- ICH GCP
- Registro degli studi clinici negli Stati Uniti
- Sperimentazione clinica NCT07715110
Biological Effects of Hemoadsorption in Septic Shock (Bio-HA380)
Biological and Immunomodulatory Effect of Hemoadsorption With Macroporous Resin Cartridges in Septic Shock and Refractory Septic Shock Two Parallel Open-label Randomized Pilot Trials.
Septic shock is the most severe form of sepsis and continues to carry an in-hospital mortality of between 30% and 50% despite advances in compliance with the Surviving Sepsis Campaign care bundles.
The pathophysiology of septic shock is dominated by an uncontrolled immuno-inflammatory response with massive release of mediators, pro- and anti-inflammatory cytokines5, DAMPs (damage-associated molecular patterns) and PAMPs (pathogen-associated molecular patterns), producing vasoplegia, endothelial dysfunction, glycocalyx damage and, in many patients, a subsequent immunoparalysis phase that increases the risk of nosocomial infections and late mortality.
Endothelial damage and glycocalyx degradation are central elements in the pathophysiology of septic shock. The endothelial glycocalyx, a layer of proteoglycans and glycosaminoglycans approximately 0.5 µm thick on the luminal surface of the endothelium, regulates vascular permeability, leukocyte adhesion and the inflammatory response. During sepsis, the release of metalloproteinases, heparanase and other inflammatory mediators causes the shedding of syndecan-1, heparan sulfate and other glycocalyx molecules into the circulation. This process is associated with increased capillary permeability, interstitial edema, third-space fluid leakage, and progression to multiorgan failure. Elevated plasma syndecan-1 levels correlate with greater severity of septic shock, development of acute respiratory distress syndrome (ARDS), extrapulmonary organ dysfunction, and mortality. In parallel, the release of angiopoietin-2 by activated endothelial cells antagonizes Tie2 signaling, destabilizes the endothelial barrier and amplifies vascular dysfunction.
Selective modulation of the immune response through extracorporeal adsorption of medium-sized mediators (5-60 kDa) is an adjunctive strategy whose biological rationale is well established and whose hemodynamic effect has been described by multiple authors. The HA380 HA cartridge (Jafron Biomedical), specifically, uses a synthetic neutral macroporous polymer resin with high affinity for cytokines in the 10-60 kDa range, especially IL-6, TNF-α, IL-8 and IL-10. The device is connected to an extracorporeal therapy circuit (in this protocol, always integrated into a continuous renal replacement therapy [CRRT] circuit) and operates for 4-6 hours per cartridge. Removal of proinflammatory cytokines (IL-6, TNF-α, IL-8) with HA380 also aims to reduce their effect on endothelial damage, and recent studies with other cytokine adsorbents have demonstrated the ability to remove circulating angiopoietin-2. Although the specific literature on the effect of HA380 on recovery of glycocalyx integrity is limited, reducing the burden of cytokines and endotoxic mediators could attenuate the glycocalyx degradation cascade and contribute to the hemodynamic stabilization observed in clinical studies. This mechanism provides an additional biological rationale for assessing biomarkers of endothelial dysfunction (angiopoietin-2, syndecan-1, soluble thrombomodulin) as secondary variables in the present study.
Within the spectrum of septic shock, this protocol distinguishes two clinically and biologically relevant severity strata: 1) established septic shock as per Sepsis-3 criteria who, despite requiring vasopressor support and showing hyperlactatemia, do not meet the thresholds of refractoriness. 2) refractory septic shock, a particularly severe subgroup in which standard resuscitation measures-guided fluid therapy, vasopressors, source control, early antibiotic therapy, and hydrocortisone-are insufficient to reverse tissue hypoperfusion and progressive organ dysfunction.
Primary objective To establish whether HA380 hemoadsorption yields a more desirable overall outcome than concurrent standard of care, within each severity stratum, using a pre-specified hierarchical ordinal DOOR endpoint.
Panoramica dello studio
Stato
Condizioni
Intervento / Trattamento
Descrizione dettagliata
2. Background and rationale 2.1. The clinical problem: septic shock and its refractory form Septic shock is the most severe form of sepsis and continues to carry an in-hospital mortality of between 30% and 50% despite advances in compliance with the Surviving Sepsis Campaign care bundles1. Within the spectrum of septic shock, this protocol distinguishes two clinically and biologically relevant severity strata.
The first stratum comprises patients with established septic shock as per Sepsis-3 criteria who, despite requiring vasopressor support and showing hyperlactatemia, do not meet the thresholds of refractoriness. This intermediate-severity population, proposed for inclusion to characterize whether the magnitude of the biological effect of hemoadsorption depends on the baseline inflammatory burden, is expected to present a lower circulating cytokine load at baseline than the refractory stratum.
The second stratum comprises refractory septic shock, a particularly severe subgroup in which standard resuscitation measures-guided fluid therapy, vasopressors, source control, early antibiotic therapy, and hydrocortisone-are insufficient to reverse tissue hypoperfusion and progressive organ dysfunction.
Until 2026 the definition of refractory septic shock was variable and operationally heterogeneous2, which hampered comparison across studies. Two consensus statements published in 2026 now provide a reference for defining it reproducibly:
- A recent international Delphi consensus from the SCCM/ESICM societies3 defines refractory septic shock as persistently elevated lactate concentrations and/or prolonged capillary refill time in a fluid-unresponsive septic shock patient requiring a norepinephrine equivalent ≥ 0.5 µg/kg/min and in whom clinical ultrasound has ruled out a mixed-shock component.
- The Delphi consensus of the Spanish Society of Intensive, Critical Care Medicine and Coronary Units (SEMICYUC)4 concludes that refractory septic shock is a clinical entity with persistent hypotension and signs of global hypoperfusion for more than one hour despite optimized initial treatment-including the use of hydrocortisone-with elevated lactate as a marker of hypoperfusion, and that requires advanced hemodynamic monitoring and echocardiography.
The operational integration of both definitions for the refractory stratum, together with the operational definition of the non-refractory septic shock stratum, is detailed in the study population section.
