I have talked before about the microtubule and microfilament components of the cytoskeleton. Now let’s turn our attention to the third component, the intermediate filaments.
Intermediate filaments unlike the microtubules and microfilaments are not always present in all cells. When present however, they can indicate the cellular origin of tumors. Why? How?
Well, there is a specific intermediate filament associated with specific cells and tissues. For example: cytokeratin is specific for epithelial tissue, desmin is found only in muscle cells, vimentin is found only in cells derived from mesenchyme, neurofilament is specific for neurons and glial fibrillary acidic protein or GFAP is specific for glial cells except microglia.
By the way, Alzheimer’s is associated with extensive tangles of neurofilament.
Showing posts with label cytoskeleton. Show all posts
Showing posts with label cytoskeleton. Show all posts
Thursday, December 18, 2008
Tuesday, December 2, 2008
microtubules
So far I have only mentioned the functions of the microfilaments as part of the cell’s bones and muscles or cytoskeleton. To even up matters, I’ll talk about the microtubules today.
The microtubules consist mainly of the protein tubulin which has 2 phases, the alpha and beta tubulin. These tubulin molecules form a tube like structure that can elongate at one end and shorten at the other. This is a continuously occurring process so the microtubules and also the microfilaments are always in a state of dynamic instability. That means that nothing is permanent with the cell’s cytoskeleton.
Microtubules serve as scaffolding inside cells and act as “tracks” on which cells can move organelles, chromosomes, vesicles and other things inside. In other words, they act like bullet trains inside cells. Microtubules are also responsible for the movement of cilia and flagella. Imagine that, molecules that can act as scaffolding, train, and propeller at the same time! Yessiree, those are your microtubules.
In order to do their function however, microtubule need to associate with proteins like dynein and kinesin. These two serve as motors to power the movement of microtubules. If something goes wrong with these motors, then any of the movements mentioned above will not be possible. Sperm cells for example will be immotile if dynein is absent in their flagellum.
The microtubules consist mainly of the protein tubulin which has 2 phases, the alpha and beta tubulin. These tubulin molecules form a tube like structure that can elongate at one end and shorten at the other. This is a continuously occurring process so the microtubules and also the microfilaments are always in a state of dynamic instability. That means that nothing is permanent with the cell’s cytoskeleton.
Microtubules serve as scaffolding inside cells and act as “tracks” on which cells can move organelles, chromosomes, vesicles and other things inside. In other words, they act like bullet trains inside cells. Microtubules are also responsible for the movement of cilia and flagella. Imagine that, molecules that can act as scaffolding, train, and propeller at the same time! Yessiree, those are your microtubules.
In order to do their function however, microtubule need to associate with proteins like dynein and kinesin. These two serve as motors to power the movement of microtubules. If something goes wrong with these motors, then any of the movements mentioned above will not be possible. Sperm cells for example will be immotile if dynein is absent in their flagellum.
Monday, December 1, 2008
cytokinesis
Cytokinesis is another activity that is generated by the cytoskeleton, particularly the microfilament.
After the chromosomes of a cell separate during anaphase, the microfilaments together with their associated protein, myosin, create a contractile ring somewhere near the middle of a cell. This ring tightens like a purse string until finally the cell is divided into two. This division completes the final stage of mitosis wherein two new cells with the same chromosome number are formed.
Separation of chromosomes and cytokinesis have to be properly coordinated so that the chromosome number of each generation of cells remain the same. If the timing of these two processes is off, we can end up with cells that have abnormal chromosome number or cells that can develop into cancerous ones.
After the chromosomes of a cell separate during anaphase, the microfilaments together with their associated protein, myosin, create a contractile ring somewhere near the middle of a cell. This ring tightens like a purse string until finally the cell is divided into two. This division completes the final stage of mitosis wherein two new cells with the same chromosome number are formed.
Separation of chromosomes and cytokinesis have to be properly coordinated so that the chromosome number of each generation of cells remain the same. If the timing of these two processes is off, we can end up with cells that have abnormal chromosome number or cells that can develop into cancerous ones.
Sunday, November 30, 2008
amoeboid movement
Amoeboid movement is one example of how the microfilaments (the cell’s muscles) function. It is the same kind of movement that is involved in phagocytosis or “cell eating” which is the subject of my post last Nov. 19.
Biology – Online dictionary defines it as “A crawling-like type of movement in which the cell forms temporary cytoplasmic projections called pseudopodia (false feet) towards the front of the cell”.
Aside from the Amoeba, other cells that exhibit amoeboid movement are: neutrophils and macrophages (our professional phagocytes, remember?), monocytes (another kind of white blood cell), Kupffer cell of the liver, as well as cancer cells. Yes, cancer cells. This is the way by which cancer cells metastasize or spread to other parts of the body.
Biology – Online dictionary defines it as “A crawling-like type of movement in which the cell forms temporary cytoplasmic projections called pseudopodia (false feet) towards the front of the cell”.
Aside from the Amoeba, other cells that exhibit amoeboid movement are: neutrophils and macrophages (our professional phagocytes, remember?), monocytes (another kind of white blood cell), Kupffer cell of the liver, as well as cancer cells. Yes, cancer cells. This is the way by which cancer cells metastasize or spread to other parts of the body.
Saturday, November 29, 2008
Friday, November 28, 2008
cell bones and muscles
The cell has its own bones and muscles called the cytoskeleton. This cytoskeleton has 3 major components: microfilaments, intermediate filaments and microtubules.
These major components are usually associated with other proteins. The association enables them to do several functions like formation of scaffolding inside the cell, ciliary or flagellar movement on the cell surface and internal cell movements like chromosomal movement during mitosis.
A summary of the functions of the cytoskeleton is shown in the table below.
Microfilaments Intermediate Filaments Microtubules
Muscle contraction Support and tensile strength Cell motility
(cilia and flagella)
Amoeboid movement Maintenance of cell shape Chromosome movement
Cell locomotion Formation of nuclear lamina Movement of
and scaffolding organelles
Cytoplasmic streaming Strengthening of nerve cell axons Determination of cell shape
Cell division (cytokinesis) Keeping muscle fibers in Maintenance of cell
register shape
Maintenance of cell shape
I will talk about each of these functions in a future post.
These major components are usually associated with other proteins. The association enables them to do several functions like formation of scaffolding inside the cell, ciliary or flagellar movement on the cell surface and internal cell movements like chromosomal movement during mitosis.
A summary of the functions of the cytoskeleton is shown in the table below.
Microfilaments Intermediate Filaments Microtubules
Muscle contraction Support and tensile strength Cell motility
(cilia and flagella)
Amoeboid movement Maintenance of cell shape Chromosome movement
Cell locomotion Formation of nuclear lamina Movement of
and scaffolding organelles
Cytoplasmic streaming Strengthening of nerve cell axons Determination of cell shape
Cell division (cytokinesis) Keeping muscle fibers in Maintenance of cell
register shape
Maintenance of cell shape
I will talk about each of these functions in a future post.
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