Lenacapavir 300mg tablets
Requires a prescription from a doctor or prescriber
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Sunlenca 300mg tablets
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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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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: 18 · Randomised trials: 7 · 2022–2026
Showing the 50 most relevant studies, sorted by most relevant.
Samir K. Gupta, M. Berhe, G. Crofoot, et al.
The lancet. HIV, 2023
Linda-Gail Bekker, Moupali Das, Q. Abdool Karim, et al.
The New England journal of medicine, 2024
Blessed Takunda Mukuhlani, Rufin Kouassi ASSARÉ
International Journal of Infectious Diseases, 2026
- HIV-1
- HIV Infections
- Quinolones
Colleen F Kelley, Maribel Acevedo-Quiñones, Allison Agwu, et al.
The New England journal of medicine, 2024
Ebrahim S, Gloeck N, Adam Z, et al.
2026
- HIV Infections
- Anti-HIV Agents
- Pre-Exposure Prophylaxis
RationaleGlobally, there are 1.3 million new HIV infections annually, with a disproportionate burden on young women and girls, especially in sub-Saharan Africa (63% of new infections). Despite the demonstrated effectiveness of pre-exposure prophylaxis (PrEP), global uptake remains low, reaching only 16.5% of the UNAIDS 2025 target. PrEP adherence is suboptimal in vulnerable populations. There is an urgent need to develop and implement alternative, user-friendly PrEP strategies like long-acting formulations that minimise reliance on daily dosing or frequent injections. Lenacapavir is a first-in-class, long-acting capsid inhibitor that disrupts HIV replication at multiple stages. Following an oral loading dose, lenacapavir administered by subcutaneous injection provides six months of protection against HIV.ObjectivesTo evaluate the benefits and harms of long-acting injectable lenacapavir for HIV PrEP compared to oral fixed-dose combination PrEP (tenofovir disoproxil fumarate plus emtricitabine (F/TDF) and/or oral tenofovir alafenamide plus emtricitabine (F/TAF)), long-acting injectable cabotegravir (CAB-LA), or placebo or no prophylaxis.Search methodsWe searched CENTRAL, PubMed, and two trial registers and conducted reference checking to identify eligible studies. The search is current to May 2025.Eligibility criteriaWe included randomised controlled trials (RCTs) with no date or language restrictions in any HIV-negative person at risk of acquiring HIV through sexual contact or exposure to blood, comparing long-acting injectable lenacapavir with oral PrEP, long-acting injectable cabotegravir, placebo or no prophylaxis.OutcomesOur critical outcomes were: new HIV infections or relative risk of HIV infection; serious adverse events (SAEs); adverse events (AEs); adverse drug reactions: injection site reactions; and all-cause mortality. We included data at 26- and 52-week time points.Risk of biasWe used the Cochrane RoB 2 tool to assess risk of bias in the included studies.Synthesis methodsWe meta-analysed data for each outcome where possible, using the inverse variance statistical method with a random-effects model. We reported risk ratios (RR) with 95% confidence intervals (CIs) for dichotomous data. Where this was not possible, we synthesised results using the direction of effect, guided by the Synthesis Without Meta-analysis (SWiM) reporting guidelines. We used GRADE to assess the certainty of evidence.Included studiesWe included two studies with 8660 participants. The first trial, conducted in South Africa and Uganda, included adolescent girls and young women (16 to 25 years) and compared injectable lenacapavir with daily oral PrEP consisting of F/TAF in one comparator arm and F/TDF in the other. The second trial, conducted in the USA, Brazil, Thailand, South Africa, Peru, Argentina, and Mexico, included cisgender gay, bisexual and other men, transgender women, transgender