Erythropoiesis-stimulating agent
ยากระตุ้นการสร้างเม็ดเลือดแดง (Erythropoiesis-stimulating agents; ESAs) เป็นยาที่กระตุ้นการสร้างเม็ดเลือดแดง (erythropoiesis) ได้แก่ อะนาล็อกของฮอร์โมน erythropoietin ที่ผลิตด้วยเทคนิค recombinant และยายับยั้งเอนไซม์ prolyl hydroxylase ของ hypoxia-inducible factor (HIF-PHIs) erythropoietin เป็นฮอร์โมนชนิดไกลโคโปรตีนที่ผลิตเป็นหลักจากไต ทำหน้าที่ควบคุมการสร้างเม็ดเลือดแดงในไขกระดูกโดยการกระตุ้นเซลล์ต้นกำเนิดเม็ดเลือดแดง (erythroid progenitor cells) เพื่อตอบสนองต่อภาวะขาดออกซิเจน (hypoxia)[1] ยากลุ่มนี้ใช้รักษาภาวะโลหิตจางในผู้ป่วยโรคไตเรื้อรัง (chronic kidney disease; CKD) ภาวะโลหิตจางที่เกิดจากเคมีบำบัดในผู้ป่วยโรคมะเร็ง ภาวะโลหิตจางที่เกี่ยวข้องกับการรักษาด้วย zidovudine ในผู้ติดเชื้อ HIV และใช้เพื่อลดความจำเป็นในการรับเลือด (blood transfusion) ในการผ่าตัดบางกรณี[1][2]
Search ⌘K Suggest Edit Sign in Background and Physiology Types and Classification Mechanism of Action Medical Uses Administration and Pharmacology Adverse Effects and Safety Concerns Misuse and Ethical Issues History and Development References Fact-checked by Grok 4 months ago Erythropoiesis-stimulating agent Erythropoiesis-stimulating agents (ESAs) are medications that stimulate red blood cell production (erythropoiesis), including recombinant analogs of the hormone erythropoietin and hypoxia-inducible factor prolyl hydroxylase inhibitors (HIF-PHIs). Erythropoietin is a glycoprotein hormone primarily produced by the kidneys that regulates red blood cell production in the bone marrow by stimulating erythroid progenitor cells in response to hypoxia.[1] These agents are used to treat anemia in patients with chronic kidney disease (CKD), chemotherapy-induced anemia in cancer patients, anemia associated with zidovudine therapy in HIV-infected individuals, and to reduce the need for blood transfusions in certain surgical settings.[1][2] Traditional ESAs (erythropoietin analogs) exert their effects by binding to specific erythropoietin receptors on the surface of hematopoietic stem cells and erythroid precursors, which activates Janus kinase 2 (JAK2) and signal transducer and activator of transcription 5 (STAT5) pathways, promoting cell proliferation, differentiation, and inhibition of apoptosis to increase hemoglobin and hematocrit levels.[1] Newer agents like HIF-PHIs stimulate erythropoiesis by increasing endogenous erythropoietin production through stabilization of hypoxia-inducible factors. Common ESAs include epoetin alfa (marketed as Epogen or Procrit), darbepoetin alfa (Aranesp), methoxy polyethylene glycol-epoetin β (Mircera, with a longer half-life of approximately 130 hours for less frequent dosing), and HIF-PHIs such as roxadustat.[1][2] Administration is typically via intravenous or subcutaneous injection, with dosing tailored to the patient's hemoglobin target, often starting at 50–100 units/kg three times weekly for epoetin alfa in CKD patients.[1] While effective in correcting anemia and improving quality of life, ESAs carry significant risks, including increased incidence of thrombotic events such as stroke, myocardial infarction, and venous thromboembolism, particularly when hemoglobin levels exceed 11 g/dL.[1][2] They are contraindicated in uncontrolled hypertension, pure red cell aplasia, and hypersensitivity, and their use in cancer patients is restricted to non-curative settings with hemoglobin below 10 g/dL per guidelines from the American Society of Clinical Oncology (ASCO) and American Society of Hematology (ASH).[1] Monitoring involves regular hemoglobin assessments, iron studies, and blood pressure checks to mitigate adverse effects like tumor progression or cardiovascular complications.[1] Background and Physiology Definition and Overview Erythropoiesis-stimulating agents (ESAs) are synthetic or modified versions of the hormone erythropoietin designed to stimulate the bone marrow to produce red blood cells.[3][1] These agents mimic the action of natural erythropoietin, which is primarily produced by the kidneys in response to low oxygen levels.[4] Erythropoiesis refers to the biological process of red blood cell formation, beginning with stem cells in the bone marrow and culminating in mature erythrocytes that carry oxygen throughout the body.[5] Anemia, in contrast, is characterized by a reduction in red blood cell count, hemoglobin concentration, or hematocrit, leading to diminished oxygen delivery and symptoms such as fatigue and shortness of breath.[6] Unlike blood transfusions, which provide an immediate but temporary supply of donor red blood cells, ESAs promote endogenous production to address the underlying deficit over time.[2] The primary purpose of ESAs is to treat various forms of anemia by elevating hemoglobin levels, thereby alleviating symptoms and reducing the need for frequent transfusions.[2] This therapeutic approach was pioneered with the FDA approval of epoetin alfa in 1989 specifically for anemia associated with chronic kidney disease, marking a significant advancement in managing renal-related blood disorders.