Disclosure: A.P. Tovar: None. J.E. McMahon: None. J.L. Graves: None. P.A. Frankino: None. S. Markison: None. S.F. Betz: None. H.C. Chen: None. M. Peloquin: None. Agonism of the somatostatin 2 (SST2) receptor induces broad metabolic and hormonal actions by suppressing the growth hormone (GH)/insulin-like growth factor 1 (IGF-1) axis as well as through effects in the pancreas. SST2 agonism, in addition to being developed for various human endocrine disorders, has a therapeutic potential for extending the lifespan of large-breed companion dogs, which have significantly decreased lifespan relative to smaller dogs. This disparity is associated with, and may be caused by, increased GH and IGF-1 levels and the effects in large dogs bear similarity to acromegaly in humans. Both octreotide and lanreotide are commonly used as SST2 agonists, however both are peptides with poor oral bioavailability (requiring injections), which have poor selectivity to somatostatin receptor subtypes (SST3, SST5) that may contribute to unwanted effects. LOY-003 is a novel, orally bioavailable non-peptide SST2 agonist. We investigated the pharmacokinetics (PK) and pharmacodynamic response to varying doses of LOY-003 in beagle dogs. LOY-003 was dosed daily via oral gavage at escalating dose levels to 40 beagle dogs (n = 4M + 4F/group). IGF-1 samples were collected serially in the days prior to dosing and on treatment days 8, 15, and 22. Fasting plasma glucose and insulin samples were collected after the first dose on day 1 at pre-treatment, 0.5, 1, and 2 hours post-dose. Plasma concentrations of LOY-003 were assessed at pre-treatment, 0.5, 1, 2, 4, 8, 12, and 24 hours post-dose on days 1, 8, 15, 22, and 29. The PK profile of LOY-003 in dogs was shown to peak at day 8, reaching steady state by day 15 with no detectable exposure after a 1 week washout in any group. Significant reductions in IGF-1 were observed as early as day 8, in groups receiving 0.3 mg/kg (-41.07%, p<0.001), 1.0 mg/kg (-40.30%, p<0.001), and 3.0 mg/kg (-45.91%, p<0.001), with sustained reductions continuing to day 22. Fasting glucose decreased by 2 hours post-treatment on day 1 in dogs receiving 0.3 mg/kg (-7.42%, p = 0.006), 1.0 mg/kg (-12.43%, p < 0.001), and 3.0 mg/kg (-12.63%, p < 0.001) of LOY-003. Additionally, significant reductions to fasting insulin were observed immediately at 0.5 hours post-treatment in groups receiving 0.3 mg/kg (-54.27%, p < 0.001), 1.0 mg/kg (-60.85%, p < 0.001), and 3.0 mg/kg (-47.37%, p < 0.001) of LOY-003. These data demonstrate SST2 agonism results in meaningful and sustained reductions in IGF-1 levels, as well as enhanced glucose and insulin homeostasis. These data indicate LOY-003 improves markers of metabolic function, supporting further investigation of its effects on metabolic health and mortality in dogs. Presentation: Monday, July 14, 2025
A novel class of nonpeptide melanocortin type 2 receptor (MC2R) antagonists was discovered through modification of known nonpeptide MC4R ligands. Structure-activity relationship (SAR) studies led to the discovery of 17h (CRN04894), a highly potent and subtype-selective first-in-class MC2R antagonist, which demonstrated remarkable efficacy in a rat model of adrenocorticotrophic hormone (ACTH)-stimulated corticosterone secretion. Oral administration of 17h suppressed ACTH-stimulated corticosterone secretion in a dose-dependent manner at doses >= 3 mg/kg. With its satisfactory pharmaceutical properties, 17h was advanced to Phase 1 human clinical trials in healthy volunteers with the goal of moving into patient trials to evaluate CRN04894 for the treatment of ACTH-dependent diseases, including congenital adrenal hyperplasia (CAH) and Cushing's disease (CD).