2.2. Mechanisms of action of hemoadsorption (HA) in septic shock The pathophysiology of septic shock is dominated by an uncontrolled immuno-inflammatory response with massive release of mediators, pro- and anti-inflammatory cytokines5, DAMPs (damage-associated molecular patterns) and PAMPs (pathogen-associated molecular patterns), producing vasoplegia, endothelial dysfunction, glycocalyx damage and, in many patients, a subsequent immunoparalysis phase that increases the risk of nosocomial infections and late mortality.
Endothelial damage and glycocalyx degradation are central elements in the pathophysiology of septic shock. The endothelial glycocalyx, a layer of proteoglycans and glycosaminoglycans approximately 0.5 µm thick on the luminal surface of the endothelium, regulates vascular permeability, leukocyte adhesion and the inflammatory response6, 7. During sepsis, the release of metalloproteinases, heparanase and other inflammatory mediators causes the shedding of syndecan-1, heparan sulfate and other glycocalyx molecules into the circulation7-10. This process is associated with increased capillary permeability, interstitial edema, third-space fluid leakage, and progression to multiorgan failure8, 11. Elevated plasma syndecan-1 levels correlate with greater severity of septic shock, development of acute respiratory distress syndrome (ARDS), extrapulmonary organ dysfunction, and mortality11-13. In parallel, the release of angiopoietin-2 by activated endothelial cells antagonizes Tie2 signaling, destabilizes the endothelial barrier and amplifies vascular dysfunction12, 14.
Selective modulation of the immune response through extracorporeal adsorption of medium-sized mediators (5-60 kDa) is an adjunctive strategy whose biological rationale is well established and whose hemodynamic effect has been described by multiple authors. The HA380 HA cartridge (Jafron Biomedical), specifically, uses a synthetic neutral macroporous polymer resin with high affinity for cytokines in the 10-60 kDa range, especially IL-6, TNF-α, IL-8 and IL-1015. The device is connected to an extracorporeal therapy circuit (in this protocol, always integrated into a continuous renal replacement therapy [CRRT] circuit) and operates for 4-6 hours per cartridge. Removal of proinflammatory cytokines (IL-6, TNF-α, IL-8) with HA380 also aims to reduce their effect on endothelial damage, and recent studies with other cytokine adsorbents have demonstrated the ability to remove circulating angiopoietin-212, 16. Although the specific literature on the effect of HA380 on recovery of glycocalyx integrity is limited, reducing the burden of cytokines and endotoxic mediators could attenuate the glycocalyx degradation cascade and contribute to the hemodynamic stabilization observed in clinical studies17, 18. This mechanism provides an additional biological rationale for assessing biomarkers of endothelial dysfunction (angiopoietin-2, syndecan-1, soluble thrombomodulin) as secondary variables in the present study.
The inclusion of a non-refractory septic shock stratum is mechanistically motivated: because cytokine adsorption is a mass-transfer process driven by the concentration gradient across the resin, the absolute and relative effect of HA380 may differ between a high-burden refractory phenotype and an intermediate-burden phenotype. Characterizing both strata in parallel allows this dependence to be described as an exploratory signal.
Unlike endotoxin-specific adsorbents (Toraymyxin system with immobilized polymyxin B19, oXiris with grafted heparin), HA380 is not designed for selective removal of bacterial lipopolysaccharide, since its mechanism relies on hydrophobic interactions and size exclusion of medium-range molecules. Therefore, the expected effect on circulating endotoxic activity is minimal, which precisely defines its clinical niche and guides the interpretation of the study results.
2.3. Study rationale The available literature on HA with HA38018, 20 shows hemodynamic improvement in patients with refractory septic shock, expressed as a reduction in vasopressor doses and a decrease in the Vasopressor-Inotropic Score21. However, evidence linking the hemodynamic effect with the biological and/or prognostic effect remains limited, representing a substantial gap in relevant data prior to incorporating this device into routine clinical practice.
This study is designed as a proof of concept to quantify the biological effect of two consecutive HA sessions with HA380 on cytokines, immune function, and endothelial integrity, compared with standard of care. By recruiting two severity strata in parallel-septic shock and refractory septic shock-each with its own concurrent control, the study additionally explores whether the magnitude of the biological effect depends on baseline severity, a question relevant to defining the population in which a future confirmatory trial should be conducted.
2.4. HA380-specific experimental evidence and study positioning The capacity of HA380 to adsorb mid-range cytokines has been confirmed in vitro. In a circuit comparing HA380 with CytoSorb 300 mL, both devices removed IL-6, IL-10, TNF-α, and MCP-1, although CytoSorb did so faster and to a greater extent, concentrating the bulk of adsorption within the first 120 minutes22. This finding has two implications for the present protocol: it confirms the biological plausibility of an IL-6 decrease as the primary endpoint, although the magnitude of the HA380 effect may be smaller than that described for other adsorbents, which reinforces its proof-of-concept nature and the value of evaluating an expanded panel of mediators.
In vivo and in vitro studies with HA380 mini modules show an early adsorption profile subject to progressive saturation. The 4-hour extraction rate of meropenem falls from 95% at 10 minutes to less than 20%, and that of piperacillin from 98% to 37%23. An equivalent pattern is described for vancomycin and gentamicin, with an initial extraction above 90% falling to 28% at 4 hours24, 25. Analysis of the vancomycin mass-transfer zone in cartridges with styrene-divinylbenzene sorbent confirms that adsorptive capacity is concentrated in a front that advances and is exhausted over the course of the session26, which supports this kinetic interpretation. These saturation kinetics and the rebound phenomenon described in Section 8.3 justify the protocol of using two consecutive cartridges, given that the first cartridge exhausts much of its adsorptive capacity within the first hour. The HA session scheduled at 8-12 hours aims to consolidate the biological effect and to take advantage of the per-cartridge service life set in the protocol at 4-6 hours.