[7] Role of Erythropoietin in Erythropoiesis Erythropoiesis is the process by which hematopoietic stem cells (HSCs) in the bone marrow differentiate into mature erythrocytes, producing approximately 200 billion red blood cells daily to maintain oxygen transport. It begins with HSCs committing to the erythroid lineage, progressing through multipotent progenitors such as megakaryocyte-erythroid progenitors (MEPs), followed by committed erythroid precursors including burst-forming unit-erythroid (BFU-E) and colony-forming unit-erythroid (CFU-E). These progenitors further mature into proerythroblasts, then basophilic erythroblasts, polychromatophilic erythroblasts, orthochromatic erythroblasts, and finally reticulocytes, which enucleate and release mature erythrocytes into the circulation. This multistage differentiation occurs within erythroblastic islands in the bone marrow, involving progressive hemoglobin synthesis and cell size reduction.[8][9] The production of erythropoietin (EPO), the primary hormone regulating erythropoiesis, is tightly controlled by tissue oxygen levels, or hypoxia. In response to low oxygen availability, hypoxia-inducible factor (HIF), particularly HIF-2α, accumulates in the peritubular interstitial cells of the kidney due to inhibition of prolyl hydroxylase domain (PHD) enzymes, which normally degrade HIF under normoxic conditions. Stabilized HIF-2α translocates to the nucleus and binds to hypoxia response elements in the EPO gene promoter, thereby inducing EPO transcription and secretion into the bloodstream. Although the liver also produces EPO, especially in fetuses, the kidneys account for over 90% of circulating EPO in adults under physiological conditions.[8][9] Once secreted, EPO exerts its effects by binding to the homodimeric erythropoietin receptor (EPOR) on the surface of CFU-E and early proerythroblast progenitors, initiating intracellular signaling cascades such as JAK2-STAT5, which activate transcription factors like GATA-1 and TAL-1. This binding promotes erythroid progenitor survival by preventing apoptosis through upregulation of anti-apoptotic proteins such as BCL2L1, while also stimulating cell proliferation and differentiation toward hemoglobin-producing erythroblasts. Additionally, EPO enhances iron utilization for heme synthesis by inducing erythroferrone (ERFE) expression, which suppresses hepcidin to increase iron availability. These actions collectively amplify erythropoiesis without affecting earlier HSC stages.[8][9] In healthy adults, serum EPO levels are maintained at low concentrations, typically with a median of 7.6–7.9 IU/L (interquartile range 5.8–10.6 IU/L), sufficient to sustain basal erythropoiesis. A negative feedback mechanism ensures homeostasis: as hemoglobin levels rise and oxygen delivery improves, PHD enzymes resume HIF degradation, reducing EPO production; concurrently, EPO signaling is attenuated intracellularly via suppressors of cytokine signaling (SOCS) proteins and EPOR internalization. This oxygen-dependent loop prevents overproduction of erythrocytes, with EPO levels increasing exponentially only when hemoglobin falls below approximately 10–12 g/dL. Erythropoiesis-stimulating agents mimic this endogenous EPO activity by providing exogenous stimulation to progenitors in conditions of insufficient natural EPO.[8][10] Types and Classification Recombinant Erythropoietin Analogs Recombinant erythropoietin analogs are biopharmaceuticals produced using recombinant DNA technology to mimic the structure and function of endogenous human erythropoietin, a glycoprotein hormone that regulates red blood cell production.[1] These agents are engineered in mammalian cell lines, such as Chinese hamster ovary cells, to ensure proper glycosylation and biological activity similar to the native protein.[11] The first and foundational analog, epoetin alfa, was developed in the 1980s and approved in 1989 under brand names including Epogen and Procrit; it closely replicates the 165-amino-acid sequence of human erythropoietin with identical glycosylation patterns.[11] Darbepoetin alfa (Aranesp), introduced in 2001, features structural modifications with two additional N-glycosylation sites, resulting in hyperglycosylation that extends its serum half-life to approximately 25 hours intravenously compared to 6-9 hours for epoetin alfa, allowing for less frequent dosing.[12] Methoxy polyethylene glycol-epoetin beta (Mircera), approved in 2007, incorporates pegylation—a covalent attachment of a methoxy polyethylene glycol polymer to the erythropoietin molecule—which further prolongs its half-life to about 130 hours, enabling once-monthly administration.[13] Biosimilars of these analogs emerged following the expiration of originator patents, with the first epoetin alfa biosimilar (HX575, branded as Binocrit in Europe) approved by the European Medicines Agency in 2007 after demonstrating physicochemical similarity, comparable pharmacokinetics, and equivalent efficacy and safety to the reference product Eprex/Erypo.[14] In the United States, biosimilar approvals began later; Retacrit (epoetin alfa-epbx), the first epoetin alfa biosimilar, received FDA approval in 2018 based on analytical studies, nonclinical evaluations, and clinical trials confirming no clinically meaningful differences in purity, potency, and immunogenicity relative to Epogen/Procrit.[15] Globally, additional biosimilars such as Retacrit have gained approvals in regions including Europe, Canada, and Australia since 2018, promoting cost-effective access while maintaining stringent regulatory standards for equivalence.