Although phosphoinositide 3-kinase (PI3Kγ) null mice (PI3Kγ -/- ) show increased ventricular rate/contraction, it is unknown whether PI3Kγ regulates calcium recycling machinery underlying this phenotype. Primary adult cardiomyocytes from PI3Kγ -/- mice show altered sarcoendoplasmic reticulum (SR) calcium cycling following caffeine. Unexpectedly, PI3Kγ -/- cardiomyocytes showed significant reduction in phosphorylation of phospholamban (PLN) at Thr17, a key regulator of SR calcium re-uptake without changes in phosphorylation at Ser16. Furthermore, loss in PLN phosphorylation in PI3Kγ -/- cardiomyocytes was associated with augmented interaction with SR calcium ATPase (SERCA). Surprisingly, cardiomyocyte-specific overexpression of kinase-dead PI3Kγ (PI3Kγ inact ) in global PI3Kγ -/- mice (PI3Kγ inact /PI3Kγ -/- ) normalized caffeine-induced calcium re-uptake, PLN phosphorylation at Thr17 and decreased PLN-SERCA interaction. These data suggested kinase-independent function of PI3Kγ in regulation of SR calcium load and PLN phosphorylation. Since phosphorylation of Thr17 of PLN is carried out by Ca 2+ /Calmodulin dependent protein kinase (CamKII), we probed for the role of PI3Kγ in regulation of CamKII in PLN phosphorylation. Mechanistically, PI3Kγ exhibits scaffolding function in recruitment of CamKII to PLN at SR to mediate PLN phosphorylation. Furthermore, we showed that PI3Kγ directly interacts with CamKII. The study unravels a yet to be recognized kinase-independent role of PI3Kγ in regulating PLN with implications in cardiac function.
Allosteric modulation is a central mechanism for metabolic regulation but has yet to be described for a gut microbiota-host interaction. Phenylacetylglutamine (PAGln), a gut microbiota-derived metabolite, has previously been clinically associated with and mechanistically linked to cardiovascular disease (CVD) and heart failure (HF). Here, using cells expressing β1- versus β2-adrenergic receptors (β1AR and β2AR), PAGln is shown to act as a negative allosteric modulator (NAM) of β2AR, but not β1AR. In functional studies, PAGln is further shown to promote NAM effects in both isolated male mouse cardiomyocytes and failing human heart left ventricle muscle (contracting trabeculae). Finally, using in silico docking studies coupled with site-directed mutagenesis and functional analyses, we identified sites on β2AR (residues E122 and V206) that when mutated still confer responsiveness to canonical β2AR agonists but no longer show PAGln-elicited NAM activity. The present studies reveal the gut microbiota-obligate metabolite PAGln as an endogenous NAM of a host GPCR. Allosteric modulation is crucial in metabolic regulation but unexplored in gut microbehost interactions. Here the authors show gut microbe-derived phenylacetylglutamine acts as a negative allosteric modulator of β2-adrenergic receptors, impacting heart function.
Although phosphoinositide 3-kinase (PI3Kγ) null mice (PI3Kγ -/- ) show increased ventricular rate/contraction, it is unknown whether PI3Kγ regulates calcium recycling machinery underlying this phenotype. Primary adult cardiomyocytes from PI3Kγ -/- mice show reduced calcium reuptake by sarcoendoplasmic reticulum (SR) following caffeine. Unexpectedly, PI3Kγ -/- cardiomyocytes showed significant reduction in phosphorylation of phospholamban (PLN) at Thr17, a key regulator of SR calcium re-uptake. Furthermore, loss in PLN phosphorylation in PI3Kγ -/- cardiomyocytes was associated with augmented interaction with SR calcium ATPase (SERCA). Surprisingly, cardiomyocyte-specific overexpression of kinase-dead PI3Kγ (PI3Kγ inact ) in global PI3Kγ -/- mice (PI3Kγ inact /PI3Kγ -/- ) normalized caffeine-induced calcium re-uptake, PLN phosphorylation at Thr17 and decreased PLN-SERCA interaction. These data suggested kinase-independent function of PI3Kγ in regulation of SR calcium load and PLN phosphorylation. Since phosphorylation of Thr17 of PLN is carried out by Ca 2+ /Calmodulin dependent protein kinase (CamKII) we probed for the role of PI3Kγ in regulation of CamKII in PLN phosphorylation. Mechanistically, PI3Kγ exhibits scaffolding function in recruitment of CamKII to PLN at SR to mediate PLN phosphorylation. The study unravels a yet to be recognized kinase-independent role of PI3Kγ in regulating PLN with implications in cardiac function.
