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Atypical MAP kinases - new insights and directions from amoeba
Jeffrey A Hadwiger1, Ramee G Aranda1, Saher Fatima1
1Department of Microbiology and Molecular Genetics, Oklahoma State University, Stillwater, OK 74078-3020, USA.
Abstract:
Mitogen-activated protein kinases (MAPKs) have been the focus of many studies over the past several decades, but the understanding of one subgroup of MAPKs, orthologs of MAPK15, known as atypical MAPKs, has lagged behind others. In most organisms, specific activating signals or downstream responses of atypical MAPK signaling pathways have not yet been identified even though these MAPKs are associated with many eukaryotic processes, including cancer and embryonic development. In this Review, we discuss recent studies that are shedding new light on both the regulation and function of atypical MAPKs in different organisms. In particular, the analysis of the atypical MAPK in the amoeba Dictyostelium discoideum has revealed important roles in chemotactic responses and gene regulation. The rapid and transient phosphorylation of the atypical MAPK in these responses suggest a highly regulated activation mechanism in vivo despite the ability of atypical MAPKs to autophosphorylate in vitro. Atypical MAPK function can also impact the activation of other MAPKs in amoeba. These advances are providing new perspectives on possible MAPK roles in animals that have not been previously considered, and this might lead to the identification of potential targets for regulating cell movement in the treatment of diseases.
Insights
Atypical mitogen-activated protein kinases (MAPKs) are crucial for cell processes like development. Recent studies in amoeba reveal their roles in cell movement and gene regulation, offering new insights for disease treatment.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Mitogen-activated protein kinases (MAPKs) are extensively studied, yet atypical MAPKs (orthologs of MAPK15) remain poorly understood.
- The specific activation signals and downstream effects of atypical MAPK pathways are largely unidentified, despite their association with cancer and embryonic development.
Conclusions:
- Advances in understanding atypical MAPKs provide new perspectives on their potential roles in animals.
- These findings may lead to the identification of therapeutic targets for regulating cell movement in diseases.
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