[16] Hypoxia-Inducible Factor Prolyl Hydroxylase Inhibitors Hypoxia-inducible factor prolyl hydroxylase inhibitors (HIF-PHIs) represent a novel class of small-molecule drugs that target the cellular hypoxia response pathway to indirectly stimulate erythropoiesis. These agents inhibit prolyl hydroxylase domain (PHD) enzymes, which normally hydroxylate hypoxia-inducible factor (HIF) α-subunits under normoxic conditions, marking them for proteasomal degradation. By blocking this process, HIF-PHIs stabilize HIF, allowing it to translocate to the nucleus and activate transcription of genes involved in oxygen homeostasis, including erythropoietin (EPO), thereby increasing endogenous EPO production primarily in the kidneys and liver.[17] This mechanism mimics the physiological response to hypoxia, where reduced oxygen levels naturally inhibit PHD activity to enhance adaptive erythropoiesis.[18] Prominent examples of HIF-PHIs include roxadustat, vadadustat, daprodustat, and enarodustat, which have progressed through clinical development for anemia management. Roxadustat, the first in its class to gain approval, received authorization in China in 2018 for anemia due to chronic kidney disease (CKD) in both dialysis-dependent and non-dialysis-dependent patients, followed by approvals in Japan in 2020 and the European Union in 2021 for similar indications (not approved by the FDA for CKD anemia as of 2025).[19] Vadadustat (branded as Vafseo) was approved by the U.S. Food and Drug Administration (FDA) in March 2024 for treating anemia in adults with CKD who have been on dialysis for at least three months.[20] Daprodustat (Jesduvroq) earned FDA approval in February 2023 for anemia in dialysis-dependent CKD patients but was withdrawn from the US market in December 2024 for business reasons (remains approved in Japan since June 2020).[21] Enarodustat, approved in Japan in 2020 and China in 2023 (with expanded indication in September 2025), is indicated for anemia in CKD patients.[22] These oral agents differ from traditional recombinant EPOs by promoting a more physiologic EPO profile, with peak plasma levels typically 5- to 17-fold lower than those achieved with injectable erythropoiesis-stimulating agents (ESAs).[17] Key advantages of HIF-PHIs include their oral route of administration, which enhances patient convenience compared to parenteral ESAs, and their ability to improve iron utilization through suppression of hepcidin, a key regulator of iron absorption and release from stores.[23] This iron-mobilizing effect may reduce the need for intravenous iron supplementation, particularly beneficial in non-dialysis CKD settings where roxadustat has shown efficacy.[17] Additionally, these inhibitors elicit a more sustained and physiologic EPO response, potentially lowering the risk of supraphysiologic EPO levels associated with some adverse events in ESA therapy.[24] Despite these benefits, HIF-PHIs carry limitations related to their broad effects on HIF-regulated pathways. Activation of HIF can upregulate genes beyond EPO, such as vascular endothelial growth factor (VEGF), potentially leading to off-target effects like enhanced angiogenesis, which raises concerns for tumor progression in patients with malignancies.[17] Other reported risks include increased incidences of hyperkalemia, thromboembolic events, and pulmonary hypertension observed in clinical trials, necessitating careful monitoring.[18] Long-term safety data remain limited, as these agents were introduced relatively recently, with ongoing post-marketing surveillance required to fully assess their risk profile.[25] Mechanism of Action Erythropoietin Receptor Signaling The erythropoietin receptor (EPOR) is a dimeric transmembrane protein belonging to the type I cytokine receptor superfamily, primarily expressed on the surface of erythroid progenitor cells such as burst-forming unit-erythroid (BFU-E) and colony-forming unit-erythroid (CFU-E).[26] It consists of two identical subunits, each featuring an extracellular ligand-binding domain, a single transmembrane helix, and an intracellular signaling domain containing Box 1 and Box 2 motifs that associate with Janus kinase 2 (JAK2).[27] The receptor exists in a pre-formed, inactive dimeric state, often localized in lipid rafts on the cell membrane.[28] Upon binding of an erythropoiesis-stimulating agent (ESA), such as recombinant erythropoietin, to the EPOR's high-affinity site (typically in the nanomolar range), the ligand induces a conformational change in the pre-dimerized receptor, bringing the associated JAK2 molecules into close proximity.[26] This activates JAK2 through autophosphorylation at tyrosine residues Y1007 and Y1008, enabling JAK2 to phosphorylate specific tyrosine residues on the EPOR cytoplasmic domain, such as Y343 and Y401, which serve as docking sites for downstream effectors.[27] The activated JAK2 then phosphorylates signal transducer and activator of transcription 5 (STAT5) at Y694 (STAT5a) or Y699 (STAT5b), promoting STAT5 dimerization via SH2 domains and its translocation to the nucleus, where it binds gamma-activated sites (GAS) to drive gene transcription.