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Experience in validating a method for assessing GLP-1R receptor activation in vitro upon stimulation with tirzepatide

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Introduction. Tirzepatide is a molecule capable of controlling blood glucose levels by combining dual agonism of the glucose-dependent insulinotropic polypeptide (GIP) and glucagon-like peptide-1 (GLP-1) receptors. GLP-1 and GIP are incretin hormones involved in the regulation of glycemia and energy metabolism. Their combined agonism enhances the insulin response, reduces glucagon secretion and appetite, making it an effective strategy for the treatment of type 2 diabetes mellitus (T2DM) and obesity. The specific biological activity of such compounds can be evaluated in vitro using cell lines expressing GLP-1R or GIPR. Aim. To validate a method for determining GLP-1R receptor activation in vitro using a cell line stimulated with tirzepatide in the "Calcium Flux" assay. This approach is necessary for subsequent studies of the comparability of bioequivalent drugs. Materials and methods. A genetically engineered HTS163L cell line expressing the human GLP-1 receptor was used as the model. Receptor activation was recorded by changes in fluorescence signal caused by an increase in intracellular calcium concentration after incubation of cells with tirzepatide at various concentrations. Method validation was carried out in accordance with the requirements of the State Pharmacopoeia of the Russian Federation, ICH, and EMA. Statistical analysis of the results was performed using MARS software (BMG LABTECH). Results and discussion. The applied method demonstrated a high level of specificity (placebo signal <2 % of the drug signal), a satisfactory limit of quantification (signal exceeded the blank by 43 %), good linearity ( R 2 = 0.981), accuracy (within 77–119 % of nominal EC 50 ), and precision (CV ≤ 5 % within runs, ≤15 % between runs). All validation parameters met the established acceptance criteria, confirming the correctness of the chosen approach. Conclusion. The proposed method demonstrates high sensitivity and reproducibility, making it suitable for functional analysis of the biological activity of GLP-1 receptor agonists, including tirzepatide, in in vitro models.

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  • Cite Count Icon 103
  • 10.1186/s12933-021-01412-5
The dual glucose-dependent insulinotropic polypeptide (GIP) and glucagon-like peptide-1 (GLP-1) receptor agonist tirzepatide: a novel cardiometabolic therapeutic prospect
  • Nov 24, 2021
  • Cardiovascular Diabetology
  • Enrique Z Fisman + 1 more

Incretin hormones are peptides released in the intestine in response to the presence of nutrients in its lumen. The main incretins are glucagon-like peptide-1 (GLP-1) and glucose-dependent insulinotropic polypeptide (GIP). GLP-1 stimulates insulin secretion, inhibits glucagon secretion at pancreatic α cells and has also extrapancreatic influences as slowing of gastric emptying which increases the feeling of satiety. GIP is the main incretin hormone in healthy people, causative of most the incretin effects, but the insulin response after GIP secretion in type 2 diabetes mellitus (T2DM) is strongly reduced. Therefore, in the past GIP has been considered an unappealing therapeutic target for T2DM. This conception has been changing during recent years, since it has been reported that resistance to GIP can be reversed and its effectiveness restored by improving glycemic control. This fact paved the way for the development of a GIP receptor agonist-based therapy for T2DM, looking also for the possibility of finding a combined GLP-1/GIP receptor agonist. In this framework, the novel dual GIP and GLP-1 receptor agonist tirzepatide seems to be not just a new antidiabetic medication. Administered as a subcutaneous weekly injection, it is a manifold single pharmacological agent that has the ability to significantly lower glucose levels, as well as improve insulin sensitivity, reduce weight and amend dyslipidemia favorably modifying the lipid profile. Tirzepatide and additional dual GLP-1/GIP receptor agonists that could eventually be developed in the future seem to be a promising furthest advance for the management of several cardiometabolic settings. Obviously, it is too early to be overly hopeful since it is still necessary to determine the long-term effects of these compounds and properly verify the potential cardiovascular benefits. Anyway, we are currently facing a novel and very appealing therapeutic option.

