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1.
JCI Insight ; 9(10)2024 May 22.
Article En | MEDLINE | ID: mdl-38775154

MAPK activating death domain (MADD) is a multifunctional protein regulating small GTPases RAB3 and RAB27, MAPK signaling, and cell survival. Polymorphisms in the MADD locus are associated with glycemic traits, but patients with biallelic variants in MADD manifest a complex syndrome affecting nervous, endocrine, exocrine, and hematological systems. We identified a homozygous splice site variant in MADD in 2 siblings with developmental delay, diabetes, congenital hypogonadotropic hypogonadism, and growth hormone deficiency. This variant led to skipping of exon 30 and in-frame deletion of 36 amino acids. To elucidate how this mutation causes pleiotropic endocrine phenotypes, we generated relevant cellular models with deletion of MADD exon 30 (dex30). We observed reduced numbers of ß cells, decreased insulin content, and increased proinsulin-to-insulin ratio in dex30 human embryonic stem cell-derived pancreatic islets. Concordantly, dex30 led to decreased insulin expression in human ß cell line EndoC-ßH1. Furthermore, dex30 resulted in decreased luteinizing hormone expression in mouse pituitary gonadotrope cell line LßT2 but did not affect ontogeny of stem cell-derived GnRH neurons. Protein-protein interactions of wild-type and dex30 MADD revealed changes affecting multiple signaling pathways, while the GDP/GTP exchange activity of dex30 MADD remained intact. Our results suggest MADD-specific processes regulate hormone expression in pancreatic ß cells and pituitary gonadotropes.


Insulin-Secreting Cells , Insulin-Secreting Cells/metabolism , Humans , Animals , Mice , Male , Gonadotrophs/metabolism , Female , RNA Splice Sites/genetics , Cell Line , Insulin/metabolism , Siblings , Exons/genetics , rab3 GTP-Binding Proteins/metabolism , rab3 GTP-Binding Proteins/genetics , Hypogonadism/genetics , Hypogonadism/metabolism , Hypogonadism/pathology
2.
PLoS Comput Biol ; 20(5): e1012130, 2024 May.
Article En | MEDLINE | ID: mdl-38739680

Within the islets of Langerhans, beta cells orchestrate synchronized insulin secretion, a pivotal aspect of metabolic homeostasis. Despite the inherent heterogeneity and multimodal activity of individual cells, intercellular coupling acts as a homogenizing force, enabling coordinated responses through the propagation of intercellular waves. Disruptions in this coordination are implicated in irregular insulin secretion, a hallmark of diabetes. Recently, innovative approaches, such as integrating multicellular calcium imaging with network analysis, have emerged for a quantitative assessment of the cellular activity in islets. However, different groups use distinct experimental preparations, microscopic techniques, apply different methods to process the measured signals and use various methods to derive functional connectivity patterns. This makes comparisons between findings and their integration into a bigger picture difficult and has led to disputes in functional connectivity interpretations. To address these issues, we present here a systematic analysis of how different approaches influence the network representation of islet activity. Our findings show that the choice of methods used to construct networks is not crucial, although care is needed when combining data from different islets. Conversely, the conclusions drawn from network analysis can be heavily affected by the pre-processing of the time series, the type of the oscillatory component in the signals, and by the experimental preparation. Our tutorial-like investigation aims to resolve interpretational issues, reconcile conflicting views, advance functional implications, and encourage researchers to adopt connectivity analysis. As we conclude, we outline challenges for future research, emphasizing the broader applicability of our conclusions to other tissues exhibiting complex multicellular dynamics.


Islets of Langerhans , Islets of Langerhans/physiology , Islets of Langerhans/metabolism , Islets of Langerhans/cytology , Animals , Computational Biology/methods , Mice , Insulin/metabolism , Humans , Insulin-Secreting Cells/physiology , Insulin-Secreting Cells/metabolism , Insulin-Secreting Cells/cytology , Insulin Secretion/physiology , Models, Biological , Calcium/metabolism , Calcium Signaling/physiology
3.
Front Endocrinol (Lausanne) ; 15: 1388361, 2024.
Article En | MEDLINE | ID: mdl-38745946

Introduction: The pathogenesis of Post-Transplant Diabetes Mellitus (PTDM) is complex and multifactorial and it resembles that of Type-2 Diabetes Mellitus (T2DM). One risk factor specific to PTDM differentiates both entities: the use of immunosuppressive therapy. Specifically, Tacrolimus interacts with obesity and insulin resistance (IR) in accelerating the onset of PTDM. In a genotypic model of IR, the obese Zucker rats, Tacrolimus is highly diabetogenic by promoting the same changes in beta-cell already modified by IR. Nevertheless, genotypic animal models have their limitations and may not resemble the real pathophysiology of diabetes. In this study, we have evaluated the interaction between beta-cell damage and Tacrolimus in a non-genotypic animal model of obesity and metabolic syndrome. Methods: Sprague Dawley rats were fed a high-fat enriched diet during 45 days to induce obesity and metabolic dysregulation. On top of this established obesity, the administration of Tacrolimus (1mg/kg/day) during 15 days induced severe hyperglycaemia and changes in morphological and structural characteristics of the pancreas. Results: Obese animals administered with Tacrolimus showed increased size of islets of Langerhans and reduced beta-cell proliferation without changes in apoptosis. There were also changes in beta-cell nuclear factors such as a decrease in nuclear expression of MafA and a nuclear overexpression of FoxO1A, PDX-1 and NeuroD1. These animals also showed increased levels of pancreatic insulin and glucagon. Discussion: This model could be evidence of the relationship between the T2DM and PTDM physiopathology and, eventually, the model may be instrumental to study the pathogenesis of T2DM.