Abstract Disclosure: A.S. Antwan: Employee; Self; Crinetics Pharmaceuticals. E. Rico-Bautista: Employee; Self; Crinetics Pharmaceuticals. J. Pontillo: Employee; Self; Crinetics Pharmaceuticals. S. Wang: Employee; Self; Crinetics Pharmaceuticals. M. Johns: Employee; Self; Crinetics Pharmaceuticals. B. Ramms: Employee; Self; Crinetics Pharmaceuticals. M.A. Fowler: Employee; Self; Crinetics Pharmaceuticals. J.B. Nguyen: Employee; Self; Crinetics. A.A. Castellanos Gonzalez: Employee; Self; Crinetics. B. Fleck: Employee; Self; Crinetics Pharmaceuticals. K. Retting: Employee; Self; Crinetics Pharmaceuticals. D. Dalvie: Employee; Self; Crinetics Pharmaceuticals. S.F. Betz: Employee; Self; Crinetics Pharmaceuticals. S. Markison: Employee; Self; Crinetics Pharmaceuticals. Primary hyperparathyroidism (PHPT) is a condition resulting from an over-secretion of parathyroid hormone (PTH) from one or more overactive parathyroid glands. PTH is a peptide hormone that regulates blood calcium concentrations through effects on bone, intestines, and kidney. PTH acts on parathyroid hormone receptor type 1 (PTH1R) in the kidney to increase calcium reabsorption and block phosphate reabsorption. The loss of phosphate ions then causes an increase in ionized calcium in the blood and cAMP in the urine. At the bone, continuous PTH infusion stimulates osteoclast activity while inhibiting osteoblast activity, leading to breakdown of bone and release of calcium into the extracellular fluid. Conditions that cause excess PTH, such as PHPT, result in elevated concentrations of plasma calcium, increased bone loss, increased fracture risk, and higher susceptibility to kidney stone development. PHPT affects approximately 100,000 patients per year, but many patients are asymptomatic and remain undiagnosed. While a partial or total parathyroidectomy may be suitable for patients diagnosed with severe cases of PHPT, there are limited treatment options for those who do not meet the criteria or do not wish to undergo surgery. The goals for medicinal treatment are to normalize blood calcium levels and urinary calcium excretion, as well as increase bone mineral density to reduce fracture risk. Blocking PTH action directly via a potent PTH1R antagonist may provide an important new therapeutic mechanism to treat patients with PHPT. Using iterative medicinal chemistry and pharmacology, Crinetics has identified several potent and orally bioavailable PTH1R antagonists with good drug-like properties. Lead molecules were evaluated in vivo in preclinical rodent models for their ability to suppress the effects of excess PTH on serum calcium, bone turnover, and cAMP levels in the kidney. One of these compounds, ANT-5, was characterized as a potent negative allosteric modulator of both human and rat PTH1R. In rats, oral administration of ANT-5 dose-dependently suppressed PTH-induced hypercalcemia. ANT-5 also suppressed PTH-stimulated urinary cAMP in rats, indicating its ability to inhibit the actions of PTH in the kidney. We further evaluated the effect of ANT-5 in a rodent model of continuous PTH infusion-induced bone turnover. Once-daily oral administration of ANT-5 mitigated PTH-induced bone resorption, suggesting that inhibiting PTH1R may have beneficial clinical effects on bone density. The culmination of these studies has led to a subset of candidate molecules that are being evaluated in safety studies to identify the compound(s) suitable for evaluation in human clinical trials. Support: Crinetics Pharmaceuticals. Presentation: Saturday, June 17, 2023
Abstract Disclosure: M.A. Fowler: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. C. Regan: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. J. Zhao: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. E. Coutinho: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. B. Fleck: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. A.A. Castellanos: Employee; Self; Crinetics Pharmaceuticals. E. Muller: Employee; Self; Crinetics Pharmaceuticals. M. Johns: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. Y. Tang: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. E. Sturchler: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. M. Chen: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. K. Retting: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. D. Dalvie: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. S.F. Betz: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. S. Markison: Employee; Self; Crinetics Pharmaceuticals. Stock Owner; Self; Crinetics Pharmaceuticals. Graves’ disease is an autoimmune condition that affects approximately 1 in 100 people in the United States and 2-3% of the population worldwide. It is characterized by the production of autoantibodies against TSHR, and the pathology of Graves’ disease is driven by TSHR stimulatory antibodies (TSAb) that result in heightened activation of TSHR. This overstimulation results in hyperthyroidism due to excessive production of thyroid hormones. Approximately 30% of Graves’ disease patients also develop thyroid eye disease (TED or Graves’ orbitopathy) due to overactivation of TSHR in orbital fibroblasts leading to excessive production of hyaluronic acid, adipogenesis, cytokine production, and