The acronym CK2 (derived from the misnomer 'casein kinase-2') denotes a pleiotropic acidophilic protein kinase implicated in a plethora of cellular functions, whose abnormally high expression correlates with malignancy. CK2 holoenzyme is composed of two catalytic (α and/or α') and two noncatalytic β-subunits. The β-subunits are not responsible for either activation or inactivation of the catalytic ones. Hence, to gain additional information about the roles of the individual CK2 subunits, we have generated C2C12 myoblasts entirely devoid either of both catalytic subunits, or of the β-subunit. Here, we show that while CK2α/α' cells grow similarly to wild-type cells, the growth of CK2β cells is severely impaired, consistent with the hypothesis that not all cellular functions of the β-subunit are mediated by CK2 holoenzyme. To get a deeper insight into the functional implications of the β-subunit, a quantitative proteomics study of CK2β cells was performed, leading to the identification and quantification of more than 1200 proteins. Of these, 187 showed a significantly altered expression (fold change ≥ 1.5 or ≤ -1.5) as compared to wild-type cells. A functional analysis of these proteins discloses the implication of CK2β in many processes, for example, cell cycle, proliferation, transport, metabolic processes, etc., and in some of which the catalytic subunits of CK2 do not seem to play a relevant role. On the other hand, the pool of ecto-CK2 is not apparently affected by the lack of the β-subunit. Collectively, our data corroborate the concept that the cellular functions of the β-subunit of CK2 are partially independent of CK2 holoenzyme.
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Proc Natl Acad Sci U S A
January 2025
State Key Laboratory of Wheat Improvement, College of Life Science, Shandong Agricultural University, Tai'an 271018, China.
In many plants, the asymmetric division of the zygote sets up the apical-basal body axis. In the cress , the zygote coexpresses regulators of the apical and basal embryo lineages, the transcription factors WOX2 and WRKY2/WOX8, respectively. WRKY2/WOX8 activity promotes nuclear migration, cellular polarity, and mitotic asymmetry of the zygote, which are hallmarks of axis formation in many plant species.
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January 2025
Institute of Science and Technology Austria, AT-3400 Klosterneuburg, Austria.
Biophysical constraints limit the specificity with which transcription factors (TFs) can target regulatory DNA. While individual nontarget binding events may be low affinity, the sheer number of such interactions could present a challenge for gene regulation by degrading its precision or possibly leading to an erroneous induction state. Chromatin can prevent nontarget binding by rendering DNA physically inaccessible to TFs, at the cost of energy-consuming remodeling orchestrated by pioneer factors (PFs).
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January 2025
Helen Wills Neuroscience Institute, University of California Berkeley, Berkeley, CA 94720.
Norepinephrine in vertebrates and its invertebrate analog, octopamine, regulate the activity of neural circuits. We find that, when hungry, larvae switch activity in type II octopaminergic motor neurons (MNs) to high-frequency bursts, which coincide with locomotion-driving bursts in type I glutamatergic MNs that converge on the same muscles. Optical quantal analysis across hundreds of synapses simultaneously reveals that octopamine potentiates glutamate release by tonic type Ib MNs, but not phasic type Is MNs, and occurs via the G-coupled octopamine receptor (OAMB).
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January 2025
Department of Plant Biology, College of Biological Sciences, University of California, Davis, CA 95616.
Seeds are complex structures composed of three regions, embryo, endosperm, and seed coat, with each further divided into subregions that consist of tissues, cell layers, and cell types. Although the seed is well characterized anatomically, much less is known about the genetic circuitry that dictates its spatial complexity. To address this issue, we profiled mRNAs from anatomically distinct seed subregions at several developmental stages.
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January 2025
Chinese Academy of Sciences Key Laboratory of Tropical Marine Bio Resources and Ecology, Guangdong Key Laboratory of Marine Materia Medica, Innovation Academy of South China Sea Ecology and Environmental Engineering, Guangdong Provincial Observation and Research Station for Coastal Upwelling Ecosystem, South China Sea Institute of Oceanology, Chinese Academy of Sciences, Guangzhou 511458, China.
Rotation of the bacterial flagellum, the first identified biological rotary machine, is driven by its stator units. Knowledge gained about the function of stator units has increasingly led to studies of rotary complexes in different cellular pathways. Here, we report that a tetrameric PilZ family protein, FlgX, is a structural component underneath the stator units in the flagellar motor of .
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