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Genomics

DNA and the genome: bases, genes and chromosomes

What DNA is made of, how it is packaged into genes and chromosomes, and how much of it we share — with an interactive base-pairing exercise and a zoom from cell to base pair.

  • 5 min read
  • 10 cited sources
  • Sources checked October 2026

Educational content, not medical advice. It explains general science and does not replace a conversation with a qualified clinician about your own health, tests or treatment.

What DNA is

DNA is the hereditary material in humans and almost all other organisms. Its information is stored as a code made up of four chemical bases: adenine (A), guanine (G), cytosine (C) and thymine (T). Human DNA consists of about 3 billion bases, and more than 99 percent of those bases are the same in all people.[1]

Bases pair up with each other — A with T, and C with G — to form units called base pairs. Each base is also attached to a sugar molecule and a phosphate molecule; together they make a Nucleotide. Nucleotides are arranged in two long strands that form a spiral called a double helix, which is somewhat like a ladder: the base pairs are the rungs and the sugar and phosphate molecules are the sides.[1]

Build the matching strand

Choose bases for the top strand. The complementary strand fills in: A pairs with T, C with G.

T
C
G
A
T
G

Complementary sequence: T–C–G–A–T–G

Choose bases for the top strand; the complementary strand fills in using the A–T and C–G pairing rules. Sources:[1]

From cell to base pair

Most DNA is located in the cell nucleus, where it is called nuclear DNA; a small amount is found in mitochondria, the structures that convert energy from food into a form cells can use.[1] Scroll through the steps below to zoom in.

Zoom in: cell → chromosome → gene → base pair

A human cell

Most DNA sits in the nucleus; a small amount is in mitochondria.

Simplified diagram, not to scale. Sources:[1][2][3]

Genes and chromosomes

A Gene is the basic physical and functional unit of heredity. Genes range in size from a few hundred DNA bases to more than 2 million bases. The Human Genome Project estimated that humans have between 20,000 and 25,000 protein-coding genes; we now know the genome contains about 19,900.[3]

Every person has two copies of each gene, one inherited from each parent. Most genes are the same in everyone, but a small number — less than 1 percent of the total — are slightly different between people. These alternative forms are called alleles.[3]

Inside the nucleus, DNA is packaged into chromosomes. People usually have 23 pairs, 46 in total: 22 pairs of autosomes, which look the same in males and females, and one pair of sex chromosomes. Females typically have two X chromosomes and males one X and one Y. A picture of a person’s chromosomes arranged in pairs is called a Karyotype.[2]

22 autosome pairs plus the sex chromosomes

12345678910111213141516171819202122XY

Chromosome 7 highlighted — CFTR lives here.

Stylised ideogram, not to scale. The highlighted band marks chromosome 7, home of the CFTR gene. Sources:[2][3]

Variation between people

A Variant is a permanent change in the DNA sequence. Most variants do not lead to disease, and those that do are uncommon in the general population.[4] The simplest kind is a single nucleotide polymorphism (SNP): a variant at a single base position in the DNA.[5]

How we learned this

In April 1953, Nature published James Watson and Francis Crick’s proposed double-helix structure for DNA, in the same issue as Rosalind Franklin and Raymond Gosling’s paper on the molecular configuration of DNA.[6][7] Crick, Watson and Maurice Wilkins received the 1962 Nobel Prize in Physiology or Medicine for their discoveries concerning the molecular structure of nucleic acids.[8]

The Human Genome Project ran from 1990 to 2003 and produced an essentially complete sequence in April 2003 that covered about 92 percent of the genome. The first truly complete sequence, from the Telomere-to-Telomere consortium, followed on 31 March 2022.[9][10]

Sources

Every source below was read and checked when this article was written. Links open the original publisher.

  1. [1]What is DNA?. MedlinePlus Genetics (U.S. National Library of Medicine). medlineplus.gov/genetics/understanding/basics/dna(opens in a new tab)
  2. [2]How many chromosomes do people have?. MedlinePlus Genetics (U.S. National Library of Medicine). medlineplus.gov/genetics/understanding/basics/howmanychromosomes(opens in a new tab)
  3. [3]What is a gene?. MedlinePlus Genetics (U.S. National Library of Medicine). medlineplus.gov/genetics/understanding/basics/gene(opens in a new tab)
  4. [4]What is a gene variant and how do variants occur?. MedlinePlus Genetics (U.S. National Library of Medicine). medlineplus.gov/genetics/understanding/mutationsanddisorders/genemutation(opens in a new tab)
  5. [5]Single Nucleotide Polymorphisms (SNPs) — Talking Glossary of Genomic and Genetic Terms. National Human Genome Research Institute (NIH). www.genome.gov/genetics-glossary/Single-Nucleotide-Polymorphisms(opens in a new tab)
  6. [6]Watson JD, Crick FHC. Molecular Structure of Nucleic Acids: A Structure for Deoxyribose Nucleic Acid. Nature 171, 1953. www.nature.com/articles/171737a0(opens in a new tab)
  7. [7]Franklin RE, Gosling RG. Molecular Configuration in Sodium Thymonucleate. Nature 171, 1953. www.nature.com/articles/171740a0(opens in a new tab)
  8. [8]The Nobel Prize in Physiology or Medicine 1962 (Crick, Watson & Wilkins). NobelPrize.org. www.nobelprize.org/prizes/medicine/1962/summary(opens in a new tab)
  9. [9]Human Genome Project fact sheet. National Human Genome Research Institute (NIH). www.genome.gov/about-genomics/educational-resources/fact-sheets/human-genome-project(opens in a new tab)
  10. [10]Telomere-to-Telomere. National Human Genome Research Institute (NIH). www.genome.gov/about-genomics/telomere-to-telomere(opens in a new tab)