Related Experiment Videos
Erks: their fifteen minutes has arrived
C M Crews1, A Alessandrini, R L Erikson
1Department of Cellular and Developmental Biology, Harvard University, Cambridge, Massachusetts 02138.
Abstract:
In conclusion, a multigene family (ERK) encoding protein kinases that have the capacity to convert tyrosine kinase signals to serine/threonine phosphorylation signals has been identified in animal and yeast cells. Protein kinases from this family have been shown to be phosphorylated on tyrosine and threonine in response to mitogens, as well as to have the capacity to autophosphorylate on these amino acid residues. In contrast, they apparently phosphorylate exogenous substrates on serine and/or threonine. Studies with cultured cells, Xenopus, and sea star oocytes have furthered our understanding of possible functions of Erks in vivo. These enzymes respond immediately to extracellular signals and are involved in G0-G1 transition (cultured cells), as well as in the M phase of oocyte maturation (Xenopus and sea star oocytes). Their usage of MAPs as substrates in vivo suggests a possible role of Erks in microtubule reorganization. ERK-encoded protein kinases use c-Jun, EGF receptor, and Raf-1 as potential substrates and can also reactivate dephosphorylated S6 kinase in vitro. Taken together, these data suggest that these enzymes play an important role in relaying the mitogenic signal by phosphorylating down-stream kinases and specific transcriptional factors, as well as having possible feedback function in the process of signal transduction. The results from the study of the yeast enzymes are pertinent to Erk activation in cells with nonmitogenic responses described above. In such cases, Erk protein kinases may act directly or indirectly on cyclins to arrest division and permit differentiation. The pathways influenced by ERK-like gene products in animal and yeast cells suggest that, depending on the downstream targets of substrates, transcriptional changes in a particular cell may occur to drive the cell cycle or, alternatively, withdrawal from the cell cycle may lead to specific differentiation events.(ABSTRACT TRUNCATED AT 250 WORDS)
Insights
The ERK (extracellular signal-regulated kinase) multigene family encodes protein kinases crucial for signal transduction. These kinases relay mitogenic signals, influencing cell cycle progression and differentiation in both animal and yeast cells.
Area of Science:
- Cellular Biology
- Molecular Biology
- Signal Transduction
Background:
- The ERK (extracellular signal-regulated kinase) multigene family encodes protein kinases.
- These kinases convert tyrosine kinase signals to serine/threonine phosphorylation signals.
- ERK family kinases are phosphorylated on tyrosine and threonine in response to mitogens and can autophosphorylate.
Purpose of the Study:
- To identify and characterize the ERK multigene family in animal and yeast cells.
- To elucidate the in vivo functions of ERK kinases.
- To understand the role of ERK kinases in signal transduction pathways.
Main Methods:
- Studies utilizing cultured cells, Xenopus, and sea star oocytes.
- Investigation of ERK kinase substrates, including MAPs, c-Jun, EGF receptor, and Raf-1.
- Analysis of ERK kinase activity in response to mitogens and its effect on cell cycle progression.
Main Results:
- ERK kinases phosphorylate exogenous substrates on serine/threonine.
- ERK kinases are involved in G0-G1 transition and M phase oocyte maturation.
- ERK kinases may play a role in microtubule reorganization and signal relay.
Conclusions:
- ERK kinases are critical for relaying mitogenic signals by phosphorylating downstream kinases and transcription factors.
- ERK kinases may have feedback functions in signal transduction.
- ERK pathways influence cell cycle progression and differentiation, potentially arresting division to permit differentiation in yeast cells.