All terms in GO
| Label | Id | Description |
|---|---|---|
| PCAF complex | GO_0000125 | [A large multiprotein complex that possesses histone acetyltransferase activity and is involved in regulation of transcription. The composition is similar to that of the SAGA complex, but includes fewer Spt and Ada proteins, and more TAFs.] |
| histone acetyltransferase complex | GO_0000123 | [A protein complex that possesses histone acetyltransferase activity.] |
| glycerol-1-phosphatase activity | GO_0000121 | [Catalysis of the reaction: glycerol-1-phosphate + H2O = glycerol + phosphate.] |
| positive regulation of proline metabolic process | GO_2000216 | [Any process that activates or increases the frequency, rate or extent of proline metabolic process.] |
| regulation of invasive growth in response to glucose limitation | GO_2000217 | [Any process that modulates the frequency, rate or extent of invasive growth in response to glucose limitation.] |
| invasive growth in response to glucose limitation | GO_0001403 | [A growth pattern exhibited by budding haploid cells under certain growth conditions, in which cells retain the typical axial budding pattern of haploids, but become elongated and fail to separate after division; during growth on a solid substrate, this results in penetration of cells into the agar medium. An example of this process is found in Saccharomyces cerevisiae.] |
| myoblast migration involved in skeletal muscle regeneration | GO_0014839 | [The process in which a myoblast migrates along an entire fiber to the site of injury. A myoblast is a mononucleate cell type that, by fusion with other myoblasts, gives rise to the myotubes that eventually develop into skeletal muscle fibers.] |
| myoblast migration | GO_0051451 | [The orderly movement of a myoblast from one site to another, often during the development of a multicellular organism. A myoblast is a cell type that, by fusion with other myoblasts, gives rise to the myotubes that eventually develop into skeletal muscle fibers.] |
| myoblast fate determination involved in skeletal muscle regeneration | GO_0014837 | [The process in which a satellite cell becomes capable of differentiating autonomously into a myoblast regardless of its environment; upon determination, the cell fate cannot be reversed. This occurs as part of skeletal muscle regeneration. A myoblast is a mononucleate cell type that, by fusion with other myoblasts, gives rise to the myotubes that eventually develop into skeletal muscle fibers.] |
| myoblast fate determination | GO_0007518 | [The cell fate determination process in which a cell becomes capable of differentiating autonomously into a myoblast regardless of its environment; upon determination, the cell fate cannot be reversed. A myoblast is a mononucleate cell type that, by fusion with other myoblasts, gives rise to the myotubes that eventually develop into skeletal muscle fibers.] |
| myoblast fate commitment involved in skeletal muscle regeneration | GO_0014836 | [The process in which the developmental fate of a satellite cell becomes restricted such that it will develop into a myoblast. This occurs as part of skeletal muscle regeneration. A myoblast is a mononucleate cell type that, by fusion with other myoblasts, gives rise to the myotubes that eventually develop into skeletal muscle fibers.] |
| myoblast fate specification involved in skeletal muscle regeneration | GO_0014838 | [The process in which a satellite cell becomes capable of differentiating autonomously into a myoblast in an environment that is neutral with respect to the developmental pathway. Upon specification, the cell fate can be reversed. This occurs as part of skeletal muscle regeneration. A myoblast is a mononucleate cell type that, by fusion with other myoblasts, gives rise to the myotubes that eventually develop into skeletal muscle fibers.] |
| negative regulation of invasive growth in response to glucose limitation | GO_2000218 | [Any process that stops, prevents, or reduces the frequency, rate or extent of invasive growth in response to glucose limitation.] |
| myoblast differentiation involved in skeletal muscle regeneration | GO_0014835 | [The process in which a relatively unspecialized satellite cell acquires specialized features of a myoblast. This occurs as part of skeletal muscle regeneration. A myoblast is a mononucleate cell type that, by fusion with other myoblasts, gives rise to the myotubes that eventually develop into skeletal muscle fibers.] |
| positive regulation of invasive growth in response to glucose limitation | GO_2000219 | [Any process that activates or increases the frequency, rate or extent of invasive growth in response to glucose limitation.] |
| myoblast proliferation involved in skeletal muscle regeneration | GO_0014844 | [The multiplication or reproduction of myoblasts, resulting in the expansion of the cell population. This occurs as part of skeletal muscle regeneration. A myoblast is a mononucleate cell type that, by fusion with other myoblasts, gives rise to the myotubes that eventually develop into skeletal muscle fibers.] |
| stomach body smooth muscle contraction | GO_0014845 | [A process in which force is generated within smooth muscle tissue, resulting in a change in muscle geometry. This process occurs in the body of stomach. Force generation involves a chemo-mechanical energy conversion step that is carried out by the actin/myosin complex activity, which generates force through ATP hydrolysis. The body of stomach is the part of the stomach that lies between the fundus above and the pyloric antrum below; its boundaries are poorly defined.] |
| regulation of skeletal muscle satellite cell proliferation | GO_0014842 | [Any process that modulates the frequency, rate or extent of skeletal muscle satellite cell proliferation.] |
| regulation of skeletal muscle cell proliferation | GO_0014857 | [Any process that modulates the frequency, rate or extent of skeletal muscle cell proliferation.] |
| skeletal muscle satellite cell proliferation | GO_0014841 | [The multiplication or reproduction of satellite cells, resulting in the expansion of the cell population. Satellite cells are quiescent cells that are located between the basal lamina and the plasmalemma of the muscle fiber, which are the main contributors to postnatal muscle growth. In adult muscle, satellite cells become activated to divide and differentiate in response to muscle damage.] |