LEDOPIRE 25MG
LENALIDOMIDE 25 MG HARD GELATIN CAPSULES
What it does
Gelatin is a substance often used in various food products and supplements. It is derived from animal collagen and is commonly used to help improve joint health and support digestion.
Commonly used for: joint pain, digestive health, skin elasticity
Read more in plain English ↓Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.
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Source: Pharmacy and Poisons Board · fetched 2026-01-28 19:26:42 · updated 2026-09-15 02:07:06
Drug Interactions
1Pharmacodynamic Warnings
Lenalidomide appears in TABLE 1: Drugs that cause hepatotoxicity
Lenalidomide appears in TABLE 5: Drugs that cause thromboembolism
Lenalidomide appears in TABLE 15: Drugs that cause myelosuppression
Severe (1)
Lenalidomide - increases risk of venous thromboembolism
Combined hormonal contraceptives are predicted to increase the risk of venous thromboembolism when given with lenalidomide. Avoid.
Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: exact
About gelatin
Gelatin is a substance often used in various food products and supplements. It is derived from animal collagen and is commonly used to help improve joint health and support digestion.
What it treats
- joint pain
- digestive health
- skin elasticity
How it works
Gelatin helps to provide structure to the body, supporting joints, skin, and digestive tract by providing essential proteins.
Who it's for
Gelatin is suitable for people looking to support their joint health, improve skin appearance, or enhance digestion.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About hard
Hard is a medicinal ingredient used to help with various health conditions.
How it works
Hard works by interacting with specific body systems to provide relief or treatment for certain conditions.
Who it's for
Hard is suitable for individuals experiencing the conditions it is meant to treat.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About lenalidomide
Lenalidomide is a medication used to treat certain types of cancers and blood disorders.
What it treats
- multiple myeloma
- myelodysplastic syndromes
How it works
Lenalidomide works by helping to slow down or stop the growth of cancer cells and improve the immune system's response against them.
Who it's for
This medication is for adults diagnosed with specific blood cancers or disorders.
Cautions
- • Be cautious if you are taking medications that can harm the liver.
- • Avoid medications that can increase the risk of blood clots.
- • Watch out for drugs that can reduce blood cell production.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Gelatin
BNF-referencedGelatin is a plasma substitute derived from protein obtained from plasma, serum, or normal placentas, with at least 95% of the protein being albumin. It is used to restore blood volume in patients with low blood volume conditions such as hypovolemic shock, burns, and during cardiopulmonary bypass procedures. Gelatin solutions can be isotonic, containing 3.5-5% protein, or concentrated, containing 15-25% protein.
Indications
- Low blood volume
- Hypovolemic shock
- Burns
- Cardiopulmonary bypass
Dosage
Children: Initially 10-20 mL per kilogram. Adjust according to the patient's condition and response, using 3.5-4% solution. Use under specialist supervision to mitigate the risk of fluid overload.
Adults: Dose according to requirements, typically administered intravenously. Consult product literature for specific dosing guidance.
Mechanism of action
Gelatin acts as a plasma expander by increasing the oncotic pressure in the vascular compartment, which helps to retain fluid within the bloodstream and restore circulating blood volume. This mechanism aids in maintaining blood pressure and improving tissue perfusion.
Pharmacodynamics
Gelatin solutions increase blood volume and improve hemodynamic stability in patients experiencing hypovolemic conditions. By drawing water into the vascular space, they help to counteract the effects of low blood volume, such as hypotension and compromised organ perfusion.
Pharmacokinetics
Gelatin is administered intravenously, and its effects can be observed relatively quickly. The half-life and the metabolic clearance depend on the formulation and concentration of the solution. Gelatin is gradually metabolized by macrophages and eliminated by the renal system. Close monitoring of fluid balance is essential, particularly in patients with cardiac or renal impairment.
Contra-indications
- Severe liver disease
- History of circulatory disease
- Severe cardiac disease
Adverse effects
- Fever
- Flushing
- Nausea
- Urticaria
- Rare or very rare shock
Interactions
- Calcium salts
Precautions
- Monitor cardiovascular and respiratory function
- Correct dehydration when administering
- Administer slowly to avoid rapid rise in blood pressure and cardiac failure
- Increased capillary permeability
Pregnancy
Consult product literature for specific guidance regarding use in pregnancy.
Breast-feeding
Consult product literature for specific guidance regarding use in breastfeeding.
Storage
Store at controlled room temperature, protect from light. Refer to product-specific storage instructions.
Formulations
- 5% solution for infusion
- 20% solution for infusion
- Concentrated solution (15-25% protein)
- Isotonic solution (3.5-5% protein)
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: Lenalidomide
BNF-referencedLenalidomide is an immunomodulatory drug with multiple mechanisms of action that include antineoplastic, anti-angiogenic, and pro-erythropoietic properties. It is primarily used in the treatment of hematological malignancies, particularly multiple myeloma, and certain types of lymphoma. Lenalidomide works by modulating immune responses and directly affecting tumor cell survival and proliferation.
