Alglucosidase alfa 2.2g/1litre infusion bags
Requires a prescription from a doctor or prescriber
Aglucosidase alfa consists of the human enzyme acid alpha-glucosidase (GAA) which is essential for the degradation of glygogen to glucose in lysosomes.
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Therapeutically similar medicines
Similarity is based on WHO Anatomical Therapeutic Chemical (ATC) classification and on a factual NHS dm+d therapeutic-grouping code prefix. Source data: NHS dm+d via TRUD (OGL v3.0), WHO ATC/DDD Index.
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Guidelines from the National Institute for Health and Care Excellence
NICE clinical guidance(2)
Avalglucosidase alfa for treating Pompe disease (TA821)
Cipaglucosidase alfa with miglustat for treating late-onset Pompe disease (TA912)
Source: National Institute for Health and Care Excellence (NICE). Contains public sector information licensed under the Open Government Licence v3.0.
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SNOMED CT and dm+d codes from NHS TRUD (Technology Reference data Update Distribution), licensed under the Open Government Licence v3.0. ATC codes from the WHO Collaborating Centre for Drug Statistics Methodology (whocc.no).
Active and completed clinical studies from ClinicalTrials.gov
Source: ClinicalTrials.gov, a database of the U.S. National Library of Medicine (NLM), National Institutes of Health (NIH). Data accessed via ClinicalTrials.gov API v2. Trial information is provided for research purposes and does not constitute medical advice.
Academic studies and reviews for this medicine's active substance
Showing the 50 most relevant studies.
Reviews & meta-analyses: 10 · Randomised trials: 4 · 2010–2026
Showing the 50 most relevant studies, sorted by most relevant.
B. Schoser, A. Stewart, S. Kanters, et al.
Journal of Neurology, 2016
- Glycogen Storage Disease Type II
- alpha-Glucosidases
Diaz-Manera J, Kishnani PS, Kushlaf H, et al.
2021
- Glycogen Storage Disease Type II
- alpha-Glucosidases
- Walking
A. D. Dornelles, A. P. P. Junges, B. Krug, et al.
Frontiers in Pediatrics, 2024
IntroductionPompe disease (PD) is a glycogen disorder caused by the deficient activity of acid alpha-glucosidase (GAA). We sought to review the latest available evidence on the safety and efficacy of recombinant human GAA enzyme replacement therapy (ERT) for infantile-onset PD (IOPD).MethodsWe systematically searched the MEDLINE (via PubMed) and Embase databases for prospective clinical studies evaluating ERT for IOPD on pre-specified outcomes. Meta-analysis was also performed.ResultsOf 1,722 articles identified, 16 were included, evaluating 316 patients. Studies were heterogeneous and with very low certainty of evidence for most outcomes. A moderate/high risk of bias was present for most included articles. The following outcomes showed improvements associated with alglucosidase alfa, over natural history of PD/placebo, for a mean follow-up of 48.3 months: left ventricular (LV) mass {mean change 131.3 g/m2 [95% confidence interval (CI) 81.02, 181.59]}, time to start ventilation (TSV) [HR 0.21 (95% CI: 0.12, 0.36)], and survival [HR 0.10 (95% CI: 0.05, 0.19)]. There were no differences between the pre- and post-ERT period for myocardial function and psychomotor development. Adverse events (AEs) after ERT were mild in most cases.ConclusionOur data suggest that alglucosidase alfa potentially improves LV mass, TSV, and survival in IOPD patients, with no important safety issues.Systematic Review RegistrationPROSPERO identifier (CRD42019123700).
Abstract licence: CC BY 4.0
Shohet S, Hummel N, Fu S, et al.