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  • Cite Count Icon 57
  • 10.1194/jlr.m012203
Adipocyte expression of the glucose-dependent insulinotropic polypeptide receptor involves gene regulation by PPARγ and histone acetylation
  • Apr 1, 2011
  • Journal of Lipid Research
  • Su-Jin Kim + 2 more

Glucose-dependent insulinotropic polypeptide (GIP) is a gastrointestinal hormone that exerts insulinotropic and growth and survival effects on pancreatic β-cells. Additionally, there is increasing evidence supporting an important role for GIP in the regulation of adipocyte metabolism. In the current study we examined the molecular mechanisms involved in the regulation of GIP receptor (GIPR) expression in 3T3-L1 cells. GIP acted synergistically with insulin to increase neutral lipid accumulation during progression of 3T3-L1 preadipocytes to the adipocyte phenotype. Both GIPR protein and mRNA expression increased during 3T3-L1 cell differentiation, and this increase was associated with upregulation of nuclear levels of sterol response element binding protein 1c (SREBP-1c) and peroxisome proliferator-activated receptor γ (PPARγ), as well as acetylation of histones H3/H4. The PPARγ receptor agonists LY171883 and rosiglitazone increased GIPR expression in differentiated 3T3-L1 adipocytes, whereas the antagonist GW9662 ablated expression. Additionally, both PPARγ and acetylated histones H3/H4 were shown to bind to a region of the GIPR promoter containing the peroxisome proliferator response element (PPRE). Knockdown of PPARγ in differentiated 3T3-L1 adipocytes, using RNA interference, reduced GIPR expression, supporting a functional regulatory role. Taken together, these studies show that GIP and insulin act in a synergistic manner on 3T3-L1 cell development and that adipocyte GIPR expression is upregulated through a mechanism involving interactions between PPARγ and a GIPR promoter region containing an acetylated histone region.

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  • Cite Count Icon 53
  • 10.1371/journal.pone.0106890
The GIP receptor displays higher basal activity than the GLP-1 receptor but does not recruit GRK2 or arrestin3 effectively.
  • Sep 5, 2014
  • PLoS ONE
  • Suleiman Al-Sabah + 7 more

Background and ObjectivesGlucagon-like peptide-1 (GLP-1) and glucose-dependent insulinotropic polypeptide (GIP) are important regulators of insulin secretion, and their functional loss is an early characteristic of type 2 diabetes mellitus (T2DM). Pharmacological levels of GLP-1, but not GIP, can overcome this loss. GLP-1 and GIP exert their insulinotropic effects through their respective receptors expressed on pancreatic β-cells. Both the GLP-1 receptor (GLP-1R) and the GIP receptor (GIPR) are members of the secretin family of G protein-coupled receptors (GPCRs) and couple positively to adenylate cyclase. We compared the signalling properties of these two receptors to gain further insight into why GLP-1, but not GIP, remains insulinotropic in T2DM patients.MethodsGLP-1R and GIPR were transiently expressed in HEK-293 cells, and basal and ligand-induced cAMP production were investigated using a cAMP-responsive luciferase reporter gene assay. Arrestin3 (Arr3) recruitment to the two receptors was investigated using enzyme fragment complementation, confocal microscopy and fluorescence resonance energy transfer (FRET).ResultsGIPR displayed significantly higher (P<0.05) ligand-independent activity than GLP-1R. Arr3 displayed a robust translocation to agonist-stimulated GLP-1R but not to GIPR. These observations were confirmed in FRET experiments, in which GLP-1 stimulated the recruitment of both GPCR kinase 2 (GRK2) and Arr3 to GLP-1R. These interactions were not reversed upon agonist washout. In contrast, GIP did not stimulate recruitment of either GRK2 or Arr3 to its receptor. Interestingly, arrestin remained at the plasma membrane even after prolonged (30 min) stimulation with GLP-1. Although the GLP-1R/arrestin interaction could not be reversed by agonist washout, GLP-1R and arrestin did not co-internalise, suggesting that GLP-1R is a class A receptor with regard to arrestin binding.ConclusionsGIPR displays higher basal activity than GLP-1R but does not effectively recruit GRK2 or Arr3.

