Ribosomes, Transcription, Translation | Learn Science At Scitable

When a cell divides, it creates one copy of its genetic information — in the form of DNA molecules — for each of the two resulting daughter cells. The accuracy of these copies determines the health and inherited features of the nascent cells, so it is essential that the process of DNA replication be as accurate as possible (Figure 1).

A schematic shows a linear DNA molecule undergoing replication: the proteins helicase, primase, and DNA polymerase are indicated on the DNA. Also shown are the RNA primer strands that are bound to each complementary strand of DNA. The direction that DNA polymerase adds new single-stranded DNA to these RNA scaffolds is represented by an arrow.Figure 1: DNA replication of the leading and lagging strandThe helicase unzips the double-stranded DNA for replication, making a forked structure. The primase generates short strands of RNA that bind to the single-stranded DNA to initiate DNA synthesis by the DNA polymerase. This enzyme can work only in the 5' to 3' direction, so it replicates the leading strand continuously. Lagging-strand replication is discontinuous, with short Okazaki fragments being formed and later linked together.© 2006 Nature Publishing Group Bell, S. D. Molecular biology: Prime-time progress. Nature 439, 542-543 (2006). All rights reserved. View Terms of Use Figure Detail

One factor that helps ensure precise replication is the double-helical structure of DNA itself. In particular, the two strands of the DNA double helix are made up of combinations of molecules called nucleotides. DNA is constructed from just four different nucleotides — adenine (A), thymine (T), cytosine (C), and guanine (G) — each of which is named for the nitrogenous base it contains. Moreover, the nucleotides that form one strand of the DNA double helix always bond with the nucleotides in the other strand according to a pattern known as complementary base-pairing — specifically, A always pairs with T, and C always pairs with G (Figure 2). Thus, during cell division, the paired strands unravel and each strand serves as the template for synthesis of a new complementary strand.

A schematic shows a row of four nucleotides: adenine (A), cytosine (C), thymine (T), and guanine (G), arranged in parallel. The same four nucleotides are arranged in parallel below the top row, but the order has been changed to reflect complementary base-pairing between nucleotides in the top and bottom rows. T is shown below A, G is shown below C, A is shown below T, and C is shown below G.Each nucleotide has an affinity for its partner: A pairs with T, and C pairs with G.© 2009 Nature Education All rights reserved. View Terms of Use In most multicellular organisms, every cell carries the same DNA, but this genetic information is used in varying ways by different types of cells. In other words, what a cell "does" within an organism dictates which of its genes are expressed. Nerve cells, for example, synthesize an abundance of chemicals called neurotransmitters, which they use to send messages to other cells, whereas muscle cells load themselves with the protein-based filaments necessary for muscle contractions.

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