2024
- Glycogen Storage Disease Type II
- 1-Deoxynojirimycin
- Enzyme Replacement Therapy
Aim: Late-onset Pompe disease is characterized by progressive loss of muscular and respiratory function. Until recently, standard of care was enzyme replacement therapy (ERT) with alglucosidase alfa. Second-generation ERTs avalglucosidase alfa (aval) and cipaglucosidase alfa with miglustat (cipa+mig) are now available. Without head-to-head trials comparing aval with cipa+mig, an indirect treatment comparison is informative and timely for understanding potential clinical differentiation. Materials & methods: A systematic literature review was performed to identify relevant studies on cipa+mig and aval. Using patient-level and aggregate published data from randomized controlled trials (RCTs) and phase I/II and open-label extension (OLE) trials, a multi-level network meta-regression was conducted, adjusting for various baseline covariates, including previous ERT duration, to obtain relative effect estimates on 6-minute walk distance (6MWD, meters [m]) and forced vital capacity (FVC, % predicted [pp]). Analyses of two networks were conducted: Network A, including only RCTs, and network B, additionally including single-arm OLE and phase I/II studies. Results: Network B (full evidence analysis) showed that cipa+mig was associated with a relative increase in 6MWD (mean difference 28.93 m, 95% credible interval [8.26-50.11 m]; Bayesian probability 99.7%) and FVC (2.88 pp [1.07-4.71 pp]; >99.9%) compared with aval. The comparison between cipa+mig and aval became more favorable for cipa+mig with increasing previous ERT duration for both end points. Analysis of network A showed that cipa+mig was associated with a relative decrease in 6MWD (-10.02 m [-23.62 to 4.00 m]; 91.8%) and FVC (-1.45 pp [-3.01 to 0.07 pp]; 96.8%) compared with aval. Conclusion: Cipa+mig showed a favorable effect versus aval when all available evidence was used in the analysis.
Abstract licence: CC BY-NC-ND
Schoser B, Roberts M, Byrne BJ, et al.
2021
- Glycogen Storage Disease Type II
- 1-Deoxynojirimycin
- alpha-Glucosidases
Shuai Fu, Noemi Hummel, Simon Shohet, et al.
Journal of Comparative Effectiveness Research, 2026
- Glycogen Storage Disease Type II
- 1-Deoxynojirimycin
- alpha-Glucosidases
Aim: Treatment options for late-onset Pompe disease (LOPD) include enzyme replacement therapy (ERT) with alglucosidase alfa (alg), cipaglucosidase alfa plus miglustat (cipa + mig) and avalglucosidase alfa. However, only one randomized controlled trial (RCT) directly compared cipa + mig and alg and had relatively few ERT-naive patients. A multilevel network meta-regression (ML-NMR) integrated individual patient data and aggregate data into indirect treatment comparisons, with relative effects adjusted to any target population, to compare the efficacy of cipa + mig and alg. Materials & methods: A Bayesian ML-NMR was conducted to compare the efficacy of cipa + mig and alg for 6-minute walk distance (6MWD, meters) and percent predicted forced vital capacity (ppFVC) across any target population, using patientlevel and aggregate data from RCTs (PROPEL, COMET, LOTS) and phase I/II and open-label extension (OLE) trials (PROPEL OLE, LOTS OLE, COMET OLE, ATB200-02, NEO-1/NEO-EXT), adjusting for baseline covariates. Relative effect estimates were obtained for 6MWD and ppFVC change from baseline to week 52. Two networks were analyzed: network A (RCTs only) and network B (RCTs and single-arm OLE and phase I/II studies matched to comparator arms). To assess the impact of prior ERT exposure, simulations were conducted by only varying ERT duration among included covariates. Results: For cipa + mig compared with alg, both networks were associated with relative increases in 6MWD (mean difference [95% credible interval], Bayesian probability for network A: 13.48 m [6.79, 19.85], >99.9%; network B: 12.59 m [7.89, 17.45], >99.9%) and ppFVC (network A: 1.63% [0.71, 2.60], >99.9%; network B: 3.17% [2.53, 3.81], >99.9%). Network B suggested cipa + mig was favorable (>99.9%) in all groups for both end points and appeared more favorable with increasing ERT duration. Conclusion: Cipa + mig was associated with an improvement in 6MWD and ppFVC relative to alg independent of prior ERT exposure, which appeared more favorable when all available evidence was used. These data could inform decision-making in treating ERT-naive and ERT-experienced patients with LOPD.