Adsorption by the HA380 cartridge resin of antimicrobials commonly used in septic shock, such as vancomycin, gentamicin, meropenem, and piperacillin23-25, carries the risk of transient subtherapeutic concentrations during the cartridge's peak-uptake phase. This uptake capacity is not limited to antimicrobials: the removal of other drugs such as ticagrelor by the HA380 cartridge has also been documented27, which illustrates the nonspecific nature of adsorption and the need to monitor the concentrations of concomitant treatments. Although all available evidence comes from animal or in vitro models and has not been confirmed in patients, increasing antibiotic doses by 15 to 35% during HA is recommended23, 24, together with recording the timing of each dose relative to the HA session. Where therapeutic drug monitoring (TDM) of vancomycin or aminoglycosides is feasible, its incorporation into data collection would help document this effect. This aspect constitutes one of the future lines of research arising from this project.
Whether the biological effect translates into clinical benefit remains to be confirmed. In a retrospective observational study, HA380 incorporated into the cardiopulmonary bypass (CPB) circuit during type A aortic dissection surgery was associated with a slower rise in IL-6 (146 vs. 206 pg/mL) and a lower incidence of acute kidney injury (25.4% vs. 44.6%) and severe ARDS28. In a randomized trial in the same population, a non-significant reduction (p = 0.093) in plasma free hemoglobin during CPB was observed29. In the pediatric population, only case series and isolated case reports are available18. The present study aims to address the lack of a direct and consistent relationship between biological signal and clinical benefit.
Ongoing prospective studies with resin cartridges (HA330/HA380) in sepsis and septic shock pursue clinical or hemodynamic endpoints, for example in norepinephrine-resistant septic shock (NCT05136183) or the combination of HA380 with the oXiris membrane (HEMOX-HDF, NCT04997421). Few characterize, prospectively and simultaneously, the effect on cytokines, immune function (mHLA-DR), and endothelial integrity across severity strata of septic shock. That is the specific niche of this study. Direct visualization of the microcirculation during extracorporeal blood purification, whose impact remains uncertain30, would allow the relationship between the biological effect and tissue perfusion to be observed.
3. Hypotheses Primary hypothesis Within each severity stratum (septic shock and refractory septic shock), treatment with two consecutive HA380 hemoadsorption sessions (two cartridges 8-12 h apart, always integrated into a CRRT circuit) produces, relative to its concurrent standard-of-care control, a more desirable global outcome on a hierarchical ordinal Desirability Of Outcome Ranking (DOOR) that combines 30-day survival with the biological and clinical response at 72 h (T6), expressed as a DOOR probability greater than 0.5 in favor of hemoadsorption.
Secondary hypotheses Within each stratum, the experimental group shows a greater percentage reduction in plasma IL-6 at 24 h (T4) and 72 h (T6) than its concurrent control (the biological signal that constituted the primary endpoint in Version 2.0).
- The biological effect is accompanied by recovery of monocytic HLA-DR expression (mHLA-DR)32, 33 and by a decrease in markers of endothelial dysfunction (angiopoietin-2, syndecan-1, soluble thrombomodulin)8, 12, 14, 34, 35.
- The biological modulation translates into a more favorable hemodynamic trajectory during the first 72 h (decrease in VIS, norepinephrine dose, and lactate clearance); beyond their role as components of the primary DOOR endpoint, these individual trajectories are described in an exploratory manner with no confirmatory intent.
The magnitude of the biological effect of HA380 differs between the two severity strata, reflecting their different baseline inflammatory burden; this between-stratum comparison is exploratory and descriptive, with no confirmatory intent and no formal power to estimate an interaction.
In survivors, recovery of monocytic HLA-DR expression, as the latest immunological event, persists at the late visit (day 90 or hospital discharge, whichever occurs first), with the exact day of sampling recorded and modeled as a covariate.
4. Objectives Primary objective To estimate the overall desirability of the outcome of HA380 hemoadsorption compared with concurrent standard of care, within each severity stratum, using a pre-specified hierarchical ordinal Desirability Of Outcome Ranking (DOOR) that ranks each patient by 30-day survival and, among day-30 survivors, by the number of four pre-defined components (plasma IL-6, Vasopressor-Inotropic Score [VIS], SOFA-2 and serum lactate) that show a clinically relevant decrease from baseline (T0) to 72 h (T6).47, 48 Secondary objectives
- To quantify the biological effect of HA380 on plasma IL-6, measured as the percentage decrease between T0 and T4 (24 h) and between T0 and T6 (72 h), estimated separately within each severity stratum against its concurrent control (the former primary endpoint).
- To characterize the effect of HA on an expanded panel of pro- and anti-inflammatory cytokines (IL-8, IL-10, TNF-α, IL-1β) and on the IL-6/IL-10 ratio31, 36.
- To assess the modulation of the immune response through monocytic HLA-DR expression32, 33.
- To quantify the effect on markers of endothelial dysfunction and glycocalyx damage (angiopoietin-2, syndecan-1, soluble thrombomodulin)8, 9, 12, 14, 34, 35.
- To describe the course of prognostic biomarkers (MR-proADM, presepsin, procalcitonin)37-39.
- To describe the early hemodynamic and organ-dysfunction trajectory (VIS, norepinephrine, lactate40, SOFA-2) during the first 72 h.
- To describe, as an exploratory and descriptive objective, whether the magnitude of the biological effect differs between the two severity strata.
- To describe late immune recovery (mHLA-DR) and vital status at day 90 or hospital discharge, whichever occurs first.
- To document the safety and feasibility of the procedure. 5. Study design This protocol comprises two parallel pilot clinical trials run under a single shared protocol: one in patients with septic shock (SS) and one in patients with refractory septic shock (RSS). The design is single-center, open-label, parallel-group, and proof-of-concept. Severity stratum is a clinical stratification criterion, not a randomized factor: it is not a factorial design, and no formal estimate of a severity × intervention interaction is sought. Each stratum constitutes a self-contained randomized controlled comparison whose primary inference is drawn within the stratum.
