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Scientists accidentally discover a genetic code that breaks the rules of life

Scientists accidentally discovered a microscopic organism with a genetic code that breaks a rule researchers thought was nearly universal. While testing a new DNA sequencing technique, they examined a previously unknown protist collected from a freshwater pond at Oxford University. To their surprise, the organism uses two genetic signals that normally mark the end of a gene to encode two entirely different amino acids instead. These signals were previously thought to evolve together, making the discovery particularly remarkable.

ScienceDaily

A routine experiment involving a microscopic organism from a freshwater pond led scientists to an extraordinary genetic discovery. The tiny creature was found to interpret DNA instructions in a way researchers had never documented before, challenging a long held assumption about how the genetic code works.

The surprise came when scientists examined a previously unknown protist called Oligohymenophorea sp. PL0344. Two genetic signals that ordinarily tell cells to stop making proteins had taken on completely different functions.

Even more remarkably, the signals had been reassigned to two different amino acids, breaking a pattern scientists believed was closely linked by evolution. The discovery, published in PLOS Genetics in October 2023, revealed an unexpected level of flexibility in one of life's most fundamental biological systems.

Subsequent research has uncovered additional genetic code variations in related microorganisms, suggesting that many more surprises could be waiting in the microscopic world. An Accidental Genetic Discovery in a Freshwater Pond Dr. Jamie McGowan, who was a postdoctoral scientist at the Earlham Institute, made the discovery while studying a protist collected from a pond at Oxford University Parks in England.

The project had originally been designed to test a DNA sequencing method capable of analyzing extremely small quantities of genetic material, potentially from just one cell. McGowan worked alongside scientists at the Earlham Institute and a research group led by Professor Thomas Richards at the University of Oxford.

Rather than investigating genetic code evolution, the researchers were trying to improve the tools available for studying organisms that are difficult to grow and analyze in laboratories. But when they assembled and examined the organism's genome, they noticed something unexpected.

The protist belonged to a previously unidentified species, and its genetic instructions appeared to operate according to an unusual set of rules. Dr. McGowan said: "It's sheer luck we chose this protist to test our sequencing pipeline, and it just shows what's out there, highlighting just how little we know about the genetics of protists." What Are Protists, and Why Are They So Unusual?

Protists are among the most diverse and least understood groups of organisms on Earth. Many consist of just one cell and are too small to see without a microscope. Familiar examples include amoebas, various algae, and diatoms, which are microscopic organisms often found in aquatic environments.

However, not all protists are tiny. The broad category also includes organisms such as kelp, slime molds, and red algae, some of which grow into large, complex structures. The group is so varied that scientists generally define its members by excluding other major branches of life.

"The definition of a protist is loose -- essentially it is any eukaryotic organism which is not an animal, plant, or fungus," said Dr. McGowan. "This is obviously very general, and that's because protists are an extremely variable group.

"Some are more closely related to animals, some more closely related to plants. There are hunters and prey, parasites and hosts, swimmers and sitters, and there are those with varied diets while others photosynthesize. Basically, we can make very few generalizations." Eukaryotes are organisms whose cells contain a nucleus, a specialized compartment that houses most of their genetic material.

Humans, other animals, plants, fungi, and protists all belong to this broad category. The organism at the center of the discovery belongs to a group of protists called ciliates. These creatures typically swim using tiny hair-like structures known as cilia, which move in coordinated patterns to propel them through water.

Ciliates are widespread in freshwater and marine environments. They are also particularly interesting to geneticists because some have evolved unusual ways of interpreting DNA instructions. How the Genetic Code Tells Cells When to Stop To understand why this discovery was so unexpected, it helps to know how cells turn genetic information into proteins.

DNA acts like an instruction manual, storing the information that cells need to build and maintain their structures. However, those instructions must be translated into physical molecules before they can carry out biological functions. The process begins when a section of DNA is copied into messenger RNA, a molecule that carries genetic instructions to the cell's protein-producing machinery.

A structure called the ribosome then reads the RNA sequence three letters at a time. Each group of three letters is known as a codon, and most codons specify one of the amino acids that serve as the building blocks of proteins. As amino acids are connected, they form a chain that can fold into a three-dimensional structure.

The resulting protein may function as an enzyme, provide structural support, transport molecules, or perform countless other cellular tasks. In DNA notation, a protein-coding sequence commonly begins with a start codon (ATG) and ends with a stop codon (normally TAA, TAG, or TGA). These stop codons work like punctuation marks.

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