Calcifediol 266microgram capsules
Requires a prescription from a doctor or prescriber
The major circulating metabolite of vitamin D3 (cholecalciferol).
Official documents, adverse reaction reporting, and safety monitoring
Report a side effect
Submit a Yellow Card report to the MHRA
Safety monitoring data
Yellow Card reports
The MHRA Yellow Card scheme collects reports of suspected side effects from healthcare professionals and patients. View the Drug Analysis Profile (iDAP) for real-world adverse reaction data.
View Drug Analysis Profile
Browse all Drug Analysis Profiles A–Z
Browse all iDAP reports
Interactive Drug Analysis Profiles for all medicines
Report a side effect
Submit a Yellow Card report to the MHRA
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.
EudraVigilance
The European Medicines Agency (EMA) collects suspected adverse reaction reports from across the EU/EEA through the EudraVigilance system. Search for safety data on this medicine.
View EudraVigilance report
Suspected adverse reactions reported for Calcifediol
About EudraVigilance
Learn about EU pharmacovigilance and safety monitoring
EudraVigilance data is published by the European Medicines Agency (EMA). A suspected adverse reaction is not necessarily caused by the medicine.
1 branded products available
MHRA licensed products
View all licensed products for Calcifediol on the MHRA register
Domnisol 266microgram capsules
This is the NHS Drug Tariff indicative price used for reimbursement purposes. It may not reflect the price paid by patients or pharmacies.
View full Drug TariffSource: NHS Drug Tariff via NHSBSA. Derived from dm+d VMPP (Virtual Medicinal Product Pack) pricing data. Contains public sector information licensed under the Open Government Licence v3.0.
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.
NHS prescribing volume and spending trends
Check stock at pharmacies and supply information
Pharmacy stock checkers
Search for this medicine at major UK pharmacy chains. These links open the retailer's own website — results depend on their current online catalogue.
Supply & safety information
Official UK regulator monitoring and safety alerts
Pharmacy links redirect to the retailer's own search and do not represent real-time stock levels. Shortage and safety information sourced from MHRA drug safety updates (gov.uk, Crown Copyright under OGL v3.0).
Codes for healthcare professionals and prescribing systems
These codes are used by healthcare IT systems and prescribers to identify this medicine.
NHS UK identifiers
Browse tools
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: 15 · Randomised trials: 33 · 2016–2026
Showing the 50 most relevant studies, sorted by most relevant.
J. M. Quesada-Gomez, R. Bouillon
Osteoporosis International, 2018
M. Franchi, J. Gunnarsson, Emilio Gonzales-Parra, et al.
The Journal of Clinical Endocrinology and Metabolism, 2023
M. Franchi, A. Galassi, G. Corrao
Giornale italiano di nefrologia : organo ufficiale della Societa italiana di nefrologia, 2023
M. Barbagallo, N. Veronese, Agnese Di Prazza, et al.
Nutrients, 2022
Z. Maghbooli, M. Sahraian, Saeidreza Jamalimoghadamsiahkali, et al.
Endocrine Practice, 2021
Anouk M M Vaes, M. Tieland, Margot de Regt, et al.
Clinical nutrition, 2017
Marta Entrenas Castillo, L. E. Entrenas Costa, J. M. Vaquero Barrios, et al.
The Journal of Steroid Biochemistry and Molecular Biology, 2020
Albert Shieh, Christina Ma, R. Chun, et al.
The Journal of Clinical Endocrinology & Metabolism, 2017
Charles W. Bishop, Akhtar Ashfaq, John Choe, et al.
American Journal of Nephrology, 2025
- Kidney Failure, Chronic
- Hyperparathyroidism, Secondary
- Calcifediol
Abstract Introduction: Serum concentrations of 25-hydroxyvitamin D (25D) and 1,25-dihydroxyvitamin D (1,25D) decline as chronic kidney disease (CKD) advances, becoming insufficient without effective vitamin D repletion and driving onset of secondary hyperparathyroidism (SHPT). Randomized controlled trials (RCTs) in non-dialysis CKD patients have established that extended-release calcifediol (ERC) effectively raises 25D and 1,25D and reduces elevated intact parathyroid hormone (iPTH) despite the progressive loss of renal cytochrome P450 25D-1α-hydroxylase (CYP27B1), suggesting its potential usefulness in treating SHPT in end-stage kidney disease (ESKD). Methods: This pilot RCT explored the safety and efficacy of oral ERC to raise serum total 25D to ≥50 ng/mL, normalize circulating 1,25D, and reduce elevated iPTH in ESKD patients requiring regular hemodialysis (HD). Forty-four adults from 13 US clinics requiring HD three times per week were washed out from iPTH-lowering therapies and randomized 3:1 to 26 weeks of treatment with ERC (300 µg/HD) or placebo. Participants had a mean age of 56.4 ± 11.6 years, body mass index of 32.7 ± 8.1 kg/m2, 46% were female, 68% black, 30% white, and 24% Hispanic. At randomization, iPTH had to be 300 to <1,200 pg/mL, 25D <50 ng/mL, corrected serum calcium <9.8 mg/dL, and phosphorus <6.5 mg/dL. These parameters were monitored weekly or biweekly and 1,25D quarterly. Results: Mean (±SE) serum total 25D rose with ERC treatment from 24.1 ± 1.7 ng/mL at baseline (BL) to steady-state levels of 157.7 ± 10.4 (p < 0.001) after 