fibrosis. This can cause a myriad of debilitating symptoms including pain, swelling, blurry vision, diplopia, and proptosis. Several treatments for Graves’ hyperthyroidism are available including anti-thyroid drugs, radioactive iodine (RAI), and surgery. RAI and surgery are definitive treatments for Graves’ hyperthyroidism, but often result in hypothyroidism. In addition, none of the current treatments for Graves’ hyperthyroidism are effective in treating TED and, in some cases, such as with RAI, worsen the condition. Blocking TSHR activation directly via a TSHR antagonist may provide an important new therapeutic mechanism to treat patients with Graves’ disease that would effectively treat both the hyperthyroidism and TED. We have identified several potent and orally bioavailable nonpeptide allosteric antagonists with acceptable drug-like properties. One analog, TSHRant-1, demonstrated potent negative allosteric modulator activity at both the human and rat TSHR. To evaluate the in vivo pharmacodynamics of TSHant-1, we developed a rat model of hyperthyroidism. In this model, subcutaneous administration of the TSAb, M22, to female rats resulted in a robust and long-lasting rise in levels of the thyroid hormone thyroxin (T4). Oral administration of TSHRant-1 dose-dependently suppressed M22-stimulated T4, providing evidence that a nonpeptide allosteric antagonist of TSHR may serve as an effective treatment for Graves’ disease and associated orbitopathy (TED). Presentation: Friday, June 16, 2023
SST5 receptor activation potently inhibits insulin secretion from pancreatic β-cells, and an orally available nonpeptide selective SST5 agonist may be used to effectively manage the blood glucose levels of congenital HI patients to avoid severe hypoglycemia. Our medicinal chemistry efforts have led to the discovery of 4-(3-aminopyrrolidinyl)-3-aryl-5-(benzimidazol-2-yl)-pyridine analogs as potent SST5 agonists. This class of molecules exhibits excellent human SST5 potency and selectivity against SST1, SST2, SST3 and SST4 receptors. Leading compound 3-{4-[(3S)-3-aminopyrrolidin-1-yl]-5-(4-methyl-1H-1,3-benzodiazol-2-yl)pyridin-3-yl-5-fluorobenzonitrile (28, CRN02481) showed limited off-target activity and good pharmacokinetic profiles in both male Sprague Dawley rats and Beagle dogs to advance into further preclinical evaluations.
Abstract Hypercalcemia is a common disorder defined as a serum calcium concentration higher than the normal range of 8.5 - 10.5 mg/dL. The most common causes of hypercalcemia are over-secretion of parathyroid hormone (PTH) from one or more enlarged parathyroid glands, which can lead to primary hyperparathyroidism (PHPT), or over-secretion of parathyroid hormone related protein (PTHrP) from a cancerous tumor, which leads to humoral hypercalcemia of malignancy (HHM). PTH is an 84 amino acid peptide that regulates calcium and phosphate homeostasis through activation of its receptor, PTHR1. PTHrP has close homology to the N-terminal region of PTH and also activates PTHR1, inducing similar biological actions. Activation of PTHR1, a class B G-protein coupled receptor expressed in bone and kidney, leads to an increase in cAMP and PKA activation, inducing gene expression changes of important modulators of bone homeostasis. In the kidney, it increases renal phosphate excretion and calcium reabsorption. Hyperactivation of PTHR1 due to high levels of either PTH or PTHrP results in increased calcium release from the bone matrix, as well as increased calcium reabsorption in the kidney, causing hypercalcemia. Surgery is the first line therapy for PHPT, but patients that cannot or choose not to have surgery are prescribed calcimimetics and/or bisphosphonates. Calcimimetics decrease circulating calcium levels but have no effect on bone homeostasis, while bisphosphonates improve bone homeostasis but have little effect on circulating calcium levels. HHM patients are prescribed bisphosphonates or denosumab, both of which possess undesirable side effects. We hypothesize that blocking PTH/PTHrP action via a PTHR1 antagonist may provide an improved therapeutic mechanism to treat PHPT and HHM, and potentially other diseases of hypercalcemia. Using an iterative medicinal chemistry approach, Crinetics has identified several nonpeptide PTHR1 antagonists via both binding and functional in vitro assays. One of these compounds, Antagonist 1 (ANT-1), has low nanomolar binding affinity for both human and rat PTHR1 and is potent in human, monkey, rat, mouse and canine PTHR1 functional antagonist assays in vitro. ANT-1 has good oral exposure in preclinical species and desirable drug-like properties, including lack of inhibition of cytochromes P450 and the hERG ion channel, and stability in liver microsomes. In rat models of PTH- and PTHrP-induced hypercalcemia, ANT-1 dose-dependently suppresses ionized blood calcium, providing support that a nonpeptide PTH antagonist has potential use as an effective therapeutic for hypercalcemia caused by PHPT and HHM. Currently, ANT-1 and other potential candidate molecules are being evaluated in a battery of safety studies to select the optimal molecule(s) suitable for evaluation in human clinical trials. Presentation: Saturday, June 11, 2022 1:00 p.m. - 3:00 p.m.