[29] Concurrently, JAK2 activates the phosphoinositide 3-kinase (PI3K)/Akt pathway by upregulating subunits like p85α and p110α, and the mitogen-activated protein kinase (MAPK) pathway via RAS-RAF-MEK-ERK signaling, amplifying the response in a dose-dependent manner where receptor occupancy correlates with ESA concentration to modulate signaling intensity.[28] These pathways culminate in key cellular outcomes essential for erythropoiesis: STAT5-mediated upregulation of anti-apoptotic proteins like Bcl-xL inhibits programmed cell death in erythroblasts, while PI3K/Akt and MAPK promote cell proliferation and survival, and STAT5 further supports erythroblast differentiation into mature erythrocytes.[26] The natural hormone erythropoietin activates this identical receptor signaling cascade.[27] Alternative Pathways in Newer Agents Newer erythropoiesis-stimulating agents, particularly hypoxia-inducible factor prolyl hydroxylase inhibitors (HIF-PHIs), operate through an upstream mechanism that mimics physiological hypoxia to enhance endogenous erythropoietin (EPO) production. These agents reversibly inhibit prolyl hydroxylase domain (PHD) enzymes, primarily PHD2, which normally hydroxylate specific proline residues on hypoxia-inducible factor-alpha (HIF-α) subunits in an oxygen-dependent manner. This inhibition prevents the recognition and subsequent ubiquitination of HIF-α by the von Hippel-Lindau E3 ubiquitin ligase complex, thereby stabilizing HIF-α and avoiding its proteasomal degradation. The stabilized HIF-α then translocates to the nucleus, where it dimerizes with HIF-β (also known as ARNT) to form an active transcription factor complex.[30][31] The HIF heterodimer binds to hypoxia-responsive elements in the promoters of target genes, initiating a cascade of transcriptional activation that includes the EPO gene alongside other hypoxia-adaptive genes, such as those encoding glycolytic enzymes like phosphoglycerate kinase 1 (PGK1) and lactate dehydrogenase A (LDHA). This coordinated gene expression leads to a more physiological, sustained surge in endogenous EPO levels from renal and hepatic sources, promoting erythropoiesis in a manner that recapitulates the body's response to low oxygen states. Unlike direct EPO analogs, HIF-PHIs exert broader regulatory effects by activating a network of over 100 hypoxia-inducible genes, which supports not only EPO synthesis but also metabolic adaptations that enhance red blood cell production efficiency.[30][32] A key distinction from traditional EPO analogs lies in the modulation of iron metabolism, where HIF-PHIs suppress hepcidin expression—the primary regulator of iron absorption and release—through HIF-mediated transcriptional repression. This reduction in hepcidin levels increases ferroportin expression on enterocytes and macrophages, facilitating greater iron mobilization from stores and dietary absorption, thereby improving iron utilization for hemoglobin synthesis without the need for exogenous iron supplementation in many cases. In contrast, EPO analogs primarily drive erythropoiesis downstream but can exacerbate functional iron deficiency by accelerating red cell production without directly addressing iron homeostasis.[33][34] Pharmacokinetically, HIF-PHIs offer advantages through their oral bioavailability and dosing convenience, with rapid absorption (typically achieving peak plasma concentrations within 0.5–3 hours) and a profile that supports once- or thrice-weekly administration depending on the agent. This results in steady-state activation of the HIF pathway, producing gradual EPO elevations that avoid the supraphysiological peaks and troughs associated with injectable EPO analogs, potentially reducing risks of overstimulation while maintaining consistent erythropoietic drive. Ultimately, both classes converge on the EPO receptor as a final common pathway to stimulate erythroid progenitor proliferation and differentiation.[30][35] Medical Uses Anemia in Chronic Kidney Disease Anemia in chronic kidney disease (CKD) primarily arises from diminished production of erythropoietin (EPO) by damaged kidneys, which impairs erythropoiesis and leads to reduced red blood cell production.[36] This EPO deficiency is compounded by factors such as chronic inflammation, shortened red blood cell lifespan, and disturbances in iron metabolism, resulting in a normocytic, normochromic anemia that worsens with advancing CKD stages.[37] In end-stage renal disease, particularly among patients on dialysis, anemia affects up to 90% of individuals, contributing to symptoms like fatigue, cardiovascular strain, and reduced quality of life.[37] Erythropoiesis-stimulating agents (ESAs) are a cornerstone therapy for managing CKD-related anemia, used to alleviate symptoms and reduce transfusion needs. This approach is informed by key clinical trials: the 2006 CHOIR trial demonstrated that targeting a higher Hb of 13.5 g/dL with epoetin alfa, compared to 11.3 g/dL, resulted in a 1.34-fold increased risk of the composite endpoint of death, myocardial infarction, hospitalization for heart failure, or stroke in non-dialysis CKD patients.[38] Similarly, the 2006 CREATE trial found no reduction in cardiovascular events with early normalization to Hb 13-15 g/dL versus partial correction to 10.5-11.5 g/dL using epoetin beta in CKD stages 3-4, and suggested potential harm from higher targets.