Disease Models, Animal , Metabolic Syndrome , Obesity , Rats, Sprague-Dawley , Tacrolimus , Animals , Tacrolimus/pharmacology , Metabolic Syndrome/metabolism , Metabolic Syndrome/pathology , Metabolic Syndrome/chemically induced , Obesity/metabolism , Obesity/pathology , Rats , Male , Immunosuppressive Agents/adverse effects , Immunosuppressive Agents/pharmacology , Insulin-Secreting Cells/metabolism , Insulin-Secreting Cells/pathology , Insulin-Secreting Cells/drug effects , Phenotype , Diabetes Mellitus, Type 2/metabolism , Diabetes Mellitus, Type 2/pathology , Diabetes Mellitus, Experimental/pathology , Diabetes Mellitus, Experimental/metabolism , Insulin Resistance , Diet, High-Fat/adverse effects
4.
Sci Adv ; 10(20): eadn2136, 2024 May 17.
Article En | MEDLINE | ID: mdl-38758799

Monocytes are immune regulators implicated in the pathogenesis of type 1 diabetes (T1D), an autoimmune disease that targets insulin-producing pancreatic ß cells. We determined that monocytes of recent onset (RO) T1D patients and their healthy siblings express proinflammatory/cytolytic transcriptomes and hypersecrete cytokines in response to lipopolysaccharide exposure compared to unrelated healthy controls (uHCs). Flow cytometry measured elevated circulating abundances of intermediate monocytes and >2-fold more CD14+CD16+HLADR+KLRD1+PRF1+ NK-like monocytes among patients with ROT1D compared to uHC. The intermediate to nonclassical monocyte ratio among ROT1D patients correlated with the decline in functional ß cell mass during the first 24 months after onset. Among sibling nonprogressors, temporal decreases were measured in the intermediate to nonclassical monocyte ratio and NK-like monocyte abundances; these changes coincided with increases in activated regulatory T cells. In contrast, these monocyte populations exhibited stability among T1D progressors. This study associates heightened monocyte proinflammatory/cytolytic activity with T1D susceptibility and progression and offers insight to the age-dependent decline in T1D susceptibility.


Diabetes Mellitus, Type 1 , Disease Progression , Monocytes , Humans , Diabetes Mellitus, Type 1/immunology , Diabetes Mellitus, Type 1/pathology , Diabetes Mellitus, Type 1/metabolism , Diabetes Mellitus, Type 1/genetics , Monocytes/metabolism , Monocytes/immunology , Male , Female , Adolescent , Child , Adult , Cytokines/metabolism , Insulin-Secreting Cells/metabolism , Insulin-Secreting Cells/pathology , Killer Cells, Natural/immunology , Killer Cells, Natural/metabolism , Young Adult , Case-Control Studies
5.
J Cell Mol Med ; 28(9): e18141, 2024 May.
Article En | MEDLINE | ID: mdl-38742851

Type 2 diabetes mellitus (T2D) and osteoporosis (OP) are systemic metabolic diseases and often coexist. The mechanism underlying this interrelationship remains unclear. We downloaded microarray data for T2D and OP from the Gene Expression Omnibus (GEO) database. Using weighted gene co-expression network analysis (WGCNA), we identified co-expression modules linked to both T2D and OP. To further investigate the functional implications of these associated genes, we evaluated enrichment using ClueGO software. Additionally, we performed a biological process analysis of the genes unique in T2D and OP. We constructed a comprehensive miRNA-mRNA network by incorporating target genes and overlapping genes from the shared pool. Through the implementation of WGCNA, we successfully identified four modules that propose a plausible model that elucidates the disease pathway based on the associated and distinct gene profiles of T2D and OP. The miRNA-mRNA network analysis revealed co-expression of PDIA6 and SLC16A1; their expression was upregulated in patients with T2D and islet ß-cell lines. Remarkably, PDIA6 and SLC16A1 were observed to inhibit the proliferation of pancreatic ß cells and promote apoptosis in vitro, while downregulation of PDIA6 and SLC16A1 expression led to enhanced insulin secretion. This is the first study to reveal the significant roles of PDIA6 and SLC16A1 in the pathogenesis of T2D and OP, thereby identifying additional genes that hold potential as indicators or targets for therapy.