Purpose Evaluate the pharmacodynamics, pharmacokinetics, and safety of paltusotine, an orally bioavailable, nonpeptide, somatostatin receptor subtype 2 (SST2) agonist being developed for the treatment of acromegaly and neuroendocrine tumors. Methods A randomized, double-blind, placebo-controlled, single center, single and multiple ascending dose phase 1 study was conducted in healthy male volunteers who received (i) single-dose of oral paltusotine 1.25, 2.5, 5, 10, and 20 mg (solution); and 40 and 60 mg (capsules) or (ii) multiple-dose oral paltusotine capsules once daily 5 mg (× 7 days), 10, 20, and 30 mg (× 10 days). Main outcome measures were pharmacodynamics (changes in growth hormone-releasing hormone [GHRH] stimulated growth hormone [GH] and insulin-like growth factor 1 [IGF-1]), pharmacokinetics, safety, and tolerability. Results Single-dose cohorts: n = 41 active, n = 14 placebo. Multiple-dose cohorts: n = 24 active, n = 12 placebo. Paltusotine was well tolerated, orally bioavailable, associated with increased plasma concentrations to doses up to 40 mg, and was eliminated with a half-life of approximately 30 h. Single-dose paltusotine 1.25 to 20 mg suppressed GHRH-stimulated GH secretion by 44% to 93% compared to 15% with placebo. Multiple-dose paltusotine 5 to 30 mg administered once daily for 10 days suppressed IGF-1 by 19% to 37% compared to an increase of 2.4% with placebo. Conclusions Paltusotine suppresses GH and IGF-1 in a dose-dependent fashion, with a safety profile similar to currently approved SST2 receptor ligands. Paltusotine is a promising once-daily oral nonpeptide SST2 agonist candidate for managing acromegaly and neuroendocrine tumors. Trial registration NCT03276858, registered September 8, 2017, retrospectively registered.
The discovery of a novel 4-(4-aminopiperidinyl)-3,6-diarylquinoline series of potent SST2 agonists is described. This class of molecules exhibit excellent selectivity over SST1, SST3, SST4, and SST5 receptors. The compound 3-[4-(4-aminopiperidin-1-yl)-3-(3,5-difluorophenyl)quinolin-6-yl]-2-hydroxybenzonitrile (22, paltusotine, formerly known as CRN00808) showed no direct inhibition of major cytochrome P450 enzymes or the hERG ion channel and had sufficient exposure in rats and excellent exposure in dogs upon oral dosing. In pharmacodynamic studies, compound 22 dose-dependently suppressed growth hormone (GH) secretion induced by an exogenous growth-hormone-releasing hormone (GHRH) challenge in both male and female rats following a single oral dose and suppressed IGF-1 levels with repeated oral administration in both rats and dogs. To the best of our knowledge, compound 22 is the first non-peptide SST2 agonist to advance to human clinical trials and is currently in Phase 3 trials in acromegaly patients and a Phase 2 trial in neuroendocrine tumor patients suffering from carcinoid syndrome.