[39] According to the KDIGO 2026 Clinical Practice Guideline for the Management of Anemia in Chronic Kidney Disease: In people with anemia and CKD G5D (receiving hemodialysis or peritoneal dialysis), suggest initiation of ESA therapy when the Hb concentration is ≤9.0–10.0 g/dL (90–100 g/L). A lower threshold (closer to 9.0 g/dL) may be preferred for patients at higher risk of adverse events (e.g., recent stroke, vascular access thrombosis), while a higher threshold (closer to 10.0 g/dL) may suit those wishing to minimize transfusions (e.g., transplant candidates). In people with CKD not receiving dialysis (including stage 3–4 and transplant recipients), there is no fixed Hb threshold; the decision to initiate ESA should be individualized through shared decision-making, considering symptoms attributable to anemia, potential benefits of higher Hb, risks of red blood cell transfusions, and harms of ESA therapy (e.g., cardiovascular events). Initiation is often considered in the 8.5–10.0 g/dL range if symptomatic or declining rapidly. In adults with anemia and CKD treated with ESAs, recommend targeting an Hb level below 11.5 g/dL (115 g/L) (strong recommendation). ESAs are suggested as first-line therapy over hypoxia-inducible factor–prolyl hydroxylase inhibitors (HIF-PHIs) after addressing correctable causes of anemia (e.g., iron deficiency). These recommendations reflect updated evidence balancing benefits (symptom relief, reduced transfusions) against risks (thrombosis, stroke, cardiovascular events), with emphasis on individualized care. Chemotherapy-Induced Anemia Chemotherapy-induced anemia (CIA) affects 40% to 90% of patients undergoing myelosuppressive chemotherapy for cancer, primarily due to the suppression of bone marrow erythropoiesis by cytotoxic agents.[40][41] This condition manifests as hemoglobin (Hb) levels below 10 g/dL, leading to symptoms such as fatigue, dyspnea, and reduced quality of life, and it increases the need for red blood cell (RBC) transfusions in up to 50% of affected patients.[42] Erythropoiesis-stimulating agents (ESAs), which mimic the action of endogenous erythropoietin to promote RBC production, have been shown to reduce the relative risk of transfusions by approximately 50% in patients with CIA and Hb levels below 10 g/dL.[43] ESAs, such as epoetin alfa and darbepoetin alfa, were initially approved by the U.S. Food and Drug Administration (FDA) in the 1990s for treating anemia in patients with non-myeloid malignancies receiving concurrent chemotherapy, specifically when Hb is less than 10 g/dL and symptoms are present.[44] However, following safety concerns raised in 2007, the [FDA](/page/Food and Drug Administration) issued warnings and updated labeling with black box warnings, restricting ESA use to patients receiving chemotherapy for palliative purposes only, excluding those on curative intent regimens due to risks of tumor progression and thromboembolism.[44] These restrictions were informed by clinical trials demonstrating no overall survival benefit and potential harm.[45] A pivotal 2009 individual patient data meta-analysis by Bohlius et al., involving 13,195 patients across 53 randomized controlled trials, found that ESA treatment increased on-study mortality by 17% (hazard ratio 1.17, 95% CI 1.06-1.30) and worsened overall survival, particularly in patients with hematologic malignancies. This evidence led to further limitations in guidelines from organizations like the National Comprehensive Cancer Network (NCCN) and American Society of Clinical Oncology (ASCO), which now recommend ESAs only for symptomatic CIA in the palliative setting, with transfusions preferred for rapid correction when Hb falls below 8 g/dL.[46] Current practice emphasizes that ESAs should not be used to achieve Hb targets exceeding 12 g/dL, as higher levels are associated with increased risks.[44] Monitoring during ESA therapy for CIA involves weekly Hb assessments initially, then monthly once stable, with treatment initiation at the lowest approved dose and dose adjustments to avoid exceeding 12 g/dL.[47] Therapy should be discontinued if there is no Hb response (e.g., increase of at least 1 g/dL) after 8 weeks or if Hb surpasses 12 g/dL, and concurrent iron supplementation is recommended if ferritin levels are low to optimize response.[43] Patients must be informed of risks, including potential tumor progression, and ESAs are contraindicated in those with uncontrolled hypertension or pure red cell aplasia.[45] Other Indications Erythropoiesis-stimulating agents (ESAs), particularly epoetin alfa, have been approved for the treatment of anemia associated with human immunodeficiency virus (HIV) infection in patients receiving zidovudine therapy. In 1991, the U.S. Food and Drug Administration (FDA) approved epoetin alfa for this indication in HIV-infected patients with endogenous serum erythropoietin levels of 500 mUnits/mL or less, aiming to reduce the need for red blood cell transfusions when zidovudine doses are ≤4,200 mg/week.[48][49] Clinical trials demonstrated that epoetin alfa increased hemoglobin levels and decreased transfusion requirements in 60-80% of eligible patients, with sustained responses observed over extended treatment periods.