomal Structure
Problem 10
Textbook Question
Compare and contrast the composition and structure of bacterial and eukaryotic ribosomes, identifying at least three features that are the same and three features that are unique to each type of ribosome.
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1
Step 1: Understand the basic function of ribosomes in both bacteria and eukaryotes. Ribosomes are the molecular machines responsible for protein synthesis in all living cells, translating mRNA into polypeptide chains.
Step 2: Identify the similarities between bacterial and eukaryotic ribosomes. Both types of ribosomes are composed of ribosomal RNA (rRNA) and proteins, and they both have two subunits: a large subunit and a small subunit. Additionally, both types of ribosomes perform the same fundamental role in translating mRNA into proteins.
Step 3: Examine the differences in size and composition. Bacterial ribosomes, also known as 70S ribosomes, are smaller, consisting of a 50S large subunit and a 30S small subunit. Eukaryotic ribosomes, known as 80S ribosomes, are larger, with a 60S large subunit and a 40S small subunit.
Step 4: Explore the differences in rRNA and protein content. Bacterial ribosomes have three types of rRNA (23S, 16S, and 5S) and about 55 proteins, whereas eukaryotic ribosomes have four types of rRNA (28S, 18S, 5.8S, and 5S) and around 80 proteins.
Step 5: Consider the differences in cellular location and function. In eukaryotes, ribosomes can be found in the cytoplasm or attached to the endoplasmic reticulum, forming the rough ER, which is involved in the synthesis of membrane-bound and secretory proteins. In bacteria, ribosomes are free-floating in the cytoplasm, as bacteria lack membrane-bound organelles.
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Key Concepts
Here are the essential concepts you must grasp in order to answer the question correctly.
Ribosome Structure
Ribosomes are complex molecular machines responsible for protein synthesis, composed of ribosomal RNA (rRNA) and proteins. They consist of two subunits: a large subunit and a small subunit, which come together during translation. The size and composition of these subunits differ between bacterial and eukaryotic ribosomes, influencing their function and interaction with mRNA and tRNA.
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Ribosome Structure
Differences in Ribosome Composition
Bacterial ribosomes (70S) are smaller than eukaryotic ribosomes (80S), with distinct rRNA and protein compositions. Bacterial ribosomes contain 16S rRNA in the small subunit and 23S and 5S rRNA in the large subunit, while eukaryotic ribosomes have 18S rRNA in the small subunit and 28S, 5.8S, and 5S rRNA in the large subunit. These differences affect their sensitivity to antibiotics and their overall function in protein synthesis.
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Functional Implications
The structural differences between bacterial and eukaryotic ribosomes have significant functional implications. For instance, the unique features of eukaryotic ribosomes allow for more complex regulation of translation and the processing of mRNA, while bacterial ribosomes are adapted for rapid protein synthesis in prokaryotic cells. Understanding these differences is crucial for developing targeted antibiotics and studying cellular biology.
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