Abstract CRN04894 is an orally administered nonpeptide that is a potent and selective antagonist for adrenocorticotropic hormone (ACTH) acting at the melanocortin 2 receptor (MC2R) and is currently under development for the treatment of diseases of ACTH excess such as Cushing’s disease, congenital adrenal hyperplasia, and ectopic ACTH-secreting tumors. Cushing’s disease results from an adenoma derived from pituitary corticotropic cells that secrete excess ACTH, whereas ectopic ACTH syndrome arises from nonpituitary ACTH secreting tumors. Congenital adrenal hyperplasia is a genetic disease that results in cortisol deficiency leading to high levels of ACTH and adrenal androgens. Each of these indications is characterized by high ACTH levels that act on MC2R expressed in the adrenal cortex to drive pathological elevations of adrenally derived steroid hormones. CRN04894 blocks the action of ACTH at MC2R, providing a potential novel treatment for these diseases. Preclinical models of chronic hypercortisolemia include implantation of ACTH-secreting pituitary tumor cells in mice and continuous administration of ACTH via subcutaneously implanted osmotic pumps in rats. These models induce features consistent with human diseases of ACTH excess including hypercortisolemia and hypertrophy of the adrenal glands. We employed both rodent models to examine the pharmacodynamic effects of CRN04894 on corticosterone levels and adrenal gland morphology. In the mouse pituitary tumor model, subcutaneous inoculation of the ACTH-secreting mouse pituitary tumor cell line, AtT-20, into immunodeficient mice resulted in formation of tumors and increased plasma ACTH and corticosterone levels. Repeated daily oral administration of CRN04894 for 14 days dose-dependently and robustly suppressed plasma corticosterone levels in mice with AtT-20 tumors. In the rat model, subcutaneous implantation of osmotic pumps delivering ACTH resulted in increased corticosterone levels, reduction in body weight, and hypertrophy of the adrenal glands after 7 days. Daily oral administration of CRN04894 over 7 days dose-dependently suppressed corticosterone levels, mitigated the effect of ACTH excess on body weight, and rescued the adrenal gland hypertrophy. These findings provide evidence that CRN04894 functions as an effective ACTH antagonist at MC2R to suppress adrenal corticosterone secretion in both mouse and rat models of ACTH excess and hypercortisolemia, thus providing a strong rationale for its potential therapeutic utility in diseases of ACTH excess. This work was supported in part by an SBIR grant from the NIH awarded to Dr. Struthers (R43- DK115245)
Abstract Cushing’s disease (CD) and Ectopic ACTH syndrome (EAS) stem from excess circulating adrenocorticotropic hormone (ACTH) and resulting hypercortisolemia. In CD, excess ACTH is secreted from pituitary tumors, whereas excess ACTH in EAS arises from nonpituitary tumors. ACTH acts on the adrenal melanocortin type 2 (MC2) receptor to control the synthesis and secretion of adrenal hormones, including the stress hormone cortisol (corticosterone in rats) which accounts for the comorbidities of CD and EAS. Availability of a potent ACTH antagonist that can normalize cortisol in patients with diseases of excess ACTH will be a major advance in endocrinology. Additionally, an ACTH antagonist will have utility in congenital adrenal hyperplasia (CAH) because of its ability to block production of excess adrenal androgens. Crinetics is evaluating and developing ACTH antagonists for the treatment of diseases of excess ACTH. To our knowledge, these compounds represent the first potent nonpeptide ACTH antagonists to demonstrate in vitro potency and in vivo efficacy. As a result, the direct effects of sustained MC2 receptor blockade on the structure and function of the adrenal gland have never been able to be assessed. We examined the effects of several orally bioavailable ACTH antagonists across a range of doses on Sprague-Dawley rat adrenal gland weight, histology, and hormone levels in repeat dosing (7-14 days) studies. Sustained MC2 receptor antagonism dose dependently blocked activity of ACTH at the level of the adrenal gland and reduced plasma corticosterone levels. In the normal rat, this resulted in dose-dependent atrophy of the adrenal gland as assessed by organ weights and microscopically. The atrophy was primarily observed in the cortisol producing zona fasciculata, as well as in the zona reticularis, with smaller reductions noted in the aldosterone producing zona glomerulosa. Additionally, hypertrophy of the adrenal glands caused by continuous subcutaneous administration of exogenous ACTH was reversed by treatment with an ACTH antagonist. The adrenal effects were accompanied by expected changes in corticosterone levels. These preclinical findings demonstrate the therapeutic potential of ACTH antagonism and provide a strong rationale for development of an orally bioavailable drug that can be used to combat CD, EAS, and CAH.