[50] ESAs are also indicated for short-term use in managing preoperative anemia to minimize allogeneic blood transfusions in patients undergoing elective surgery. Guidelines recommend screening for anemia at hemoglobin levels below 13 g/dL and correcting with intravenous iron for rapid hemoglobin increase and/or ESAs if necessary; transfusions should be reserved for symptomatic patients or those with very low hemoglobin levels.[51] Epoetin alfa is FDA-approved for patients with perioperative hemoglobin levels between 10 and 13 g/dL who are at high risk for transfusion due to significant anticipated blood loss, particularly in orthopedic and cardiac procedures.[49] Dosing typically involves preoperative administration for 10-15 days, on the day of surgery, and postoperatively for up to 4 days, resulting in reduced transfusion rates by approximately 30-50% in clinical studies without increasing overall complication risks.[52] In conditions such as inflammatory bowel disease (IBD) and myelodysplastic syndromes (MDS), ESAs are used off-label with limited but supportive evidence for anemia management. For IBD-associated anemia, often a combination of iron deficiency and chronic inflammation, epoetin alfa or darbepoetin alfa has shown efficacy in raising hemoglobin levels when intravenous iron alone is insufficient, with response rates of 70-80% in small cohorts refractory to standard therapy.[53] In lower-risk MDS, ESAs improve anemia and reduce transfusion dependence in about 40-50% of patients with low endogenous erythropoietin levels (<500 mUnits/mL), as per guideline recommendations, though not formally FDA-approved for this use.[54] These applications remain investigational or adjunctive, guided by individual patient factors and monitoring for response. Emerging research explores ESAs in heart failure and multiple sclerosis, though neither has led to approval as of 2025. In heart failure with reduced ejection fraction and anemia, phase II and III trials, such as the RED-HF study, investigated darbepoetin alfa but found no significant improvement in cardiovascular outcomes despite hemoglobin increases, highlighting safety concerns like thromboembolism.[55] For multiple sclerosis, particularly progressive forms, phase II trials of high-dose epoetin alfa aimed at neuroprotection and remyelination showed mixed results, with no clear efficacy in slowing progression, prompting ongoing phase II/III evaluations but no regulatory endorsement.[56] These areas underscore the agents' pleiotropic effects beyond erythropoiesis, warranting further controlled studies. Administration and Pharmacology Available Forms and Routes Erythropoiesis-stimulating agents (ESAs) are primarily available in injectable forms for recombinant erythropoietin analogs, such as epoetin alfa and darbepoetin alfa, which are supplied as solutions in single-dose vials or pre-filled syringes for subcutaneous (SC) or intravenous (IV) administration.[49][57] Epoetin alfa, for instance, is offered in pre-filled syringes or vials with strengths ranging from 2,000 to 40,000 Units per dose, allowing for flexible dosing based on patient needs.[50] Darbepoetin alfa, a hyperglycosylated analog with extended half-life, comes in pre-filled syringes containing 10 mcg to 500 mcg per dose.[57] Pegylated forms, such as methoxy polyethylene glycol-epoetin β (Mircera), provide longer-acting options in pre-filled syringes with doses from 30 mcg to 360 mcg, supporting less frequent administration.[58] For newer agents like hypoxia-inducible factor prolyl hydroxylase (HIF-PH) inhibitors, formulations are oral tablets taken daily or multiple times weekly. Roxadustat (Evrenzo) is available as film-coated tablets in strengths of 20 mg, 50 mg, 70 mg, 100 mg, and 150 mg, administered orally three times per week on non-consecutive days.[59] Vadadustat (Vafseo), another HIF-PH inhibitor, is supplied as tablets in 150 mg, 300 mg, and 450 mg strengths for once-daily oral use, with or without food.[60] Administration routes for injectable ESAs include IV infusion, often preferred in patients on dialysis to align with hemodialysis sessions for convenience and equivalent efficacy compared to SC injection.[61][62] SC injection is commonly used for non-dialysis patients or outpatients, enabling self-administration at home after proper training.[49] Oral routes for HIF-PH inhibitors eliminate the need for injections, improving patient adherence in chronic kidney disease management.[60][59] Biologic ESAs require refrigeration at 2°C to 8°C (36°F to 46°F) to maintain stability, with protection from light in their original cartons; they must not be frozen or shaken, and single-dose formats should be discarded after use.[49][57][58] Multiple-dose vials remain stable for up to 21 days after initial entry when refrigerated.[49] Oral HIF-PH inhibitors, in contrast, are stored at controlled room temperature (20°C to 25°C or 68°F to 77°F), with excursions permitted to 15°C to 30°C (59°F to 86°F), and no special handling beyond keeping out of children's reach.[60][59] Dosing and Monitoring Dosing of erythropoiesis-stimulating agents (ESAs) is individualized based on patient response, body weight, and route of administration, with the goal of achieving a gradual hemoglobin increase. Dosing may vary by indication (e.g., higher for chemotherapy-induced anemia); consult specific guidelines. For traditional recombinant ESAs such as epoetin alfa, the starting dose is typically 50 to 100 units/kg administered intravenously or subcutaneously three times per week in patients with chronic kidney disease (CKD).