  • Research Article
  • Cite Count Icon 350
  • 10.1111/dom.14496
The evolving story of incretins (GIP and GLP-1) in metabolic and cardiovascular disease: A pathophysiological update.
  • Sep 1, 2021
  • Diabetes, Obesity and Metabolism
  • Michael A Nauck + 3 more

The incretin hormones glucose-dependent insulinotropic polypeptide (GIP) and glucagon-like peptide-1 (GLP-1) have their main physiological role in augmenting insulin secretion after their nutrient-induced secretion from the gut. A functioning entero-insular (gut-endocrine pancreas) axis is essential for the maintenance of a normal glucose tolerance. This is exemplified by the incretin effect (greater insulin secretory response to oral as compared to "isoglycaemic" intravenous glucose administration due to the secretion and action of incretin hormones). GIP and GLP-1 have additive effects on insulin secretion. Local production of GIP and/or GLP-1 in islet α-cells (instead of enteroendocrine K and L cells) has been observed, and its significance is still unclear. GLP-1 suppresses, and GIP increases glucagon secretion, both in a glucose-dependent manner. GIP plays a greater physiological role as an incretin. In type 2-diabetic patients, the incretin effect is reduced despite more or less normal secretion of GIP and GLP-1. While insulinotropic effects of GLP-1 are only slightly impaired in type 2 diabetes, GIP has lost much of its acute insulinotropic activity in type 2 diabetes, for largely unknown reasons. Besides their role in glucose homoeostasis, the incretin hormones GIP and GLP-1 have additional biological functions: GLP-1 at pharmacological concentrations reduces appetite, food intake, and-in the long run-body weight, and a similar role is evolving for GIP, at least in animal studies. Human studies, however, do not confirm these findings. GIP, but not GLP-1 increases triglyceride storage in white adipose tissue not only through stimulating insulin secretion, but also by interacting with regional blood vessels and GIP receptors. GIP, and to a lesser degree GLP-1, play a role in bone remodelling. GLP-1, but not GIP slows gastric emptying, which reduces post-meal glycaemic increments. For both GIP and GLP-1, beneficial effects on cardiovascular complications and neurodegenerative central nervous system (CNS) disorders have been observed, pointing to therapeutic potential over and above improving diabetes complications. The recent finding that GIP/GLP-1 receptor co-agonists like tirzepatide have superior efficacy compared to selective GLP-1 receptor agonists with respect to glycaemic control as well as body weight has renewed interest in GIP, which previously was thought to be without any therapeutic potential. One focus of this research is into the long-term interaction of GIP and GLP-1 receptor signalling. A GLP-1 receptor antagonist (exendin [9-39]) and, more recently, a GIP receptor agonist (GIP [3-30] NH2 ) and, hopefully, longer-acting GIP receptor agonists for human use will be helpful tools to shed light on the open questions. A detailed knowledge of incretin physiology and pathophysiology will be a prerequisite for designing more effective incretin-based diabetes drugs.

  • Research Article
  • 10.14738/aivp.1303.18833
A Single Dose, Bioavailability Study Mounjaro (Tirzepatide) Solution for Injection in a Pre-Filled Pen 2.5 Mg/0.5 Ml in Normal Healthy Adult Human Subjects Under Fasting Condition
  • Jun 6, 2025
  • European Journal of Applied Sciences
  • Arjun Arumugam + 3 more