Abstract Congenital hyperinsulinism (CHI) results from mutations within the insulin secretion pathway and is characterized by excessive and/or inappropriate insulin secretion by pancreatic islet β-cells. CHI is the most common cause of persistent hypoglycemia in newborns and infants and is estimated to affect 1:2500 to 1:50,000 live births. Prompt recognition and treatment are vital to prevent coma, long-term neurological complications, and even death. If medical control of CHI is unsuccessful, a near-total pancreatectomy may be required, but hypoglycemia often persists. The neuropeptide somatostatin is an important modulator of pancreatic hormonal signaling and activity at different somatostatin receptor (sst) subtypes dictates the suppression of insulin and/or glucagon. The injectable peptide drugs octreotide and lanreotide are potent sst2 agonists used to treat CHI, but in addition to suppressing insulin, the sst2 activity of these peptides may also inhibit glucagon secretion, potentially reducing effectiveness and compromising a key defense against hypoglycemia. Glucagon secretion from α-cells is inhibited through activation of sst2 receptors, while insulin secretion from β-cells is inhibited through activation of sst2 and sst5. We therefore hypothesize that agonists selectively targeting sst5 and lacking sst2 activity will offer an improved efficacy/safety profile for patients with hyperinsulinemic hypoglycemia. Using iterative medicinal chemistry and pharmacology, Crinetics has discovered several classes of highly potent, orally bioavailable, small molecule sst-subtype selective agonists with drug-like pharmaceutical properties. Our discovery efforts aimed at finding a compound to treat CHI have yielded potent and selective nonpeptide sst5 agonists with sub-nanomolar EC50s in cell-based assays of receptor activation. Insulin secretion from isolated human and rat islets was suppressed upon exposure to sst5 agonists. Potent and selective sst5 agonists were then evaluated in a number acute and repeat dose in vivo models (e.g., oGTT, fed/fasted conditions, sulfonylurea-induced hypoglycemia) to assess physiological effects and to gain mechanistic insights. As predicted by the in vitro pharmacology, selective nonpeptide sst5 agonists suppressed insulin secretion and raised blood glucose levels in each model, while having minimal effects on glucagon secretion. Leading sst5 agonists were also evaluated for drug like characteristics, including stability in liver microsomes, lack of inhibition of cytochromes P450 and the hERG ion channel, and were shown to exhibit good exposure upon oral dosing in both rats and dogs. The culmination of these studies has led to a subset of candidate molecules that are being evaluated in genotoxicity, safety pharmacology, and general toxicity studies to determine the molecule most suitable for evaluation in human clinical trials.
Abstract Adrenocorticotropic hormone (ACTH) is an important modulator of steroidal hormone synthesis and secretion from the adrenal gland and its selective activity at the melanocortin type 2 receptor (MC2) dictates the synthesis and secretion of cortisol (corticosterone in rats). Excess ACTH action contribute to the pathophysiology of Cushing’s disease (CD), ectopic ACTH secreting tumors (EAS), and Congenital Adrenal Hyperplasia (CAH). Cushing’s disease results from a microadenoma derived from pituitary corticotrophic cells that secretes excess ACTH, whereas EAS arises from nonpituitary ACTH secreting tumors. Excess ACTH action at the adrenal gland and resulting hypercortisolemia presents in a myriad of symptoms that result in high morbidity. CAH results from inactivating mutations in steroid synthesis pathways, resulting in lack of cortisol and aldosterone production. Lack of negative feedback by cortisol at the level of the pituitary causes the over-secretion of ACTH, and overproduction of adrenal androgens, causing significant virilization and reduction in quality of life. We hypothesize that blocking ACTH action directly via a selective MC2 receptor antagonist may provide an important new therapeutic mechanism for these patients. To test this hypothesis, Crinetics launched an iterative medicinal chemistry program to identify potent and selective nonpeptide ACTH antagonists with pharmaceutical and safety characteristics suitable for evaluation in human clinical trials. Unlike most other G protein coupled receptors, MC2 requires the presence of an accessory protein (MRAP) for cell surface expression and recognition of ACTH. Using CHO-K cells stably expressing this MC2-MRAP complex, iterative optimization led to the discovery of multiple chemical classes of highly potent, nonpeptide MC2 receptor selective antagonist leads, which were then further optimized for drug-like characteristics. We identified multiple compounds that exhibit high potency for human and rat MC2 receptors (hMC2 Kb <1 nM), while having no activity at the MC1, MC3, MC4, or MC5 receptors. Leading ACTH antagonists were also evaluated for drug like characteristics, including good stability in liver microsomes, lack of inhibition of cytochromes P450 and the hERG ion channel, and were shown to exhibit good exposure upon oral dosing in both rats and dogs. These ACTH antagonists acutely suppress corticosterone secretion in an ACTH-challenge model in rats. In a 7-day hypercortisolemia model in which rats receive an implanted minipump that continually secretes ACTH, corticosterone levels were decreased, and body weight loss and adrenal hypertrophy were prevented with ACTH antagonist treatment. The culmination of these studies has led to a subset of candidate molecules that are being evaluated in genotoxicity, safety pharmacology, and general toxicology studies to enable evaluation in human clinical trials.
