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Loss of STIM1 and STIM2 in Salivary Glands Disrupts ANO1 Function but Does Not Induce Sjogren's Disease.

Ca2+ signaling via the store-operated Ca2+ entry (SOCE) mediated by STIM1 and STIM2 proteins and the ORAI1 Ca2+ channel is important in saliva fluid secretion and has been associated with Sjogren's disease (SjD). However, there are no studies addressing STIM1/2 dysfunction in salivary glands or SjD in animal models. We report that mice lacking Stim1 and Stim2 [Stim1/2K14Cre(+)] in salivary glands exhibited reduced Ca2+ levels and hyposalivate. SOCE was functionally required for the activation of the Ca2+ activated Cl- channel ANO1. Ageing Stim1/2K14Cre(+) mice showed no evidence of lymphocytic infiltration or increased levels of autoantibodies characteristic of SjD, possibly associated with a downregulation of toll-like receptor 8 (Tlr8) expression. Salivary gland biopsies of SjD patients showed increased expression of STIM1 and TLR7/8. Our study shows that SOCE activates ANO1 function and fluid secretion in salivary glands and highlights a potential link between SOCE and TLR signaling in SjD.

Stromal Interaction Molecule 1

DENND3-p.R534S disrupts dyadic microdomain architecture to drive potentially pro-arrhythmic calcium and electrophysiologic instability.

AIMS: Inherited ventricular arrhythmias (VAs) frequently occur in the absence of pathogenic variants in canonical ion channel genes, suggesting alternative mechanisms of electrical instability. DENND3 is a guanine nucleotide exchange factor that regulates Rab GTPase-mediated trafficking, but its role in cardiac excitation-contraction coupling and membrane microdomain organization remains undefined. METHODS AND RESULTS: We studied induced pluripotent stem cell-derived cardiomyocytes generated from a CRISPR/CAS9-engineered ultra-rare DENND3-p.R534S variant-inserted line (previously identified in an idiopathic ventricular fibrillation pedigree) and matched isogenic controls. Multielectrode array recordings, live-cell calcium imaging, super-resolution imaging using expansion microscopy, and biochemical analyses were used to assess electrical activity, calcium handling, membrane architecture, and calcium release unit organization. Potentially therapeutic studies were performed using genetic and pharmacologic inhibition of Rab11b. DENND3-p.R534S induced pluripotent stem cell-derived cardiomyocytes exhibited multicellular electrical instability characterized by increased beat-to-beat variability, arrhythmic activity, conduction slowing, and prolonged excitation-contraction delay. These abnormalities were accompanied by heterogeneous and dyssynchronous calcium cycling despite preserved expression of major calcium-handling proteins. Super-resolution imaging revealed disruption of BIN1-dependent membrane architecture and nanoscale uncoupling of Cav1.2 and RyR2. Inhibition of Rab11b restored BIN1 organization, re-established dyadic coupling, normalized calcium cycling, and improved electrical stability. CONCLUSION: These findings support a model in which altered trafficking balance contributes to disruption of membrane microdomain organization, leading to dyadic uncoupling, calcium instability, and electrical dysfunction. Modulation of the Rab11b-mediated trafficking pathway restored structural and functional abnormalities, supporting the trafficking-associated pathway as a potential therapeutic target in DENND3-associated ventricular arrhythmia.

Myocytes, Cardiac

Intermembrane coupling between Bcl-xL and the IP3 receptor supports local Ca2+ transfer at ER-mitochondrial contacts.

Bcl-xL, an anti-apoptotic Bcl-2 family protein, engages laterally with Bak/Bax in the outer mitochondrial membrane (OMM) to inhibit apoptosis and interacts with the IP3 receptor Ca2+ channels (IP3Rs) in the endoplasmic reticulum (ER) membrane to control Ca2+ release. It is unknown if OMM-localized Bcl-xL can also interact in trans with IP3Rs at ER-mitochondrial contacts to form a tethering complex that supports IP3R-mediated local Ca2+ transfer from ER to mitochondria. We establish that IP3R-mitochondria Ca2+ signal propagation depends on Bcl-xL. By targeting Bcl-xL specifically to different subcellular compartments, we find that OMM-localized Bcl-xL increases the efficacy of ER-mitochondrial Ca2+ transfer without changing ER Ca2+ release, despite attenuating mitochondrial Ca2+ uptake. We find interaction between Bcl-xL and each IP3R isoform occurring at the mitochondria and a complex formed by OMM-localized Bcl-xL and IP3Rs. OMM Bcl-xL interacts with IP3Rs in trans at ER-mitochondrial contacts to optimize local Ca2+ signal propagation into the mitochondria.

