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FW2.2 and Cell Cycle Control in Developing Tomato Fruit: a Possible Example of Gene Co-option in the Evolution of a Novel Organ

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Journal Plant Mol Biol
Date 2006 Aug 31
PMID 16941207
Citations 32
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Abstract

fw2.2 is one of the few QTLs thus far isolated from plants and the first one known to control fruit size. While it has been established that FW2.2 is a regulator (either directly or indirectly) of cell division, FW2.2 does not share sequence homology to any protein of known function (Frary et al. Science 289:85-88, 2000; Cong et al. Proc Natl Acad Sci USA 99:13606-13611, 2002; Liu et al. Plant Physiol 132:292-299, 2003). Thus, the mechanism by which FW2.2 mediates cell division in developing fruit is currently unknown. In an effort to remedy this situation, a combination of yeast two-hybrid screens, in vitro binding assays and cell bombardment studies were performed. The results provide strong evidence that FW2.2 physically interacts at or near the plasma membrane with the regulatory (beta) subunit of a CKII kinase. CKII kinases are well-studied in both yeast and animals where they form part of cell cycle related signaling pathway. Thus while FW2.2 is a plant-specific protein and regulates cell division in a specialized plant organ (fruit), it appears to participate in a cell-cycle control signal transduction pathway that predates the divergence of single- and multi-cellular organisms. These results thus provide a glimpse into how ancient and conserved regulatory processes can be co-opted in the evolution of novel organs such as fruit.

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References
1.
Cong B, Liu J, Tanksley S . Natural alleles at a tomato fruit size quantitative trait locus differ by heterochronic regulatory mutations. Proc Natl Acad Sci U S A. 2002; 99(21):13606-11. PMC: 129721. DOI: 10.1073/pnas.172520999. View

2.
Zhang C, Vilk G, Canton D, Litchfield D . Phosphorylation regulates the stability of the regulatory CK2beta subunit. Oncogene. 2002; 21(23):3754-64. DOI: 10.1038/sj.onc.1205467. View

3.
Nastainczyk W, Boldyreff B, Issinger O . Isolation and characterization of a monoclonal anti-protein kinase CK2 beta-subunit antibody of the IgG class for the direct detection of CK2 beta-subunit in tissue cultures of various mammalian species and human tumors. Hybridoma. 1995; 14(4):335-9. DOI: 10.1089/hyb.1995.14.335. View

4.
Collinge M, Walker J . Isolation of an Arabidopsis thaliana casein kinase II beta subunit by complementation in Saccharomyces cerevisiae. Plant Mol Biol. 1994; 25(4):649-58. DOI: 10.1007/BF00029603. View

5.
Fields S, Song O . A novel genetic system to detect protein-protein interactions. Nature. 1989; 340(6230):245-6. DOI: 10.1038/340245a0. View