Tiny parts help your body work.
Tiny parts help your body work. 
Most living things have tiny parts inside their cells. These parts are called mitochondria. 
Mitochondria use a way called aerobic respiration to make ATP. This way needs oxygen to work. They take in fuel like pyruvate. They use a set of steps called the citric acid cycle to change this fuel. This process makes much more power than other ways.
A mitochondrion has many parts. It has an outer membrane on the outside. It has an inner membrane on the inside. The space between them is the intermembrane space. The inner membrane has many folds. We call these folds cristae. These folds give the cell more room to make ATP.
Mitochondria are tiny parts found inside the cells of most living things. They include animals, plants, and fungi. 
These parts work through a way called aerobic respiration. This way of making energy needs oxygen to work.
A mitochondrion has a very specific structure with five main parts. It has an outer membrane that holds everything together. Between the outer and inner membranes is the intermembrane space. The inner membrane has many deep folds called cristae. 
Scientists have been studying these parts for a long time. Albert von Kölliker first discovered them in 1857. He found them in the muscles of insects. Later, in 1898, Carl Benda gave them the name mitochondrion. This name means "thread-like granule."
You can think of a mitochondrion like a small engine in a car. Just as an engine turns fuel into movement, these parts turn fuel into ATP. This ATP is the energy currency that every cell spends to grow and move.
A mitochondrion is a specialized organelle found within the cells of most eukaryotes, including animals, plants, and fungi.
The structure of a mitochondrion is defined by a double membrane system. This organization creates five distinct functional compartments. First, the outer mitochondrial membrane encloses the entire organelle and is 60 to 75 angstroms thick. Second, the intermembrane space sits between the outer and inner membranes. Third, the inner mitochondrial membrane forms the boundary of the central compartment. Fourth, the inner membrane folds inward to create structures called cristae. 
The outer membrane acts as a gatekeeper for the organelle. It contains many integral proteins known as porins, which allow small molecules to pass through. A major transporter here is the voltage-dependent anion channel, or VDAC. This protein moves ions, nucleotides, and metabolites between the cytosol and the intermembrane space. For larger proteins to enter, they must bind to a specialized translocase complex in the outer membrane. The outer membrane also hosts enzymes that help with tasks like breaking down tryptophan or elongating fatty acids. If this membrane is disrupted, proteins can leak into the cytosol, which often leads to cell death.
The inner membrane is much more complex and highly regulated. Unlike the outer membrane, it is highly impermeable and lacks porins. Almost all molecules require specific transporters to cross into the matrix. This membrane is rich in a unique phospholipid called cardiolipin, which helps maintain its impermeability.
Inside the matrix, the mitochondrion performs the complex chemistry of energy production. The matrix contains about two-thirds of the total proteins found in the organelle. It holds a concentrated mixture of hundreds of enzymes, specialized mitochondrial ribosomes, and tRNA. These enzymes drive the citric acid cycle, also known as the Krebs cycle. During this cycle, molecules like pyruvate are oxidized to help produce energy. The matrix also houses the mitochondrial genome, or mitogenome.
The process of energy conversion relies on aerobic respiration, which requires oxygen. This process begins when pyruvate, a product of glucose breakdown, is transported into the matrix. Once inside, it enters the citric acid cycle to help generate electron carriers. These carriers then power the electron transport chain located in the inner membrane. This chain creates a membrane potential that drives ATP synthase to produce ATP.
History shows that our understanding of these organelles has grown significantly since their discovery. Albert von Kölliker first identified them in 1857 while studying the muscles of insects. In 1898, Carl Benda coined the term "mitochondrion," which means "thread-like granule." The existence of the mitogenome has led scientists to accept the theory of symbiogenesis. This theory suggests that mitochondria were once free-living prokaryotic ancestors that fused with eukaryotic cells long ago. 
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