Abstract licence: CC BY
Márcia Gisele Santos da Costa, Marisa Santos
International Journal of Technology Assessment in Health Care, 2018
Kishnani PS, Díaz-Manera J, Illarioshkin S, et al.
2025
- Glycogen Storage Disease Type II
- alpha-Glucosidases
Background and objectivesIn the COMET trial, avalglucosidase alfa treatment for late-onset Pompe disease was safe, tolerable and associated with stabilization or improvement in disease parameters through 97 weeks. We report outcomes in the trial extension through 145 weeks of treatment.MethodsIn this phase 3, double-blind, randomized trial, participants with previously untreated late-onset Pompe disease were randomly assigned to receive 20 mg/kg avalglucosidase alfa or alglucosidase alfa every other week for 49 weeks; thereafter, all patients received 20 mg/kg avalglucosidase alfa every other week. For this analysis, efficacy was assessed at 145 weeks and safety to last follow-up (data cutoff: March 11, 2022).ResultsOf 100 participants in the double-blind treatment period, 95 entered the open-label extension, and 88 completed ≥ 145 weeks of treatment. At study start, the mean upright FVC percent predicted was similar between treatment arms, and 6MWT distance was greater in the avalglucosidase alfa arm. From baseline to week 145, the LS mean (SE) FVC percent predicted increased by 1.38 (1.22) in the avalglucosidase alfa arm and 1.25 (1.34) in the switch arm. The LS mean (SE) 6MWT distance walked increased by 20.65 (9.60) m and 0.29 (10.42) m, respectively. Potentially treatment-related adverse events were reported in 27 patients (53%) in the avalglucosidase alfa arm and 25 patients (57%) in the switch arm. Anti-drug antibodies declined over time in both arms.ConclusionsIn this randomized clinical trial extension, positive clinical outcomes were maintained for patients taking avalglucosidase alfa for up to 145 weeks with no new safety concerns.Trial registrationClinicalTrials.gov, NCT02782741, https://clinicaltrials.gov/ct2/show/NCT02782741 . Registration date: 2016-05-23; Date of first patient enrolled: 2016-11-02.
Abstract licence: CC BY-NC-ND
van der Beek NAME, Potters LH, Schoser B
2025
- Glycogen Storage Disease Type II
- alpha-Glucosidases
- Enzyme Replacement Therapy
Purpose of reviewTo review the clinical trial results and emerging real-world data of two new enzyme replacement therapies (ERTs) for late-onset Pompe disease and to compare these effects in the context of what has been achieved over the last two decades in advancing care for Pompe disease.Recent findingsRandomized controlled trials (RCTs) of avalglucosidase alfa and cipaglucosidase alfa plus miglustat have demonstrated that both treatments are at least as efficacious as alglucosidase alfa and possess a comparable safety profile. Several post hoc analyses of the trial data have shown that these newer ERTs result in a greater percentage of patients achieving meaningful improvements and larger reductions in biomarker levels. The first real-world data on switching from alglucosidase alfa to avalglucosidase alfa has shown that the switch is safe and may alter individual disease trajectories.SummaryThe advent of two next-generation enzyme replacement therapies marks a new era in treating patients diagnosed with Pompe disease. Clinical trials and early real-world data suggest that they may be superior to alglucosidase alfa, the standard of care for the past 20 years, although head-to-head comparisons between all three treatments are lacking. More data will become available over the next 5 years, leading to better guidelines for starting, stopping and switching therapies based on a more personalized assessment of outcomes.
Abstract licence: CC BY
van der Ploeg AT, Clemens PR, Corzo D, et al.
2010
- Glycogen Storage Disease Type II
- Drug Hypersensitivity
- alpha-Glucosidases
Sources: aggregated from Europe PMC (EMBL-EBI), OpenAlex, Crossref, PubMed and other open scholarly databases. Retracted articles are excluded. Study information is provided for research purposes and does not constitute medical advice.
