Cipaglucosidase alfa 105mg powder for solution for infusion vials
Requires a prescription from a doctor or prescriber
Safety information for pregnancy and breastfeeding
Pregnancy
Based on findings from animal reproduction studies, cipaglucosidase alfa in combination with Opfolda may cause embryo-fetal harm when administered to a pregnant female and is contraindicated during pregnancy.
Always consult your doctor or midwife before taking any medicine during pregnancy or while breastfeeding. Source: DrugBank (CC BY-NC 4.0).
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Data from the MHRA Yellow Card scheme. A reported reaction does not necessarily mean the medicine caused it. Contains public sector information licensed under the Open Government Licence v3.0.
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Pombiliti 105mg powder for concentrate for solution for infusion vials
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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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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Codes for healthcare professionals and prescribing systems
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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: 9 · Randomised trials: 15 · 1998–2026
Showing the 50 most relevant studies, sorted by most relevant.
J. M. Kirkwood, M. H. Strawderman, M. Ernstoff, et al.
Journal of Clinical Oncology, 2023
E. Van Cutsem, M. Tempero, D. Sigal, et al.
Journal of Clinical Oncology, 2020
H. Gisslinger, C. Klade, P. Georgiev, et al.
The Lancet. Haematology, 2020
U. Platzbecker, M. D. Della Porta, V. Santini, et al.
Lancet, 2023
M. Haynes, R. Giovanelli, B. Kent, et al.
The Astrophysical Journal, 2018
J. Díaz-Manera, P. Kishnani, H. Kushlaf, et al.
The Lancet. Neurology, 2021
Dornelles AD, Junges APP, Krug B, et al.
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
Ditters IAM, van Kooten HA, van der Beek NAME, et al.
2023
- Glycogen Storage Disease Type II
- alpha-Glucosidases
- Enzyme Replacement Therapy
BackgroundPompe disease is a lysosomal storage disease characterised by skeletal and respiratory muscle weakness. Since 2006, enzyme replacement therapy (ERT) with alglucosidase alfa has been available. ERT significantly improves the prognosis of patients with Pompe disease. The effect of high antibody titres on treatment response in adults with late-onset Pompe disease (LOPD) remains unclear but may contribute to interpatient variation. We therefore conducted a systematic review on this subject.MethodsA systematic search was performed in Embase, Medline Ovid, Web of Science, Psych Info Ovid, Cochrane (Clinical Trials only), and Google Scholar (random top-200). Articles were included if they involved adults with LOPD treated with alglucosidase alfa and mentioned anti-rhGAA antibodies or antibody titres. In addition, articles mentioning dosages different from the standard recommended dosage were included.ResultsOur literature search retrieved 2562 publications, and 17 fulfilled our selection criteria, describing 443 cases. Seven publications reported on anti-rhGAA antibody titres on a group level, with the percentage of patients with a high titre as defined in the included articles ranging from 0-33%. Six publications reported on the effect of anti-rhGAA antibody titre on clinical course, and four found no correlation. Two studies reported a negative effect on treatment. The first study found a greater improvement in Medical Research Council (MRC) score in patients with no detectable antibody titre. In the second study, a patient discontinued ERT due to a declining neuromuscular state as a result of high anti-rhGAA antibody titres. Seven publications reported on 17 individual patients with a high antibody titre (range 1:12,800-1:3,906,250). In only two cases were high-sustained neutralising antibodies reported to interfere with treatment efficacy.ConclusionsNo clear effect of anti-rhGAA IgG antibodies on treatment response could be established for the majority of LOPD patients with a high antibody titre. In a minority of patients, a clinical decline related to (possible) interference of anti-rhGAA antibodies was described.
Abstract licence: CC BY
B. Cho, J. Lee, Yi-long Wu, et al.
Journal of thoracic oncology : official publication of the International Association for the Study of Lung Cancer, 2023
T. Barbui, A. Vannucchi, V. De Stefano, et al.
The Lancet. Haematology, 2021
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
1.6 to 2.6 hours
Mechanism
Pompe disease, also known as glycogen storage disease type II (GSD II), is a rar…
Food interactions
None known
Human targets
1 target
Data: DrugBank · CC BY-NC 4.0
Pharmacokinetics at a glance
Absorption
24 hours
Half-life
1.6 to 2.6 hours
[L46721]
Protein binding
[L46721]
Volume of distribution
2.0 to 4.7 L
Metabolism
Elimination
[L46721]
Clearance
27%
[L46721]
Pharmacokinetic data: DrugBank · CC BY-NC 4.0
In December 2022, the EMA's Committee for Medicinal Products for Human Use (CHMP) recommended cipaglucosidase alfa be granted marketing authorization for the treatment of Pompe disease,[L45275] and the EMA fully approved the drug on March 27, 2023.[A259882] Cipaglucosidase alfa is coadministered with [miglustat], a small-molecule pharmacological chaperone that stabilizes the conformation of the enzyme.[A232955][A232960] In September 2023, the FDA also approved cipaglucosidase alfa for similar indications.[L49241]
[L46721][L49236]
[L46721]
Based on findings from animal reproduction studies, cipaglucosidase alfa in combination with Opfolda may cause embryo-fetal harm when administered to a pregnant female and is contraindicated during pregnancy. In a rabbit embryo-fetal development study, great vessel and cardiac malformations were increased in the offspring of pregnant rabbits treated with cipaglucosidase alfa in combination with miglustat at 16-fold and 3-fold, respectively, the maximum recommended human dose (MRHD) of cipaglucosidase alfa and Opfolda based on plasma AUC exposure.
A No Observed Adverse Effect Level (NOAEL) was not identified for the combination. In a pre-and post-natal development study in rats, increases in pup mortality were seen following maternal treatment with cipaglucosidase alfa (400 mg/kg) in combination with miglustat, or with cipaglucosidase alfa (400 mg/kg) alone. The NOAEL for cipaglucosidase alfa-atga alone is 150 mg/kg (5-fold the cipaglucosidase alfa MRHD margin).
A NOAEL for the combination was not identified. Margins at the lowest observed adverse effect level (LOAEL), relative to exposures at the MRHD of cipaglucosidase alfa and Opfolda were 21- and 4-fold, respectively, based on plasma AUC exposure.
[L49236]
Studies in animals to evaluate the carcinogenic, mutagenic, or genotoxic potential of cipaglucosidase alfa have not been conducted.
[L49236]
While cipaglucosidase alfa is reported to exhibit better cellular uptake and lysosomal trafficking compared to other existing replacement therapies, one study reported that cipaglucosidase alfa plus miglustat did not achieve statistical superiority to [alglucosidase alfa] plus placebo for improving 6-min walk distance in patients with late-onset Pompe disease.[A257320]
How the body processes this drug — absorption, distribution, metabolism, and elimination
[L46721]
The Cmax and AUC following the administration of cipaglucosidase alfa 20 mg/kg in combination with miglustat 260 mg were 345 mcg/mL and 1812 mcg*h/mL, respectively. The Cmax and AUC following the administration of cipaglucosidase alfa 20 mg/kg alone were 325 mcg/mL and 1410 mcg*h/mL.
[L46721]
[L46721]
[L46721]
[L46721]
[L46721][L49236]
[L46721]
[L46721]
Proteins and enzymes this drug interacts with in the body
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 A16AB23
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)
Cipaglucosidase alfa
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