Throughout this protocol, organ dysfunction is quantified with the updated Sequential Organ Failure Assessment (SOFA-2) score; every reference to SOFA in this document denotes SOFA-2.46 Sixteen patients will be enrolled: eight per stratum, allocated 1:1 to the experimental group or the control group (4 + 4 per stratum). Randomization is performed independently within each stratum using block randomization in blocks of 2 with sealed opaque envelopes or a simple centralized system. Owing to the visible nature of the intervention (extracorporeal circuit), the study is open label. The laboratory processing the biomarkers will be blinded to group allocation and to stratum.
The between-stratum comparison of the magnitude of the biological effect is exploratory and descriptive only, consistent with the proof-of-concept nature and the sample size.
Tipo di studio
Iscrizione (Stimato)
Fase
- Non applicabile
Contatti e Sedi
Contatto studio
- Nome: Belen De la Hera Hernanz, PhD
- Numero di telefono: +34650624550
- Email: belenhhernanz@gmail.com
Backup dei contatti dello studio
- Nome: Miguel Sanchez-Garcia
- Numero di telefono: +34917044222 +34658762739
- Email: miguelsanchez.hcsc@gmail.com
Luoghi di studio
-
-
Es-Md
-
Madrid, Es-Md, Spagna, 28040
- Ervigio Corral-Torres
-
Contatto:
- Ervigio Corral-Torres, MD, PhD
- Numero di telefono: +34607368853
- Email: corralte@madrid.es
-
Madrid, Es-Md, Spagna, 28040
- Hospital Clínico San Carlos
-
Contatto:
- Miguel Sanchez-Garcia, Emeritus MD, PhD
- Numero di telefono: +34658762739
- Email: miguelsanchez.hcsc@gmail.com
-
Contatto:
- Belén De la Hera Hernanz, PhD
- Numero di telefono: +346504550
- Email: belenhhernanz@gmail.com
-
Sub-investigatore:
- Fernando Martínez-Sagasti, MD, PhD
-
-
Criteri di partecipazione
Criteri di ammissibilità
Età idonea allo studio
- Adulto
- Adulto più anziano
Accetta volontari sani
Descrizione
Inclusion Criteria:
All of the following:
- Age ≥ 18 years.
- Diagnosis of septic shock per Sepsis-3, with an identified or highly probable infectious focus.
- Meeting the operational definition of one of the two severity strata (SS or RSS) detailed in 6.1.
- Onset of septic shock within the last 24 hours (applied identically to both strata).
- Large-bore vascular access.
- Informed consent signed by the legal representative.
Exclusion Criteria:
- Decision to limit life-sustaining therapy made or anticipated within the next 48 hours.
- Absolute contraindication to anticoagulation with heparin and citrate.
- Predominant non-septic shock (hemorrhagic, primary cardiogenic, obstructive).
- Ongoing pregnancy.
- Platelet count < 20,000/µL.
- Significant pharmacological immunosuppression: chronic corticosteroids at doses > 20 mg/day prednisone equivalent, biologics within the last 6 months, cytotoxic chemotherapy within the last 4 weeks.
- Solid organ or hematopoietic stem cell transplantation.
- Concurrent participation in another clinical trial.
Piano di studio
Come è strutturato lo studio?
Dettagli di progettazione
- Scopo principale: Trattamento
- Assegnazione: Randomizzato
- Modello interventistico: Assegnazione parallela
- Mascheramento: Nessuno (etichetta aperta)
Armi e interventi
Gruppo di partecipanti / Arm |
Intervento / Trattamento |
|---|---|
|
Nessun intervento: Control
Standard of care (Surviving Sepsis Campaign) without hemoadsorption therapy
|
|
|
Sperimentale: Septic Shock
Septic shock meeting Sepsis-3 definition
|
Insertion of a resin-based hemoadsorption cartridge into a continuous renal replacement therapy circuit.
|
|
Sperimentale: Refractory Septic shock
Refractory septic shock meeting SEMICYUC and ESICM/SCCM Delphi consensus definitions
|
Insertion of a resin-based hemoadsorption cartridge into a continuous renal replacement therapy circuit.
|
Cosa sta misurando lo studio?
Misure di risultato primarie
Misura del risultato |
Misura Descrizione |
Lasso di tempo |
|---|---|---|
|
A more desirable overall outcome category in a pre-specified hierarchical ordinal varibles system ("DOOR"; Evans 2015; Pocock 2012).
Lasso di tempo: 30 days
|
To establish whether HA380 hemoadsorption yields a more desirable overall outcome than concurrent standard of care, within each severity stratum, using a pre-specified hierarchical ordinal DOOR endpoint Level and Definition (assessed within each severity stratum) 5. (most desirable): Alive at day 30 + relevant decrease in all 4 components (IL-6, VIS, SOFA-2, lactate)* at T6 4. Alive at D30 + relevant decrease in 3 of the 4 components at T6 3. Alive at D30 + relevant decrease in 2 of the 4 components at T6 2. Alive at D30 + decrease in 0-1 of the 4 components at T6 1. (least desirable): Death by D30, irrespective of any biological change * IL-6, reduction ≥ 30% from T0; VIS, any reduction (> 0) from T0; SOFA-2, reduction ≥ 2 points from T0; and serum lactate, a value < 2 mmol/L at T6 or a reduction ≥ 10% from T0. A component that cannot be evaluated in a day-30 survivor because of a missing T6 measurement is conservatively counted as 'no decrease' |
30 days
|
Misure di risultato secondarie
Misura del risultato |
Misura Descrizione |
Lasso di tempo |
|---|---|---|
|
Biological endpoints
Lasso di tempo: 72 hours
|
Percentage decrease in plasma IL-6 (T0-T4 and T0-T6); multiplex cytokine panel; mHLA-DR; endothelial markers (Ang-2, syndecan-1, sTM); prognostic biomarkers (MR-proADM, presepsin, PCT); endotoxin activity (EAA); cfDNA; HMGB1. Table 3. Reference and expected concentrations and anticipated changes with the intervention. Biomarker Reference (healthy) IL-6 < 7 pg/mL IL-8 (CXCL8) < 10 pg/mL IL-10 < 10 pg/mL TNF-α < 10 pg/mL IL-1β < 5 pg/mL IL-6/IL-10 ratio ≈ 1 mHLA-DR > 15,000 Ab/cell (> 80% monocytes) Angiopoietin-2 < 5 ng/mL Syndecan-1 < 30 ng/mL Soluble thrombomodulin 3-5 ng/mL Soluble VE-cadherin Assay-dependent (indicative) F-actin n/a (ex vivo morphological assessment) MR-proADM < 0.55 nmol/L Presepsin (sCD14-ST) < 300 pg/mL Procalcitonin < 0.05 ng/mL Lactate < 2 mmol/L Endotoxin activity (EAA) < 0.30 IU cfDNA < 50 ng/mL HMGB1 < 5 ng/mL |
72 hours
|
|
Exploratory physiological variables
Lasso di tempo: 72 hours
|
Vasopressor-Inotropic Score (VIS), norepinephrine dose, lactate, total SOFA-2
|
72 hours
|
Collaboratori e investigatori
Sponsor
Investigatori
- Cattedra di studio: Fernando Martínez-Sagasti, MD, PhD, Hospial Clinico San Carlos
Pubblicazioni e link utili
Pubblicazioni generali
- Singer M, Deutschman CS, Seymour CW, Shankar-Hari M, Annane D, Bauer M, Bellomo R, Bernard GR, Chiche JD, Coopersmith CM, Hotchkiss RS, Levy MM, Marshall JC, Martin GS, Opal SM, Rubenfeld GD, van der Poll T, Vincent JL, Angus DC. The Third International Consensus Definitions for Sepsis and Septic Shock (Sepsis-3). JAMA. 2016 Feb 23;315(8):801-10. doi: 10.1001/jama.2016.0287.
