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GOD PLAYS DICE™The magazine of big questions

THE QUESTION LIBRARY LIFE IN THE UNIVERSE

How did life on Earth begin?

Life showed up early on a young Earth, and nature can make some of its raw parts, but the step from chemistry to the first living cell is still one of science’s big open questions.

Many dark, rounded, lumpy mounds rising from clear, shallow water along a sandy shore, with open sea stretching to the horizon.
Living stromatolites in Hamelin Pool, Shark Bay, Western Australia, photographed in 2005. Mounds like these are built by mats of microbes, and similar layered structures in 3.48-billion-year-old Australian rock are among the oldest widely accepted signs of life.Paul Harrison, via Wikimedia Commons · CC BY-SA 3.0Image source ↗

THE SHORT ANSWER

Nobody knows yet. Life was on Earth by about 3.5 billion years ago, and maybe earlier, on a planet about 4.54 billion years old. Experiments show that some of life’s building blocks can form without life, and asteroid samples carry amino acids and all five nucleobases used in DNA and RNA. But no experiment has yet shown the whole path from chemistry to a living cell, and scientists still debate where it happened.

  • Earth formed about 4.54 billion years ago, according to the U.S. Geological Survey.
  • Rocks in Western Australia hold widely accepted signs of life from about 3.48 billion years ago; older signs, some claimed to be more than 4 billion years old, are debated.
  • In the 1950s, the scientist Stanley Miller made amino acids by sending electric sparks through a mix of gases and water.
  • RNA can both carry genetic information and speed up chemical reactions, which is why many scientists think early life relied on it.
  • Samples from asteroid Bennu contain 14 of the 20 amino acids life uses to build proteins and all five nucleobases found in DNA and RNA.

WHERE THE EVIDENCE STANDS

How sure are we?

  • Supported, still debatedLife existed on Earth by about 3.5 billion years ago, and possibly a few hundred million years earlier.The 3.48-billion-year-old Dresser Formation in Western Australia holds some of the earliest convincing evidence (Djokic et al. 2017). Older claims, such as 3.7-billion-year-old Greenland “stromatolites” (Nutman et al. 2016, challenged by Allwood et al. 2018), Canadian vent structures at least 3.77 billion years old (Dodd et al. 2017) and 4.1-billion-year-old carbon in a zircon (Bell et al. 2015), are debated.
  • EstablishedSome of life’s chemical building blocks can form without life.Miller’s spark experiments of the 1950s made amino acids (reanalyzed by Johnson et al. 2008 and Parker et al. 2011). Meteorites carry nucleobases (Oba et al. 2022), Ryugu samples carry uracil (Oba et al. 2023), and Bennu samples carry 14 of the 20 protein amino acids and all five nucleobases (Glavin et al. 2025).
  • Supported, still debatedEarly life relied on RNA before DNA and proteins took over (the RNA world).Altman and Cech showed that RNA can act as an enzyme (Nobel Prize in Chemistry 1989), and the Nobel committee called it very likely that RNA molecules were the first to carry both genetic information and catalysis. Walter Gilbert’s 1986 Nature paper was titled “The RNA world.” Damer and Deamer (2020) argue that life’s start cannot be reduced to a single kind of molecule.
  • Not supportedWe know where and how the first living cells formed.Dodd et al. (2017) state that it is not known when or where life began. Deep-sea vents (Martin et al. 2008) and hot-spring pools on land (Damer and Deamer 2020) are rival, testable ideas, and key steps are still unsolved.
  • Beyond scienceWhether life’s origin has an ultimate purpose or a Creator behind it.The U.S. National Academies say supernatural entities are not part of nature and cannot be investigated by science, and that pinning unexplained things on God weakens both science and religion.
What the labels mean

WHAT WE DON’T KNOW YET

Nobody knows where life started, which chemical steps came first, or how the first cell took shape. Key steps, such as a working self-sustaining set of reactions, have not been shown in the lab, and the oldest dates for life are still argued over.

WHAT WOULD CHANGE THIS ANSWER

A lab system that starts from simple chemicals and begins to copy itself and evolve under early-Earth conditions would move the “how” much closer to an answer. Finding life that began separately, on Mars or an icy moon, would show whether life starts easily.

Nobody knows yet. That is the honest answer, and it is also an exciting one. Scientists know a lot about when life appeared and what it is made of. What they don’t know is exactly how non-living chemicals first became something alive.

