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1.
Front Endocrinol (Lausanne) ; 14: 1283907, 2023.
Article in English | MEDLINE | ID: mdl-38033998

ABSTRACT

Objective: Congenital hyperinsulinism (CHI) is a group of clinically and genetically heterogeneous disorders characterized by dysregulated insulin secretion. The aim of the study was to elucidate genetic etiologies of Taiwanese children with the most severe diazoxide-unresponsive CHI and analyze their genotype-phenotype correlations. Methods: We combined Sanger with whole exome sequencing (WES) to analyze CHI-related genes. The allele frequency of the most common variant was estimated by single-nucleotide polymorphism haplotype analysis. The functional effects of the ATP-sensitive potassium (KATP) channel variants were assessed using patch clamp recording and Western blot. Results: Nine of 13 (69%) patients with ten different pathogenic variants (7 in ABCC8, 2 in KCNJ11 and 1 in GCK) were identified by the combined sequencing. The variant ABCC8 p.T1042QfsX75 identified in three probands was located in a specific haplotype. Functional study revealed the human SUR1 (hSUR1)-L366F KATP channels failed to respond to intracellular MgADP and diazoxide while hSUR1-R797Q and hSUR1-R1393C KATP channels were defective in trafficking. One patient had a de novo dominant mutation in the GCK gene (p.I211F), and WES revealed mosaicism of this variant from another patient. Conclusion: Pathogenic variants in KATP channels are the most common underlying cause of diazoxide-unresponsive CHI in the Taiwanese cohort. The p.T1042QfsX75 variant in the ABCC8 gene is highly suggestive of a founder effect. The I211F mutation in the GCK gene and three rare SUR1 variants associated with defective gating (p.L366F) or traffic (p.R797Q and p.R1393C) KATP channels are also associated with the diazoxide-unresponsive phenotype.


Subject(s)
Congenital Hyperinsulinism , Potassium Channels, Inwardly Rectifying , Humans , Child , Diazoxide/therapeutic use , Potassium Channels, Inwardly Rectifying/genetics , Sulfonylurea Receptors/genetics , Congenital Hyperinsulinism/drug therapy , Congenital Hyperinsulinism/genetics , Genetic Association Studies , Adenosine Triphosphate
2.
Front Endocrinol (Lausanne) ; 13: 916688, 2022.
Article in English | MEDLINE | ID: mdl-35837307

ABSTRACT

Extracellular pH has the potential to affect various aspects of the pancreatic beta cell function. To explain this effect, a number of mechanisms was proposed involving both extracellular and intracellular targets and pathways. Here, we focus on reassessing the influence of extracellular pH on glucose-dependent beta cell activation and collective activity in physiological conditions. To this end we employed mouse pancreatic tissue slices to perform high-temporally resolved functional imaging of cytosolic Ca2+ oscillations. We investigated the effect of either physiological H+ excess or depletion on the activation properties as well as on the collective activity of beta cell in an islet. Our results indicate that lowered pH invokes activation of a subset of beta cells in substimulatory glucose concentrations, enhances the average activity of beta cells, and alters the beta cell network properties in an islet. The enhanced average activity of beta cells was determined indirectly utilizing cytosolic Ca2+ imaging, while direct measuring of insulin secretion confirmed that this enhanced activity is accompanied by a higher insulin release. Furthermore, reduced functional connectivity and higher functional segregation at lower pH, both signs of a reduced intercellular communication, do not necessary result in an impaired insulin release.


Subject(s)
Insulin-Secreting Cells , Animals , Calcium/metabolism , Glucose/metabolism , Hydrogen-Ion Concentration , Insulin/metabolism , Insulin-Secreting Cells/metabolism , Mice
3.
J Biol Chem ; 298(6): 101998, 2022 06.
Article in English | MEDLINE | ID: mdl-35500647

ABSTRACT

Opening of two-pore domain K+ channels (K2Ps) is regulated by various external cues, such as pH, membrane tension, or temperature, which allosterically modulate the selectivity filter (SF) gate. However, how these cues cause conformational changes in the SF of some K2P channels remains unclear. Herein, we investigate the mechanisms by which extracellular pH affects gating in an alkaline-activated K2P channel, TALK1, using electrophysiology and molecular dynamics (MD) simulations. We show that R233, located at the N-terminal end of transmembrane segment 4, is the primary pHo sensor. This residue distally regulates the orientation of the carbonyl group at the S1 potassium-binding site through an interacting network composed of residues on transmembrane segment 4, the pore helix domain 1, and the SF. Moreover, in the presence of divalent cations, we found the acidic pH-activated R233E mutant recapitulates the network interactions of protonated R233. Intriguingly, our data further suggested stochastic coupling between R233 and the SF gate, which can be described by an allosteric gating model. We propose that this allosteric model could predict the hybrid pH sensitivity in heterodimeric channels with alkaline-activated and acidic-activated K2P subunits.


Subject(s)
Ion Channel Gating , Potassium Channels, Tandem Pore Domain , Hydrogen-Ion Concentration , Ion Channel Gating/physiology , Molecular Dynamics Simulation , Potassium Channels, Tandem Pore Domain/metabolism
4.
J Tradit Complement Med ; 6(4): 362-369, 2016 Oct.
Article in English | MEDLINE | ID: mdl-27774420

ABSTRACT

Centella asiatica ( léi gong gen) is a traditional medicinal herb with high antioxidant activity, which decreases amyloid-ß (Aß) deposition in the brain. At the same time, aggregated Aß-induced oxidative stress is the trigger in the pathogenesis of Alzheimer's disease (AD). Here, we investigated the ability of C. asiatica ethanol extract (CAE) to protect PC12 and IMR32 cells from Aß1-40-induced production of reactive oxygen species (ROS) and concomitant neurotoxicity. Aggregated Aß1-40 treatment resulted in reduced cell viability, which can be reversed by cotreatment with 25, 50, and 100 µg/mL CAE. Moreover, CAE eliminated the Aß1-40-mediated increase in ROS production. Thus, CAE-mediated protection against aggregated Aß1-40-induced neurotoxicity is attributable to modulation of the antioxidative defense system in cells, including the activities of superoxide dismutase, catalase, glutathione peroxidase, glutathione reductase, and levels of glutathione and glutathione disulfide by CAE. This emphasizes the potential therapeutic and preventive value of CAE in the treatment of AD.

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