Background: Tirzepatide is a novel long-acting agonist of the gastric inhibitory polypeptide (GIP) and glucagon-like peptide-1 (GLP-1) receptors, exhibiting high selectivity for both human receptors. Its pharmacological profile includes a strong affinity for both the GIP and GLP-1 receptors, which are pivotal in the regulation of glucose homeostasis and appetite control. Notably, the activity of Tirzepatide at the GIP receptor closely mimics that of the endogenous GIP hormone, facilitating insulin secretion in a glucose-dependent manner. In contrast, its action at the GLP-1 receptor is somewhat reduced when compared to the native GLP-1 hormone. Both receptors are widely distributed throughout the body, being present on pancreatic α and β cells, as well as in the heart, vasculature, immune cells (such as leukocytes), gastrointestinal tract, and kidneys. Additionally, GIP receptors are localized to adipocytes, emphasizing their role in lipid metabolism and energy balance. Importantly, both GIP and GLP-1 receptors are expressed in brain regions integral to appetite regulation, suggesting a complex interplay between these pathways and body weight management. The primary objective of this study was to evaluate the pharmacokinetics and bioavailability of tirzepatide following subcutaneous administration in healthy subjects. Moreover, the impact of tirzepatide on weight reduction was assessed by comparing the subjects' weight measurements taken at study check-in and again at the end of the intervention period. Materials and methods: Materials: Dose and Mode of Administration: Mounjaro (Tirzepatide) solution for injection in a prefilled pen 2.5 mg/0.5 mL, subcutaneous injection in sitting posture under fasting condition. Methods and Findings: The study was conducted as a single-dose bioavailability study under fasting conditions to evaluate the pharmacokinetics of Tirzepatide. A total of four male subjects, aged between 31 and 40 years, who met the protocol defined eligibility criteria were enrolled in the study after a written informed consent was obtained. Each participant was administered with a single dose of subcutaneous injection of Tirzepatide, administered in the right side of abdomen to ensure standardisation for consistent bioavailability and pharmacokinetic profiling. Blood samples were collected at various time points, up to 96 hours post-administration, enabling a comprehensive analysis of the drug's pharmacokinetic parameters. To evaluate safety, thorough assessments were conducted prior to enrolment in study, during the study and post study, including clinical examinations, vital sign measurements, laboratory tests, and close monitoring of each subject’s overall well-being during the conduct. Any symptoms or signs of adverse events were carefully evaluated throughout the study duration and documented. The plasma concentrations of Tirzepatide were quantified using a validated liquid chromatography-tandem mass spectrometry (LC-MS/MS) method, ensuring reliable and accurate measurement of the drug concentration levels. The concentration data obtained were then used for pharmacokinetic analysis using the Phoenix WinNonlin version 8.4 software tool. Conclusion: The study was conducted to evaluate the bioavailability and pharmacokinetic profile of Tirzapatide, a novel long-acting agonist of GIP and GLP-1 receptors, when a single dose is administered via subcutaneous route to healthy male subjects. The findings from this study will contribute to the understanding and provide insights into Tirzepatide's therapeutic efficacy in weight reduction and its safety profile.

  • Research Article
  • Cite Count Icon 3678
  • 10.1053/j.gastro.2007.03.054
Biology of Incretins: GLP-1 and GIP
  • May 1, 2007
  • Gastroenterology
  • Laurie L Baggio + 1 more

Biology of Incretins: GLP-1 and GIP

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  • Cite Count Icon 15
  • 10.3389/fendo.2021.665537
The Insulin Response to Oral Glucose in GIP and GLP-1 Receptor Knockout Mice: Review of the Literature and Stepwise Glucose Dose Response Studies in Female Mice
  • May 27, 2021
  • Frontiers in Endocrinology
  • Bo Ahrén + 2 more

A key factor for the insulin response to oral glucose is the pro-glucagon derived incretin hormone glucagon-like peptide-1 (GLP-1), together with the companion incretin hormone, glucose-dependent insulinotropic polypeptide (GIP). Studies in GIP and GLP-1 receptor knockout (KO) mice have been undertaken in several studies to examine this role of the incretin hormones. In the present study, we reviewed the literature on glucose and insulin responses to oral glucose in these mice. We found six publications with such studies reporting results of thirteen separate study arms. The results were not straightforward, since glucose intolerance in GIP or GLP-1 receptor KO mice were reported only in eight of the arms, whereas normal glucose tolerance was reported in five arms. A general potential weakness of the published study is that each of them have examined effects of only one single dose of glucose. In a previous study in mice with genetic deletion of both GLP-1 and GIP receptors we showed that these mice have impaired insulin response to oral glucose after large but not small glucose loads, suggesting that the relevance of the incretin hormones may be dependent on the glucose load. To further test this hypothesis, we have now performed a stepwise glucose administration through a gastric tube (from zero to 125mg) in model experiments in anesthetized female wildtype, GLP-1 receptor KO and GIP receptor KO mice. We show that GIP receptor KO mice exhibit glucose intolerance in the presence of impaired insulin response after 100 and 125 mg glucose, but not after lower doses of glucose. In contrast, GLP-1 receptor KO mice have normal glucose tolerance after all glucose loads, in the presence of a compensatory increase in the insulin response. Therefore, based on these results and the literature survey, we suggest that GIP and GLP-1 receptor KO mice retain normal glucose tolerance after oral glucose, except after large glucose loads in GIP receptor KO mice, and we also show an adaptive mechanism in GLP-1 receptor KO mice, which needs to be further examined.

