Loss-of-function variants in the gene encoding angiopoietin-like protein 3 (ANGPTL3) are associated with decreased triglyceride and low-density lipoprotein cholesterol levels, as well as with lower cardiovascular risk. Here we describe a 16-week phase 1 trial of zodasiran, an ANGPTL3‑targeting small interfering RNA, in patients on lipid-lowering therapy with either hyperlipidemia (with a placebo control arm) (n = 9; 7 male and 2 female), familial hypercholesterolemia (n = 17; 9 male and 8 female) or moderate-to-severe hypertriglyceridemia (n = 6; 4 male and 2 female). Patients received zodasiran subcutaneously on days 1 and 29, followed by a 48-week open-label extension in the familial hypercholesterolemia cohort (n = 13; 7 male and 6 female) in which zodasiran was dosed every 12 weeks. No serious treatment-related adverse events, the primary endpoint of the trial, were observed. Moreover, no elevations in hepatic aminotransferases, bilirubin or glycated hemoglobin were observed, and there were no drug discontinuations. All cohorts showed reductions at week 16 (12 weeks postdosing) in serum ANGPTL3 (≤-85.4%) and triglycerides (≤-67.1%), which were secondary endpoints. Reduction in ANGPTL3 was sustained to end-of-open-label extension in the familial hypercholesterolemia cohort. These results indicate a favorable safety profile for zodasiran, with promise for correcting isolated hypercholesterolemia and moderate-to-severe hypertriglyceridemia, and support further studies of zodasiran in treating a wide spectrum of dyslipidemias. ClinicalTrials.gov registration: NCT03747224 .
Severe hypertriglyceridemia (HTG) is characterized by plasma triglyceride (TG) levels >500 mg/dL (SI: 5.7 mmol/L) (reference range, <150 mg/dL [SI: <1.7 mmol/L]) and is linked to cardiovascular disease and pancreatitis risk. Treatment typically involves dietary restrictions and lipid-lowering medications. Glycerol kinase deficiency (GKD) is a rare genetic disorder that causes pseudo-HTG. In SHASTA-2, a study of patients with severe HTG, most subjects (>90%) treated with plozasiran, an apolipoprotein C-III (APOC3) small interfering RNA (siRNA), achieved TG levels <500 mg/dL (SI: 5.7 mmol/L), below the risk threshold for acute pancreatitis. We report herein a case study of a 65-year-old male apparently not responding to plozasiran. The patient was shown to carry a loss-of-function variant in the GK gene resulting in GKD, with high free glycerol (40.24 mg/dL or 4.37 mmol/L) (reference range, 0.03-0.13 mmol/L) that contributed to an overestimation of TG concentration. After correcting for free glycerol, the patient was noted to have had mild HTG, with plozasiran treatment decreasing real TG values by up to 71%. This case report suggests that in the absence of response to APOC3 inhibition, measuring free glycerol could be clinically relevant. It also highlights that APOC3 inhibition has no effect on free glycerol concentration.
Full-length hepatitis B virus (HBV) transcripts of chimpanzees and patients treated with multidose (MD) HBV siRNA ARC-520 and entecavir (ETV) were characterized by single-molecule real-time (SMRT) sequencing, identifying multiple types of transcripts with the potential to encode HBx, HBsAg, HBeAg, core, and polymerase, as well as transcripts likely to be derived from dimers of dslDNA, and these differed between HBeAg-positive (HBeAg+) and HBeAg-negative (HBeAg−) individuals. HBV transcripts from the last follow-up ~30 months post-ARC-520 treatment were categorized from one HBeAg+ (one of two previously highly viremic patients that became HBeAg− upon treatment and had greatly reduced cccDNA products) and four HBeAg− patients. The previously HBeAg+ patient received a biopsy that revealed that he had 3.4 copies/cell cccDNA (two to three orders of magnitude more cccDNA than HBeAg− chimpanzees) but expressed primarily truncated X and HBsAg from iDNA, like two patients that were HBeAg− at the start of the study and had one copy/cell cccDNA. No HBV transcripts were detected in two other HBeAg− patients that had ~0.3 copies/cell cccDNA, one of which had seroconverted for HBsAg. The paucity of cccDNA-derived transcripts in the presence of high cccDNA demonstrates the transcriptional silencing of HBV following MD siRNA treatment with ETV.
