All terms in GO
| Label | Id | Description |
|---|---|---|
| regulation of extraocular skeletal muscle development | GO_0014725 | [Any process that modulates the frequency, rate or extent of extraocular skeletal muscle development. Extraocular skeletal muscle development is the process whose specific outcome is the progression of the extraocular skeletal muscle over time, from its formation to the mature structure. The extraocular muscle is derived from cranial mesoderm and controls eye movements. The muscle begins its development with the differentiation of the muscle cells and ends with the mature muscle.] |
| extraocular skeletal muscle development | GO_0002074 | [The process whose specific outcome is the progression of the extraocular skeletal muscle over time, from its formation to the mature structure. The extraocular muscle is derived from cranial mesoderm and controls eye movements. The muscle begins its development with the differentiation of the muscle cells and ends with the mature muscle. An example of this process is found in Mus musculus.] |
| regulation of the force of skeletal muscle contraction | GO_0014728 | [Any process that modulates the frequency, rate or extent of the force of skeletal muscle contraction. The force of skeletal muscle contraction is produced by acto-myosin interaction processes through the formation of cross bridges.] |
| negative regulation of extraocular skeletal muscle development | GO_0014726 | [Any process that stops, prevents, or reduces the frequency, rate or extent of extraocular skeletal muscle development. Extraocular skeletal muscle development is the process whose specific outcome is the progression of the extraocular skeletal muscle over time, from its formation to the mature structure. The extraocular muscle is derived from cranial mesoderm and controls eye movements. The muscle begins its development with the differentiation of the muscle cells and ends with the mature muscle.] |
| skeletal muscle hypertrophy | GO_0014734 | [The enlargement or overgrowth of all or part of an organ due to an increase in size (not length) of individual muscle fibers without cell division. In the case of skeletal muscle cells this happens due to the additional synthesis of sarcomeric proteins and assembly of myofibrils.] |
| skeletal muscle adaptation | GO_0043501 | [Any process in which skeletal muscles change their phenotypic profiles in response to altered functional demands and a variety of signals.] |
| regulation of muscle atrophy | GO_0014735 | [Any process that modulates the frequency, rate or extent of muscle atrophy.] |
| skeletal muscle atrophy | GO_0014732 | [A process, occurring in skeletal muscle, that is characterized by a decrease in protein content, fiber diameter, force production and fatigue resistance in response to different conditions such as starvation, aging and disuse.] |
| plasma membrane selenite transport | GO_0097080 | [The directed movement of inorganic selenite (HSeO3-1 at physiological pH) across a plasma membrane.] |
| vascular smooth muscle cell fate commitment | GO_0097081 | [The commitment of cells to a vascular smooth muscle cell fate and their capacity to differentiate into vascular smooth muscle cells. A vascular smooth muscle cell is a non-striated, elongated, spindle-shaped cell found lining the blood vessels.] |
| muscle cell fate commitment | GO_0042693 | [The process in which the cellular identity of muscle cells is acquired and determined.] |
| vascular smooth muscle cell differentiation | GO_0035886 | [The process in which a relatively unspecialized cell acquires specialized features of a vascular smooth muscle cell.] |
| skeletal muscle regeneration at neuromuscular junction | GO_0014730 | [The regrowth of muscle tissue to repair injured or damaged muscle fibers in the postnatal stage at the neuromuscular junction. Regeneration of neuromuscular junctions occurs in an orderly way and relies on communication between nerve and muscle. Skeletal myofibers regenerate after injury and form neuro-muscular junctions with motor axons similar to normal ones. Regenerating myofibers develop within the basal lamina sheaths (satellite cells) of original myofibers.] |
| spectrin-associated cytoskeleton | GO_0014731 | [The part of the cytoskeleton composed of spectrin, protein 4.1 and ankyrin. Spectrin-associated cytoskeleton is associated with the plasma membrane.] |
| vascular smooth muscle cell fate specification | GO_0097082 | [The process in which a cell becomes capable of differentiating autonomously into a vascular smooth muscle cell in an environment that is neutral with respect to the developmental pathway. Upon specification, the cell fate can be reversed. A vascular smooth muscle cell is a non-striated, elongated, spindle-shaped cell found lining the blood vessels.] |
| muscle cell fate specification | GO_0042694 | [The process in which a cell becomes capable of differentiating autonomously into a muscle cell in an environment that is neutral with respect to the developmental pathway; upon specification, the cell fate can be reversed.] |
| vascular smooth muscle cell fate determination | GO_0097083 | [The process in which a cell becomes capable of differentiating autonomously into a vascular smooth muscle cell regardless of its environment; upon determination, the cell fate cannot be reversed. A vascular smooth muscle cell is a non-striated, elongated, spindle-shaped cell found lining the blood vessels.] |
| muscle cell fate determination | GO_0007521 | [The cell fate determination process in which a cell becomes capable of differentiating autonomously into a muscle cell regardless of its environment; upon determination, the cell fate cannot be reversed.] |
| vascular smooth muscle cell development | GO_0097084 | [The process aimed at the progression of a vascular smooth muscle cell over time, from initial commitment of the cell to a specific fate, to the fully functional differentiated cell. A vascular smooth muscle cell is a non-striated, elongated, spindle-shaped cell found lining the blood vessels.] |
| muscle cell development | GO_0055001 | [The process whose specific outcome is the progression of a muscle cell over time, from its formation to the mature structure. Muscle cell development does not include the steps involved in committing an unspecified cell to the muscle cell fate.] |