Congenital hyperinsulinism (CHI) results from mutations within the insulin secretion pathway and is characterized by excessive and/or inappropriate insulin secretion by pancreatic islet β-cells. CHI is the most common cause of persistent hypoglycemia in newborns and infants and is estimated to affect 1/30,000 to 1/50,000 live births. Prompt recognition and treatment are vital to prevent coma, long-term neurological complications, and even death. If medical control of CHI is unsuccessful, near-total pancreatectomy may be required. The neuropeptide somatostatin is an important modulator of pancreatic hormonal signaling and activity at different somatostatin receptor (sst) subtypes dictates the suppression of insulin and/or glucagon. Glucagon secretion from α-cells is inhibited through sst2 receptors and insulin secretion from β-cells is inhibited through activation of sst2, sst3, and sst5. The injectable peptide drugs octreotide and lanreotide are potent agonists at sst2 and are often deployed as the last medical intervention to prevent or delay pancreatectomy. These peptides’ sst2 activity leads to inhibition of glucagon secretion, potentially reducing their effectiveness and compromising a key defense mechanism against hypoglycemia. We hypothesize that agonists targeting sst5 but lacking sst2 activity will possess an optimal efficacy/safety profile for patients with hyperinsulinemic hypoglycemia. Using iterative medicinal chemistry, Crinetics has discovered several classes of highly potent, orally bioavailable, small molecule sst-subtype selective agonists with drug-like pharmaceutical properties. Our discovery efforts aimed at finding a compound to treat CHI have yielded potent and selective nonpeptide sst5 agonists with sub-nanomolar EC50s in cell-based assays of receptor activation. These compounds also typically possess similar potency for the rat sst5 receptor. To probe their physiological consequences and to gain mechanistic insights, we compared the acute and chronic effects of these agonists to the peptide pasireotide, a pan-sst agonist that is most potent at sst5, on glycemic control in several rat models, which generally demonstrate a high degree of translation to humans. These preclinical studies evaluated the effects of the sst5 agonists during oGTT, ipGTT, sulfonylurea-induced hypoglycemia, and on blood glucose levels in both the fed and fasted states. In each model, selective nonpeptide sst5 agonists suppressed insulin secretion and raised blood glucose levels while having minimal effects on glucagon secretion, as predicted by their in vitro pharmacology. These results support our efforts to develop potent nonpeptide selective sst5 agonists with pharmaceutical and safety profiles suitable for evaluation in human clinical trials.