men, and gender-nonbinary persons of any age who have condomless, receptive anal sex with partners assigned male at birth. It compared injectable lenacapavir with F/TDF. In both trials, participants in the lenacapavir group received placebo tablets that matched the oral PrEP, and participants in the oral PrEP group received placebo injections that matched lenacapavir.Synthesis of resultsNew HIV infections Lenacapavir results in a large reduction in new HIV infections at 52 weeks compared to oral PrEP (RR 0.07, 95% CI 0.02 to 0.22; 2 studies, 8660 participants; high-certainty evidence). There were 14 fewer new HIV infections per 1000 (ranging from 15 fewer to 12 fewer), with a number needed to treat for an additional beneficial outcome (NNTB) of 70. Serious adverse events Lenacapavir results in a slight reduction in SAEs at 52 weeks compared to oral PrEP (RR 0.78, 95% CI 0.61 to 0.99; 2 studies, 8660 participants; high-certainty evidence). There were 8 fewer SAEs per 1000 (ranging from 15 fewer to 0 fewer), NNTB of 128. Adverse events Lenacapavir results in little to no difference in AEs at 52 weeks compared to oral PrEP (RR 0.99, 95% CI 0.96 to 1.01; 2 studies, 8660 participants; high-certainty evidence). There were 8 fewer AEs per 1000 (ranging from 31 fewer to 8 more), NNTB of 55. Adverse drug reactions: injection site reactions Lenacapavir likely increases adverse drug reactions: injection site reactions compared to oral PrEP at 52 weeks (RR 1.68, 95% CI 1.20 to 2.33; 2 studies, 8660 participants; moderate-certainty evidence). There were 295 more adverse drug reactions per 1000 (ranging from 87 more to 577 more), number needed to treat for an additional harmful outcome of 4. All-cause mortality Lenacapavir results in little to no difference in all-cause mortality at 52 weeks compared to oral PrEP (RR 0.57, 95% CI 0.11 to 3.06; 2 studies, 8660 participants; high-certainty evidence). There were 1 fewer deaths per 1000 (ranging from 2 fewer to 4 more), NNTB of 1073. We rated all critical outcomes as low risk of bias in both studies. We found no difference on subgroup analysis between comparators F/TDF and F/TAF.Authors' conclusionsWhen compared to oral PrEP, lenacapavir results in a large reduction in new HIV infections at 52 weeks, with one HIV infection prevented for every 70 people receiving lenacapavir rather than oral PrEP, that is 14 fewer HIV infections per 1000 people treated with lenacapavir. Lenacapavir results in a slight reduction in SAEs and little to no difference in AEs compared to oral PrEP. Lenacapavir likely increases the risk of injection site reactions compared with oral PrEP, but discontinuation of lenacapavir in the included trials due to injection site reactions was rare. There is little to no difference in mortality between lenacapavir and oral PrEP. No studies compared lenacapavir to injectable long-acting cabotegravir, placebo or no prophylaxis. Within the included trials, there was a non-randomised comparison of lenacapavir with background HIV incidence in the screened population as a proxy for a no-PrEP arm. There was a large reduction in HIV incidence in the lenacapavir study arms compared to background HIV incidence in the screened populations.FundingThis Cochrane review was part-funded by the South African National Department of Health (NDoH) through the Evidence to Decision (E2D) Collaboration project. The E2D Collaboration is a partnership between the NDoH, the South African Medical Research Council, and Stellenbosch University (2024 to 2028). The views expressed in this review do not necessarily represent the views of the funder.RegistrationPROSPERO (2025) CRD420251080791.
Abstract licence: CC BY-NC-ND
Eljo Paja, L. Merkuri, Leidon Shapo
MEDICUS, 2025
S. Segal-maurer, E. Dejesus, H. Stellbrink, et al.
The New England journal of medicine, 2022
Rupa R Patel, Karen W. Hoover, Allison Lale, et al.