[1] Darbepoetin alfa is initiated at 0.45 mcg/kg once weekly via the same routes.[1] For newer oral agents like the hypoxia-inducible factor prolyl hydroxylase inhibitor (HIF-PHI) roxadustat, starting doses are weight-based, such as 70 mg three times per week for patients weighing less than 100 kg or 100 mg for those 100 kg or greater (per EU labeling).[61][59] Titration involves periodic adjustments to maintain stable hemoglobin levels while minimizing risks, with changes made no more frequently than every four weeks. For epoetin alfa, doses may be increased if the hemoglobin rise is less than 1 g/dL over two weeks, or decreased by 25% if the rise exceeds 1 g/dL in that period.[63] Similarly, darbepoetin alfa doses are adjusted by 25% based on hemoglobin trends.[1] HIF-PHIs like roxadustat are titrated in 20 to 70 mg increments or decrements every four weeks to optimize response (public review draft as of November 2024; final pending).[61] Monitoring focuses on hemoglobin levels, iron status, and clinical parameters to guide therapy and detect non-response early. Hemoglobin should be assessed weekly during initiation or dose adjustments, then at least monthly once stable, with more frequent checks if needed.[64] Iron indices, including transferrin saturation (TSAT) and ferritin, are evaluated every one to three months during ESA therapy, with supplementation recommended if TSAT ≤30% and ferritin ≤500 ng/mL in non-dialysis CKD patients on ESA therapy (per 2012 KDIGO; updated thresholds in 2025 draft vary by CKD stage and dialysis status, e.g., for hemodialysis: ferritin ≤500 ng/mL and TSAT ≤30%).[63][61] For HIF-PHIs, additional monitoring of thyroid function (e.g., TSH, free T3, T4) is advised after four weeks of roxadustat initiation.[61] Blood pressure is tracked regularly due to potential hypertensive effects.[1] ESAs should be withheld if hemoglobin exceeds 11 g/dL or rises rapidly (e.g., more than 1 g/dL in two weeks), resuming at a reduced dose once levels decline appropriately.[64] In cases of suspected resistance, such as no response after 12 weeks or escalating beyond double the initial dose, evaluation for underlying causes like pure red cell aplasia is warranted, often requiring discontinuation.[63] For HIF-PHIs, withholding criteria align similarly, with dose holds if hemoglobin surpasses target thresholds during titration (public review draft as of November 2024; final pending).[61] Adverse Effects and Safety Concerns Common Side Effects Erythropoiesis-stimulating agents (ESAs) are associated with several common side effects that are generally mild and manageable, occurring in a significant proportion of patients during treatment. These effects primarily stem from the physiological changes induced by increased red blood cell production, such as alterations in blood viscosity and heightened demand for iron stores.[1] Hypertension is one of the most frequent adverse reactions, affecting approximately 20% of patients with clinically significant increases in blood pressure, often due to elevated hematocrit levels leading to increased blood viscosity. This effect is particularly noted in patients with chronic kidney disease and can typically be managed through antihypertensive medications, adjustments to fluid status, and careful monitoring of hemoglobin levels to limit rapid rises.[65][1] Injection-site reactions, such as pain, redness, or irritation, occur in up to 18% of patients receiving subcutaneous administration, with pain specifically reported in 9-13% of cases. These localized responses are usually self-limiting and can be minimized by rotating injection sites or using proper technique, though they rarely necessitate discontinuation of therapy.[66][49] Flu-like symptoms, including headache, fever, chills, and arthralgia, are commonly observed early in the course of ESA treatment, with influenza-like illness reported in 1-10% of patients. These symptoms often resolve spontaneously within hours to days and may be linked to the cytokine-modulating effects of ESAs, requiring symptomatic relief with analgesics or antipyretics if persistent.[66][67] ESAs can exacerbate iron deficiency by accelerating erythropoiesis and thereby increasing iron utilization for hemoglobin synthesis, which is a leading cause of treatment hyporesponsiveness. Routine iron supplementation, guided by monitoring transferrin saturation and ferritin levels, is recommended to maintain adequate stores and optimize ESA efficacy.[68] Serious Risks and Boxed Warnings Erythropoiesis-stimulating agents (ESAs) have been associated with an increased risk of cardiovascular and thrombotic events, particularly in patients with chronic kidney disease (CKD). The Trial to Reduce Cardiovascular Events with Aranesp Therapy (TREAT), a 2009 randomized controlled trial involving 4,038 patients with type 2 diabetes, CKD, and anemia, demonstrated a significantly higher incidence of fatal or nonfatal stroke in the darbepoetin alfa group compared to placebo (5.0% vs. 2.6%; hazard ratio [HR] 1.92, 95% confidence interval [CI] 1.38–2.68).