Insulin (INS) treatment results in impaired response to β-agonist isoproterenol (ISO) associated with phosphorylated β2-adrenergic receptor (β2AR) and impaired cAMP response. Although INS does not mediate dissociation of G-protein Gβγ subunits, yet surprisingly recruits phosphoinositide 3-kinase γ (PI3Kγ) to the plasma membrane. Correspondingly, knock-down of PI3Kγ (PI3Kγ KD) in HEK 293 or ablation in primary adult cardiomyocytes and fibroblasts (isolated from PI3Kγ knockout mice) abrogated β2AR phosphorylation reflecting a key role for PI3Kγ in retaining β2AR phosphorylation. Also, adult cardiomyocytes isolated from C57Bl6 mice showed significant loss of in vitro ISO-stimulated cardiomyocyte contraction upon INS pre-treatment which was remarkably preserved in the PI3Kγ knockout cardiomyocytes despite INS. As PI3Kγ is traditionally recruited to the βAR complex by the Gβγ subunits, we hypothesized that INS-mediates Gβγ-independent recruitment of PI3Kγ to the βAR complex underlying its dysfunction. INS stimulation is known to recruit insulin receptor substrate (IRS 1 & 2) to the receptor complex, and therefore, we tested whether PI3Kγ interacts with IRS 1/2 leading to Gβγ-independent recruitment of PI3Kγ to the β2AR complex. Immunoprecipitation PI3Kγ following INS showed that PI3Kγ interacts with IRS2 recruiting PI3Kγ to the β2AR complex bypassing the traditional Gβγ-dependent pathway. Since PI3Kγ KD resulted in loss of INS-mediated β2AR phosphorylation, we tested whether PI3Kγ inhibits protein phosphatase 2A (PP2A) function impairing β2AR de-phosphorylation. INS treatment resulted in significant loss of β2AR-associated PP2A activity which was rescued in PI3Kγ KD cells showing that PI3Kγ impairs PP2A function. Furthermore, our studies show that PI3Kγ phosphorylates the endogenous inhibitor of PP2A, I2PP2A which then robustly binds and inhibits PP2A activity impairing β2AR dephosphorylation. Consistently, CRISPR ablation of I2PP2A relieves this inhibition on PP2A leading to increased PP2A activity. This reduces accumulation of phosphorylated βARs despite the presence of PI3Kγ showing an underappreciated regulation of PP2A by insulin through non-canonical recruitment of PI3Kγ that impairs β2AR function.