Diabetes Mellitus, Type 2 , Gene Expression Profiling , Gene Regulatory Networks , MicroRNAs , Osteoporosis , Diabetes Mellitus, Type 2/genetics , Diabetes Mellitus, Type 2/metabolism , Humans , Osteoporosis/genetics , Osteoporosis/metabolism , MicroRNAs/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , Gene Expression Regulation , Apoptosis/genetics , Transcriptome/genetics , Cell Proliferation/genetics , Insulin-Secreting Cells/metabolism , Insulin-Secreting Cells/pathology , Insulin/metabolism
6.
J Diabetes ; 16(6): e13557, 2024 Jun.
Article En | MEDLINE | ID: mdl-38751366

Diabetes mellitus (DM) is a common chronic disease affecting humans globally. It is characterized by abnormally elevated blood glucose levels due to the failure of insulin production or reduction of insulin sensitivity and functionality. Insulin and glucagon-like peptide (GLP)-1 replenishment or improvement of insulin resistance are the two major strategies to treat diabetes. Recently, optogenetics that uses genetically encoded light-sensitive proteins to precisely control cell functions has been regarded as a novel therapeutic strategy for diabetes. Here, we summarize the latest development of optogenetics and its integration with synthetic biology approaches to produce light-responsive cells for insulin/GLP-1 production, amelioration of insulin resistance and neuromodulation of insulin secretion. In addition, we introduce the development of cell encapsulation and delivery methods and smart bioelectronic devices for the in vivo application of optogenetics-based cell therapy in diabetes. The remaining challenges for optogenetics-based cell therapy in the clinical translational study are also discussed.


Diabetes Mellitus , Optogenetics , Humans , Optogenetics/methods , Diabetes Mellitus/therapy , Animals , Insulin/metabolism , Insulin Resistance , Glucagon-Like Peptide 1 , Cell- and Tissue-Based Therapy/methods , Insulin-Secreting Cells/metabolism
7.
Int J Mol Sci ; 25(9)2024 Apr 26.
Article En | MEDLINE | ID: mdl-38731926

The escalating prevalence of diabetes mellitus underscores the need for a comprehensive understanding of pancreatic beta cell function. Interest in glucose effectiveness has prompted the exploration of novel regulatory factors. The myeloid/lymphoid or mixed-lineage leukaemia gene (MLL) is widely recognised for its role in leukemogenesis and nuclear regulatory mechanisms through its histone methyltransferase activity in active chromatin. However, its function within pancreatic endocrine tissues remains elusive. Herein, we unveil a novel role of MLL in glucose metabolism and insulin secretion. MLL knockdown in ßHC-9 pancreatic beta cells diminished insulin secretion in response to glucose loading, paralleled by the downregulation of the glucose-sensitive genes SLC2a1 and SLC2a2. Similar observations were made in MLL heterozygous knockout mice (MLL+/-), which exhibited impaired glucose tolerance and reduced insulin secretion without morphological anomalies in pancreatic endocrine cells. The reduction in insulin secretion was independent of changes in beta cell mass or insulin granule morphology, suggesting the regulatory role of MLL in glucose-sensitive gene expression. The current results suggest that MLL interacts with circadian-related complexes to modulate the expression of glucose transporter genes, thereby regulating glucose sensing and insulin secretion. Our findings shed light on insulin secretion control, providing potential avenues for therapeutics against diabetes.


Glucose Transporter Type 2 , Glucose , Histone-Lysine N-Methyltransferase , Insulin Secretion , Insulin-Secreting Cells , Myeloid-Lymphoid Leukemia Protein , Animals , Insulin-Secreting Cells/metabolism , Glucose/metabolism , Mice , Myeloid-Lymphoid Leukemia Protein/metabolism , Myeloid-Lymphoid Leukemia Protein/genetics , Histone-Lysine N-Methyltransferase/metabolism , Histone-Lysine N-Methyltransferase/genetics , Glucose Transporter Type 2/metabolism , Glucose Transporter Type 2/genetics , Gene Expression Regulation , Mice, Knockout , Insulin/metabolism , Glucose Transporter Type 1/metabolism , Glucose Transporter Type 1/genetics , Cell Line , Male
8.
J Diabetes Complications ; 38(6): 108764, 2024 Jun.
Article En | MEDLINE | ID: mdl-38701667