Bcl-xL

Fibroblast growth factor 21 prevents catecholaminergic arrhythmias in a mouse model of PKP2 arrhythmogenic cardiomyopathy.

BACKGROUND: Pathogenic variants in plakophilin-2 (PKP2) cause arrhythmogenic cardiomyopathy (ACM) with intracellular calcium dysregulation as a major component of its arrhythmia phenotype. Recent adeno-associated virus (AAV)-based PKP2 gene therapy has shown promising results in a few different PKP2-associated ACM models. Fibroblast growth factor 21 (FGF21) has multiple cardioprotective effects and has recently emerged as a promising therapeutic agent for cardiovascular disease. OBJECTIVE: This study aimed to assess the efficacy and impact on calcium regulation of a novel AAV serotype 8 (AAV8)-based FGF21 gene therapy on adult cardiac-specific, tamoxifen-activated PKP2 knockout (PKP2-cKO) mice. METHODS: Experiments were performed using a PKP2-cKO murine model. AAV8-FGF21 was delivered to adult mice by a single tail vein injection 7 days before tamoxifen-activated PKP2-cKO. Cardiac functions were monitored using echocardiography and electrocardiography. Intracellular calcium transients were investigated in acute isolated adult mouse cardiomyocytes, and calcium fluorescent signals were acquired using the IonOptix system. RESULTS: Loss of PKP2 expression caused cardiac mechanical dysfunction and proarrhythmic phenotype in adult mouse models. AAV-mediated delivery of FGF21 mitigated the progression of biventricular structural changes, decreased the occurrence of adrenergic arrhythmias, and rescued intracellular calcium imbalance in the setting of PKP2 haploinsufficiency. In contrast, acute in vitro FGF21 treatment for 1 hour had no effect on intracellular calcium transients. CONCLUSION: These beneficial effects of AAV8-FGF21 on the PKP2-ACM phenotype suggest a therapeutic landscape for various targeted cardiomyopathies.

Animals

Electron paramagnetic resonance study of iron oxalate in calcium oxalate renal stones.

Weak electron paramagnetic resonance (EPR) signals from a number of calcium oxalate renal stones are attributed to an iron oxalate component. The g-value of the resonance is 2.0036 and its width is approximately 9 gauss. The EPR resonance from stones has the same characteristics as resonances from iron introduced into calcium oxalate and oxalic acid as an impurity. A sharp increase in EPR signal when calcium oxalate renal stones are exposed to intense light is attributable to the reduction of Fe3+ and the formation of the oxalate radical ion (C2O4)-.

Calcium Oxalate

Electron paramagnetic resonance spectra of mitochondrial and microsomal cytochrome P-450 from the rat adrenal.

The electron paramagnetic resonance (EPR) spectra of rat adrenal zona fasciculate mitochondria showed peaks corresponding to low spin ferric cytochrome P-450 with apparent g values of 2.424, 2.248 and 1.917, and weak signals due to high spin ferric cytochrome P-450 with gx values of 8.08 and 7.80. The former is attributed to cholesterol side chain cleavage cytochrome P-450, the latter to 11beta-hydroxylase cytochrome P-450. On addition of deoxycorticosterone the g = 7.80 signal was elevated and there was an associated drop in the low spinal signal. As the pH was reduced from 7.4 to 6.1, the g = 8.08 signal increased with again a drop in intensity of the low spin signal. Mitochondria from the zona glomerulosa showed similar spectral properties to those described above. Addition of succinate, isocitrate or pregnenolone caused a loss of the g = 8.08 signal. Addition of calcium increased the magnitude of the g = 8.08 signal, and caused a slight reduction in the magnitude of the low spin signal. Also, addition of deoxycorticosterone, pregnenolone, succinate or isocitrate caused slight shifts of the outer lines of the low spin spectrum. Interaction of mitochondrial cytochrome P-450 with metyrapone and aminoglutethimide modified the low spinal parameters. Adrenal microsomal cytochrome P-450 had low spin ferric g values of 2.417, 2.244 and 1.919 and a high spin ferric gxy values of 7.90 and 3.85, distinct from the values obtained with mitochondria.