Morbidity and Mortality Weekly Report, 2025
- HIV Infections
- Anti-HIV Agents
- Pre-Exposure Prophylaxis
Kashaf Sanaullah, Abdul Haseeb Hasan, Muhammad Ali Abid
Cureus, 2025
Human immunodeficiency virus type 1 (HIV-1) remains a major global health challenge, with over 40 million people currently living with the infection. While daily oral antiretroviral therapy and pre-exposure prophylaxis (PrEP) are highly effective, adherence barriers limit their impact. Lenacapavir, a first-in-class HIV-1 capsid inhibitor with a unique multistage mechanism of action, offers potent antiviral activity and sustained plasma concentrations that enable twice-yearly subcutaneous dosing. In two phase 3 randomized controlled trials, lenacapavir demonstrated superior efficacy to oral PrEP regimens, with near-complete prevention of HIV acquisition across diverse populations, including cisgender women, men, and gender-diverse individuals. The safety profile was acceptable, though injection site reactions were common, and the drug’s prolonged pharmacokinetic tail necessitates strict HIV testing before each dose to prevent resistance. Implementation challenges include programmatic training, drug-drug interaction considerations, and disparities in PrEP uptake, particularly among women, Black and Hispanic/Latino populations, and individuals in the US South. While currently approved for PrEP only in the US, broader global access will depend on regulatory decisions, WHO guidance, and procurement strategies. Lenacapavir represents a significant advance in HIV prevention, with the potential to expand protection options and reduce new infections if integrated into equitable and robust public health programs.
Abstract licence: CC BY
Warren Parker
African Journal of AIDS Research, 2026
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
10 to 12 days
Mechanism
HIV-1 co-opts various host factors during its replicative cycle, including durin…
Food interactions
1 warning
Human targets
None mapped
Data: DrugBank · CC BY-NC 4.0
Pharmacokinetics at a glance
Absorption
84 days
Half-life
10 to 12 days
[L42990]
…
Protein binding
99.8%
[L42990]
Volume of distribution
976 L
[L42990]
Metabolism
10%
Elimination
76%
Clearance
3.62 L/h
[L42990]
Pharmacokinetic data: DrugBank · CC BY-NC 4.0
Lenacapavir was first globally approved on August 22, 2022 by the European Commission to treat adults with multi-drug resistant HIV infection.[L42995] On December 22, 2022, it was also approved by the FDA.[L44473]
[L42990][L44468]
Known interactions with other medicines. Always consult a healthcare professional.
Showing 50 of 400 interactions
As lenacapavir is highly protein bound, it is unlikely to be significantly removed by dialysis.
[L42990]
To facilitate HIV-1 genomic integration, the capsid must cross the nuclear envelope, for which it utilizes the nuclear pore complex (NPC). Two host proteins shown to be essential for capsid nuclear entry that directly bind to the capsid are cleavage and polyadenylation specificity factor subunit 6 (CPSF6) and nucleoporin 153 (Nup153, an NPC protein present on the nucleoplasmic face of the complex).[A244170] Both proteins bind the same phenylalanine-glycine binding pocket between the NTD and CTD of neighbouring CA monomers in multimeric CA assemblies.[A244170][A244175][A244180][A244185]
Lenacapavir contains a difluorobenzyl ring that occupies the same binding pocket as CPSF6/Nup153, overlapping with the benzyl group of F321 in CPSF6 and F1417 in Nup153 in the overlayed structures.[A244170][A244175][A244180][A244185] Crystal structures of lenacapavir bound to CA hexamers reveal that six lenacapavir molecules bind to each hexamer, establishing extensive hydrophobic interactions, two cation-π interactions, and seven hydrogen bonds, contacting ~2,000 Å2 of buried protein surface area.[A244175][A244180] Strong binding of lenacapavir, therefore competitively interrupts capsid interactions with CPSF6 and Nup153. In vitro HIV-1 replication inhibition experiments in a variety of cell lines show EC50 values of ~12-314 pM, with greater efficacy against early steps over later steps.[A244175][A244180] At very low concentrations (0.5 nM), lenacapavir inhibits viral nuclear entry, while at higher concentrations (5-50 nM), it additionally inhibits viral DNA synthesis and reverse transcription.[A244180] As CPSF6 and Nup153 are essential for nuclear entry, it is likely that lenacapavir binding inhibits these interactions and blocks capsid nuclear entry.
