Nucleic acids are long polymers of nucleotides. While DNA stores genetic information, RNA mostly helps in transfer and expression of information. Though DNA and RNA both function as genetic material, but DNA being chemically and structurally more stable is a better genetic material. However, RNA is the first to evolve and DNA was derived from RNA. The hallmark of the double stranded helical structure of DNA is the hydrogen bonding between the bases from opposite strands. The rule is that Adenine pairs with Thymine through two H-bonds, and Guanine with Cytosine through three H-bonds. This makes one strand complementary to the other. The DNA replicates semiconservatively, the process is guided by the complementary H-bonding. A segment of DNA that codes for RNA may in a simplistic term can be referred as gene. During transcription also, one of the strands of DNA acts a template to direct the synthesis of complementary RNA. In bacteria, the transcribed mRNA is functional, hence can directly be translated. In eukaryotes, the gene is split. The coding sequences, exons, are interrupted by non-coding sequences, introns. Introns are removed and exons are joined to produce functional RNA by splicing. The messenger RNA contains the base sequences that are read in a combination of three (to make triplet genetic code) to code for an amino acid. The genetic code is read again on the principle of complementarity by tRNA that acts as an adapter molecule. There are specific tRNAs for every amino acid. The tRNA binds to specific amino acid at one end and pairs through H-bonding with codes on mRNA through its anticodons. The site of translation (protein synthesis) is ribosomes, which bind to mRNA and provide platform for joining of amino acids. One of the rRNA acts as a catalyst for peptide bond formation, which is an example of RNA enzyme (ribozyme). Translation is a process that has evolved around RNA, indicating that life began around RNA. Since, transcription and translation are energetically very expensive processes, these have to be tightly regulated. Regulation of transcription is the primary step for regulation of gene expression. In bacteria, more than one gene is arranged together and regulated in units called as operons. Lac operon is the prototype operon in bacteria, which codes for genes responsible for metabolism of lactose. The operon is regulated by the amount of lactose in the medium where the bacteria are grown. Therefore, this regulation can also be viewed as regulation of enzyme synthesis by its substrate.
Which of the following statements correctly highlight the differences between prokaryotic and eukaryotic gene expression? S1: In prokaryotes, mRNA is typically monocistronic, while in eukaryotes, it is polycistronic. S2: The process of splicing, where introns are removed and exons are joined, is a characteristic feature of eukaryotic mRNA processing. S3: Transcription and translation are coupled in prokaryotes due to the absence of a nuclear membrane, allowing ribosomes to access nascent mRNA. S4: Eukaryotic hnRNA transcripts undergo 5' capping with methyl guanosine triphosphate and 3' polyadenylation in a template-dependent manner. S5: The presence of split genes, with coding sequences (exons) interrupted by non-coding sequences (introns), is common in prokaryotic structural genes.
Correct answer: B — S2, S3 only
The core concept is the fundamental differences in gene expression between prokaryotes and eukaryotes. S1: Incorrect. This statement reverses the facts. NCERT states, "the structural gene in a transcription unit could be said as monocistronic (mostly in eukaryotes) or polycistronic (mostly in bacteria or prokaryotes)". S2: Correct. NCERT explicitly states for eukaryotes that "it is subjected to a process called splicing where the introns are removed and exons are joined in a defined order." S3: Correct. NCERT states, "In bacteria... since transcription and translation take place in the same compartment (there is no separation of cytosol and nucleus in bacteria), many times the translation can begin much before the mRNA is fully transcribed. Consequently, the transcription and translation can be coupled in bacteria." S4: Incorrect. While capping and tailing occur in eukaryotic hnRNA, tailing (poly-A addition) is in a template-independent manner. NCERT states, "In tailing, adenylate residues (200-300) are added at 3'-end in a template independent manner." S5: Incorrect. Split genes (exons and introns) are characteristic of eukaryotes, not prokaryotes. NCERT states, "In eukaryotes, the monocistronic structural genes have interrupted coding sequences – the genes in eukaryotes are split." Therefore, statements S2 and S3 are correct. Option B correctly identifies the true statements. The question assesses the understanding of key distinctions in gene expression mechanisms between prokaryotic and eukaryotic organisms.
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