ARO-HSD is a hepatocyte targeted siRNA therapeutic designed to silence HSD17β13 expression g D17β13 express ARO-HSD Favorable safety profile ARO-HSD was well tolerated with no treatment-related serious adverse events or drug discontinuations Proof of concept In this proof-of-concept study, ARO-HSD was well tolerated and able to significantly reduce HSD17β13 expression in a group of 18 patients, resulting in an improvement in markers of liver injury 18 Patients with suspected or confirmed NASH 16 Healthy volunteers ALT reduction -42.3% Mean change from baseline at day 71 at 200 mg HSD17β13 loss-of-function mutations have been shown to protect against alcoholic and non-alcoholic liver disease including NASH 16 Hepatic HSD17β13 mRNA reduction-93.4%Reduction from baseline at day 71 at 200 mg Hepatic HSD17β13 protein reduction -83.0%Reduction from baseline at day 71 at 200 mg Highlights HSD17B13 loss-of-function mutations are protective against alcohol-related and non-alcoholic liver disease, including NASH.ARO-HSD is a hepatocyte-targeted siRNA therapeutic designed to silence HSD17B13 expression.ARO-HSD demonstrated a favorable safety profile in healthy volunteers and patients with suspected NASH.Mean change from baseline at Day 71 in hepatic HSD17b13 mRNA was -93.4% (ARO-HSD 200 mg).
Elevated triglycerides and non-high-density lipoprotein cholesterol (HDL-C) are risk factors for atherosclerotic cardiovascular disease (ASCVD). ARO-ANG3 is an RNA interference therapy that targets angiopoietin-like protein 3 (ANGPTL3), a regulator of lipoprotein metabolism. This first-in-human, phase 1, randomized, placebo-controlled, open-label trial investigated single and repeat ARO-ANG3 doses in four cohorts of fifty-two healthy participants and one cohort of nine participants with hepatic steatosis, part of a basket trial. Safety (primary objective) and pharmacokinetics (in healthy participants) and pharmacodynamics (secondary objectives) of ARO-ANG3 were evaluated. ARO-ANG3 was generally well tolerated, with similar frequencies of treatment-emergent adverse events in active and placebo groups. Systemic absorption of ARO-ANG3 in healthy participants was rapid and sustained, with a mean Tmax of 6.0-10.5 h and clearance from plasma within 24-48 h after dosing with a mean t½ of 3.9-6.6 h. In healthy participants, ARO-ANG3 treatment reduced ANGPTL3 (mean -45% to -78%) 85 days after dose. Reductions in triglyceride (median -34% to -54%) and non-HDL-C (mean -18% to -29%) (exploratory endpoints) concentrations occurred with the three highest doses. These early-phase data support ANGPTL3 as a potential therapeutic target for ASCVD treatment. ClinicalTrials.gov identifier: NCT03747224.