People come to this question from many directions. Some grew up with a creation story and wonder what science says. Some saw a headline about “life’s ingredients” found on an asteroid. Some simply lie awake wondering how anything alive could come from rock, water and air. All of these are good reasons to ask.

Here is the core picture. Earth formed about 4.54 billion years ago. By about 3.48 billion years ago, microbes were building layered mounds called stromatolites in what is now Western Australia. Some scientists see signs of life hundreds of millions of years earlier, but those older cases are still argued over.

We also know that nature can make some of life’s raw parts. In the 1950s, the scientist Stanley Miller sent sparks, like tiny lightning bolts, through gases and water and got amino acids, the building blocks of proteins. Rocks from space carry similar molecules. Samples from the asteroid Bennu hold 14 of the 20 amino acids that life uses, and all five nucleobases, the “letters” of DNA and RNA.

But having parts is not the same as having life. Think of it as an analogy: a pile of bricks is not a house. (The analogy breaks down because bricks never arrange themselves, while molecules do react and link up on their own. The open question is how far that can go.) Scientists still debate whether life started at hot vents on the sea floor or in warm pools on land. Many think early life ran on RNA, a cousin of DNA. None of this is settled, so we label the “how” an Open question.

Science describes these natural steps. It does not rule on whether life has an ultimate purpose. That question is Beyond science, and readers of every belief are welcome to explore it here.

THE LONG ANSWER

How early did life appear?

Start with the clock. The U.S. Geological Survey puts Earth’s age at 4.54 billion years, with an uncertainty of less than 1 percent. The question is how soon life followed.

Some of the earliest convincing evidence comes from the 3.48-billion-year-old Dresser Formation in Western Australia. A 2017 study in Nature Communications describes stromatolites there, along with other signs of microbes, preserved in ancient hot-spring deposits on land.

Older claims exist, and each is argued over. In 2016, a team reported 3.7-billion-year-old stromatolites in Greenland. In 2018, another team looked again in 3D and concluded the shapes were more plausibly made by the rocks being squeezed and bent, not by microbes. Other studies point to tube-like structures at least 3.77 billion years old in Quebec, and to carbon trapped in a 4.1-billion-year-old crystal from Australia that may have come from life. These are possible signs, not settled facts.

Genes offer a separate clue. By comparing genes across living things, a 2024 study in Nature Ecology & Evolution estimated that the last universal common ancestor, the shared ancestor of all life today, lived about 4.2 billion years ago. That ancestor was already a fairly complex cell, so life itself must have begun even earlier. So the fair summary is this: life was here by about 3.5 billion years ago, and perhaps much earlier.

Can nature make life’s building blocks?

Yes, some of them. In the 1950s, Stanley Miller ran electric sparks through a mix of hydrogen, water, methane and ammonia, then thought to match Earth’s early air. Amino acids formed. Many geoscientists now think the early air was different, as a 2011 study in PNAS notes. But a 2008 reanalysis of Miller’s saved samples found that a version of his setup imitating a steamy volcanic eruption made a wider variety of amino acids than the classic one. Volcanic eruptions, with their lightning, may have released the right gases in some places.

Space delivers ingredients too. Together, some meteorites that fell to Earth contain all five nucleobases used in DNA and RNA. The Hayabusa2 spacecraft brought back samples from asteroid Ryugu that contain uracil, one of RNA’s four letters. In January 2025, NASA reported that samples from asteroid Bennu, delivered by the OSIRIS-REx spacecraft in 2023, hold 14 of the 20 amino acids that life uses to build proteins and all five nucleobases. Because the samples were collected in space and handled under strict contamination controls, they avoid most of the Earth contamination that clouds studies of meteorites. NASA was careful to add that the findings do not show evidence for life itself.

Bennu also raised a puzzle. Many molecules come in left-handed and right-handed forms, like a pair of gloves. Life on Earth uses almost only left-handed amino acids, but Bennu’s were an even mix. Why life “turned left” is, in NASA’s words, still a mystery.

What were the first living systems like, and where did they start?

In today’s cells, DNA stores the instructions and proteins do the work. Each needs the other, which makes it hard to see how either came first. Sidney Altman and Thomas Cech discovered that RNA can also do chemical work, like a protein enzyme. Their 1989 Nobel Prize announcement called the discovery a complete surprise. This points to an early stage when RNA did both jobs. It became known as the “RNA world,” the title of a short 1986 paper by Walter Gilbert in Nature. The Nobel committee called it very likely that RNA molecules came first. Still, not everyone agrees: some researchers, such as Bruce Damer and David Deamer, argue that life’s start cannot be reduced to one kind of molecule working alone. So the idea is well supported, but still debated.

