When We Knew Biology · How life became understandable

Antiquity–Present · A living chronology

Biology in motion.

Follow how life moved from observation and classification to cells, evolution, genes, and genomes.

T Theory / model E Experiment / evidence O Observation / discovery M Mechanism A Technique / application

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Biology

From Mendel to CRISPR

Follow how life moved from observation and classification to cells, evolution, genes, and genomes.

  1. 1856–1863

    Mendel conducts controlled pea-crossing experiments

    Gregor Mendel

    Across planned crosses of pea varieties, Mendel counted traits over generations and inferred discrete hereditary factors.

  2. 1866

    Mendel publishes Experiments on Plant Hybrids

    Gregor Mendel

    Mendel's paper documented repeatable ratios and an account of inheritance based on discrete units.

  3. 1900

    Mendel's inheritance work is independently rediscovered

    Hugo de Vries · Carl Correns · Erich von Tschermak

    Three botanists reported inheritance results that brought Mendel's 1866 paper back into active scientific debate.

  4. 1902

    Sutton and Boveri connect Mendelian factors to chromosomes

    Walter Sutton · Theodor Boveri

    Sutton and Boveri independently argued that chromosome behavior during meiosis could explain Mendelian segregation.

  5. 1910

    Morgan demonstrates sex-linked inheritance in fruit flies

    Thomas Hunt Morgan

    A white-eye mutation in Drosophila followed the inheritance of the X chromosome, tying a specific trait to a chromosome.

  6. 1913

    Sturtevant maps genes by recombination frequency

    Alfred Sturtevant

    Sturtevant used crossover frequencies to infer the linear order and relative spacing of genes on a chromosome.

  7. 1928

    Griffith discovers bacterial transformation

    Frederick Griffith

    Griffith found that material from heat-killed disease-causing bacteria could turn harmless bacteria into a disease-causing form that passed the change to subsequent generations.

  8. 1944

    Avery, MacLeod, and McCarty identify DNA as the transforming principle

    Oswald Avery · Colin MacLeod · Maclyn McCarty

    Purified bacterial fractions showed that transformation depended on DNA and survived treatments that destroyed protein or RNA.

  9. 1952

    Hershey and Chase track DNA into infected bacteria

    Alfred Hershey · Martha Chase

    Radioactive labels showed that bacteriophage DNA, rather than most phage protein, entered bacteria during infection.

  10. 1950

    Chargaff establishes base-composition regularities

    Erwin Chargaff

    Measurements across species showed that DNA base proportions vary by organism while adenine matches thymine and guanine matches cytosine.

  11. 1952

    Franklin and Gosling obtain decisive DNA diffraction evidence

    Rosalind Franklin · Raymond Gosling

    High-quality X-ray diffraction of the B form of DNA revealed a helical pattern and precise structural dimensions.

  12. 1953

    A double-helix model explains DNA structure and copying

    James Watson · Francis Crick · Rosalind Franklin · Raymond Gosling · Maurice Wilkins · Erwin Chargaff

    Watson and Crick built a complementary double-helix model using chemical constraints and X-ray evidence produced at King's College, including Franklin and Gosling's work.

  13. 1958

    Meselson and Stahl demonstrate semiconservative DNA replication

    Matthew Meselson · Franklin Stahl

    Heavy-nitrogen labeling and density-gradient centrifugation showed that each daughter DNA molecule contains one old and one new strand.

  14. 1961

    Short-lived messenger RNA links genes to ribosomes

    Sydney Brenner · François Jacob · Matthew Meselson · François Gros · Walter Gilbert

    Experiments identified unstable RNA copies that carry genetic information from DNA to protein-making ribosomes.

  15. 1961

    Nirenberg and Matthaei decode the first codon

    Marshall Nirenberg · Heinrich Matthaei

    A cell-free system translated synthetic poly-U RNA into polyphenylalanine, identifying UUU as a codon for phenylalanine.

  16. 1966

    The genetic code is substantially completed

    Marshall Nirenberg · Har Gobind Khorana · Robert Holley · Heinrich Matthaei

    Complementary cell-free, synthetic-RNA, and transfer-RNA studies assigned the codons and clarified how they direct protein synthesis.

  17. 1972

    Berg's group constructs recombinant DNA molecules

    Paul Berg · David Jackson · Robert Symons

    The group joined DNA from different biological sources into a single recombinant molecule in vitro.

  18. 1977

    Chain-termination sequencing makes DNA readable

    Frederick Sanger · Steven Nicklen · Alan Coulson

    Sanger and colleagues published a chain-termination method that determines nucleotide order through terminated DNA fragments.

  19. 1985

    PCR makes selected DNA sequences rapidly amplifiable

    Kary Mullis · Cetus Corporation

    The polymerase chain reaction used repeated cycles and primers to copy a chosen DNA segment exponentially.

  20. 1990

    The Human Genome Project officially begins

    International Human Genome Sequencing Consortium · National Institutes of Health · U.S. Department of Energy

    An international program began to map and sequence the human genome while developing technology, model-organism resources, and ethics research.

  21. 2000

    A working draft of the human genome is announced

    International Human Genome Sequencing Consortium

    The public consortium announced assembly of a working draft covering most of the human genome sequence.

  22. 2003

    The Human Genome Project announces completion

    International Human Genome Sequencing Consortium

    The international consortium announced a high-quality reference covering the gene-rich portion of the human genome within the project's technical limits.

  23. 2007

    Experiments show CRISPR provides adaptive bacterial immunity

    Rodolphe Barrangou · Philippe Horvath · Danisco research team

    Changing CRISPR spacer content changed bacterial resistance to matching bacteriophages, demonstrating an adaptive immune function.

  24. 2012

    Cas9 is programmed with guide RNA to cut chosen DNA

    Emmanuelle Charpentier · Jennifer Doudna · Martin Jinek · Krzysztof Chylinski · Ines Fonfara · Michael Hauer

    A simplified Cas9 system used a designed guide RNA to cut DNA at a chosen sequence in vitro.

  25. 2013

    CRISPR-Cas9 edits genes in mammalian cells

    Feng Zhang · George Church · Le Cong · Prashant Mali · independent research teams

    Independent groups rapidly adapted CRISPR-Cas9 to target and alter genes in cultured mammalian cells.

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