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Fletcher, J. C.

Publications and source records attributed to Fletcher, J. C..

2 recordsLinked to original sources

Proposed core role for cytosolic and transmembrane calpain cysteine proteases in mitotic cell divisions

Calpains constitute an ancient, extensive family of calcium-dependent cysteine proteases found in some bacteria and most eukaryotes. They are involved in a wide variety of developmental and cellular processes and are implicated in major human diseases, yet it remains to be seen if they have a common core function explaining their widespread and varied presence across taxa. Beyond their core CysPc catalytic domain, calpains contain diverse domain combinations and can be either cytosolic or membrane bound. Here we hypothesize a general role for both cytosolic and transmembrane calpains in cellular cytokinesis through positional anchoring and organization of microtubules (MTs). We propose that during plant cell division, the singular transmembrane calpain DEK1 localizes and organizes the array of cortical MTs from the microtubule organizing center (MTOC) to establish the location of the preprophase band and/or the site of cell plate formation according to the positional activation of DEK1 proteins in the nuclear membrane. Similarly, during cell division in animals, their calpains may be involved in setting the point of membrane invagination via their association with membrane-bound proteins. This proposition adds to the current picture of animal MTOC/centrosome function and suggests how a calcium peak during the initial cytokinetic furrowing might be transmitted. We discuss this novel mechanistic model for calpain activity in the context of data from the animal and plant literature, as well as of our novel discovery here of calpain sequences in both brown and red algal genomes. Finally, we speculate that the ancestral role of calpains in early eukaryotes, before the split into the major eukaryotic supergroups, may have been to facilitate the formation and function of MT arrays in flagella and cilia. From this origin, calpains may have developed new functions in eukaryote cell division processes by anchoring centrosomes/MTOC to set the cell division orientations that are especially important for complex multicellularity.

developmental biology↗

The bivalent epigenetic regulator ULTRAPETALA1 promotes the Arabidopsis floral transition via recruitment of Polycomb histone methyltransferases for H3K27me3 deposition at the FLC locus

Floral induction is a major transition during the plant life cycle that contributes to reproductive fitness in annual and perennial plants. Flowering occurs in response to multiple environmental and endogenous cues. In Arabidopsis thaliana, many of these cues converge on the regulation of the FLOWERING LOCUS C (FLC) gene, which encodes a MADS domain transcription factor that functions as the main floral repressor. Here we demonstrate that the bivalent epigenetic regulator ULTRAPETALA1 (ULT1) is both necessary and sufficient to promote flowering. We identify ULT1 as a novel component of the autonomous pathway (AP) and show that it accelerates flowering by directly repressing FLC transcription. We demonstrate that ULT1 physically associates with the SWINGER (SWN) and CURLY LEAF (CLF) histone methyltransferase components of Polycomb Repressive Complex 2 (PRC2) to regulate FLC transcription by altering the accumulation of H3K27me3 marks. Our data indicate that ULT1 promotes the floral transition by interacting with SWN and CLF to recruit PRC2 to the FLC locus to deposit repressive histone methylation and reduce transcription of this key floral repressor.

plant biology↗