Lenacapavir may have additional effects beyond blocking interactions with host cell factors. Lenacapavir increases the rate and extent of CA assembly, dramatically extends the lifetime of assembled CA structures, even at high salt concentrations, and alters assembled capsid morphology.[A244175][A244180] The stabilizing concentration is ~1:1, closely mimicking the observed binding stoichiometry to isolated CA hexamers. Further analysis suggests that lenacapavir binding alters intra- and inter-hexamer interactions, altering the structure and stability of the resulting assemblies.[A244180]
Serial passage of HIV-1 in increasing concentrations of lenacapavir resulted in the appearance of major resistance mutations Q67H and N74D, which remain sensitive to other antiretroviral drugs. Extended passage resulted in the additional mutations L56I, M66I, K70N, N74S, and T107N. All identified resistance mutations map to the lenacapavir binding site, and all but the Q67H variant show reduced replication capacity in vitro.[A244175] Additional studies have shown no lenacapavir resistance in variants associated with resistance to other antiretrovirals or naturally occurring polymorphisms, suggesting a very low potential for cross-resistance in combination therapy.[A244190]
How the body processes this drug — absorption, distribution, metabolism, and elimination
The mean steady-state Cmax (%CV) is 97.2 (70.3) ng/ mL following oral and subcutaneous administration.
[L42990]
According to population pharmacokinetics analysis, lenacapavir exposures (AUCtau, Cmax and Ctrough) were 29% to 84% higher in heavily treatment-experienced patients with an HIV-1 infection compared to subjects without an HIV-1 infection. A low-fat meal had negligible effects on drug absorption.
[L42990]
[L42990]
[L42990]
[L42990]
No single circulating metabolite accounted for >10% of plasma drug-related exposure.
[L42990]
[L42990]
[L42990]
Enzymes involved in drug metabolism — important for understanding drug interactions
Proteins that transport this drug across cell membranes
PMID:2897240 PMID:35970996 PMID:8898203 PMID:9038218 PMID:35507548
Catalyzes the flop of phospholipids from the cytoplasmic to the exoplasmic leaflet of the apical membrane. Participates mainly to the flop of phosphatidylcholine, phosphatidylethanolamine, beta-D-glucosylceramides and sphingomyelins .
PMID:8898203
Energy-dependent efflux pump responsible for decreased drug accumulation in multidrug-resistant cells PMID:2897240 PMID:35970996 PMID:9038218
ATC J05AX31
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)
Lenacapavir
Additional database identifiers
Drugs Product Database (DPD)
23797
ChemSpider
81367881
PDB
QNG
GenBank Gene Database
K03455
GenBank Protein Database
1906384
UniProt Accession
POL_HV1H2
GenBank Gene Database
M15654
GenBank Protein Database
326388
UniProt Accession
POL_HV1B1
HUGO Gene Nomenclature Committee (HGNC)
HGNC:2637
GenAtlas
CYP3A4
GeneCards
CYP3A4
GenBank Gene Database
M18907
Guide to Pharmacology
1337
UniProt Accession
CP3A4_HUMAN
HUGO Gene Nomenclature Committee (HGNC)
HGNC:12530
GeneCards
UGT1A1
GenBank Gene Database
M57899
GenBank Protein Database
184473
Guide to Pharmacology
2990
UniProt Accession
UD11_HUMAN
HUGO Gene Nomenclature Committee (HGNC)
HGNC:40
GenAtlas
ABCB1
GeneCards
ABCB1
GenBank Gene Database
M14758
GenBank Protein Database
307180
Guide to Pharmacology
768
UniProt Accession
MDR1_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