12 weeks, with all individual levels exceeding 50 ng/mL but varying inversely with body weight. Serum 25D levels declined with placebo treatment from 36.0 ± 5.3 to 30.6 ± 5.5 ng/mL. Mean 1,25D rose from 9.4 ± 1.2 to 50.7 ± 7.8 pg/mL (p < 0.001) with ERC and concentrations surpassed 19.9 pg/mL (lower limit of normal) in 93% of participants. Mean iPTH increased 19.8 ± 10.6% from BL with placebo (497.6 ± 69.2 to 593.1 ± 95.1 pg/mL) but decreased 1.7 ± 4.7% (p < 0.05) with ERC (530.4 ± 29.4 to 529.6 ± 43.7 pg/mL). A strong correlation was observed with ERC treatment between serum 1,25D and 25D (R2 = 0.8248; p < 0.001) indicating that, on average, 1,25D normalized as 25D reached ≥50 ng/mL. Increases in mean serum calcium or phosphorus, episodes of hypercalcemia, or treatment-emergent adverse events were not observed with ERC treatment. Conclusion: ERC safely raised serum total 25D, normalized low serum 1,25D, and stabilized elevated plasma iPTH in this pilot placebo-controlled RCT involving ESKD patients requiring regular HD. The observed increases in 1,25D indicated that ERC restored adequate endogenous vitamin D hormone production via substrate-driven conversion to calcitriol in extrarenal tissues expressing CYP27B1, thereby preventing further SHPT progression. Plain Language Summary Hemodialysis (HD) patients typically have insufficient blood concentrations of vitamin D hormone due to the loss of a key enzyme (CYP27B1) which is sufficiently expressed only in healthy kidneys. Low blood levels of vitamin D hormone cause progressive secondary hyperparathyroidism (SHPT) and an increased risk of death due to vascular calcification. Vitamin D hormone replacement therapy, the standard treatment for these patients, increases the risk of vascular calcification by altering the metabolism of calcium and phosphorus. Extended-release calcifediol (ERC) was evaluated as a potentially safer alternative to hormone replacement therapy in a pilot randomized controlled trial involving 33 HD patients treated for 26 weeks with a high weekly dose versus 11 treated with a placebo. The trial explored whether ERC could normalize circulating hormone concentrations in patients requiring regular HD. ERC successfully increased vitamin D hormone production and restored blood levels to normal in 93% of treated patients without altering circulating concentrations of calcium or phosphorus, thereby stopping the progression of SHPT. ERC safely restored normal vitamin D hormone production in HD patients despite the loss of renal CYP27B1 in kidney failure. The efficacy of ERC was likely due to its ability to support vitamin D hormone production in nonrenal tissues which also express CYP27B1. These findings indicate that treatment with ERC could make vitamin D hormone therapy unnecessary in patients with end-stage kidney disease.
Abstract licence: CC BY-NC
J. Pérez-Castrillón, A. Dueñas-Laita, C. Gómez-Alonso, et al.
Journal of Bone and Mineral Research, 2023
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
288 hours
Mechanism
Calcidiol is transformed in the kidney by 25-hydroxyvitamin D3-1-(alpha)-hydroxy…
Food interactions
1 warning
Human targets
1 target
Data: DrugBank · CC BY-NC 4.0
Pharmacokinetics at a glance
Absorption
Half-life
288 hours
Metabolism
Pharmacokinetic data: DrugBank · CC BY-NC 4.0
Known interactions with other medicines. Always consult a healthcare professional.
Showing 50 of 156 interactions
How the body processes this drug — absorption, distribution, metabolism, and elimination
Proteins and enzymes this drug interacts with in the body
PMID:10678179 PMID:15728261 PMID:16913708 PMID:28698609 PMID:37478846
Enters the nucleus upon vitamin D3 binding where it forms heterodimers with the retinoid X receptor/RXR .
PMID:28698609
The VDR-RXR heterodimers bind to specific response elements on DNA and activate the transcription of vitamin D3-responsive target genes .
PMID:28698609
Plays a central role in calcium homeostasis (By similarity). Also functions as a receptor for the secondary bile acid lithocholic acid (LCA) and its metabolites PMID:12016314 PMID:32354638
Enzymes involved in drug metabolism — important for understanding drug interactions
ATC A11CC06
ATC H05BX05
Chemical identifiers
CAS, UNII, InChI Key and database cross-references
Show
Chemical identifiers
CAS, UNII, InChI Key and database cross-references
Linked compound data from DrugBank Open Data (CC BY-NC 4.0)
Calcifediol
Additional database identifiers
Drugs Product Database (DPD)
22965
ChemSpider
4446820
BindingDB
50521013
PDB
VDY
ZINC
ZINC000004474414
HUGO Gene Nomenclature Committee (HGNC)
HGNC:12679
GenAtlas
VDR
GeneCards
VDR
GenBank Gene Database
J03258
GenBank Protein Database
340203
Guide to Pharmacology
605
UniProt Accession
VDR_HUMAN
HUGO Gene Nomenclature Committee (HGNC)
HGNC:2606
GenAtlas
CYP27B1
GeneCards
CYP27B1
GenBank Gene Database
AF027152
GenBank Protein Database
2612976
Guide to Pharmacology
1370
UniProt Accession
CP27B_HUMAN
HUGO Gene Nomenclature Committee (HGNC)
HGNC:2602
GenAtlas
CYP24A1
GeneCards
CYP24A1
GenBank Gene Database
L13286
GenBank Protein Database
306704
Guide to Pharmacology
1365
UniProt Accession
CP24A_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