- Casserly B, Phillips GS, Schorr C, Dellinger RP, Townsend SR, Osborn TM, Reinhart K, Selvakumar N, Levy MM. Lactate measurements in sepsis-induced tissue hypoperfusion: results from the Surviving Sepsis Campaign database. Crit Care Med. 2015 Mar;43(3):567-73. doi: 10.1097/CCM.0000000000000742.
- Ankawi G, Fan W, Pomare Montin D, Lorenzin A, Neri M, Caprara C, de Cal M, Ronco C. A New Series of Sorbent Devices for Multiple Clinical Purposes: Current Evidence and Future Directions. Blood Purif. 2019;47(1-3):94-100. doi: 10.1159/000493523. Epub 2018 Sep 25.
- Evans SR, Rubin D, Follmann D, Pennello G, Huskins WC, Powers JH, Schoenfeld D, Chuang-Stein C, Cosgrove SE, Fowler VG Jr, Lautenbach E, Chambers HF. Desirability of Outcome Ranking (DOOR) and Response Adjusted for Duration of Antibiotic Risk (RADAR). Clin Infect Dis. 2015 Sep 1;61(5):800-6. doi: 10.1093/cid/civ495. Epub 2015 Jun 25.
- Johansson PI, Stensballe J, Rasmussen LS, Ostrowski SR. A high admission syndecan-1 level, a marker of endothelial glycocalyx degradation, is associated with inflammation, protein C depletion, fibrinolysis, and increased mortality in trauma patients. Ann Surg. 2011 Aug;254(2):194-200. doi: 10.1097/SLA.0b013e318226113d.
- Ikeda M, Matsumoto H, Ogura H, Hirose T, Shimizu K, Yamamoto K, Maruyama I, Shimazu T. Circulating syndecan-1 predicts the development of disseminated intravascular coagulation in patients with sepsis. J Crit Care. 2018 Feb;43:48-53. doi: 10.1016/j.jcrc.2017.07.049. Epub 2017 Jul 28.
- Pocock SJ, Ariti CA, Collier TJ, Wang D. The win ratio: a new approach to the analysis of composite endpoints in clinical trials based on clinical priorities. Eur Heart J. 2012 Jan;33(2):176-82. doi: 10.1093/eurheartj/ehr352. Epub 2011 Sep 6.
- Wacker C, Prkno A, Brunkhorst FM, Schlattmann P. Procalcitonin as a diagnostic marker for sepsis: a systematic review and meta-analysis. Lancet Infect Dis. 2013 May;13(5):426-35. doi: 10.1016/S1473-3099(12)70323-7. Epub 2013 Feb 1.
- Huang Z, Wang SR, Su W, Liu JY. Removal of humoral mediators and the effect on the survival of septic patients by hemoperfusion with neutral microporous resin column. Ther Apher Dial. 2010 Dec;14(6):596-602. doi: 10.1111/j.1744-9987.2010.00825.x.
- Ranzani OT, Singer M, Salluh JIF, Shankar-Hari M, Pilcher D, Berger-Estilita J, Coopersmith CM, Juffermans NP, Laffey J, Reinikainen M, Neto AS, Tavares M, Timsit JF, Arias Lopez MDP, Arulkumaran N, Aryal D, Azoulay E, Celi LA, Chaudhuri D, De Lange D, De Waele J, Dos Santos CC, Du B, Einav S, Engelbrecht T, Fazla F, Ferrer R, Finazzi S, Fujii T, Gershengorn HB, Greene JD, Haniffa R, Hao S, Hasan MS, Hollenberg S, Ippolito M, Jung C, Kirov M, Kobari S, Lakbar I, Lipman J, Liu V, Liu X, Lobo SM, Magatti D, Martin GS, Metnitz B, Metnitz P, Myatra SN, Oczkowski S, Paiva JA, Paruk F, Pekkarinen PT, Piquilloud L, Polkki A, Prescott HC, Blaser AR, Rezende E, Robba C, Rochwerg B, Ruckly S, Samei R, Schenck EJ, Secombe P, Sendagire C, Siaw-Frimpong M, Simpkin AJ, Soares M, Summers C, Szczeklik W, Takala J, Tanaka S, Tricella G, Vincent JL, Wendon J, Zampieri FG, Rhodes A, Moreno R. Development and Validation of the Sequential Organ Failure Assessment (SOFA)-2 Score. JAMA. 2025 Dec 16;334(23):2090-2103. doi: 10.1001/jama.2025.20516.
