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Phosphodiesterase-Ialpha/autotaxin (PD-Ialpha/ATX): a multifunctional protein involved in central nervous system
Jameel Dennis1, Luciana Nogaroli, Babette Fuss
1Department of Anatomy and Neurobiology, Virginia Commonwealth University Medical Center, Richmond, 23298, USA.
Abstract:
Phosphodiesterase-Ialpha/autotaxin (PD-Ialpha/ATX) was originally identified as a cell-motility-stimulating factor secreted by a variety of tumor cells. Thus, studies related to its potential functional roles have traditionally focused on tumorigenesis. PD-Ialpha/ATX's catalytic activity, initially defined as nucleotide pyrophosphatase/phosphodiesterase, was soon recognized as being necessary for its tumor cell-motility-stimulating activity. However, only the discovery of PD-Ialpha/ATX's identity with lysophospholipase D, an extracellular enzyme that converts lysophosphatidylcholine into lysophosphatidic acid (LPA) and potentially sphingosylphosphoryl choline into sphingosine 1-phosphate (S1P), revealed the actual effectors responsible for PD-Ialpha/ATX's ascribed motogenic functions, i.e., its catalytic products. PD-Ialpha/ATX has also been detected during normal development in a number of tissues, in particular, the central nervous system (CNS), where expression levels are high. Similar to tumor cells, PD-Ialpha/ATX-expressing CNS cells secrete catalytically active PD-Ialpha/ATX into the extracellular environment. Thus, it appears reasonable to assume that PD-Ialpha/ATX's CNS-related functions are mediated via lysophospholipid, LPA and potentially S1P, signaling. However, recent studies identified PD-Ialpha/ATX as a matricellular protein involved in the modulation of oligodendrocyte-extracellular matrix interactions and oligodendrocyte remodeling. This property of PD-Ialpha/ATX was found to be independent of its catalytic activity and to be mediated by a novel functionally active domain. These findings, therefore, uncover PD-Ialpha/ATX, at least in the CNS, as a multifunctional protein able to induce complex signaling cascades via distinct structure-function domains. This Mini-Review describes PD-Ialpha/ATX's multifunctional roles in the CNS and discusses their potential contributions to CNS development and pathology.
Insights
Phosphodiesterase-Ialpha/autotaxin (PD-Ialpha/ATX) is a multifunctional protein involved in both tumor cell motility and central nervous system (CNS) development. Its roles in the CNS are independent of its catalytic activity, highlighting novel functions.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Phosphodiesterase-Ialpha/autotaxin (PD-Ialpha/ATX) was initially recognized for its role in stimulating tumor cell motility.
- Its enzymatic activity as a nucleotide pyrophosphatase/phosphodiesterase and lysophospholipase D was thought to mediate these effects through lysophosphatidic acid (LPA) and sphingosine 1-phosphate (S1P) signaling.
- PD-Ialpha/ATX is highly expressed in the central nervous system (CNS) during development, suggesting crucial roles beyond tumorigenesis.
Purpose of the Study:
- To explore the multifunctional roles of PD-Ialpha/ATX in the CNS.
- To investigate the mechanisms underlying PD-Ialpha/ATX's functions in CNS development and pathology.
- To elucidate the structure-function relationships of PD-Ialpha/ATX in the context of the CNS.
Main Methods:
- Review of existing literature on PD-Ialpha/ATX.
- Analysis of studies investigating PD-Ialpha/ATX's enzymatic and non-enzymatic functions.
- Examination of PD-Ialpha/ATX's role in oligodendrocyte-extracellular matrix interactions and remodeling.
Main Results:
- PD-Ialpha/ATX exhibits functions in the CNS that are independent of its catalytic activity.
- A novel functional domain mediates PD-Ialpha/ATX's role in oligodendrocyte remodeling.
- PD-Ialpha/ATX acts as a matricellular protein modulating oligodendrocyte-extracellular matrix interactions.
Conclusions:
- PD-Ialpha/ATX is a multifunctional protein in the CNS, with distinct domains mediating different functions.
- Its non-catalytic functions are critical for oligodendrocyte remodeling and CNS development.
- Understanding these diverse roles is essential for comprehending CNS development and associated pathologies.
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