Introduction: SYNE2 encodes a nuclear membrane protein that connects the nucleus with the cytoskeleton. rs1152591 is a common SNP in the SYNE2 gene that is associated with atrial fibrillation (AF) and with reduced expression of SYNE2α1 , a short isoform, in human left atrial appendage tissue. We previously found that SYNE2α1 over expression (OE) acts as a dominant negative for the nuclear phenotype, similar to the SYNE2 knockdown (KD), leading to enlarged nuclear size and decreased nuclear stiffness. Objectives: To determine if GFP- SYNE2α1 (OE) and KD of all SYNE2 isoforms show similar effects on gene expression and cell physiology in human induced pluripotent stem cell-derived cardiomyocytes (iCMs). Methods and Results: RNAseq after SYNE2α1 OE or SYNE2 KD revealed both congruent changes in expression of specific genes, supporting the dominant negative role of SYNE2α1 , but also divergent changes in expression of some genes, showing specific effects of the SYNE2α1 short isoform. We identified both mitochondrial function and sarcoplasmic reticulum (SR) function as differentially expressed pathways comparing OE vs. KD iCMs. Fura-2 photometry was used to study Ca 2+ cycling in beating iCMs, and revealed delayed calcium reuptake in the SYNE2 KD cells (15.9% increase in reuptake time as % of each contraction, p<0.0001), but not in the GFP- SYNE2α1 OE cells (not significant). Flow cytometry showed significantly lower SERCA2 expression in the SYNE2 KD cells but not in the SYNE2α1 OE cells (12% decrease, p=0.029). Immunofluorescence microscopy revealed that GFP-SYNE2α1 not only localized to the nuclear membrane but also to the SR, stained with anti-SERCA2. Flow cytometry after MitoTracker Orange staining, to monitor the cellular volume of functional mitochondria, was significantly increased in both the SYNE2α1 OE and SYNE2 KD iCMs vs. their respective controls. Thus, despite differential expression of mitochondrial pathway genes, SYNE2α1 mimics the KD of all SYNE2 isoforms in regard to mitochondrial function. Conclusions: SYNE2α1 OE, unlike KD of all SYNE2 isoforms, preserves SR Ca 2+ reuptake activity, and this may contribute to the mechanism by which the AF risk allele in the SYNE2 gene, associated with decreased expression of SYNE2α1, predisposes carriers to AF.
Insulin impairs β2-adrenergic receptor (β2AR) function through G protein-coupled receptor kinase 2 (GRK2) by phosphorylation but less is known about dephosphorylation mechanisms mediated by protein phosphatase 2A (PP2A). Pharmacologic or genetic inhibition of phosphoinositide 3-kinase γ (PI3Kγ) unexpectedly resulted in significant reduction of insulin-mediated β2AR phosphorylation. Interestingly, β2AR-associated phosphatase activity was inhibited by insulin but was reversed by knock-down of PI3Kγ showing negative regulation of PP2A by PI3Kγ. Co-immunoprecipitation and surface plasmon resonance studies using purified proteins showed that GRK2 and PI3Kγ form a complex and could be recruited to β2ARs as GRK2 interacts with insulin receptor substrate following insulin treatment. Consistently, β-blocker pretreatment did not reduce insulin-mediated β2AR phosphorylation indicating agonist- and Gβγ-independent non-canonical regulation of receptor function. Mechanistically, PI3Kγ inhibits PP2A activity at the βAR complex by phosphorylating an intracellular inhibitor of PP2A (I2PP2A). Knock-down or CRISPR ablation of endogenous I2PP2A unlocked PP2A inhibition mediating β2AR dephosphorylation showing an unappreciated acute regulation of PP2A in mediating insulin-β2AR cross-talk. Summary Insulin impairs β2-adrenergic receptor (β2AR) function through G protein-coupled receptor kinase 2 (GRK2). We show that insulin simultaneously inhibits protein phosphatase 2A (PP2A) sustaining β2AR functional impairment. Unexpectedly, releasing PP2A inhibition by PI3Kγ preserves β2AR function despite intact insulin-driven GRK2-mechanisms. ### Competing Interest Statement The authors have declared no competing interest.
Tissue microarchitecture and mechanics are important in development and pathologies of the Central Nervous System (CNS); however, their coordinating mechanisms are unclear. Here, we report that during colonization of the retina, microglia contacts the deep layer of high stiffness, which coincides with microglial bipolarization, reduction in TGFβ1 signaling and termination of vascular growth. Likewise, stiff substrates induce microglial bipolarization and diminish TGFβ1 expression in hydrogels. Both microglial bipolarization in vivo and the responses to stiff substrates in vitro require intracellular adaptor Kindlin3 but not microglial integrins. Lack of Kindlin3 causes high microglial contractility, dysregulation of ERK signaling, excessive TGFβ1 expression and abnormally-patterned vasculature with severe malformations in the area of photoreceptors. Both excessive TGFβ1 signaling and vascular defects caused by Kindlin3-deficient microglia are rescued by either microglial depletion or microglial knockout of TGFβ1 in vivo. This mechanism underlies an interplay between microglia, vascular patterning and tissue mechanics within the CNS.