BACKGROUND: Apolipoprotein C-III (APOC3) inhibits triglyceride clearance by reducing lipoprotein lipase–mediated hydrolysis and hepatocyte uptake of triglyceride-rich lipoproteins. ARO-APOC3, a hepatocyte-targeting RNA interference therapeutic, inhibits APOC3 messenger ribonucleic acid expression, lowering triglyceride levels. The objective of this trial was to assess the safety, pharmacodynamic variables, and pharmacokinetic variables of ARO-APOC3 treatment. METHODS: Healthy participants and adults with hypertriglyceridemia were randomly assigned to receive escalating single (day 1) or repeat (days 1 and 29) doses, respectively, of subcutaneous injections of ARO-APOC3 10, 25, 50, or 100 mg or placebo; they were followed up until day 113. Additional cohorts of healthy participants and adults with chylomicronemia received repeat doses of open-label ARO-APOC3. The primary objective was to evaluate the safety and side effect profile of ARO-APOC3. Key secondary and exploratory objectives included pharmacokinetic variables and changes in serum APOC3, triglyceride, and cholesterol levels. RESULTS: Eighty-eight participants received ARO-APOC3 and 24 participants received placebo across double-blind and open-label cohorts. Treatment-emergent adverse events (AEs) of transient, mild to moderate liver transaminase changes occurred in 10 participants: 1 patient receiving ARO-APOC3 25 mg, 5 patients receiving ARO-APOC3 50 mg, and 4 participants receiving ARO-APOC3 100 mg (1 healthy participant and 3 patients with hypertriglyceridemia). These events were asymptomatic, and transaminase levels returned to near baseline by the end of the trial. No AEs related to thrombocytopenia or platelet declines were reported. In the hypertriglyceridemia cohorts, the day 113 mean changes from baseline in APOC3 at the 10-, 25-, 50-, and 100-mg doses were −62.0%, −81.7%, −90.1%, and −94.4%, respectively, compared with −1.6% with placebo. This corresponded to median changes in triglyceride levels of −65.6%, −69.9%, −81.2%, and −81.0% compared with −2.8% with placebo. CONCLUSIONS: In this small trial of short duration, ARO-APOC3 was associated with few AEs and reduced serum levels of APOC3 and triglycerides in healthy participants and patients with hypertriglyceridemia. (Funded by Arrowhead Pharmaceuticals, Inc.; ClinicalTrials.gov number, NCT03783377.)
Background & Aims: Loss-of-function HSD17613 mutations protect against the development of chronic liver disease. HSD17613 inhibition represents a potential approach to treat liver diseases, such as non-alcoholic steatohepatitis (NASH). ARO-HSD is an RNA interference (RNAi) therapeutic designed to selectively reduce expression of HSD17#13 mRNA in hepatocytes. In this study, we evaluated the effects of ARO-HSD in normal healthy volunteers (NHVs) and patients with confirmed or clinically sus-pected NASH. Methods: The safety, tolerability, and pharmacodynamics of ARO-HSD were evaluated in 32 NHVs and 18 patients with confirmed/clinically suspected NASH. Double-blind NHV cohorts received single escalating doses of ARO-HSD (25, 50, 100, or 200 mg) or placebo subcutaneously on Day 1. Open-label patient cohorts received ARO-HSD (25, 100, or 200 mg) subcutaneously on Days 1 and 29. Liver biopsy was performed pre-dose and on Day 71 to evaluate expression levels of HSD17#13 mRNA and protein. Results: ARO-HSD treatment was well tolerated with no treatment-related serious adverse events or drug discontinuations. The most frequently reported treatment-emergent adverse events were mild injection site reactions, which were short in duration. Mean changes in hepatic HSD17#13 mRNA from baseline to Day 71 were:-56.9% (25 mg),-85.5% (100 mg), and-93.4% (200 mg). The mean HSD17#13 mRNA reduction was 78.6% (p <0.0001) across pooled cohorts. Hepatic HSD17613 protein levels were similarly reduced across doses. In patients, mean changes in alanine aminotransferase from baseline to Day 71 were-7.7% (25 mg),-39.3% (100 mg), and-42.3% (200 mg) (p <0.001 for pooled cohorts). Conclusions: ARO-HSD was well tolerated at doses <-200 mg. This proof-of-concept study demonstrated that short-term treatment with ARO-HSD reduces hepatic HSD17#13 mRNA and protein expression, which is accompanied by reductions in alanine aminotransferase.