Abstract Cushing’s disease is most commonly the result of a microadenoma derived from pituitary corticotrophic cells that secretes excess adrenocorticotropic hormone (ACTH). ACTH is an important modulator of steroidal hormone synthesis and secretion from the adrenal gland and its selective activity at the melanocortin type 2 receptor (MC2) dictates the synthesis and secretion of cortisol (corticosterone in rats). The resulting hypercortisolemia in Cushing’s patients presents in a myriad of symptoms that include growth of fat pads, excessive sweating, dilation of capillaries, thinning of the skin, muscle weakness, hirsutism, depression/anxiety, hypertension, osteoporosis, insulin resistance, hyperglycemia, and heart disease, among others that result in high morbidity. We hypothesize that blocking ACTH action directly via a selective MC2 receptor antagonist may provide an important new therapeutic mechanism to help better manage Cushing’s disease in patients. To test this hypothesis, we launched an iterative medicinal chemistry program to identify potent and selective nonpeptide MC2 receptor antagonists with pharmaceutical and safety characteristics suitable for evaluation in human clinical trials. Unlike most other G protein coupled receptors, MC2 requires the presence of an accessory protein (MRAP) for cell surface expression and recognition of ACTH and our effort led to small molecule nonpeptides with antagonist activity in CHO-K cells stably expressing the MC2-MRAP complex. Iterative optimization led rapidly to the discovery of multiple chemical classes of highly potent, nonpeptide MC2 selective antagonist leads, which were then further optimized for drug-like characteristics. We have identified multiple compounds that exhibit high potency for human and rat MC2 receptors (hMC2 Kb <1 nM), while having little activity at the MC1, MC3, MC4, or MC5 receptors. In rat and dog pharmacokinetic studies, many of these selective MC2 antagonists exhibit good oral bioavailability. In rat models to probe their efficacy, these selective MC2 antagonists acutely suppress corticosterone secretion in an ACTH-challenge model in male Sprague-Dawley rats and the degree of suppression is proportional to their activity at the rat MC2 receptor. In a 7-day hypercortisolemia model in which rats receive an implanted minipump that continually secretes ACTH, corticosterone levels were decreased, and body weight loss and adrenal hypertrophy were prevented. To our knowledge, these compounds represent the first potent nonpeptide MC2 receptor antagonists to demonstrate in vitro potency and in vivo efficacy and we are actively pursuing preclinical safety and toxicology studies to select the optimal molecule(s) suitable for evaluation in human clinical trials.
Injected depot formulations of somatostatin peptide analogs are routinely used to treat acromegaly and neuroendocrine tumors (NETs). CRN00808 is a small molecule nonpeptide selective somatostatin receptor 2 agonist whose safety, pharmacokinetics (PK), and pharmacodynamics (PD) has been characterized in preclinical studies. This study describes the final results from a first-in-human, single and multiple ascending dose Phase 1 study in healthy volunteers to measure the safety, PK, PD, and midazolam drug interaction potential of CRN00808 (NCT03276858; preliminary results with blinded safety data presented at ENDO 2018). In the single dose arm of the study, cohorts of 8 subjects (6 active: 2 placebo) received CRN00808 as an oral solution or capsules (1.25 mg to 60 mg, or placebo). The effect of food on CRN00808 PK was also evaluated. In the multiple dose arm, cohorts of 9 subjects (6 active: 3 placebo) received CRN00808 capsules once daily (5 mg to 30 mg, or placebo) for 7-10 days. In the drug-interaction arm, a single cohort of 8 subjects received 20 mg of CRN00808 for 7 days; midazolam PK was assessed before (Day -2) and after (Day 7) administration of CRN00808. Safety and PK were assessed in all phases of the study. Suppression of GHRH-induced GH secretion and suppression of serum IGF-1 were measured as PD endpoints in the single and multiple dose phases of the study, respectively. Once daily administration of 5-30 mg CRN00808 capsules exhibited dose-dependent increases in peak (Cmax) and total (AUC) plasma exposures. The apparent terminal elimination half-life was determined to be of 42-50 hours and steady state was achieved in 3-5 days. Capsules taken with a standard high fat, high calorie meal resulted in a markedly lower plasma CRN00808 AUC (83%). Oral administration of CRN00808 resulted in dose-dependent suppression of both GHRH stimulated GH and IGF-1 secretion; a single 10 mg dose was found to cause 91% suppression of GHRH-stimulated GH and 10 mg once per day for 10 days resulted in maximal suppression of serum IGF-1. Midazolam PK was unaffected by co-administration of 20 mg CRN00808, suggesting little or no risk of drug interaction with CYP3A4/5 substrates. Treatment emergent adverse events associated with CRN00808 were generally mild and transient, and consistent with those reported with other somatostatin agonists. In conclusion, results from this Phase I clinical trial in healthy volunteers support further clinical development of CRN00808 as a once-daily oral treatment of patients with acromegaly.