Could the first arrangement to appear have locked in?

Some readers ask whether a “first to arrive wins” logic could apply before life. A version of this idea is famous in biology. In 1968, Francis Crick proposed the “frozen accident”: the genetic code, the rule book that turns genes into proteins, is shared by modern life because, once it was in use, any change would have been badly harmful. As Eugene Koonin explains, this is a default view, but later studies found the code is also highly resistant to errors, and no one has a compelling explanation of how it was set up. So early “winners” may have locked in, but how much was chance and how much was chemistry is an Open question.

Sea-floor vents or ponds on land?

One camp favors hot vents on the sea floor. A 2008 review notes striking parallels between the hydrogen and carbon dioxide chemistry at these vents and the energy reactions of some simple microbes today. Another camp favors hot-spring pools on volcanic land. In a 2020 paper, Bruce Damer and David Deamer argue that pools that dry out and refill could concentrate ingredients and link them into longer chains, where the open ocean would dilute them. Charles Darwin guessed at something similar in 1871, in a letter imagining a “warm little pond.” Both camps propose tests. Neither has won.

What is the strongest objection?

The strongest objection comes from inside the field. Making building blocks is one thing. Getting them to organize into a system that feeds itself, copies itself and evolves is far harder. Damer and Deamer open their own paper with a warning from the researcher Leslie Orgel: to assume a whole suite of lucky chemical steps “is to appeal to magic.” They agree that self-sustaining cycles of reactions remain a key unsolved problem. This is why the page says “Nobody knows yet” and means it.

What do people often get wrong?

“Miller made life in a jar.” He made amino acids, which are parts of proteins. That is a long way from a cell.

“Life’s ingredients on an asteroid means life on an asteroid.” NASA said plainly that Bennu shows no evidence of life itself.

Is a virus alive?

It depends on the definition, and that is the point. NASA’s working definition calls life “a self-sustaining chemical system capable of Darwinian evolution.” Viruses evolve, but according to the National Human Genome Research Institute, a virus cannot copy itself alone; it must use a host cell. Koonin and a colleague argue that the question has no single answer, because any definition of life draws the line somewhere. Viruses sit near that line, which makes them a useful reminder that the jump from chemistry to biology may not have had one sharp edge.

Where people of faith and skeptics can agree

Both can agree on the evidence above: the ages, the experiments, the samples. The U.S. National Academies say science studies nature and cannot investigate the supernatural. They also warn that pinning each unsolved question on God, a “god of the gaps,” weakens both science and faith. So a gap in the science is not proof of God, and a natural explanation would not disprove God. Whether life carries an ultimate meaning is a question for philosophy and belief.

Check it yourself

  • When you see “oldest life ever found,” look for replies from other teams. The Greenland case shows that early dates can be overturned.
  • When you read “ingredients of life found in space,” check whether the article says what NASA said: ingredients, not life.
  • Read the short summaries (abstracts) of the papers linked on this page. They are free and often plainer than you expect.
  • For the bigger story, read our feature How Did Life on Earth Begin? and our explainer on how evolution works, which picks up once life exists.

THREE THINGS TO REMEMBER

  1. Life was on Earth by about 3.5 billion years ago, and maybe earlier.
  2. Nature can make some of life’s building blocks, but how they became a living cell is unknown.
  3. Science describes how life may have begun; whether it has an ultimate meaning is beyond science.

WORDS WORTH KNOWING

Stromatolite
A layered rock mound built up over time by mats of microbes. Some still grow today, for example in Shark Bay, Western Australia.
Amino acid
A small molecule that living things link into long chains to make proteins. Life on Earth uses 20 main kinds.
Nucleobase
One of the chemical “letters” in DNA and RNA, such as adenine or uracil.
RNA world
The idea that early life used RNA both to store genetic information and to speed up chemical reactions, before DNA and proteins took over those jobs.
Last universal common ancestor (LUCA)
The most recent population from which all life on Earth today descends. It was already a cell, so it came after life began.
Abiogenesis
The natural process by which life might arise from non-living chemistry.