[69] No significant differences were observed for myocardial infarction or overall cardiovascular death in this study. Additionally, the Normal Hematocrit Trial (NHT) from 1998, which randomized 1,233 hemodialysis patients with cardiac disease to target hematocrit levels of 42% versus 30% using epoetin alfa, reported a trend toward higher mortality in the higher-target group (183 deaths vs. 150; relative risk [RR] 1.3, 95% CI 0.9–1.9), prompting early termination due to safety concerns despite non-significant primary endpoint results for death or myocardial infarction.[70] In cancer patients, ESAs carry risks of tumor progression and shortened survival, leading to regulatory actions by the U.S. Food and Drug Administration (FDA). In March 2007, the FDA issued a black box warning for ESAs, highlighting increased risks of death, serious cardiovascular events, and tumor progression when used to achieve hemoglobin levels above 12 g/dL in patients with cancer receiving chemotherapy.[44] This was strengthened in November 2007 with further label revisions, restricting ESA use in cancer to anemia caused by concomitant chemotherapy and prohibiting initiation in patients with curative intent or not receiving myelosuppressive therapy, due to evidence from clinical trials showing accelerated tumor growth and higher mortality.[44] These warnings emphasize maintaining the lowest effective hemoglobin to minimize such risks. A rare but serious adverse effect of ESAs is pure red cell aplasia (PRCA), an antibody-mediated condition causing severe anemia due to neutralization of endogenous erythropoietin. Between 2001 and 2003, the exposure-adjusted incidence of PRCA was approximately 18 cases per 100,000 patient-years with albumin-free subcutaneous epoetin alfa formulations (e.g., Eprex), compared to 6 cases per 100,000 patient-years with human serum albumin-containing versions and much lower rates (0.2–1 case per 100,000 patient-years) for other epoetins like Epogen. This elevated risk, peaking around 1998–2003 and affecting roughly 1 in 5,000 exposed patients with certain formulations, was linked to manufacturing changes and subcutaneous administration; incidence declined sharply after formulation adjustments and recommendations to use intravenous routes. Mortality signals from ESA use are further evidenced by the NHT, where targeting higher hematocrit levels not only trended toward increased death rates but also showed higher vascular access thrombosis (39% vs. 29%; P=0.001) and reduced dialysis adequacy, contributing to overall safety concerns in high-risk populations.[70] These findings, combined with post-marketing surveillance, underscore the need for cautious hemoglobin targeting to avoid excess thrombotic and mortality risks. Misuse and Ethical Issues Doping in Sports Erythropoiesis-stimulating agents (ESAs), such as recombinant human erythropoietin (rHuEPO), are misused in sports to artificially elevate red blood cell (RBC) mass, thereby enhancing oxygen transport to muscles and improving aerobic endurance performance.[71] This mechanism allows athletes to sustain higher intensities during prolonged efforts by increasing maximal oxygen uptake (VO2 max), with studies indicating potential boosts of approximately 10% in well-trained individuals.[72] The ergogenic effect is particularly pronounced in endurance disciplines, where enhanced oxygen delivery delays fatigue and supports submaximal exercise efficiency. The World Anti-Doping Agency (WADA) has prohibited ESAs since 1990, recognizing their potential to provide unfair advantages
รายการอ้างอิงและลิงก์ที่เกี่ยวข้อง (30)
- www.ncbi.nlm.nih.gov/books/NBK536997/
- www.fda.gov/drugs/postmarket-drug-safety-information-patients-and-providers/information-er
- www.cancer.gov/publications/dictionaries/cancer-terms/def/erythropoiesis-stimulating-agent
- my.clevelandclinic.org/health/articles/14573-erythropoietin
- my.clevelandclinic.org/health/articles/24407-erythropoiesis
- www.ncbi.nlm.nih.gov/books/NBK499994/
- www.fda.gov/drugs/postmarket-drug-safety-information-patients-and-providers/information-ep
- pmc.ncbi.nlm.nih.gov/articles/PMC7503180/
- pmc.ncbi.nlm.nih.gov/articles/PMC8391952/
- pmc.ncbi.nlm.nih.gov/articles/PMC4411129/
- pmc.ncbi.nlm.nih.gov/articles/PMC5405152/
- onlinelibrary.wiley.com/doi/full/10.1002/ajh.21805
- www.ema.europa.eu/en/documents/scientific-discussion/mircera-epar-scientific-discussion_en
- www.sciencedirect.com/science/article/pii/S1040842822003183
- www.accessdata.fda.gov/drugsatfda_docs/nda/2018/125545Orig1s000OtherR.pdf
- www.gabionline.net/biosimilars/general/Biosimilars-of-epoetin-alfa
- pmc.ncbi.nlm.nih.gov/articles/PMC7318915/
- pubmed.ncbi.nlm.nih.gov/32476498/
- investor.fibrogen.com/news-releases/news-release-details/fibrogen-reports-third-quarter-20
- www.accessdata.fda.gov/drugsatfda_docs/appletter/2024/215192Orig1s000ltr.pdf
- www.accessdata.fda.gov/drugsatfda_docs/appletter/2023/216951Orig1s000ltr.pdf
- www.pmda.go.jp/files/000274881.pdf
- pubmed.ncbi.nlm.nih.gov/28242135/
- doi.org/10.1016/j.kint.2020.10.041
- www.mdpi.com/2227-9059/12/12/2926
- pmc.ncbi.nlm.nih.gov/articles/PMC8268974/
- www.nature.com/articles/s41392-021-00791-1
- reactome.org/content/detail/R-HSA-9006335
- pubmed.ncbi.nlm.nih.gov/9664155/
- pmc.ncbi.nlm.nih.gov/articles/PMC7983025/