- Angus DC, Yang L, Kong L, Kellum JA, Delude RL, Tracey KJ, Weissfeld L; GenIMS Investigators. Circulating high-mobility group box 1 (HMGB1) concentrations are elevated in both uncomplicated pneumonia and pneumonia with severe sepsis. Crit Care Med. 2007 Apr;35(4):1061-7. doi: 10.1097/01.CCM.0000259534.68873.2A.
- Dwivedi DJ, Toltl LJ, Swystun LL, Pogue J, Liaw KL, Weitz JI, Cook DJ, Fox-Robichaud AE, Liaw PC; Canadian Critical Care Translational Biology Group. Prognostic utility and characterization of cell-free DNA in patients with severe sepsis. Crit Care. 2012 Aug 13;16(4):R151. doi: 10.1186/cc11466.
- Ulla M, Pizzolato E, Lucchiari M, Loiacono M, Soardo F, Forno D, Morello F, Lupia E, Moiraghi C, Mengozzi G, Battista S. Diagnostic and prognostic value of presepsin in the management of sepsis in the emergency department: a multicenter prospective study. Crit Care. 2013 Jul 30;17(4):R168. doi: 10.1186/cc12847.
- Elke G, Bloos F, Wilson DC, Brunkhorst FM, Briegel J, Reinhart K, Loeffler M, Kluge S, Nierhaus A, Jaschinski U, Moerer O, Weyland A, Meybohm P; SepNet Critical Care Trials Group. The use of mid-regional proadrenomedullin to identify disease severity and treatment response to sepsis - a secondary analysis of a large randomised controlled trial. Crit Care. 2018 Mar 21;22(1):79. doi: 10.1186/s13054-018-2001-5.
- Andaluz-Ojeda D, Bobillo F, Iglesias V, Almansa R, Rico L, Gandia F, Resino S, Tamayo E, de Lejarazu RO, Bermejo-Martin JF. A combined score of pro- and anti-inflammatory interleukins improves mortality prediction in severe sepsis. Cytokine. 2012 Mar;57(3):332-6. doi: 10.1016/j.cyto.2011.12.002. Epub 2011 Dec 23.
- Pocock SJ, Gregson J, Collier TJ, Ferreira JP, Stone GW. The win ratio in cardiology trials: lessons learnt, new developments, and wise future use. Eur Heart J. 2024 Nov 21;45(44):4684-4699. doi: 10.1093/eurheartj/ehae647.
- Sapru A, Calfee CS, Liu KD, Kangelaris K, Hansen H, Pawlikowska L, Ware LB, Alkhouli MF, Abbott J, Matthay MA; NHLBI ARDS Network. Plasma soluble thrombomodulin levels are associated with mortality in the acute respiratory distress syndrome. Intensive Care Med. 2015 Mar;41(3):470-8. doi: 10.1007/s00134-015-3648-x. Epub 2015 Feb 3.
- Sapru A, Calfee CS, Liu KD, Kangelaris K, Hansen H, Pawlikowska L, Ware LB, Alkhouli MF, Abbott J, Matthay MA; NHLBI ARDS Network. Erratum to: plasma soluble thrombomodulin levels are associated with mortality in the acute respiratory distress syndrome. Intensive Care Med. 2015 Mar;41(3):574. doi: 10.1007/s00134-015-3703-7. No abstract available.
- Monneret G, Debard AL, Venet F, Bohe J, Hequet O, Bienvenu J, Lepape A. Marked elevation of human circulating CD4+CD25+ regulatory T cells in sepsis-induced immunoparalysis. Crit Care Med. 2003 Jul;31(7):2068-71. doi: 10.1097/01.CCM.0000069345.78884.0F.
- Orwoll BE, Spicer AC, Zinter MS, Alkhouli MF, Khemani RG, Flori HR, Neuhaus JM, Calfee CS, Matthay MA, Sapru A. Elevated soluble thrombomodulin is associated with organ failure and mortality in children with acute respiratory distress syndrome (ARDS): a prospective observational cohort study. Crit Care. 2015 Dec 14;19:435. doi: 10.1186/s13054-015-1145-9.
- Varga NI, Bagiu IC, Vulcanescu DD, Lazureanu V, Turaiche M, Rosca O, Bota AV, Horhat FG. IL-6 Baseline Values and Dynamic Changes in Predicting Sepsis Mortality: A Systematic Review and Meta-Analysis. Biomolecules. 2025 Mar 13;15(3):407. doi: 10.3390/biom15030407.
- Smirnova D, Klibus M, Sabelnikovs O. Assessment of the Microcirculation During Extracorporeal Blood Purification in Septic Patients: A Narrative Review. Medicina (Kaunas). 2026 May 4;62(5):879. doi: 10.3390/medicina62050879.
- Bao Y, Wang X, Zi Y, Qian X, Li Y, Li S, Wang Z. Hemoadsorption during cardiopulmonary bypass to absorb plasma-free hemoglobin in patients with acute type a aortic dissection: A randomized controlled trial. Perfusion. 2025 Sep;40(6):1477-1486. doi: 10.1177/02676591241305276. Epub 2024 Dec 3.
- Wang J, Chen B, Xie J, Chen H, Li L, Zhang W, Lu L. Effects of Blood Hemoadsorption Therapy with HA-380 in Total Arch Replacement for Acute Type A Aortic Dissection: A Retrospective Observational Study. Blood Purif. 2024;53(2):138-150. doi: 10.1159/000534852. Epub 2023 Oct 30.
- Furukawa T, Lankadeva YR, Baldwin IC, Ow PCC, Hood S, Daali Y, Schneider A, Decosterd LA, May CN, Bellomo R. Removal of Ticagrelor by Hemoadsorption with the HA380 Cartridge. Blood Purif. 2025;54(4-5):226-230. doi: 10.1159/000544770. Epub 2025 Feb 18.