Indications
- Newly diagnosed multiple myeloma in patients who have undergone autologous stem cell transplantation
- Newly diagnosed multiple myeloma in patients not eligible for transplant (in combination with melphalan and prednisone)
Mechanism of action
Lenalidomide alters cytokine production and regulates T cell co-stimulation, enhancing NK cell-mediated cytotoxicity. It directly inhibits the cullin ring E3 ubiquitin ligase complex by binding to cereblon, leading to the degradation of substrate proteins such as Ikaros (IKZF1) and Aiolos (IKZF3), which are essential for the differentiation and survival of malignant B cells. This degradation results in increased production of interleukin-2 (IL-2) and enhanced proliferation of NK and T cells, while also inhibiting pro-inflammatory cytokines like TNF-α, IL-1, IL-6, and IL-12.
Pharmacodynamics
Lenalidomide demonstrates antitumor effectiveness through its immunomodulatory, anti-inflammatory, and anti-angiogenic properties. It induces apoptosis and inhibits the proliferation of hematopoietic malignant cells, thereby delaying tumor growth. Lenalidomide enhances immune responses by stimulating T cell proliferation and NK cell activity, making it significantly more potent than thalidomide in these actions. It also limits tumor cell invasion and metastasis, contributing to its therapeutic efficacy in hematological cancers.
Pharmacokinetics
Lenalidomide is absorbed quickly after oral administration, with peak plasma concentrations occurring within 1-6 hours. It has a bioavailability of approximately 50%. The drug is primarily metabolized in the liver, with renal excretion of both unchanged drug and metabolites. The elimination half-life is approximately 3-4 hours in patients with normal renal function, and dosage adjustments are necessary in cases of renal impairment.
Contra-indications
- Active tuberculosis
- Pregnancy
- Breastfeeding
Adverse effects
- Leukopenia
- Thrombocytopenia
- Nephrotoxicity
- Stomatitis
- Mucositis
- Ulcer
- Eye disorders
- Erythema nodosum
- Confusion
- Anemia
- Fatigue
- Nausea
- Vomiting
- Diarrhea
- Hypertension
- Increased risk of infection
Interactions
- Combined hormonal contraceptives: increased risk of venous thromboembolism
Precautions
- Screen for active tuberculosis before treatment
- Monitor blood counts regularly
- Use with caution in patients with renal impairment
- Risk of embryo-fetal toxicity
Pregnancy
Avoid use during pregnancy due to potential risk to the fetus.
Breast-feeding
Avoid use while breastfeeding due to potential risks.
Storage
Store at room temperature, away from moisture and heat.
Formulations
- Capsules
- Powder for suspension for infusion
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: hard
Hard, commonly referred to in various contexts, can refer to a range of substances or drugs depending on the specific context. In pharmacology, it is crucial to specify the drug in question for accurate information. Generally, the term may allude to substances that exhibit a strong, potent effect on the body, leading to significant pharmacological actions. The effects can vary widely based on the specific compound in question, its classification, and its intended medical use.
Dosage
Children: Refer to specific pediatric dosing guidelines based on the identified drug, as 'hard' does not provide sufficient information.
Adults: Refer to specific drug information for dosing guidelines, as 'hard' does not specify a particular medication.
Mechanism of action
The mechanism of action for drugs termed 'hard' must be specified for accurate information, as this phrase does not designate a specific compound. Mechanisms may involve receptor interaction, enzyme inhibition, or modulation of biochemical pathways, depending on the drug in question. For example, opioid analgesics work primarily by binding to mu-opioid receptors in the central nervous system, leading to analgesic effects.
Pharmacodynamics
Pharmacodynamics refers to the effects of a drug on the body and its mechanisms of action. The pharmacodynamics of any drug classified as 'hard' would depend on its specific pharmacological profile, including its efficacy, potency, and the nature of its therapeutic effects. For instance, in the case of opioids, pharmacodynamic effects include pain relief, sedation, and potential respiratory depression.
Pharmacokinetics
Pharmacokinetics involves the absorption, distribution, metabolism, and excretion (ADME) of a drug. The pharmacokinetics of a substance termed 'hard' would vary significantly based on the specific drug. For many medications, absorption may occur via oral or parenteral routes, distribution may involve binding to plasma proteins, metabolism may occur in the liver, and excretion is typically renal. Each of these parameters is critical for understanding the drug's action and potential side effects.
Pregnancy
Consult a healthcare professional before use, as safety has not been established.
Breast-feeding
Consult a healthcare professional before use, as safety has not been established.
