Location
Structure
Formation
Functions
The red blood cells (RBCs), human embryonic kidney cells, neurons, and sperm cells are examples of specialized unique actin cytoskeletal structures adjacent to the plasma membrane. Like microtubules, all the subunits of microfilaments are connected in the same orientation, thus exhibiting polarity having a positive or plus (+) end and a negative or minus (-) end. The positive or the fast-growing end is barbed, while the negative or slow-growing end is pointed. The actin filaments within the cells are usually organized into more extensive, robust structures with accessory proteins. The structural form that a group of microfilaments develops depends on their primary function and the type of proteins they associate. Microfilaments can also depolymerize (disassemble) and reform quickly, thus enabling a cell to change its shape and move. The continuous removal of actin monomers from the pointed ends of filaments and their reincorporation at barbed ends is called actin treadmilling.
2. Muscle Contraction
The protein actin works together with myosin to generate the forces required for the contraction and relaxation of muscles. Thus, the amount of microfilaments in muscle cells is high. They form myofibrils, the basic unit of the muscle cell.
3. Cell Movement
They play a crucial role in causing eukaryotic organisms to move from one place to another. They are also crucial in the movement of single-celled prokaryotes such as amoeba and paramecium (amoeboid movement). For movement, one end of the microfilament elongates while the other end shortens. This assembly and disassembly occur with the help of myosin.
4. Cytoplasmic Streaming
They allow the flow of cytoplasm (the cell content, including cytosol and organelles) within the cell. Microfilaments thus help nutrients, waste products, and cell organelles travel from one part of the cell to the other part. Also, they attach to cell organelles and contract, pulling the organelles to a different area.
5. Forming Cell Surface Projections
Microfilaments play a vital role in developing various cell-surface projections such as filopodia, lamellipodia, and stereocilia. These structures act as antennae for a cell to probe the surrounding environment.
6. Cell Stability and Survival
All eukaryotic cells depend on the actin filaments’ integrity to survive the stress of the outside environment. Accordingly, many plants that cannot avoid predators mechanically produce toxins that affect actin and microfilaments as a defensive mechanism.
7. Fertilization
They are involved in sperm incorporation in animals. Microfilaments also help in spindle rotation (in mice), cortical granule exocytosis, second polar body emission, and cleavage ring formation during fertilization.