OBJECTIVE: Dysglycemia is a significant risk factor for cognitive impairment. However, which pathophysiologic determinant(s) of dysglycemia, impaired insulin sensitivity (ISens) or the islet ß-cell's response (IResp), contribute to poorer cognitive function, independent of dysglycemia is not established. Among 1052 adults with pre-diabetes from the Diabetes Prevention Program Outcomes Study (DPPOS), we investigated the relationship between IResp, ISens and cognitive function. RESEARCH DESIGN AND METHODS: IResp was estimated by the insulinogenic index (IGI; pmol/mmol) and ISens as 1/fasting insulin from repeated annual oral glucose tolerance tests. The mean IResp and mean ISens were calculated over approximately 12 years of follow-up. Verbal learning (Spanish-English Verbal Learning Test [SEVLT]) and executive function (Digital Symbol Substitution Test [DSST]) were assessed at the end of the follow-up period. Linear regression models were run for each cognitive outcome and were adjusted for dysglycemia and other factors. RESULTS: Higher IResp was associated with poorer performance on the DSST (-0.69 points per 100 unit increase in IGI, 95 % CI: -1.37, -0.01). ISens was not associated with DSST, nor were IResp or ISens associated with performance on the SEVLT. CONCLUSIONS: These results suggest that a greater ß-cell response in people at high risk for type 2 diabetes is associated with poorer executive function, independent of dysglycemia and ISens.


Diabetes Mellitus, Type 2 , Insulin Resistance , Insulin , Prediabetic State , Humans , Prediabetic State/psychology , Prediabetic State/complications , Prediabetic State/blood , Prediabetic State/epidemiology , Male , Female , Middle Aged , Adult , Insulin/blood , Diabetes Mellitus, Type 2/complications , Diabetes Mellitus, Type 2/epidemiology , Diabetes Mellitus, Type 2/psychology , Diabetes Mellitus, Type 2/blood , Diabetes Mellitus, Type 2/prevention & control , Cognition/physiology , Glucose Tolerance Test , Insulin-Secreting Cells/physiology , Insulin-Secreting Cells/metabolism , Follow-Up Studies , Cognition Disorders/prevention & control , Cognition Disorders/etiology , Cognition Disorders/epidemiology , Cognition Disorders/blood , Aged , Executive Function/physiology
9.
Life Sci ; 348: 122717, 2024 Jul 01.
Article En | MEDLINE | ID: mdl-38744419

The loss or dysfunction of pancreatic ß-cells, which are responsible for insulin secretion, constitutes the foundation of all forms of diabetes, a widely prevalent disease worldwide. The replacement of damaged ß-cells with regenerated or transplanted cells derived from stem cells is a promising therapeutic strategy. However, inducing the differentiation of stem cells into fully functional glucose-responsive ß-cells in vitro has proven to be challenging. Noncoding RNAs (ncRNAs) have emerged as critical regulatory factors governing the differentiation, identity, and function of ß-cells. Furthermore, engineered hydrogel systems, biomaterials, and organ-like structures possess engineering characteristics that can provide a three-dimensional (3D) microenvironment that supports stem cell differentiation. This review summarizes the roles and contributions of ncRNAs in maintaining the differentiation, identity, and function of ß-cells. And it focuses on regulating the levels of ncRNAs in stem cells to activate ß-cell genetic programs for generating alternative ß-cells and discusses how to manipulate ncRNA expression by combining hydrogel systems and other tissue engineering materials. Elucidating the patterns of ncRNA-mediated regulation in ß-cell biology and utilizing this knowledge to control stem cell differentiation may offer promising therapeutic strategies for generating functional insulin-producing cells in diabetes cell replacement therapy and tissue engineering.


Cell Differentiation , Insulin-Secreting Cells , RNA, Untranslated , Tissue Engineering , Insulin-Secreting Cells/metabolism , Tissue Engineering/methods , Humans , RNA, Untranslated/genetics , Animals , Cell Differentiation/genetics , Stem Cells/metabolism , Stem Cells/cytology , Diabetes Mellitus/metabolism , Diabetes Mellitus/genetics , Diabetes Mellitus/therapy , Hydrogels
10.
Pediatr Diabetes ; 20242024.
Article En | MEDLINE | ID: mdl-38765897

Background: A-ß+ ketosis-prone diabetes (KPD) in adults is characterized by presentation with diabetic ketoacidosis (DKA), negative islet autoantibodies, and preserved ß-cell function in persons with a phenotype of obesity-associated type 2 diabetes (T2D). The prevalence of KPD has not been evaluated in children. We investigated children with DKA at "T2D" onset and determined the prevalence and characteristics of pediatric A-ß+ KPD within this cohort. Methods: We reviewed the records of 716 children with T2D at a large academic hospital and compared clinical characteristics of those with and without DKA at onset. In the latter group, we identified patients with A-ß+ KPD using criteria of the Rare and Atypical Diabetes Network (RADIANT) and defined its prevalence and characteristics. Results: Mean age at diagnosis was 13.7 ± 2.4 years: 63% female; 59% Hispanic, 29% African American, 9% non-Hispanic White, and 3% other. Fifty-six (7.8%) presented with DKA at diagnosis and lacked islet autoantibodies. Children presenting with DKA were older and had lower C-peptide and higher glucose concentrations than those without DKA. Twenty-five children with DKA (45%) met RADIANT A-ß+ KPD criteria. They were predominantly male (64%), African American or Hispanic (96%), with substantial C-peptide (1.3 ± 0.7 ng/mL) at presentation with DKA and excellent long-term glycemic control (HbA1c 6.6% ± 1.9% at follow-up (median 1.3 years postdiagnosis)). Conclusions: In children with a clinical phenotype of T2D and DKA at diagnosis, approximately half meet criteria for A-ß+ KPD. They manifest the key characteristics of obesity, preserved ß-cell function, male predominance, and potential to discontinue insulin therapy, similar to adults with A-ß+ KPD.


