Study Guide

Nucleic acid structure

IB Biology SLΒ· IB BIO SL 2.6Β· 45 min read

1. Nucleotides: The Building Blocks of Nucleic Acidsβ˜…β˜†β˜†β˜†β˜†β± 15 min

πŸ“˜ Definition

Nucleotide

The universal monomer of all nucleic acid polymers, made of three covalently bonded components: a 5-carbon pentose sugar, a negatively charged phosphate group, and a nitrogenous base.

Example:

A deoxyadenosine nucleotide is the adenine-containing monomer of DNA.

The key difference between DNA and RNA nucleotides is the pentose sugar. DNA uses deoxyribose, which lacks a hydroxyl (-OH) group on the 2' carbon. RNA uses ribose, which has a hydroxyl group on the 2' carbon. Nitrogenous bases are divided into two groups: double-ringed purines (adenine, guanine) and single-ringed pyrimidines (cytosine, thymine in DNA, uracil in RNA).

πŸ“ Worked Example

Draw and label the three components of a DNA nucleotide

  1. 1

    Draw a pentagon to represent the 5-carbon deoxyribose sugar. Label each carbon 1' through 5' (primes distinguish sugar carbons from base carbons).

  2. 2

    Add a phosphate group covalently bonded to the 5' carbon of the sugar.

  3. 3

    Add any nitrogenous base covalently bonded to the 1' carbon of the sugar.

  4. 4

    Label the hydroxyl group on the 3' carbon, and note that no hydroxyl group is present on the 2' carbon of deoxyribose.

2. Nucleic Acid Polymers and Directionalityβ˜…β˜…β˜†β˜†β˜†β± 20 min

πŸ“˜ Definition

Phosphodiester bond

Covalent bond formed between the 5' phosphate group of one nucleotide and the 3' hydroxyl group of the next nucleotide during a condensation reaction.

All nucleic acid strands have directionality: one end has a free 5' phosphate group (called the 5' end) and the opposite end has a free 3' hydroxyl group (called the 3' end). All biological synthesis of nucleic acids occurs only in the 5' β†’ 3' direction, a rule that is critical for understanding replication and transcription later in the course.

πŸ“ Worked Example

A strand of RNA has the sequence 5' - A - C - G - 3'. Identify which end has the free phosphate group and which has the free hydroxyl group.

  1. 1

    Recall that the first nucleotide in the written sequence is the 5' end by convention.

  2. 2

    The adenine (A) nucleotide at the start of the sequence has a free 5' phosphate group.

  3. 3

    The phosphodiester bond links the 5' phosphate of each next nucleotide to the 3' hydroxyl of the previous nucleotide.

  4. 4

    The guanine (G) nucleotide at the end of the sequence has a free 3' hydroxyl group.

3. DNA Double Helix and Complementary Base Pairingβ˜…β˜…β˜†β˜†β˜†β± 20 min

πŸ“˜ Definition

Complementary Base Pairing

Specific hydrogen bonding between nitrogenous bases that holds two DNA strands together. Adenine only pairs with thymine, and guanine only pairs with cytosine.

Watson and Crick used Rosalind Franklin's X-ray crystallography data to propose the double helix structure of DNA in 1953. DNA is made of two antiparallel strands (running in opposite 5'β†’3' directions) twisted around each other. The sugar-phosphate backbone forms the outside of the helix, and bases are stacked on the inside. Purines always pair with pyrimidines to keep the width of the helix constant: A-T forms 2 hydrogen bonds, G-C forms 3 hydrogen bonds.

πŸ“ Worked Example

A double-stranded DNA molecule contains 22% adenine. Calculate the percentage of guanine in the molecule.

  1. 1

    Apply complementary base pairing: the percentage of adenine equals the percentage of thymine, so %T = 22%.

  2. 2

    Add the percentages of adenine and thymine: 22% + 22% = 44%.

  3. 3

    The remaining percentage of bases is 100% - 44% = 56%, which is split equally between guanine and cytosine, since %G = %C.

  4. 4

    Divide 56% by 2 to get %G = 28%.

4. Common Pitfalls

Wrong move:

Labeling the 2' carbon of deoxyribose as having a hydroxyl (-OH) group

Why:

Deoxyribose is missing the oxygen atom on carbon 2, so no hydroxyl group can be present there

Correct move:

Only label the 3' carbon of deoxyribose as having a hydroxyl group

Wrong move:

Stating that RNA contains thymine instead of uracil

Why:

Thymine is exclusive to DNA; uracil replaces thymine in all RNA molecules

Correct move:

Memorize: DNA = ATCG, RNA = AUCG

Wrong move:

Drawing two DNA strands parallel (same direction) instead of antiparallel

Why:

Parallel strands cannot form the correct complementary hydrogen bonds between bases

Correct move:

Always draw the two strands running in opposite 5'β†’3' directions

Wrong move:

Calculating guanine percentage as 50% minus adenine percentage directly

Why:

This shortcut incorrectly ignores that equal amounts of adenine and thymine are both present

Correct move:

Use the formula: %G = (100 - 2 \times %A)/2 for double-stranded DNA

5. Quick Reference Cheatsheet

Feature

DNA

RNA

Pentose sugar

Deoxyribose (no 2' OH)

Ribose (has 2' OH)

Nitrogenous bases

A, T, C, G

A, U, C, G

Typical structure

Double-stranded antiparallel double helix

Usually single-stranded

5' end

Free phosphate group

Free phosphate group

3' end

Free hydroxyl group

Free hydroxyl group

Base pairs

A-T (2 H bonds), G-C (3 H bonds)

A-U, G-C

When this came up on past exams

AI-estimated based on syllabus patterns β€” cross-check with official past papers for accuracy. Use only as revision-focus signals.

  • 2022 Β· Paper 1

    Multiple choice on base percentage

  • 2023 Β· Paper 2

    Draw and label DNA nucleotide

Going deeper

What's Next

Nucleic acid structure is the foundational concept for all molecular genetics in IB Biology SL. The directionality of strands and complementary base pairing rules you learned here directly explain how DNA replicates accurately before cell division, how genetic information is transcribed into RNA, and how translation builds proteins from mRNA instructions. Errors in nucleic acid structure cause mutations, which drive evolution and cause genetic disease. Mastery of drawing and labeling nucleic acid structures is required for almost all exam questions on molecular biology, so practice recalling key features from memory.