Step 1: Sugar in RNA.
In RNA (Ribonucleic Acid), the sugar is called ribose. Ribose is a pentose sugar with the following structural feature:
\[
\text{At the 2' carbon atom, ribose has a hydroxyl group (-OH).}
\]
This hydroxyl group makes RNA chemically more reactive and less stable under alkaline conditions. As a result, RNA molecules are usually single-stranded and perform temporary roles in cells such as protein synthesis (mRNA, tRNA, rRNA).
Step 2: Sugar in DNA.
In DNA (Deoxyribonucleic Acid), the sugar is called deoxyribose. The difference is:
\[
\text{At the 2' carbon atom, deoxyribose has only a hydrogen atom (-H) instead of a hydroxyl group.}
\]
This small change makes DNA chemically more stable, less reactive, and well-suited for long-term storage of genetic information.
Step 3: Functional Implications. \[\begin{array}{rl} \bullet & \text{The presence of the extra \(-OH\) group in ribose makes RNA more prone to hydrolysis, limiting its stability. This is why RNA is usually short-lived and functions as an intermediary in the flow of genetic information.} \\ \bullet & \text{The absence of the \(-OH\) group in deoxyribose provides DNA with higher resistance to enzymatic breakdown and chemical damage. This stability is critical for DNA's role in storing genetic information across generations.} \\ \end{array}\]
Step 4: Summary of Difference. \[ \text{RNA sugar: Ribose → has -OH at 2' carbon.} \] \[ \text{DNA sugar: Deoxyribose → has -H at 2' carbon.} \]
Student to attempt either option-(A) or (B):
(A) Write the features a molecule should have to act as a genetic material. In the light of the above features, evaluate and justify the suitability of the molecule that is preferred as an ideal genetic material.
OR
(B) Differentiate between the following:
Study the given molecular structure of double-stranded polynucleotide chain of DNA and answer the questions that follow. 
(a) How many phosphodiester bonds are present in the given double-stranded polynucleotide chain?
(b) How many base pairs are there in each helical turn of double helix structure of DNA? Also write the distance between a base pair in a helix.
(c) In addition to H-bonds, what confers additional stability to the helical structure of DNA?
Study the given below single strand of deoxyribonucleic acid depicted in the form of a “stick” diagram with 5′ – 3′ end directionality, sugars as vertical lines and bases as single letter abbreviations and answer the questions that follow.
Name the covalent bonds depicted as (a) and (b) in the form of slanting lines in the diagram.
How many purines are present in the given “stick” diagram?
Draw the chemical structure of the given polynucleotide chain of DNA.
Use the given information to select the amino acid attached to the 3′ end of tRNA during the process of translation, if the coding strand of the structural gene being transcribed has the nucleotide sequence TAC.