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  • Cite Count Icon 41
  • 10.1038/s42255-024-01061-4
Characterization of genetic variants of GIPR reveals a contribution of β-arrestin to metabolic phenotypes
  • Jun 13, 2024
  • Nature Metabolism
  • Hüsün S Kizilkaya + 34 more

Incretin-based therapies are highly successful in combatting obesity and type 2 diabetes1. Yet both activation and inhibition of the glucose-dependent insulinotropic polypeptide (GIP) receptor (GIPR) in combination with glucagon-like peptide-1 (GLP-1) receptor (GLP-1R) activation have resulted in similar clinical outcomes, as demonstrated by the GIPR–GLP-1R co-agonist tirzepatide2 and AMG-133 (ref. 3) combining GIPR antagonism with GLP-1R agonism. This underlines the importance of a better understanding of the GIP system. Here we show the necessity of β-arrestin recruitment for GIPR function, by combining in vitro pharmacological characterization of 47 GIPR variants with burden testing of clinical phenotypes and in vivo studies. Burden testing of variants with distinct ligand-binding capacity, Gs activation (cyclic adenosine monophosphate production) and β-arrestin 2 recruitment and internalization shows that unlike variants solely impaired in Gs signalling, variants impaired in both Gs and β-arrestin 2 recruitment contribute to lower adiposity-related traits. Endosomal Gs-mediated signalling of the variants shows a β-arrestin dependency and genetic ablation of β-arrestin 2 impairs cyclic adenosine monophosphate production and decreases GIP efficacy on glucose control in male mice. This study highlights a crucial impact of β-arrestins in regulating GIPR signalling and overall preservation of biological activity that may facilitate new developments in therapeutic targeting of the GIPR system.

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  • Cite Count Icon 89
  • 10.1038/s42255-023-00931-7
Glucose-dependent insulinotropic polypeptide regulates body weight and food intake via GABAergic neurons in mice
  • Nov 9, 2023
  • Nature Metabolism
  • Arkadiusz Liskiewicz + 30 more

The development of single-molecule co-agonists for the glucagon-like peptide-1 (GLP-1) receptor (GLP-1R) and glucose-dependent insulinotropic polypeptide (GIP) receptor (GIPR) is considered a breakthrough in the treatment of obesity and type 2 diabetes. But although GIPR–GLP-1R co-agonism decreases body weight with superior efficacy relative to GLP-1R agonism alone in preclinical1–3 and clinical studies4,5, the role of GIP in regulating energy metabolism remains enigmatic. Increasing evidence suggests that long-acting GIPR agonists act in the brain to decrease body weight through the inhibition of food intake3,6–8; however, the mechanisms and neuronal populations through which GIP affects metabolism remain to be identified. Here, we report that long-acting GIPR agonists and GIPR–GLP-1R co-agonists decrease body weight and food intake via inhibitory GABAergic neurons. We show that acyl-GIP decreases body weight and food intake in male diet-induced obese wild-type mice, but not in mice with deletion of Gipr in Vgat(also known as Slc32a1)-expressing GABAergic neurons (Vgat-Gipr knockout). Whereas the GIPR–GLP-1R co-agonist MAR709 leads, in male diet-induced obese wild-type mice, to greater weight loss and further inhibition of food intake relative to a pharmacokinetically matched acyl-GLP-1 control, this superiority over GLP-1 vanishes in Vgat-Gipr knockout mice. Our data demonstrate that long-acting GIPR agonists crucially depend on GIPR signaling in inhibitory GABAergic neurons to decrease body weight and food intake.