- Reis T, Ronco C, Ramirez-Guerrero G, Marcello M, de Cal M, Neves FAR, Lorenzin A. Adsorption Mass Transfer Zone of Vancomycin in Cartridges With Styrene-Divinylbenzene Sorbent. ASAIO J. 2024 Aug 1;70(8):714-718. doi: 10.1097/MAT.0000000000002166. Epub 2024 Feb 12.
- Lorenzin A, de Cal M, Marcello M, Sorbo D, Copelli S, Ronco C, de Rosa S, Zanella M. Vancomycin Adsorption during in vitro Model of Hemoperfusion with Mini-Module of HA380 Cartridge. Blood Purif. 2023;52(2):174-182. doi: 10.1159/000526149. Epub 2022 Sep 12.
- Furukawa T, Lankadeva Y, Baldwin IC, Ow PCC, Hood S, May C, Bellomo R. Vancomycin and Gentamicin Removal with the HA380 Cartridge during Experimental Hemoadsorption. Blood Purif. 2023;52(11-12):880-887. doi: 10.1159/000534108. Epub 2023 Oct 19.
- Furukawa T, Lankadeva Y, Baldwin I, Ow PCC, Hood S, Schneider A, Decosterd LA, May CN, Bellomo R. Removal of Meropenem and Piperacillin during Experimental Hemoadsorption with the HA380 Cartridge. Blood Purif. 2025;54(2):102-110. doi: 10.1159/000542332. Epub 2024 Nov 1.
- Nierhaus A, Morales J, Wendt D, Scheier J, Gutzler D, Jarczak D, Born F, Hagl C, Deliargyris E, Mehta Y. Comparison of the CytoSorb(R) 300 mL and Jafron HA380 hemoadsorption devices: an in vitro study. Minim Invasive Ther Allied Technol. 2022 Oct;31(7):1058-1065. doi: 10.1080/13645706.2022.2104617. Epub 2022 Aug 1.
- Flores J, Nugent K. Vasopressor-Inotropic Score: Review of Literature. Cardiol Rev. 2024 Sep 10. doi: 10.1097/CRD.0000000000000781. Online ahead of print.
- Azenova K, Sazonov V. Hemoadsorption in Children with Cytokine Storm Using the Jafron HA330 and HA380 Cartridges. J Clin Med. 2025 Sep 9;14(18):6359. doi: 10.3390/jcm14186359.
- Graf H, Grafe C, Paal M, Habler K, Ewert A, Wilfert W, Liebchen U, Bender M, Hackner D, Scharf C. Angiopoietin-2 adsorption attempt with the cytokine adsorber cytosorb in critically ill patients. Sci Rep. 2025 Oct 1;15(1):34294. doi: 10.1038/s41598-025-21215-y.
- Monard C, Rimmele T, Ronco C. Extracorporeal Blood Purification Therapies for Sepsis. Blood Purif. 2019;47 Suppl 3:1-14. doi: 10.1159/000499520. Epub 2019 Apr 11.
- Ricciuto DR, dos Santos CC, Hawkes M, Toltl LJ, Conroy AL, Rajwans N, Lafferty EI, Cook DJ, Fox-Robichaud A, Kahnamoui K, Kain KC, Liaw PC, Liles WC. Angiopoietin-1 and angiopoietin-2 as clinically informative prognostic biomarkers of morbidity and mortality in severe sepsis. Crit Care Med. 2011 Apr;39(4):702-10. doi: 10.1097/CCM.0b013e318206d285.
- Fujishima S, Gando S, Saitoh D, Mayumi T, Kushimoto S, Shiraishi S, Ogura H, Takuma K, Kotani J, Ikeda H, Yamashita N, Suzuki K, Tsuruta R, Takeyama N, Araki T, Suzuki Y, Miki Y, Yamaguchi Y, Aikawa N; Japanese Association for Acute Medicine Sepsis Registry (JAAM SR) Study Group. A multicenter, prospective evaluation of quality of care and mortality in Japan based on the Surviving Sepsis Campaign guidelines. J Infect Chemother. 2014 Feb;20(2):115-20. doi: 10.1016/j.jiac.2013.09.003. Epub 2013 Dec 11.
- Rosenberger CM, Wick KD, Zhuo H, Wu N, Chen Y, Kapadia SB, Guimaraes A, Chang D, Choy DF, Chen H, Peck M, Sullivan KM, Ke S, Jauregui A, Leligdowicz A, Sinha P, Gomez AD, Kangelaris KN, Delucchi K, Liu KD, Calfee CS, Matthay MA, Hendrickson CM. Early plasma angiopoietin-2 is prognostic for ARDS and mortality among critically ill patients with sepsis. Crit Care. 2023 Jun 13;27(1):234. doi: 10.1186/s13054-023-04525-3.
- Puskarich MA, Cornelius DC, Tharp J, Nandi U, Jones AE. Plasma syndecan-1 levels identify a cohort of patients with severe sepsis at high risk for intubation after large-volume intravenous fluid resuscitation. J Crit Care. 2016 Dec;36:125-129. doi: 10.1016/j.jcrc.2016.06.027. Epub 2016 Jul 7.
- Wang H, Michels EHA, Cai M, Butler JM, de Brabander J, Reijnders TDY, Joosten SC, Sweeney TE, Schuurman AR, van Engelen TSR, Haak BW, Brands X, Douma RA, Cremer OC, Peters-Sengers H, Wiersinga WJ, van der Poll T. Endothelial glycocalyx degradation and its association with clinical outcomes and host response aberrations in community-acquired pneumonia across different care settings. Crit Care. 2026 Jan 27;30(1):60. doi: 10.1186/s13054-025-05719-7.
- Uchimido R, Schmidt EP, Shapiro NI. The glycocalyx: a novel diagnostic and therapeutic target in sepsis. Crit Care. 2019 Jan 17;23(1):16. doi: 10.1186/s13054-018-2292-6.
