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  2. Microtubule - Wikipedia

    en.wikipedia.org/wiki/Microtubule

    Tubulin and microtubule-mediated processes, like cell locomotion, were seen by early microscopists, like Leeuwenhoek (1677). However, the fibrous nature of flagella and other structures were discovered two centuries later, with improved light microscopes, and confirmed in the 20th century with the electron microscope and biochemical studies.

  3. Axoneme - Wikipedia

    en.wikipedia.org/wiki/Axoneme

    In molecular biology, an axoneme, also called an axial filament, is the microtubule-based cytoskeletal structure that forms the core of a cilium or flagellum. [1] [2] Cilia and flagella are found on many cells, organisms, and microorganisms, to provide motility.

  4. Cytoskeleton - Wikipedia

    en.wikipedia.org/wiki/Cytoskeleton

    Cilia are short and more numerous than flagella. The motile cilia have a rhythmic waving or beating motion compared to the non-motile cilia which receive sensory information for the cell; processing signals from the other cells or the fluids surrounding it. Additionally, the microtubules control the beating (movement) of the cilia and flagella ...

  5. Flagellum - Wikipedia

    en.wikipedia.org/wiki/Flagellum

    Eukaryotic flagella are ATP-driven, while prokaryotic flagella can be ATP-driven (Archaea) or proton-driven (Bacteria). [11] The three types of flagella are bacterial, archaeal, and eukaryotic. The flagella in eukaryotes have dynein and microtubules that move with a bending mechanism. Bacteria and archaea do not have dynein or microtubules in ...

  6. Motor protein - Wikipedia

    en.wikipedia.org/wiki/Motor_protein

    Dyneins drive intracellular transport toward the minus end of microtubules which lies in the microtubule organizing center near the nucleus. [9] The dynein family has two major branches. Axonemal dyneins facilitate the beating of cilia and flagella by rapid and efficient sliding movements of microtubules. Another branch is cytoplasmic dyneins ...

  7. Microtubule organizing center - Wikipedia

    en.wikipedia.org/wiki/Microtubule_organizing_center

    The microtubule-organizing center (MTOC) is a structure found in eukaryotic cells from which microtubules emerge. MTOCs have two main functions: the organization of eukaryotic flagella and cilia and the organization of the mitotic and meiotic spindle apparatus , which separate the chromosomes during cell division .

  8. Cellular extensions - Wikipedia

    en.wikipedia.org/wiki/Cellular_extensions

    Other cellular extensions that protrude from the cell membrane are known as membrane protrusions or cell protrusions, also cell appendages, such as flagella, and microvilli. [ 8 ] [ 9 ] Microtentacles are cell protrusions attached to free-floating cells, associated with the spread of some cancer cells .

  9. Basal body - Wikipedia

    en.wikipedia.org/wiki/Basal_body

    Longitudinal section through the flagella area in Chlamydomonas reinhardtii. In the cell apex is the basal body that is the anchoring site for a flagellum. Basal bodies originate from and have a substructure similar to that of centrioles, with nine peripheral microtubule triplets (see structure at bottom center of image).