  • Research Article
  • Cite Count Icon 775
  • 10.1016/s0140-6736(18)32260-8
Efficacy and safety of LY3298176, a novel dual GIP and GLP-1 receptor agonist, in patients with type 2 diabetes: a randomised, placebo-controlled and active comparator-controlled phase 2 trial
  • Oct 4, 2018
  • The Lancet
  • Juan Pablo Frias + 10 more

Efficacy and safety of LY3298176, a novel dual GIP and GLP-1 receptor agonist, in patients with type 2 diabetes: a randomised, placebo-controlled and active comparator-controlled phase 2 trial

  • Discussion
  • 10.1016/j.jceh.2023.01.012
Will Tirzepatide Become a Game-Changer Anti-Obesity Drug?
  • May 1, 2023
  • Journal of Clinical and Experimental Hepatology
  • Ashish Kumar

Will Tirzepatide Become a Game-Changer Anti-Obesity Drug?

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  • Cite Count Icon 16
  • 10.1007/s10787-023-01239-4
Potential role of tirzepatide towards Covid-19 infection in diabetic patients: a perspective approach
  • May 19, 2023
  • Inflammopharmacology
  • Gaber El-Saber Batiha + 4 more

In Covid-19, variations in fasting blood glucose are considered a distinct risk element for a bad prognosis and outcome in Covid-19 patients. Tirazepatide (TZT), a dual glucagon-like peptide-1 (GLP-1)and glucose-dependent insulinotropic polypeptide (GIP) receptor agonist may be effective in managing Covid-19-induced hyperglycemia in diabetic and non-diabetic patients. The beneficial effect of TZT in T2DM and obesity is related to direct activation of GIP and GLP-1 receptors with subsequent improvement of insulin sensitivity and reduction of body weight. TZT improves endothelial dysfunction (ED) and associated inflammatory changes through modulation of glucose homeostasis, insulin sensitivity, and pro-inflammatory biomarkers release. TZT, through activation of the GLP-1 receptor, may produce beneficial effects against Covid-19 severity since GLP-1 receptor agonists (GLP-1RAs) have anti-inflammatory and pulmoprotective implications in Covid-19. Therefore, GLP-1RAs could effectively treat severely affected Covid-19 diabetic and non-diabetic patients. Notably, using GLP-1RAs in T2DM patients prevents glucose variability, a common finding in Covid-19 patients. Therefore, GLP-1RAs like TZT could be a therapeutic strategy in T2DM patients with Covid-19 to prevent glucose variability-induced complications. In Covid-19, the inflammatory signaling pathways are highly activated, resulting in hyperinflammation. GLP-1RAs reduce inflammatory biomarkers like IL-6, CRP, and ferritin in Covid-19 patients. Therefore, GLP-1RAs like TZ may be effective in Covid-19 patients by reducing the inflammatory burden. The anti-obesogenic effect of TZT may reduce Covid-19 severity by ameliorating body weight and adiposity. Furthermore, Covid-19 may induce substantial alterations in gut microbiota. GLP-1RA preserves gut microbiota and prevents intestinal dysbiosis. Herein, TZT, like other GLP-1RA, may attenuate Covid-19-induced gut microbiota alterations and, by this mechanism, may mitigate intestinal inflammation and systemic complications in Covid-19 patients with either T2DM or obesity. As opposed to that, glucose-dependent insulinotropic polypeptide (GIP) was reduced in obese and T2DM patients. However, activation of GIP-1R by TZT in T2DM patients improves glucose homeostasis. Thus, TZT, through activation of both GIP and GLP-1, may reduce obesity-mediated inflammation. In Covid-19, GIP response to the meal is impaired, leading to postprandial hyperglycemia and abnormal glucose homeostasis. Therefore, using TZT in severely affected Covid-19 patients may prevent the development of glucose variability and hyperglycemia-induced oxidative stress. Moreover, exaggerated inflammatory disorders in Covid-19 due to the release of pro-inflammatory cytokines like IL-1β, IL-6, and TNF-α may lead to systemic inflammation and cytokine storm development. Besides, GIP-1 inhibits expression of IL-1β, IL-6, MCP-1, chemokines and TNF-α. Therefore, using GIP-1RA like TZT may inhibit the onset of inflammatory disorders in severely affected Covid-19 patients. In conclusion, TZT, through activation of GLP-1 and GIP receptors, may prevent SARS-CoV-2-induced hyperinflammation and glucose variability in diabetic and non-diabetic patients.