Sources & further reading

  1. Age of the Earth ↗Best age for Earth and the Solar System 4.54 billion years, uncertainty less than 1 percent; Isua rocks of West Greenland 3.7 to 3.8 billion years; Western Australian zircon crystals as much as 4.3 billion years old.
  2. Earliest signs of life on land preserved in ca. 3.5 Ga hot spring deposits (Djokic et al.) ↗The ca. 3.48 Ga Dresser Formation, Pilbara Craton, holds some of Earth’s earliest convincing evidence of life (stromatolites, isotopes, microfossils) plus hot-spring deposits with microbial signs. Nutman et al. (Nature 2016, doi:10.1038/nature19355) also call the 3,480-million-year Dresser evidence the previous most convincing and generally accepted.
  3. Reassessing evidence of life in 3,700-million-year-old rocks of Greenland (Allwood et al.) ↗Three-dimensional analysis shows a non-biological, post-depositional origin more plausible for the Isua “stromatolites” reported by Nutman et al. (2016); a cautionary tale for Mars.
  4. Potentially biogenic carbon preserved in a 4.1 billion-year-old zircon (Bell et al.) ↗Graphite in a 4.10-billion-year-old Jack Hills zircon with isotopes consistent with a biogenic origin (“may be evidence”). Also read: Dodd et al., Nature 543, 60 (2017), doi:10.1038/nature21377, putative microfossils at least 3,770 and possibly 4,280 million years old, “it is not known when or where life on Earth began”; Moody et al., Nature Ecology & Evolution 8, 1654 (2024), doi:10.1038/s41559-024-02461-1, LUCA about 4.2 Ga (4.09–4.33 Ga), a prokaryote-grade cell.
  5. Primordial synthesis of amines and amino acids in a 1958 Miller H2S-rich spark discharge experiment (Parker et al.) ↗Miller’s 1950s experiments (Science 117, 528, 1953, doi:10.1126/science.117.3046.528) used H2, H2O, CH4 and NH3, then thought to represent the early atmosphere; many geoscientists now favor a weakly reducing early atmosphere; volcanic-plume conditions. Johnson et al., Science 322, 404 (2008), doi:10.1126/science.1161527: the volcanic apparatus produced a wider variety of amino acids than the classic one.
  6. The Nobel Prize in Chemistry 1989: press release ↗Sidney Altman and Thomas Cech, catalytic properties of RNA; the discovery “came as a complete surprise to scientists”; “very likely” that RNA molecules were the first biomolecules to carry both genetic information and catalysis. Walter Gilbert, “Origin of life: The RNA world,” Nature 319, 618 (1986), doi:10.1038/319618a0 (Crossref metadata). Koonin, “Frozen Accident Pushing 50,” Life 7, 22 (2017), doi:10.3390/life7020022: Crick’s frozen accident; any change in codon assignment would be highly deleterious; the code is highly robust to errors; no compelling explanation for codon assignments.
  7. The Hot Spring Hypothesis for an Origin of Life (Damer and Deamer) ↗Wet-dry cycling in volcanic hot-spring pools; concentration in small freshwater pools versus dilution in the ocean; Darwin’s 1871 “warm little pond” letter to Hooker; Orgel epigraph; self-sustaining reaction cycles a key unsolved problem. Rival view: Martin, Baross, Kelley and Russell, “Hydrothermal vents and the origin of life,” Nature Reviews Microbiology 6, 805 (2008), doi:10.1038/nrmicro1991.
  8. NASA’s Asteroid Bennu Sample Reveals Mix of Life’s Ingredients (Jan. 29, 2025) ↗14 of the 20 amino acids and all five nucleobases; delivered 2023; no evidence for life itself; equal mix of left- and right-handed amino acids; why life “turned left” remains a mystery. Paper: Glavin et al., Nature Astronomy 9, 199 (2025), doi:10.1038/s41550-024-02472-9. Ryugu: Oba et al., Nature Communications 14, 1292 (2023), doi:10.1038/s41467-023-36904-3 (uracil). Meteorites: Oba et al., Nature Communications 13, 2008 (2022), doi:10.1038/s41467-022-29612-x (all five canonical nucleobases).
  9. About Life Detection (NASA definition of life) ↗“Life is a self-sustaining chemical system capable of Darwinian evolution.” Virus definition: NHGRI Talking Glossary (https://www.genome.gov/genetics-glossary/Virus), a virus cannot replicate alone and must infect cells. Koonin and Starokadomskyy, Studies in History and Philosophy of Biological and Biomedical Sciences 59, 125 (2016), doi:10.1016/j.shpsc.2016.02.016: whether viruses are alive depends entirely on the definition of life.
  10. Evolution Resources: science and religion questions ↗Supernatural entities are not part of nature and cannot be investigated by science; claims that attribute the unexplained to a deity weaken both science and religion; “god of the gaps.”

KEEP ASKING

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