The ego-1 gene is the first example of a gene encoding an RdRP-related protein with an essential developmental function. The ego-1 gene is also required for a robust response to RNA interference by certain genes. Hence, a protein required for germ-line development in C. elegans may be a component of the RNA interference/PTGS machinery.
The bakers' yeast Saccharomyces cerevisiae utilizes a high affinity Ca 2؉ influx system (HACS) to survive assaults by mating pheromones, tunicamycin, and azole-class antifungal agents. HACS consists of two known subunits, Cch1 and Mid1, that are homologous and analogous to the catalytic ␣-subunits and regulatory ␣2␦-subunits of mammalian voltage-gated calcium channels, respectively. To search for additional subunits and regulators of HACS, a collection of gene knock-out mutants was screened for abnormal uptake of Ca 2؉ after exposure to mating pheromone or to tunicamycin. The screen revealed that Ecm7 is required for HACS function in most conditions. Cycloheximide chase experiments showed that Ecm7 was stabilized by Mid1, and Mid1 was stabilized by Cch1 in non-signaling conditions, suggesting they all interact. Ecm7 is a member of the PMP-22/ EMP/MP20/Claudin superfamily of transmembrane proteins that includes ␥-subunits of voltage-gated calcium channels. Eleven additional members of this superfamily were identified in yeast, but none was required for HACS activity in response to the stimuli. Remarkably, many dozens of genes involved in vesicle-mediated trafficking and protein secretion were required to prevent spontaneous activation of HACS. Taken together, the findings suggest that HACS and calcineurin monitor performance of the membrane trafficking system in yeasts and coordinate compensatory processes. Conservation of this quality control system in Candida glabrata suggests that many pathogenic species of fungi may utilize HACS and calcineurin to resist azoles and other compounds that target membrane biosynthesis.
NMR spectroscopy was used to evaluate growth media and the cellular metabolome in two systems of interest to biomedical research. The first of these was a Chinese hamster ovary cell line engineered to express a recombinant protein. Here, NMR spectroscopy and a quantum mechanical total line shape analysis were utilized to quantify 30 metabolites such as amino acids, Krebs cycle intermediates, activated sugars, cofactors, and others in both media and cell extracts. The impact of bioreactor scale and addition of anti-apoptotic agents to the media on the extracellular and intracellular metabolome indicated changes in metabolic pathways of energy utilization. These results shed light into culture parameters that can be manipulated to optimize growth and protein production. Second, metabolomic analysis was performed on the superfusion media in a common model used for drug metabolism and toxicology studies, in vitro liver slices. In this study, it is demonstrated that two of the 48 standard media components, choline and histidine are depleted at a faster rate than many other nutrients. Augmenting the starting media with extra choline and histidine improves the long-term liver slice viability as measured by higher tissues levels of lactate dehydrogenase (LDH), glutathione and ATP, as well as lower LDH levels in the media at time points out to 94 h after initiation of incubation. In both models, media components and cellular metabolites are measured over time and correlated with currently accepted endpoint measures.
The Saccharomyces cerevisiae open reading frame YKR090w encodes a predicted protein displaying similarity in organization to paxillin, a scaffolding protein that organizes signaling and actin cytoskeletal regulating activities in many higher eucaryotic cell types. We found that YKR090w functions in a manner analogous to paxillin as a mediator of polarized cell growth; thus, we have named this gene PXL1 (Paxillin-like protein 1). Analyses of pxl1⌬ strains show that PXL1 is required for the selection and maintenance of polarized growth sites during vegetative growth and mating. Genetic analyses of strains lacking both PXL1 and the Rho GAP BEM2 demonstrate that such cells display pronounced growth defects in response to different conditions causing Rho1 pathway activation. PXL1 also displays genetic interactions with the Rho1 effector FKS1. Pxl1p may therefore function as a modulator of Rho-GTPase signaling. A GFP::Pxl1 fusion protein localizes to sites of polarized cell growth. Experiments mapping the localization determinants of Pxl1p demonstrate the existence of localization mechanisms conserved between paxillin and Pxl1p and indicate an evolutionarily ancient and conserved role for LIM domain proteins in acting to modulate cell signaling and cytoskeletal organization during polarized growth. INTRODUCTIONIn eucaryotes, polarized growth occurs through the concerted activity of several classes of polarity proteins that act to specify sites of cytoskeletal reorganization and membrane expansion. Two key classes of polarity proteins have been found to play ubiquitous roles in polarity establishment and maintenance. One key class of polarity regulators is the low-molecular-weight cytosolic GTPase proteins represented by the protein families of Ras, Rac, and Rho. The organized assembly and disassembly of these polarity regulating components is coordinated through a second class of polarity proteins whose members include a variety of scaffolding proteins. At present, the factors and mechanisms that organize and promote the efficient transduction of Rho dependent signals to appropriate subsets of pathway effector proteins remain in many cases to be determined, although at least some of these roles appear to be fulfilled by scaffolding proteins that aid in the correct organization of signaling proteins and their regulators.Coordination of these polarity components is required for the formation of polarized growth structures in higher eucaryotes. Specifically, a number of LIM domain containing proteins such as paxillin, zyxin, and CRP act as molecular adaptors or scaffolds, linking integrin and growth factormediated signaling from the cell exterior to the actin cytoskeleton (Sadler et al., 1992;Turner, 2000). These proteins belong to a superfamily whose members possess LIM domains and represent a class of cytoskeletal, signaling, and transcription-regulating proteins that have been implicated broadly in differentiation processes (Schmeichel and Beckerle, 1994;Bach, 2000;Khurana et al., 2002b). Furthermore, these proteins h...
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