Storage
Store in a cool, dry place, away from direct sunlight.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Molecular reference: Lenalidomide
PubChem CID 216326Molecular formula: C13H13N3O3
Mechanism of action
Lenalidomide is a drug with multiple mechanisms of action. Lenalidomide exerts immunomodulating effects by altering cytokine production, regulating T cell co-stimulation, and enhancing the NK cell-mediated cytotoxicity. Lenalidomide directly inhibits the cullin ring E3 ubiquitin ligase complex: upon binding to cereblon, a substrate adaptor of the complex, lenalidomide modulates substrate specificity of the complex to recruit substrate proteins of the ligase, including Ikaros (IKZF1), Aiolos (IKZF3), and CK1α. These substrates are then tagged for ubiquitination and subsequent proteasomal degradation. IKZF1 and IKZF3 are B-cell transcription factors that are essential for B-cell differentiation and survival of malignant cells. IKZF3 also regulates the expression of interferon regulatory factor 4 (IRF4), which is a transcription factor that regulates the aberrant myeloma-specific gene. The immunomodulatory actions of lenalidomide can be partly explained by the degradation of IKZF3, since it is a repressor of the interleukin 2 gene (IL2): as lenalidomide decreases the level of IKZF3, the production of IL-2 increases, thereby increasing the proliferation of natural killer (NK), NKT cells, and CD4+ T cells. Lenalidomide inhibits the production of pro-inflammatory cytokines TNF-α, IL-1, IL-6, and IL-12, while elevating the production of anti-inflammatory cytokine IL-10. Lenalidomide acts as a T-cell co-stimulatory molecule that promotes CD3 T-cell proliferation and increases the production of IL-2 and IFN-γ in T lymphocytes, which enhances NK cell cytotoxicity and ADCC. It inhibits the expression and function of T-regulatory cells, which are often overabundant in some hematological malignancies. Lenalidomide directly exerts antitumour effects by inhibiting the proliferation and inducing apoptosis of tumour cells. Lenalidomide triggers the activation of pro-apoptotic caspase-8, enhances tumour cell sensitivity to FAS-induced apoptosis, and downregulates NF-κB, an anti-apoptotic protein. Independent of its immunomodulatory effects, lenalidomide mediates anti-angiogenic effects by inhibiting angiogenic growth factors released by tumour cells, such as vascular endothelial growth factor (VEGF), basic fibroblastic-growth factor (BFGF), and hepatocyte-growth factor. _In vitro_, lenalidomide inhibits cell adhesion molecules such as ICAM-1, LFA-1, β2 and β3 integrins, as well as gap-junction function, thereby preventing metastasis of malignant cells. Multiple myeloma is a B-cell malignancy characterized by an excess of monotypic plasma cells in the bone marrow. The molecular mechanisms that are involved in disease progression depend on the interaction between the multiple myeloma cells and the bone microenvironment. Because these mechanisms have been well characterized, it is possible to develop regimens that are more specific to pathways involved in the pathogenesis of multiple myeloma than is typical for conventional chemotherapy in disease management. Thalidomide and immunomodulatory drugs (IMiDs) have now been shown to block several pathways important for disease progression in multiple myeloma. First established as agents with antiangiogenic properties, thalidomide and IMiDs inhibit the production of interleukin (IL)-6, which is a growth factor for the proliferation of myeloma cells. In addition, they activate apoptotic pathways through caspase 8-mediated cell death. At the mitochondrial level, they are responsible for c-jun terminal kinase (JNK)-dependent release of cytochrome-c and Smac into the cytosol of cells, where they regulate the activity of molecules that affect apoptosis. By activating T cells to produce IL-2, thalidomide and IMiDs alter natural killer (NK) cell numbers and function, thus augmenting the activity of NK-dependent cytotoxicity. Data delineating these events have been derived from experiments done in resistant and sensitive multiple myeloma cell lines. Although thalidomide and IMiDs demonstrate similar biologic
Pharmacodynamics
In hematological malignancies, the immune system is deregulated in the form of altered cytokine networks in the tumour microenvironment, defective T cell regulation of host-tumour immune interactions, and diminished NK cell activity. Lenalidomide is an immunomodulatory agent with antineoplastic, antiangiogenic, and anti-inflammatory properties. Lenalidomide exerts direct cytotoxicity by increasing apoptosis and inhibiting the proliferation of hematopoietic malignant cells. It delays tumour growth in nonclinical hematopoietic tumour models _in vivo_, including multiple myeloma. Lenalidomide also works to limit the invasion or metastasis of tumour cells and inhibits angiogenesis. Lenalidomide also mediates indirect antitumour effects via its immunomodulatory actions: it inhibits the production of pro-inflammatory cytokines, which are implicated in various hematologic malignancies. Lenalidomide enhances the host immunity by stimulating T cell proliferation and enhancing the activity of natural killer (NK) cells. Lenalidomide is about 100–1000 times more potent in stimulating T cell proliferation than [thalidomide]. _In vitro_, it enhances antibody-dependent cell-mediated cytotoxicity (ADCC), which is even more pronounced when used in combination with rituximab. Due to its anti-inflammatory properties, lenalidomide has been investigated in the context of inflammatory and autoimmune diseases, such as amyotrophic lateral sclerosis.
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
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