  • Research Article
  • Cite Count Icon 6
  • 10.1530/joe-23-0339
Does glucose-dependent insulinotropic polypeptide receptor blockade as well as agonism have a role to play in management of obesity and diabetes?
  • Jun 11, 2024
  • The Journal of endocrinology
  • Ryan A Lafferty + 3 more

Recent approval of the dual glucose-dependent insulinotropic polypeptide (GIP) and glucagon-like peptide-1 (GLP-1) receptor agonist, tirzepatide, for the management of type 2 diabetes mellitus (T2DM) has reinvigorated interest in exploitation of GIP receptor (GIPR) pathways as a means of metabolic disease management. However, debate has long surrounded the use of the GIPR as a therapeutic target and whether agonism or antagonism is of most benefit in management of obesity/diabetes. This controversy appears to be partly resolved by the success of tirzepatide. However, emerging studies indicate that prolonged GIPR agonism may desensitise the GIPR to essentially induce receptor antagonism, with this phenomenon suggested to be more pronounced in the human than rodent setting. Thus, deliberation continues to rage in relation to benefits of GIPR agonism vs antagonism. That said, as with GIPR agonism, it is clear that the metabolic advantages of sustained GIPR antagonism in obesity and obesity-driven forms of diabetes can be enhanced by concurrent GLP-1 receptor (GLP-1R) activation. This narrative review discusses various approaches of pharmacological GIPR antagonism including small molecule, peptide, monoclonal antibody and peptide-antibody conjugates, indicating stage of development and significance to the field. Taken together, there is little doubt that interesting times lie ahead for GIPR agonism and antagonism, either alone or when combined with GLP-1R agonists, as a therapeutic intervention for the management of obesity and associated metabolic disease.

  • Research Article
  • Cite Count Icon 23
  • 10.1016/j.ejphar.2014.08.019
Selectivity of peptide ligands for the human incretin receptors expressed in HEK-293 cells
  • Aug 30, 2014
  • European Journal of Pharmacology
  • S Al-Sabah + 2 more

Selectivity of peptide ligands for the human incretin receptors expressed in HEK-293 cells

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  • Cite Count Icon 26
  • 10.1371/journal.pone.0024693
Discovery of Dual-Action Membrane-Anchored Modulators of Incretin Receptors
  • Sep 14, 2011
  • PLoS ONE
  • Jean-Philippe Fortin + 4 more

BackgroundThe glucose-dependent insulinotropic polypeptide (GIP) and the glucagon-like peptide-1 (GLP-1) receptors are considered complementary therapeutic targets for type 2 diabetes. Using recombinant membrane-tethered ligand (MTL) technology, the present study focused on defining optimized modulators of these receptors, as well as exploring how local anchoring influences soluble peptide function.Methodology/Principal FindingsSerial substitution of residue 7 in membrane-tethered GIP (tGIP) led to a wide range of activities at the GIP receptor, with [G7]tGIP showing enhanced efficacy compared to the wild type construct. In contrast, introduction of G7 into the related ligands, tGLP-1 and tethered exendin-4 (tEXE4), did not affect signaling at the cognate GLP-1 receptor. Both soluble and tethered GIP and GLP-1 were selective activators of their respective receptors. Although soluble EXE4 is highly selective for the GLP-1 receptor, unexpectedly, tethered EXE4 was found to be a potent activator of both the GLP-1 and GIP receptors. Diverging from the pharmacological properties of soluble and tethered GIP, the newly identified GIP-R agonists, (i.e. [G7]tGIP and tEXE4) failed to trigger cognate receptor endocytosis. In an attempt to recapitulate the dual agonism observed with tEXE4, we conjugated soluble EXE4 to a lipid moiety. Not only did this soluble peptide activate both the GLP-1 and GIP receptors but, when added to receptor expressing cells, the activity persists despite serial washes.ConclusionsThese findings suggest that conversion of a recombinant MTL to a soluble membrane anchored equivalent offers a means to prolong ligand function, as well as to design agonists that can simultaneously act on more than one therapeutic target.

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