Diabetes Mellitus, Type 2 , Diabetic Ketoacidosis , Humans , Female , Male , Diabetic Ketoacidosis/epidemiology , Diabetic Ketoacidosis/diagnosis , Diabetic Ketoacidosis/etiology , Child , Diabetes Mellitus, Type 2/epidemiology , Diabetes Mellitus, Type 2/complications , Diabetes Mellitus, Type 2/blood , Diabetes Mellitus, Type 2/diagnosis , Adolescent , Prevalence , Insulin-Secreting Cells/immunology , Insulin-Secreting Cells/physiology , Insulin-Secreting Cells/metabolism , Retrospective Studies
11.
Nat Commun ; 15(1): 3740, 2024 May 03.
Article En | MEDLINE | ID: mdl-38702347

Insufficient functional ß-cell mass causes diabetes; however, an effective cell replacement therapy for curing diabetes is currently not available. Reprogramming of acinar cells toward functional insulin-producing cells would offer an abundant and autologous source of insulin-producing cells. Our lineage tracing studies along with transcriptomic characterization demonstrate that treatment of adult mice with a small molecule that specifically inhibits kinase activity of focal adhesion kinase results in trans-differentiation of a subset of peri-islet acinar cells into insulin producing ß-like cells. The acinar-derived insulin-producing cells infiltrate the pre-existing endocrine islets, partially restore ß-cell mass, and significantly improve glucose homeostasis in diabetic mice. These findings provide evidence that inhibition of the kinase activity of focal adhesion kinase can convert acinar cells into insulin-producing cells and could offer a promising strategy for treating diabetes.


Acinar Cells , Diabetes Mellitus, Experimental , Insulin-Secreting Cells , Animals , Insulin-Secreting Cells/metabolism , Mice , Acinar Cells/metabolism , Male , Insulin/metabolism , Cell Transdifferentiation , Focal Adhesion Protein-Tyrosine Kinases/metabolism , Focal Adhesion Protein-Tyrosine Kinases/antagonists & inhibitors , Mice, Inbred C57BL , Protein Kinase Inhibitors/pharmacology , Islets of Langerhans/metabolism
12.
Int J Mol Sci ; 25(9)2024 Apr 26.
Article En | MEDLINE | ID: mdl-38731945

The main hallmark in the development of both type 1 and type 2 diabetes is a decline in functional ß-cell mass. This decline is predominantly attributed to ß-cell death, although recent findings suggest that the loss of ß-cell identity may also contribute to ß-cell dysfunction. This phenomenon is characterized by a reduced expression of key markers associated with ß-cell identity. This review delves into the insights gained from single-cell omics research specifically focused on ß-cell identity. It highlights how single-cell omics based studies have uncovered an unexpected level of heterogeneity among ß-cells and have facilitated the identification of distinct ß-cell subpopulations through the discovery of cell surface markers, transcriptional regulators, the upregulation of stress-related genes, and alterations in chromatin activity. Furthermore, specific subsets of ß-cells have been identified in diabetes, such as displaying an immature, dedifferentiated gene signature, expressing significantly lower insulin mRNA levels, and expressing increased ß-cell precursor markers. Additionally, single-cell omics has increased insight into the detrimental effects of diabetes-associated conditions, including endoplasmic reticulum stress, oxidative stress, and inflammation, on ß-cell identity. Lastly, this review outlines the factors that may influence the identification of ß-cell subpopulations when designing and performing a single-cell omics experiment.


Insulin-Secreting Cells , Single-Cell Analysis , Insulin-Secreting Cells/metabolism , Humans , Single-Cell Analysis/methods , Animals , Genomics/methods , Endoplasmic Reticulum Stress/genetics , Diabetes Mellitus, Type 2/metabolism , Diabetes Mellitus, Type 2/genetics , Diabetes Mellitus, Type 2/pathology
13.
Biol Res ; 57(1): 20, 2024 May 02.
Article En | MEDLINE | ID: mdl-38698488

