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endosymbiont theory

2023-07-13 22:51:13

The internal symbiosis theory is a theory designed by American biologist Lynn Margulis (1938-), a true biologist, developed from a symbiotic relationship among eukaryotic ancestors. Aerobic bacteria and photosynthetic cyanobacteria in free life (see chlorooxidation bacteria) are incorporated into larger nucleated prokaryotic cells, where they act as precursors of mitochondria and chloroplasts found in modern eukaryotes. This happens over and over and creates diverse strains of heterotrophic and nutritional nutritionists, animals, plants and fungal evolutionary ancestry. There is strong evidence to this theory that DNA of mitochondria and chloroplast, in particular, is morphologically similar to eubacteria and that they contain prokaryotic ribosomes.

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Mitochondria This is mitochondria. Outer membranes are thought to be derived from eukaryotes. According to the theory of internal symbiosis, the intima is an ancient prokaryotic membrane that becomes an internal symbiot. The inner membrane is the position of the electron transport system. The folding of this movie is called.. The space between the two membranes is where protons accumulate. This accumulation represents a saving of energy that can ultimately be used for oxidative phosphorylation. This phosphorylation captures the energy within the molecule's high energy phosphate binding ATP for a short time. The inner membrane's mitochondrial matrix is ​​the cytoplasm of the original inner co-membrane. This area is responsible for the circulation of Kureb. This cycle is also known as TCA (tricarboxylic acid) cycle and citric acid cycle. Mitochondria has its own naked circular DNA and its own 70s ribosome

The internal symbiosis theory is a theory designed by American biologist Lynn Margulis (1938-), a true biologist, developed from a symbiotic relationship among eukaryotic ancestors. Aerobic bacteria and photosynthetic cyanobacteria in free life (see chlorooxidation bacteria) are incorporated into larger nucleated prokaryotic cells, where they act as precursors of mitochondria and chloroplasts found in modern eukaryotes. This happens over and over and creates diverse strains of heterotrophic and nutritional nutritionists, animals, plants and fungal evolutionary ancestry. There is strong evidence to this theory that DNA of mitochondria and chloroplast, in particular, is morphologically similar to eubacteria and that they contain prokaryotic ribosomes.