Abstract Elevated triglycerides and non-HDL-cholesterol (C) are risk factors for atherosclerotic cardiovascular disease (ASCVD). AROANG3 is a RNA interference therapy targeting hepatocyte production of angiopoietin-like protein 3 (ANGPTL3), a regulator of lipoprotein metabolism. This Phase 1 trial (NCT03747224) investigated single and repeat doses of AROANG3 in healthy volunteers and repeat doses in subjects with hepatic steatosis. AROANG3 was well tolerated without adverse changes in liver fat in steatotic subjects. In healthy volunteers, ARO-ANG3 produced reductions in ANGPTL3 (mean − 45% to -78%) 12 weeks post-dose. Concurrent reductions in triglycerides (median 34% to 54%) and nonHDL-C (mean 18% to 29%) were observed with the 3 highest doses. Reduced LDL-C was seen with repeat dosing. The data support ANGPTL3 as a potential therapeutic target for treatment of ASCVD.
BACKGROUNDAlpha1-antitrypsin (AAT) deficiency results from carriage of a homozygous SERPINA1 "Z" mutation (proteinase inhibitor [PI] ZZ). The Z allele produces a mutant AAT protein called Z-AAT, which accumulates in hepatocytes and can lead to progressive liver disease and fibrosis. This open-label, phase 2 trial investigated the safety and efficacy of fazirsiran, an RNA interference therapeutic, in patients with liver disease associated with AAT deficiency.METHODSWe assigned adults with the PI ZZ genotype and liver fibrosis to receive fazirsiran at a dose of 200 mg (cohorts 1 [4 patients] and 2 [8 patients]) or 100 mg (cohort 1b [4 patients]) subcutaneously on day 1 and week 4 and then every 12 weeks. The primary end point was the change from baseline to week 24 (cohorts 1 and 1b) or week 48 (cohort 2) in liver Z-AAT concentrations, which were measured by means of liquid chromatography-mass spectrometry.RESULTSAll the patients had reduced accumulation of Z-AAT in the liver (median reduction, 83% at week 24 or 48). The nadir in serum was a reduction of approximately 90%, and treatment was also associated with a reduction in histologic globule burden (from a mean score of 7.4 [scores range from 0 to 9, with higher scores indicating a greater globule burden] at baseline to 2.3 at week 24 or 48). All cohorts had reductions in liver enzyme concentrations. Fibrosis regression was observed in 7 of 15 patients and fibrosis progression in 2 of 15 patients after 24 or 48 weeks. There were no adverse events leading to trial or drug discontinuation. Four serious adverse events (viral myocarditis, diverticulitis, dyspnea, and vestibular neuronitis) resolved.CONCLUSIONSIn this small trial, fazirsiran was associated with a strong reduction of Z-AAT concentrations in the serum and liver and concurrent improvements in liver enzyme concentrations. (Funded by Arrowhead Pharmaceuticals; AROAAT-2002 ClinicalTrials.gov number, NCT03946449.).
BACKGROUND & AIMS:RNA interference therapy has been shown to reduce hepatitis B surface antigen (HBsAg) levels in preclinical models, which could confer functional cure in patients with chronic hepatitis B. This phase IIa trial (ClinicalTrials.gov Identifier: NCT03365947) assessed the safety and efficacy of the small-interfering RNA JNJ-73763989 (JNJ-3989) plus a nucleos(t)ide analogue (NA), with/without the capsid assembly modulator JNJ-56136379 (JNJ-6379) in patients with chronic hepatitis B.METHODS:Treatment-naïve and NA-suppressed patients received 3 subcutaneous JNJ-3989 doses every week (QW; 100, 200, or 300 mg), 2 weeks (Q2W; 100 mg) or 4 weeks (Q4W; 25, 50, 100, 200, 300, or 400 mg), or JNJ-3989 Q4W (200 mg) plus oral JNJ-6379 250 mg daily for 12 weeks. Patients received NAs throughout.RESULTS:Eighty-four patients were recruited. All treatments were well tolerated, with all 5 serious adverse events considered unrelated to study drugs. JNJ-3989 100 to 400 mg Q4W resulted in HBsAg reductions ≥1 log10 IU/ml from baseline in 39/40 (97.5%) patients at the nadir. All patients receiving the triple combination (n = 12) had HBsAg reductions ≥1 log10 IU/ml from baseline at the nadir. HBsAg reductions were similar for HBeAg-positive (n = 21) and HBeAg-negative (n = 47) patients in all JNJ-3989 Q4W treatment arms, including the triple combination (n = 68). Smaller HBsAg reductions were seen with 25 mg (n = 8) and 50 mg (n = 8) than with 100 to 400 mg (n = 40). Shorter dosing intervals (QW [n = 12] and Q2W [n = 4]) did not improve response vs. Q4W dosing. HBsAg reductions ≥1 log10 IU/ml from baseline persisted in 38% of patients 336 days after the last JNJ-3989 dose.CONCLUSIONS:JNJ-3989 plus an NA, with/without JNJ-6379, was well tolerated and resulted in HBsAg reductions up to 336 days after the last JNJ-3989 Q4W dose.CLINICAL TRIAL NUMBER:NCT03365947.LAY SUMMARY:Hepatitis B virus affects people's livers and produces particles called hepatitis B surface antigen (HBsAg) that damage a person's liver and can help the virus infect a person for a long time, known as chronic hepatitis B (CHB). In this study, a new treatment called JNJ-3989 was assessed (in combination with normal treatment known as nucleos(t)ide analogues), for its safety and effectiveness in reducing the number of HBsAg particles in people with CHB. The results of this study showed that treatment with JNJ-3989 could be safe for people with CHB, lowered their HBsAg levels, and kept HBsAg levels lowered for 336 days in 38% of patients after receiving their last dose of JNJ-3989.
Chronic hepatitis B infection remains a globally important cause of morbidity and mortality and has recently undergone a renaissance in therapeutic interest with increased pre-clinical and clinical testing of new drug classes. One of the first new classes in the clinic was RNA interference agents, which have the potential to impact the entire viral life cycle by reducing all virus-produced mRNA. Early clinical testing with the first of these agents in the clinic, ARC-520, demonstrated that rapid and deep reductions in viral proteins, RNA and DNA could be produced with this approach, but also the surprising insight that HBsAg production from incomplete HBV DNA integrated into the host genome appears to play a heretofore unappreciated and important role in maintaining circulating HBsAg, thought to play a fundamental role in preventing host clearance of the virus. Thus, accounting for viral DNA integration in novel HBV treatment approaches may prove to be essential to achieving successful finite therapies of this difficult to treat chronic infection.
Background: Familial chylomicronemia syndrome (FCS) is an ultrarare condition caused by biallelic pathogenic DNA variants in lipolysis-associated genes, resulting in severe hypertriglyceridemia (HTG) and associated with high risk of acute pancreatitis with few therapeutic options. In a 16-week Phase 1 study (NCT03783377), subcutaneously administered ARO-APOC3 reduced serum apolipoprotein C3 (APOC3) and TG in healthy volunteers and participants (pts) with HTG and was well tolerated. Purpose: To report on the safety/pharmacodynamic (PD) effects of ARO-APOC3 in both FCS pts with biallelic pathogenic variants and pts with severely elevated TG at screening (>880 mg/dL) but without biallelic pathogenic variants (chylomicronemia (MCM)). Methods: Four genetically confirmed FCS pts received 50 mg ARO-APOC3 and 26 MCM pts received 10, 25, 50, or 100 mg ARO-APOC3 on Days 1 and 29. Since similar PD responses were observed among MCM pts, results were pooled across dose levels. Safety and PD responses were examined. Maximal mean/median changes from baseline for APOC3, TG, non-HDL-C, and HDL-C were reported. Results: Baseline/demographics were comparable between groups, except for mean BMI (22.1 [FCS] and 30.5 [MCM] kg/m 2 ), and mean baseline HDL-C , which were lower in FCS pts (Table 1) (p<0.0001 for both). Mean APOC3 was reduced by 98% and 96% in FCS and MCM pts, respectively. Both groups also showed similar maximum median reductions in TG of 91% and 90%, respectively. Similar to the full study, non-HDL-C was reduced and HDL-C increased with treatment in both groups (Table 1). AEs were similar between groups, suggesting a comparable safety profile. Conclusions: In patients with severe HTG, ARO-APOC3 was safe, and consistently decreased APOC3, TG, and non-HDL-C, and increased HDL-C, regardless of underlying genetic cause of HTG, and may represent a promising RNAi therapeutic for the treatment of severe HTG.