BACKGROUND: Diabetes mellitus (DM) is a global epidemic with increasing incidences. DM is a metabolic disease associated with chronic hyperglycemia. Aside from conventional treatments, there is no clinically approved cure for DM up till now. Differentiating mesenchymal stem cells (MSCs) into insulin-producing cells (IPCs) is a promising approach for curing DM. Our study was conducted to investigate the effect of DM on MSCs differentiation into IPCs in vivo and in vitro. METHODS: We isolated adipose-derived mesenchymal stem cells (Ad-MSCs) from the epididymal fat of normal and STZ-induced diabetic Sprague-Dawley male rats. Afterwards, the in vitro differentiation of normal-Ad-MSCs (N-Ad-MSCs) and diabetic-Ad-MSCs (DM-Ad-MSCs) into IPCs was compared morphologically then through determining the gene expression of ß-cell markers including neurogenin-3 (Ngn-3), homeobox protein (Nkx6.1), musculoaponeurotic fibrosarcoma oncogene homolog A (MafA), and insulin-1 (Ins-1) and eventually, through performing glucose-stimulated insulin secretion test (GSIS). Finally, the therapeutic potential of N-Ad-MSCs and DM-Ad-MSCs transplantation was compared in vivo in STZ-induced diabetic animals. RESULTS: Our results showed no significant difference in the characteristics of N-Ad-MSCs and DM-Ad-MSCs. However, we demonstrated a significant difference in their abilities to differentiate into IPCs in vitro morphologically in addition to ß-cell markers expression, and functional assessment via GSIS test. Furthermore, the abilities of both Ad-MSCs to control hyperglycemia in diabetic rats in vivo was assessed through measuring fasting blood glucose (FBGs), body weight (BW), histopathological examination of both pancreas and liver and immunoexpression of insulin in pancreata of study groups. CONCLUSION: Our findings reveal the effectiveness of N-Ad-MSCs in differentiating into IPCs in vitro and controlling the hyperglycemia of STZ-induced diabetic rats in vivo compared to DM-Ad-MSCs.


Cell Differentiation , Diabetes Mellitus, Experimental , Insulin-Secreting Cells , Insulin , Mesenchymal Stem Cells , Rats, Sprague-Dawley , Animals , Cell Differentiation/physiology , Diabetes Mellitus, Experimental/therapy , Male , Insulin-Secreting Cells/metabolism , Insulin/metabolism , Rats , Mesenchymal Stem Cell Transplantation/methods , Cells, Cultured , Streptozocin , Blood Glucose/analysis
14.
Cells ; 13(10)2024 May 18.
Article En | MEDLINE | ID: mdl-38786091

The dysfunction of α and ß cells in pancreatic islets can lead to diabetes. Many questions remain on the subcellular organization of islet cells during the progression of disease. Existing three-dimensional cellular mapping approaches face challenges such as time-intensive sample sectioning and subjective cellular identification. To address these challenges, we have developed a subcellular feature-based classification approach, which allows us to identify α and ß cells and quantify their subcellular structural characteristics using soft X-ray tomography (SXT). We observed significant differences in whole-cell morphological and organelle statistics between the two cell types. Additionally, we characterize subtle biophysical differences between individual insulin and glucagon vesicles by analyzing vesicle size and molecular density distributions, which were not previously possible using other methods. These sub-vesicular parameters enable us to predict cell types systematically using supervised machine learning. We also visualize distinct vesicle and cell subtypes using Uniform Manifold Approximation and Projection (UMAP) embeddings, which provides us with an innovative approach to explore structural heterogeneity in islet cells. This methodology presents an innovative approach for tracking biologically meaningful heterogeneity in cells that can be applied to any cellular system.


Glucagon-Secreting Cells , Insulin-Secreting Cells , Insulin-Secreting Cells/metabolism , Glucagon-Secreting Cells/metabolism , Animals , Tomography, X-Ray/methods , Mice , Humans , Insulin/metabolism
15.
PLoS One ; 19(5): e0287877, 2024.
Article En | MEDLINE | ID: mdl-38787820

Type 1 diabetes (T1D) is characterized by HLA class I-mediated presentation of autoantigens on the surface of pancreatic ß-cells. Recognition of these autoantigens by CD8+ T cells results in the destruction of pancreatic ß-cells and, consequently, insulin deficiency. Most epitopes presented at the surface of ß-cells derive from the insulin precursor molecule proinsulin. The intracellular processing pathway(s) involved in the generation of these peptides are poorly defined. In this study, we show that a proinsulin B-chain antigen (PPIB5-14) originates from proinsulin molecules that are processed by ER-associated protein degradation (ERAD) and thus originate from ER-resident proteins. Furthermore, screening genes encoding for E2 ubiquitin conjugating enzymes, we identified UBE2G2 to be involved in proinsulin degradation and subsequent presentation of the PPIB10-18 autoantigen. These insights into the pathway involved in the generation of insulin-derived peptides emphasize the importance of proinsulin processing in the ER to T1D pathogenesis and identify novel targets for future T1D therapies.