Pharmacology and chemical data from DrugBank
Key facts
Drug status
Approved
Major interactions
None known
Half-life
0.4 hours
Mechanism
Alglucosidase alfa is designed to act as an exogenous source of GAA, acting to c…
Food interactions
None known
Human targets
4 targets
Data: DrugBank · CC BY-NC 4.0
Pharmacokinetics at a glance
Half-life
0.4 hours
Volume of distribution
16 mL
* 119 ± 28 mL/kg [40 mg/kg dose]
Elimination
Clearance
4 mL
Pharmacokinetic data: DrugBank · CC BY-NC 4.0
How the body processes this drug — absorption, distribution, metabolism, and elimination
* 119 ± 28 mL/kg [40 mg/kg dose]
Proteins and enzymes this drug interacts with in the body
PMID:14695532 PMID:18429042 PMID:1856189 PMID:7717400
Has highest activity on alpha-1,4-linked glycosidic linkages, but can also hydrolyze alpha-1,6-linked glucans PMID:29061980
PMID:18817523 PMID:2963003
Lysosomal enzymes bearing phosphomannosyl residues bind specifically to mannose-6-phosphate receptors in the Golgi apparatus and the resulting receptor-ligand complex is transported to an acidic prelysosomal compartment where the low pH mediates the dissociation of the complex .
PMID:18817523 PMID:2963003
The receptor is then recycled back to the Golgi for another round of trafficking through its binding to the retromer .
PMID:18817523
This receptor also binds IGF2 .
PMID:18046459
Acts as a positive regulator of T-cell coactivation by binding DPP4 PMID:10900005
ATC A16AB07
Chemical identifiers
CAS, UNII, InChI Key and database cross-references
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Chemical identifiers
CAS, UNII, InChI Key and database cross-references
Linked compound data from DrugBank Open Data (CC BY-NC 4.0)
Alglucosidase alfa
Additional database identifiers
Drugs Product Database (DPD)
19883
HUGO Gene Nomenclature Committee (HGNC)
HGNC:4065
GenAtlas
GAA
GeneCards
GAA
GenBank Gene Database
Y00839
GenBank Protein Database
31608
Guide to Pharmacology
2611
UniProt Accession
LYAG_HUMAN
HUGO Gene Nomenclature Committee (HGNC)
HGNC:6752
GeneCards
M6PR
UniProt Accession
MPRD_HUMAN
HUGO Gene Nomenclature Committee (HGNC)
HGNC:5467
GeneCards
IGF2R
GenBank Gene Database
Y00285
GenBank Protein Database
33055
UniProt Accession
MPRI_HUMAN
DrugBank citations
If you use DrugBank data in your research, please cite:
- DrugBank 6.02024Recommended citationKnox C., Wilson M., Klinger C.M., et alDrugBank 6.0: the DrugBank Knowledgebase for 2024Nucleic Acids Res. 2024 Jan 552(D1):D1265-D1275
- DrugBank 5.02018Wishart D.S., Feunang Y.D., Guo A.C., et alDrugBank 5.0: a major update to the DrugBank database for 2018Nucleic Acids Res. 2017 Nov 846(D1):D1074-D1082
- DrugBank 4.02014Law V., Knox C., Djoumbou Y., et alDrugBank 4.0: shedding new light on drug metabolismNucleic Acids Res. 2014 Jan 142(1):D1091-7
- DrugBank 3.02011Knox C., Law V., Jewison T., et alDrugBank 3.0: a comprehensive resource for 'omics' research on drugsNucleic Acids Res. 2011 Jan39(Database issue):D1035-41
- DrugBank 2.02008Wishart D.S., Knox C., Guo A.C., et alDrugBank: a knowledgebase for drugs, drug actions and drug targets.Nucleic Acids Research2008 Jan36(Database issue):D901-6
- DrugBank 1.02006Wishart D.S., Knox C., Guo A.C., et alDrugBank: a comprehensive resource for in silico drug discovery and exploration.Nucleic Acids Research2006 Jan 134(Database issue):D668-72