Background: Angiopoietin-like protein 3 (ANGPTL3) regulates triglyceride (TG) and lipoprotein (LP) metabolism by inhibiting liver and endothelial LP lipases and reduces plasma LDL-C. In Phase 1 Study AROANG1001 (NCT03747224), single and multiple doses of RNA interference therapeutic ARO-ANG3 (100, 200, or 300 mg; n=36) in healthy volunteers substantially reduced ANGPTL3, LDL-C, and other LPs (AHA 2019) compared with placebo (n=16). Purpose: We report preliminary results following repeat doses (days 1 and 29) of ARO-ANG3 in patients with heterozygous familial hypercholesterolemia (FH) with elevated LDL-C despite statin therapy and average LDL-C of 130 mg/dL. An additional group (non-FH patients) had LDL-C > 70 mg/dL despite statin therapy. Methods: Seventeen FH patients received open-label, subcutaneous, ARO-ANG3 100 mg (n=6), 200 mg (n=6), or 300 mg (n=5). Nine non-FH, high risk patients with elevated LDL-C not at goal received either 200 mg ARO-ANG3 (n=6) or placebo (n=3) using a randomized double-blind design. Pharmacodynamic markers included serum ANGPTL3, LDL-C, TG, and others. Results: Results are reported as of 04 May 2020. In FH patients, ARO-ANG3 significantly reduced mean ANGPTL3 levels between 62-92% at week 16 in a dose-dependent manner (Table). LDL-C (23-37%) and TG (25-43%) were consistently reduced at all doses (Table). The mean percent reductions in non-FH patients for ANGPTL3 (85%), LDL-C (28%), and TG (29%) were comparable to those in FH patients, despite their initially lower LDL-C at baseline. As of 15 May 2020, there were no drug-related serious or severe adverse events (AEs) or discontinuations and most AEs were mild. The most common AEs reported in subjects receiving ARO-ANG3 were respiratory tract infection (30% of subjects) and injection site AEs (13% of subjects). Conclusions: In FH and non-FH patients, repeat doses of ARO-ANG3 significantly reduced ANGPTL3, LDL-C, and TG, with favorable safety.
Arrowhead Pharmaceuticals, PI for AROANG1001.
The autosomal codominant genetic disorder alpha-1 antitrypsin (AAT) deficiency (AATD) causes pulmonary and liver disease. Individuals homozygous for the mutant Z allele accumulate polymers of Z-AAT protein in hepatocytes, where AAT is primarily produced. This accumulation causes endoplasmic reticulum (ER) stress, oxidative stress, damage to mitochondria, and inflammation, leading to fibrosis, cirrhosis, and hepatocellular carcinoma. The magnitude of AAT reduction and duration of response from first-generation intravenously administered RNA interference (RNAi) therapeutic ARC-AAT and then with next-generation subcutaneously administered ARO-AAT were assessed by measuring AAT protein in serum of the PiZ transgenic mouse model and human volunteers. The impact of Z-AAT reduction by RNAi on liver disease phenotypes was evaluated in PiZ mice by measuring polymeric Z-AAT in the liver; expression of genes associated with fibrosis, autophagy, apoptosis, and redox regulation; inflammation; Z-AAT globule parameters; and tumor formation. Ultrastructure of the ER, mitochondria, and autophagosomes in hepatocytes was evaluated by electron microscopy. In mice, sustained RNAi treatment reduced hepatic Z-AAT polymer, restored ER and mitochondrial health, normalized expression of disease-associated genes, reduced inflammation, and prevented tumor formation. RNAi therapy holds promise for the treatment of patients with AATD-associated liver disease. ARO-AAT is currently in phase II/III clinical trials.