Autoantigens , Endoplasmic Reticulum-Associated Degradation , Proinsulin , Proteolysis , Ubiquitin-Conjugating Enzymes , Proinsulin/metabolism , Proinsulin/immunology , Proinsulin/genetics , Autoantigens/metabolism , Autoantigens/immunology , Humans , Ubiquitin-Conjugating Enzymes/metabolism , Ubiquitin-Conjugating Enzymes/genetics , Diabetes Mellitus, Type 1/immunology , Diabetes Mellitus, Type 1/metabolism , Antigen Presentation/immunology , Insulin-Secreting Cells/metabolism , Insulin-Secreting Cells/immunology
16.
Nat Commun ; 15(1): 4410, 2024 May 23.
Article En | MEDLINE | ID: mdl-38782979

Pancreatic ß cells secrete insulin in response to glucose elevation to maintain glucose homeostasis. A complex network of inter-organ communication operates to modulate insulin secretion and regulate glucose levels after a meal. Lipids obtained from diet or generated intracellularly are known to amplify glucose-stimulated insulin secretion, however, the underlying mechanisms are not completely understood. Here, we show that a Drosophila secretory lipase, Vaha (CG8093), is synthesized in the midgut and moves to the brain where it concentrates in the insulin-producing cells in a process requiring Lipid Transfer Particle, a lipoprotein originating in the fat body. In response to dietary fat, Vaha stimulates insulin-like peptide release (ILP), and Vaha deficiency results in reduced circulatory ILP and diabetic features including hyperglycemia and hyperlipidemia. Our findings suggest Vaha functions as a diacylglycerol lipase physiologically, by being a molecular link between dietary fat and lipid amplified insulin secretion in a gut-brain axis.


Brain , Drosophila Proteins , Drosophila melanogaster , Insulin Secretion , Insulin , Animals , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Brain/metabolism , Insulin/metabolism , Insulin-Secreting Cells/metabolism , Brain-Gut Axis/physiology , Lipase/metabolism , Lipase/genetics , Dietary Fats/metabolism , Glucose/metabolism , Fat Body/metabolism , Lipoprotein Lipase/metabolism , Lipoprotein Lipase/genetics , Male
17.
Mol Metab ; 84: 101955, 2024 Jun.
Article En | MEDLINE | ID: mdl-38704026

OBJECTIVE: The contribution of the mitochondrial electron transfer system to insulin secretion involves more than just energy provision. We identified a small RNA fragment (mt-tRF-LeuTAA) derived from the cleavage of a mitochondrially-encoded tRNA that is conserved between mice and humans. The role of mitochondrially-encoded tRNA-derived fragments remains unknown. This study aimed to characterize the impact of mt-tRF-LeuTAA, on mitochondrial metabolism and pancreatic islet functions. METHODS: We used antisense oligonucleotides to reduce mt-tRF-LeuTAA levels in primary rat and human islet cells, as well as in insulin-secreting cell lines. We performed a joint transcriptome and proteome analysis upon mt-tRF-LeuTAA inhibition. Additionally, we employed pull-down assays followed by mass spectrometry to identify direct interactors of the fragment. Finally, we characterized the impact of mt-tRF-LeuTAA silencing on the coupling between mitochondrial metabolism and insulin secretion using high-resolution respirometry and insulin secretion assays. RESULTS: Our study unveils a modulation of mt-tRF-LeuTAA levels in pancreatic islets in different Type 2 diabetes models and in response to changes in nutritional status. The level of the fragment is finely tuned by the mechanistic target of rapamycin complex 1. Located within mitochondria, mt-tRF-LeuTAA interacts with core subunits and assembly factors of respiratory complexes of the electron transfer system. Silencing of mt-tRF-LeuTAA in islet cells limits the inner mitochondrial membrane potential and impairs mitochondrial oxidative phosphorylation, predominantly by affecting the Succinate (via Complex II)-linked electron transfer pathway. Lowering mt-tRF-LeuTAA impairs insulin secretion of rat and human pancreatic ß-cells. CONCLUSIONS: Our findings indicate that mt-tRF-LeuTAA interacts with electron transfer system complexes and is a pivotal regulator of mitochondrial oxidative phosphorylation and its coupling to insulin secretion.


Insulin Secretion , Insulin-Secreting Cells , Mitochondria , Animals , Rats , Humans , Mitochondria/metabolism , Insulin-Secreting Cells/metabolism , RNA, Transfer/metabolism , RNA, Transfer/genetics , Male , Insulin/metabolism , Islets of Langerhans/metabolism , Diabetes Mellitus, Type 2/metabolism , RNA, Mitochondrial/metabolism , RNA, Mitochondrial/genetics , Mice , Rats, Wistar , Electron Transport
18.
J Agric Food Chem ; 72(21): 11837-11853, 2024 May 29.
Article En | MEDLINE | ID: mdl-38743877

Diabetes mellitus (DM) is a chronic endocrine disorder that poses a long-term risk to human health accompanied by serious complications. Common antidiabetic drugs are usually accompanied by side effects such as hepatotoxicity and nephrotoxicity. There is an urgent need for natural dietary alternatives for diabetic treatment. Tea (Camellia sinensis) consumption has been widely investigated to lower the risk of diabetes and its complications through restoring glucose metabolism homeostasis, safeguarding pancreatic ß-cells, ameliorating insulin resistance, ameliorating oxidative stresses, inhibiting inflammatory response, and regulating intestinal microbiota. It is indispensable to develop effective strategies to improve the absorption of tea active compounds and exert combinational effects with other natural compounds to broaden its hypoglycemic potential. The advances in clinical trials and population-based investigations are also discussed. This review primarily delves into the antidiabetic potential and underlying mechanisms of tea active compounds, providing a theoretical basis for the practical application of tea and its active compounds against diabetes.