Adrenal Glands

Calcium transients and relaxation in single muscle fibers.

Muscle contraction is initiated by an elevation in intracellular calcium. The transient change in free calcium to a brief depolarization, the calcium transient, can be recorded using a calcium luminescent protein, aequorin. The calcium transient precedes force, peaking while force is rising and returning to the resting level as peak force is achieved. In single barnacle muscle fibers microinjected with aequorin, shortening the muscle during the declining phase of the calcium transient produces an addition light signal, indicating extra free calcium in the sarcoplasm. The amount of additional light is larger with larger length changes. It is also larger if the shortening occurs early in the calcium transient rather than later. The amount of this extra calcium correlates well with the instantaneous level of the calcium transient and not with the instantaneous force level. It is argued in a speculative manner that this extra calcium is coming from the myofilaments. This supports the hypothesis that calcium binding to the myofilaments is rapid and reversible, that reaccumulation of calcium into the sarcoplasmic reticulum (SR) could occur long before relaxation begins and that relaxation of tension could occur by some process other than the mere removal of calcium from the myofilaments.

Aequorin

CaCl2 Priming Boosts Salinity-Alkalinity Tolerance in Germinating Soybean by Reducing DNA Oxidative Damage and Enhancing Ca2+ -ROS Signaling Crosstalk.

Soybean (Glycine max) seed germination is highly sensitive to saline-alkaline stress. Seed priming represents an effective strategy to mitigate its detrimental effects. However, the optimal priming conditions (agent, concentration, duration) and the underlying molecular mechanisms remain poorly understood. This study investigated the effects of priming with distilled water (Control), calcium chloride (CaCl2), melatonin (MT), and proline (Pro) under saline-alkaline stress on soybean seed germination and the molecular basis of enhanced tolerance. Evaluation of ten germination-related parameters revealed that priming with 100 mM CaCl2 for 12 h significantly enhanced the germination rate. Physiological analyses demonstrated that CaCl2 priming effectively reduced reactive oxygen species (ROS) accumulation by increasing the activities of superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT), while decreasing malondialdehyde (MDA) content. Furthermore, CaCl2 priming activated the Ca2+ signaling pathway by increasing radicle Ca2+ content and upregulating the expression levels of Ca2+ signaling-related genes (e.g., GmCAM7, GmCNGC2, GmCNGC19, GmMPK2, and GmMKK2). Additionally, CaCl2 priming significantly enhanced DNA damage repair capacity of soybean cultivars with differing saline-alkaline tolerance. This was manifested by reduced DNA oxidative damage and decreased random amplified polymorphic DNA (RAPD) polymorphism, thereby enhancing genomic stability and alleviating cell cycle arrest. These findings deepen our understanding of the complex regulatory role of calcium signaling in plant abiotic stress responses and provide important novel theoretical insights for improving crop resilience.

Glycine max

Sarcoplasmic reticulum ATPase. Spin labeling detection of ligand-induced changes in the relative reactivities of certain sulfhydryl groups.

In sarcoplasmic reticulum fragments, chemical reactivity of calcium ATPase -SH groups toward N-(1-oxyl-2,2,6,6-tetramethyl-4-piperidinyl)-iodoacetamide (ISL) was estimated by measuring the steady reduction in free label spectrum intensity during the labeling reaction. A few -SH groups reacted easily with ISL and activity was not inhibited. The reaction rate was highly sensitive to pH and temperature. Calcium chelation in the presence of magnesium accelerated the reaction slightly, and nucleotides accelerated if severalfold in the presence of calcium. The resulting spectra were also studied for the bound labels, after extensive washing of the nonreacted label. Compared to the spectrum obtained after labeling in the control calcium medium, the "weakly immobilized signal" of the spectrum of vesicles labeled in a chelated calcium medium was enhanced. On the other hand, the "strongly immobilized signal" was enhanced when vesicles were labeled in a medium containing calcium and nucleotides. This was taken as evidence that different -SH groups are selectively alkylated, according to the labeling medium. The present study confirms the calcium-induced modifications in the -SH environment reported previously and suggests new ways of searching for possible conformational events during the transport cycle in the membrane.

Adenosine Triphosphatases

Microglial modulation in general anesthesia: molecular.