- Hippensteel JA, Uchimido R, Tyler PD, Burke RC, Han X, Zhang F, McMurtry SA, Colbert JF, Lindsell CJ, Angus DC, Kellum JA, Yealy DM, Linhardt RJ, Shapiro NI, Schmidt EP. Intravenous fluid resuscitation is associated with septic endothelial glycocalyx degradation. Crit Care. 2019 Jul 23;23(1):259. doi: 10.1186/s13054-019-2534-2.
- Chaudhry H, Zhou J, Zhong Y, Ali MM, McGuire F, Nagarkatti PS, Nagarkatti M. Role of cytokines as a double-edged sword in sepsis. In Vivo. 2013 Nov-Dec;27(6):669-84.
- Andaluz-Ojeda D, Ferrer R, Garnacho-Montero J, Maseda-Garrido E, Ochagavia A. Consensus statement on the definition, diagnostic criteria, and treatment of refractory septic shock using a Delphi methodology. Med Intensiva (Engl Ed). 2026 Jun;50(6):502448. doi: 10.1016/j.medine.2026.502448. Epub 2026 Apr 29.
- Leone M, Myatra SN, Dugar S, Wieruszewski PM, Russell L, Evans L, Delamarre L, Sharif S, Chew MS, Gong MN, Hernandez G, Schorr C, Lakbar I, Smith SE, Martin-Loeches I, Annane D, Balik M, Cecconi M, De Backer D, Donadello K, Dunser MW, Einav S, Ferrer R, Juffermans N, Hamzaoui O, Landoni G, Levy B, McKenzie C, Monnet X, Ostermann M, Spies C, Singer M, Theodorakopulou M, Topeli A, Barreto E, Bauer SR, Busse LW, Coopersmith CM, Deutschman C, Holder AL, Kamaleswaran R, Legrand M, Martin GS, Maves RC, Nazer L, Nunnally ME, Prescott HC, Rincon T, Sacha GL, Seymour CW, Arabi YM, Besen BAMP, Cavalcanti AB, Deane AM, Finfer S, Hammond N, Ibarra-Estrada M, Kattan E, Kotani Y, Machado FR, Ospina-Tascon GA, Mer M, Young PJ, Rochwerg B, Khanna AK. Clinical criteria for the definition of refractory septic shock: a joint Delphi consensus from the Society of Critical Care Medicine (SCCM) and European Society of Intensive Care Medicine (ESICM). Intensive Care Med. 2026 May;52(5):984-1000. doi: 10.1007/s00134-026-08344-2. Epub 2026 Mar 24.
- Antonucci E, Polo T, Giovini M, Girardis M, Martin-Loeches I, Nielsen ND, Lozsan FJC, Ferrer R, Lakbar I, Leone M. Refractory septic shock and alternative wordings: A systematic review of literature. J Crit Care. 2023 Jun;75:154258. doi: 10.1016/j.jcrc.2023.154258. Epub 2023 Jan 25.
- Prescott HC, Antonelli M, Alhazzani W, Moller MH, Alshamsi F, Azevedo LCP, Belley-Cote E, De Waele J, Derde L, Dionne JC, Evans L, Gershengorn HB, Hodgson CL, Honarmand K, Kesecioglu J, McIntyre L, Mer M, Nunnally ME, Oczkowski SJW, Rochwerg B, Akinola OO, Akuamoah-Boateng KA, Alberto L, Angus DC, Arabi YM, Azoulay E, Cecconi M, Convocar PF, De Pascale G, Doi K, Du B, Egi M, Elie-Turenne MC, Ferrer R, Fox-Robichaud A, French C, Freund Y, Gong MN, Hale CP, Hammond NE, Hashmi M, Heunks L, Iwashyna TJ, Jacob ST, Klompas M, Kwizera A, Leeies M, Lejnieks JD, Levy MM, Machado FR, Maia MO, Masur H, Maves RC, McGloughlin S, McPeake J, Mohr NM, Myatra SN, Ostermann M, Peake SL, Pletz MW, Roberts JA, Rosa RG, Sawyer RG, Schorr CA, Simpson SQ, Weng L, Wiersinga WJ, Rhodes A, Coopersmith CM. Surviving Sepsis Campaign: international guidelines for management of sepsis and septic shock 2026. Intensive Care Med. 2026 May;52(5):863-936. doi: 10.1007/s00134-026-08361-1. No abstract available.
Studiare le date dei record
Studia le date principali
Inizio studio (Stimato)
Completamento primario (Stimato)
Completamento dello studio (Stimato)
Date di iscrizione allo studio
Primo inviato
Primo inviato che soddisfa i criteri di controllo qualità
Primo Inserito (Effettivo)
Aggiornamenti dei record di studio
Ultimo aggiornamento pubblicato (Effettivo)
Ultimo aggiornamento inviato che soddisfa i criteri QC
Ultimo verificato
Maggiori informazioni
Termini relativi a questo studio
Parole chiave
Termini MeSH pertinenti aggiuntivi
Altri numeri di identificazione dello studio
- Bio-HA380
- Approved by sponsor (Altro numero di sovvenzione/finanziamento: Jafron Biomedical. Zhuhai, China)
Piano per i dati dei singoli partecipanti (IPD)
Hai intenzione di condividere i dati dei singoli partecipanti (IPD)?
Descrizione del piano IPD
Periodo di condivisione IPD
Criteri di accesso alla condivisione IPD
Tipo di informazioni di supporto alla condivisione IPD
- STUDIO_PROTOCOLLO
- LINFA
- ICF
- RSI
Informazioni su farmaci e dispositivi, documenti di studio
Studia un prodotto farmaceutico regolamentato dalla FDA degli Stati Uniti
Studia un dispositivo regolamentato dalla FDA degli Stati Uniti
Queste informazioni sono state recuperate direttamente dal sito web clinicaltrials.gov senza alcuna modifica. In caso di richieste di modifica, rimozione o aggiornamento dei dettagli dello studio, contattare register@clinicaltrials.gov. Non appena verrà implementata una modifica su clinicaltrials.gov, questa verrà aggiornata automaticamente anche sul nostro sito web .
Prove cliniche su Hemoadsorption cartridge
-
Peking University People's HospitalReclutamentoMalattia renale allo stadio terminale in dialisiCina