Camellia sinensis , Hypoglycemic Agents , Plant Extracts , Tea , Humans , Hypoglycemic Agents/chemistry , Hypoglycemic Agents/pharmacology , Tea/chemistry , Camellia sinensis/chemistry , Animals , Plant Extracts/chemistry , Plant Extracts/pharmacology , Diabetes Mellitus/drug therapy , Diabetes Mellitus/metabolism , Insulin Resistance , Insulin-Secreting Cells/drug effects , Insulin-Secreting Cells/metabolism
19.
Cell Biochem Funct ; 42(4): e4038, 2024 Jun.
Article En | MEDLINE | ID: mdl-38736214

The generation of insulin-producing cells (IPCs) is an attractive approach for replacing damaged ß cells in diabetic patients. In the present work, we introduced a hybrid platform of decellularized amniotic membrane (dAM) and fibrin encapsulation for differentiating adipose tissue-derived stem cells (ASCs) into IPCs. ASCs were isolated from healthy donors and characterized. Human AM was decellularized, and its morphology, DNA, collagen, glycosaminoglycan (GAG) contents, and biocompatibility were evaluated. ASCs were subjected to four IPC differentiation methods, and the most efficient method was selected for the experiment. ASCs were seeded onto dAM, alone or encapsulated in fibrin gel with various thrombin concentrations, and differentiated into IPCs according to a method applying serum-free media containing 2-mercaptoethanol, nicotinamide, and exendin-4. PDX-1, GLUT-2 and insulin expression were evaluated in differentiated cells using real-time PCR. Structural integrity and collagen and GAG contents of AM were preserved after decellularization, while DNA content was minimized. Cultivating ASCs on dAM augmented their attachment, proliferation, and viability and enhanced the expression of PDX-1, GLUT-2, and insulin in differentiated cells. Encapsulating ASCs in fibrin gel containing 2 mg/ml fibrinogen and 10 units/ml thrombin increased their differentiation into IPCs. dAM and fibrin gel synergistically enhanced the differentiation of ASCs into IPCs, which could be considered an appropriate strategy for replacing damaged ß cells.


Adipose Tissue , Cell Differentiation , Fibrin , Insulin , Stem Cells , Humans , Cell Differentiation/drug effects , Fibrin/chemistry , Fibrin/metabolism , Adipose Tissue/cytology , Adipose Tissue/metabolism , Stem Cells/metabolism , Stem Cells/cytology , Insulin/metabolism , Cells, Cultured , Insulin-Secreting Cells/metabolism , Insulin-Secreting Cells/cytology , Decellularized Extracellular Matrix/chemistry , Decellularized Extracellular Matrix/metabolism , Decellularized Extracellular Matrix/pharmacology , Amnion/cytology , Amnion/metabolism , Amnion/chemistry
20.
Nat Commun ; 15(1): 3682, 2024 May 01.
Article En | MEDLINE | ID: mdl-38693121

In diabetes, macrophages and inflammation are increased in the islets, along with ß-cell dysfunction. Here, we demonstrate that galectin-3 (Gal3), mainly produced and secreted by macrophages, is elevated in islets from both high-fat diet (HFD)-fed and diabetic db/db mice. Gal3 acutely reduces glucose-stimulated insulin secretion (GSIS) in ß-cell lines and primary islets in mice and humans. Importantly, Gal3 binds to calcium voltage-gated channel auxiliary subunit gamma 1 (CACNG1) and inhibits calcium influx via the cytomembrane and subsequent GSIS. ß-Cell CACNG1 deficiency phenocopies Gal3 treatment. Inhibition of Gal3 through either genetic or pharmacologic loss of function improves GSIS and glucose homeostasis in both HFD-fed and db/db mice. All animal findings are applicable to male mice. Here we show a role of Gal3 in pancreatic ß-cell dysfunction, and Gal3 could be a therapeutic target for the treatment of type 2 diabetes.


Diet, High-Fat , Galectin 3 , Insulin Secretion , Insulin-Secreting Cells , Animals , Humans , Male , Mice , Calcium/metabolism , Calcium Channels/metabolism , Calcium Channels/genetics , Diabetes Mellitus, Type 2/metabolism , Diabetes Mellitus, Type 2/genetics , Diet, High-Fat/adverse effects , Galectin 3/metabolism , Galectin 3/genetics , Glucose/metabolism , Insulin/metabolism , Insulin Secretion/drug effects , Insulin-Secreting Cells/metabolism , Macrophages/metabolism , Mice, Inbred C57BL , Mice, Knockout
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