General anesthetics profoundly alter brain function and consciousness, yet the mechanisms underlying these effects remain incompletely understood. Although traditional studies have primarily focused on neuronal targets, accumulating evidence suggests that microglia dynamically respond to anesthetic exposure and may participate in anesthesia-associated neurophysiological changes. Beyond their established immune functions, microglia are increasingly implicated in synaptic remodeling, metabolic regulation, neuronal activity surveillance, and neuron-glia communication. Recent studies indicate that different classes of anesthetic agents modulate microglial activity through diverse and context-dependent mechanisms involving inflammatory signaling, purinergic pathways, calcium dynamics, mitochondrial metabolism, and neural circuit interactions. These responses are associated with postoperative neurocognitive disorders, altered synaptic plasticity, and anesthesia-related changes in brain states. In this review, we summarize current evidence regarding the effects of volatile anesthetics, intravenous anesthetics, and analgesics on microglial function and discuss the molecular, functional, and circuit-level mechanisms underlying anesthesia-associated neuron-microglia interactions. We further highlight the dynamic and heterogeneous nature of microglial responses during anesthesia and discuss current limitations in the field, including the lack of temporally resolved and cell-specific approaches. Understanding these processes may provide insights into anesthesia-associated neurocognitive dysfunction and support the development of neuroimmune-targeted strategies in anesthesiology.

General anesthesia

Dual EZH1/2 inhibition enhances DNMT inhibitor efficacy in colon cancer through targeting H3K27me1.

Our recent work showed that low-dose DNMT inhibitor (DNMTi) treatment sensitizes colon cancer cells to EZH2 inhibitors (EZH2i), synergistically upregulating tumor suppressor genes (TSGs) and transposable elements through activation of the calcium-calcineurin-NFAT signaling pathway. A key observation was that EZH2i displayed variable sensitivities in combination therapy, which could not be explained solely by loss of lysine 27 trimethylation on histone H3 (H3K27me3), the most commonly studied EZH2 product. This led us to perform a comprehensive pharmacologic screen of Polycomb Repressive Complex 2 (PRC2) antagonists. Here, we show that compounds targeting both EZH2 and its interchangeable catalytic subunit, EZH1, achieved superior TSG re-expression when combined with DNMTi. Integrative proteomic and epigenomic analyses revealed that EZH1/2 inhibitors reduce all three H3K27 methylation states, whereas EZH2-selective inhibitors preserve EZH1-dependent H3K27me1 at deeply Polycomb-repressed genomic regions. Notably, H3K27me1 loss coincided with deposition of p300/CBP-dependent lysine 27 acetylation on histone H3 (H3K27ac), which proved essential for TSG re-expression. Paradoxically, blocking p300/CBP activity further enhanced the growth-inhibitory effects of combined DNMT and EZH1/2 inhibition. Mechanistically, we show that EZH1/2 inhibition redistributes p300/CBP activity, reducing H3K27ac from oncogenic loci and redirecting it to bivalent regions that enable TSG re-expression. Collectively, these findings reveal a coordinated role for EZH1-dependent H3K27me1 and DNA methylation in sustaining oncogenic transcriptional programs and provide strong rationale for advancing dual EZH1/2 inhibitors for combination epigenetic cancer therapy.

DNA methylation

Defining the potential role of the mineralocorticoid receptor in musculoskeletal health and bone crosstalk with other tissues.

Excessive mineralocorticoid receptor (MR) activation in the heart and vasculature leads to pathological effects such as extracellular matrix accumulation, oxidative stress, and sustained inflammation. While MR's role in cardiovascular and renal systems is well understood, MR signaling has also been implicated as a key driver of homeostasis and pathological changes in several other body systems, including skeletal muscle and adipose tissue. The glucocorticoid receptor (GR) and MR are structurally and functionally linked, sharing 95% similarity in DNA-binding domains and recognizing many of the same hormone response elements (HREs) as transcriptional regulators of target genes. The role of GR in bone has been defined through several mechanistic studies, whereas the role of MR in bone is understudied. Because mineralocorticoid signaling regulates renal sodium and calcium handling, chronic hyperaldosteronism may indirectly disrupt skeletal homeostasis through urinary calcium wasting and secondary alterations in parathyroid hormone signaling. Furthermore, MR inhibition through MR antagonists (MRAs) has been associated with beneficial skeletal effects, particularly in settings of hyperaldosteronism and 11β-HSD2 deficiency. In this review, we present historical and current scientific findings on the role of genomic MR signaling in bone and extra-skeletal tissues that may be involved in crosstalk with the skeletal system. Furthermore, we also highlight the availability of tools to study MR signaling in the context of the musculoskeletal system.

