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Biology subjects

Wagner, L. E.

Publications and source records attributed to Wagner, L. E..

3 recordsLinked to original sources

Functional Determination of Calcium Binding Sites Required for the Activation of Inositol 1,4,5-trisphosphate receptors.

Inositol 1,4,5-trisphosphate (IP3) receptors (IP3Rs) initiate a diverse array of physiological responses by carefully orchestrating intracellular calcium (Ca2+) signals in response to various external cues. Notably, IP3R channel activity is determined by several obligatory factors including IP3, Ca2+ and ATP. The critical basic amino acid residues in the N-terminal IP3-binding core (IBC) region that facilitate IP3 binding are well characterized. In contrast, the residues conferring the biphasic regulation by Ca2+ are yet to be ascertained. Using comparative structural analysis of Ca2+ binding sites identified in two main families of intracellular Ca2+-release channels, ryanodine receptors (RyRs) and IP3Rs, we identified putative acidic residues coordinating Ca2+ in the cytosolic calcium sensor region in IP3Rs. We determined the consequences of substituting putative Ca2+ binding, acidic residues in IP3R family members. We show that the agonist-induced Ca2+ release, single channel open probability (P0) and Ca2+ sensitivities are markedly altered when the negative charge on the conserved acidic side chain residues are neutralized. Remarkably, neutralizing the negatively charged side chain on two of the residues individually in the putative Ca2+ binding pocket shifted the Ca2+ required to activate IP3R to higher concentrations, indicating that these residues likely are a component of the Ca2+ activation site in IP3R. Taken together, our findings indicate that Ca2+ binding to a well conserved activation site is a common underlying mechanism resulted in increased channel activity shared by IP3Rs and RyRs.

physiology↗

CREB regulates the expression of Type 1 Inositol 1,4,5-trisphosphate receptors

Inositol 1,4,5-trisphosphate (IP3) receptors (IP3Rs) play a central role in regulating intracellular calcium signals in response to a variety of internal/external cues. Dysregulation of IP3R signaling is the underlying cause for numerous pathological conditions. It is also well established that the activity of IP3Rs is governed by several post-translational modifications including phosphorylation by protein kinase A (PKA). However, the long-term effects of PKA activation on expression of IP3R sub-types, remains largely unexplored. In this report, we investigate the effect of chronic activation of PKA on expression of IP3R sub-types. We demonstrate that expression of IP3R1 is augmented upon prolonged activation of PKA or upon ectopic over-expression of CREB but does not alter IP3R2 and IP3R3 sub-type abundance. Conversely, inhibition of PKA or blocking endogenous CREB diminished IP3R1 expression. We also demonstrate that agonist-induced Ca2+-release mediated by IP3R1 is significantly attenuated upon blocking endogenous CREB. Moreover, CREB by regulating the expression of KRAS-induced actin-interacting protein (KRAP) ensures proper localization and licensing of IP3R1. Overall, we report a crucial role for CREB in governing both the expression and proper localization of IP3R1. Summary statementWe report a critical role of CREB in regulating the expression and proper localization of IP3R1. Agonist-induced Ca2+ release and Ca2+ puffs generated by IP3R1 are diminished upon blocking the function of endogenous CREB.

physiology↗

Omnitemporal choreographies of IP3R and all five STIM/Orai underlie the complexity of mammalian Ca2+ signaling

Invertebrates express one endoplasmic reticulum (ER)-resident Ca2+-sensing stromal-interaction molecule (Stim) and one Orai plasma membrane channel protein. Stim conveys store depletion to Orai, mediating the evolutionarily conserved Ca2+ release-activated Ca2+ (CRAC) current. The crucial role of their vertebrate homologues, STIM1 and Orai1 in mediating CRAC activity in mammals is well-established. However, mammals possess two STIM and three Orai isoforms and the choreography of their interactions under physiological receptor activation is unknown. We show that the five mammalian STIM1/2 and Orai1/2/3 isoforms have non-redundant functions. Yet, all five isoforms are always required together to ensure the graded diversity of mammalian Ca2+ signaling events in response to the full spectrum of agonist strengths. Receptor-activated Ca2+ signaling across the range of stimulus intensities requires functional interactions between not only STIM1/2 and Orai1/2/3, but also IP3R, ensuring that receptor-mediated Ca2+ release is precisely tailored to Ca2+ entry and activation of nuclear factor of activated T-cells (NFAT). This is orchestrated by two interdependent and counterbalancing paradigms: the N-termini Ca2+-binding ER-luminal domains of unactivated STIM1/2 inhibit IP3R-evoked Ca2+ release. Gradual increase in agonist intensity leads to gradual STIM1/2 activation and relief of IP3R inhibition. Concomitantly, the cytosolic C-termini of activated STIM1/2 differentially interact with Orai1/2/3 proteins as agonist intensity increases. Thus, coordinated and omnitemporal functions of all five STIM/Orai proteins and IP3Rs at the ER-lumen and cytosol translate the strength of agonist stimulation to precise levels of Ca2+ release, Ca2+ entry and NFAT induction, ensuring the diversity and fidelity of complex mammalian Ca2+ signaling. HighlightsO_LIAll five STIM/Orai and IP3R are always required together in mammalian Ca2+ signalling C_LIO_LIUnactivated STIM1/2 inhibit IP3R and activated STIM1/2 cooperatively activate Orai1/2/3 C_LIO_LISTIM1 contribution increases and that of STIM2 decreases as agonist intensifies C_LIO_LIGraded IP3R disinhibition and Orai activation tailor receptor activity to NFAT induction C_LI O_FIG O_LINKSMALLFIG WIDTH=192 HEIGHT=200 SRC="FIGDIR/small/325480v1_ufig1.gif" ALT="Figure 1"> View larger version (65K): org.highwire.dtl.DTLVardef@f6172dorg.highwire.dtl.DTLVardef@6bbb09org.highwire.dtl.DTLVardef@c45c80org.highwire.dtl.DTLVardef@194d7e4_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