Humans

Structure and control of assembly of cytoplasmic microtubules in normal and transformed cells.

Indirect immunofluorescence analyses using antibodies directed against 6S tubulin have shown an elaborate cytoplasmic microtubule complex (CMTC) in nontransformed cells in culture. The CMTC is strikingly altered in cells that have been transformed spontaneously by viruses or by chemicals. Assembly of microtubules in vitro and in vivo is markedly inhibited in the presence of elevated levels of calcium. Alteration of the surface of normal cells by brief treatment with low concentrations of trypsin initiate a rapid breakdown of cytoplasmic microtubules. Finally, a hypothesis is presented relating microtubule assembly and surface membrane modulation suggesting that calcium is the primary modulating signal.

Antibodies

[Secretion of insulin. Hypotheses at present under discussion (author's transl)].

Proinsulin is dissociated into insulin and C-peptide in the Golgi zone and in the beta-granules which fulfil a storage and transport function at the same time. Through an active transport process involving the microtubular and microfilament cytoplasmic system, the granules arrive at the cell wall and there they are emiocytotically excreted. At a still completely unknown spot on this secretory route, control of the secretion rate by calcium ions and cAMP-dependent phosphorylation seems possible. Calcium and cAMP as signal transmitters are again subject to the positive and negative modulating receptor-transmitted effect of adrenergic and cholinergic transmitter substances and beta-cytotropic peptide hormones. The basis of every modulation of the secretory function, however, is a secretion signal dependent on the concentration of glucose itself and glucose metabolites (only one?) on the one hand, and on the other on the energy resulting from endoxidation of glucose in the form of high energy phosphates.

Animals

Birefringence signals and tension development in single frog muscle fibres at short stimulus intervals.

The early large birefringence signal and mechanical activity were studied together in isolated single fibres of frog skeletal muscle with double stimulation at short stimulus intervals (2-60 msec) at room temperature and at 4--6 degrees C. In all fibres tested, extra tension and additional birefringence signal in response to the second stimulus appeared simultaneously and suddenly upon increasing the stimulus interval. The shape of the stimulus-interval versus tension-development curve makes it highly improbable that subthreshold calcium release occurs at shorter stimulus intervals; therefore, tension development reliably reflects Ca-release in these experiments. In contrast to the report by Suarez-Kurtz and Partker, birefringence signal and calcium release are shown not to be dissociated by double stimulation. This result supports the hypothesis that the early large birefringence signal is an intrinsic indicator of calcium release from the sr during EC-coupling in skeletal muscle.

Animals

Nongenomic Stimulatory Effect of T3 on Calcium Dynamics in GnRH Neurons via Integrin αVβ3.

Many clinical studies have identified correlations between thyroid dysfunction and reproductive issues, yet the underlying mechanisms behind this interaction remain poorly understood. In this study, we investigated the effect of triiodothyronine (T3) on the activity of gonadotropin-releasing hormone (GnRH) neurons, a key regulator of the central reproductive axis. Dual labeling confirmed that GnRH neurons express thyroid receptor (TR)α and integrin αVβ3 receptors mediating genomic and nongenomic effects of thyroid hormones, respectively. Using calcium imaging in an ex vivo model, we show that T3 induces a rapid and sustained increase of calcium oscillation frequency in GnRH neurons. No change in response was detected after application of T4. The T3 stimulatory effect was not inhibited by a TR-specific antagonist (1-850) but was mimicked by membrane-impermeable T3-BSA, indicating a mechanism independent of nuclear TR signaling. In contrast, the blockade of membrane αVβ3 integrins (with cilengitide) prevented the T3-induced increase in GnRH neurons calcium peak oscillation frequency. Further investigation using modulators of intracellular calcium and calcium entry revealed that binding to αVβ3 integrin can induce distinct calcium responses depending on the ligand, with T3 triggering a complex response involving multiple channels and calcium sources, possibly with compensatory mechanisms. In sum, these results demonstrate for the first time a direct effect of thyroid hormones on GnRH neuronal activity, with T3 stimulating calcium oscillations through the nongenomic αVβ3 integrin pathway. Understanding this thyroid-reproductive axis interaction will help clarify the mechanisms linking thyroid dysfunction to reproductive disorders and pave the way for targeted therapeutic interventions.

Animals