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Extracorporeal cfDNA Removal in Septic Shock Patients With Elevated DNA Levels

Extracorporeal cfDNA Removal in Septic Shock Patients With Elevated DNA Levels

Status
Not yet recruiting
Phases
Unknown
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT07657767
Enrollment
60
Registered
2026-06-18
Start date
2026-07-10
Completion date
2027-02-01
Last updated
2026-07-15

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Sepsis

Keywords

Sepsis, Extracorporeal therapy, cfDNA, Non-selective hemoperfusion

Brief summary

Sepsis continues to be a major global health concern, characterized by high morbidity and mortality rates. As a clinical syndrome characterized by a dysregulated systemic response to infection, its progression toward life-threatening organ dysfunction is driven by an array of signaling molecules. Extracorporeal therapy has emerged as a key adjunctive strategy for the targeted elimination of these inflammatory mediators. While current modalities-including non-selective cytokine adsorption, selective lipopolysaccharides LPS adsorption, and therapeutic plasma exchange (TPE)-have shown clinical benefits in specific patient cohorts, research into more precise interventions continues.A new frontier focuses on the extracorporeal removal of cell-free DNA (cfDNA) and neutrophil extracellular traps (NETs), which are recognized as pivotal drivers of systemic inflammation. This study evaluates the Nucleocor plasma adsorption column, a pioneering device designed for the selective removal of DNA-containing structures. By targeting septic shock patients with prognostically unfavorable cfDNA elevations, this research aims to establish standardized protocols and generate the evidence base necessary for integrating this novel therapy into national clinical guidelines.

Detailed description

Sepsis remains a critical challenge, associated with significant morbidity and mortality in modern healthcare. According to the latest definitions, sepsis is a clinical syndrome characterized by a dysregulated systemic response to infection that leads to organ failure. Recent breakthroughs in the pathophysiology of sepsis have identified key signaling molecules-including cytokines, toxins, and Damage-Associated Molecular Patterns (DAMPs)-that initiate and perpetuate this dysregulated immune response. As an adjunctive treatment, extracorporeal therapy has emerged as an effective strategy for the targeted elimination of these mediators. Current clinical and research modalities include non-selective hemoperfusion, which targets pro-inflammatory middle-molecular-weight proteins (10-60 kDa) such as Interleukin-1 (IL-1), Tumor Necrosis Factor-alpha (TNF-α), IL-2, IL-6, IL-8, IL-10, Interferon-gamma (IFN-γ), and complement proteins (e.g., CytoSorb and HA330 hemadsorption cartridges), and selective hemoperfusion, designed to eliminate Gram-negative bacterial lipopolysaccharides via affinity-binding fibers like Polymyxin B (e.g., Toraymyxin). A recent meta-analysis demonstrated that LPS-selective hemoperfusion significantly reduces mortality and endotoxin levels while stabilizing hemodynamic parameters. Furthermore, the EUPHRATES trial, the largest randomized controlled trial to date, demonstrated improvements in mean arterial pressure and 28-day survival exclusively within the subgroup of patients exhibiting endotoxin activity levels between 0.6 and 0.89. TPE serves as an alternative adjunctive therapy that entails the complete separation and removal of the patient's plasma from cellular components, thereby eliminating cytokines and toxins. A recent EXCHANGE-1 study demonstrated that TPE is associated with a reduction in acute-phase proteins and improved hemodynamics in patients with septic shock. Thus, the clinical potential of TPE in sepsis treatment remains a subject of active investigation. A prominent frontier in sepsis research focuses on the extracorporeal removal of cfDNA and NETs, which are now recognized as critical drivers of systemic inflammation. Excessive circulating cfDNA acts as a (DAMP, further activating immune cells and the endothelium through the Toll-like receptor 9 (TLR9) signaling pathway. This process leads to cellular damage and microvascular thrombosis. Consequently, cfDNA serves as a primary driver of immunothrombosis-a state of inflammation-induced hypercoagulation. Furthermore, cfDNA is implicated in the pathogenesis of sepsis-associated acute kidney injury (AKI) and acute lung injury (ALI). These mechanisms provide a robust pathophysiological framework for therapies targeting the extracorporeal elimination of cfDNA in septic shock. The Nucleocor plasma adsorption column pioneers a novel approach by targeting these circulating DNA-containing structures to halt the amplification of systemic inflammation. To date, there are no universally accepted guidelines for the extracorporeal elimination of DNA-containing structures-such as cfDNA and NETs-from the systemic circulation in sepsis and septic shock. This study will evaluate the efficacy and safety of extracorporeal therapy using the Nucleocor plasma adsorption column in patients with septic shock characterized by prognostically unfavorable elevations in cfDNA levels. Representing a world-first technology, the Nucleocor adsorber is uniquely designed for the selective removal of DNA-containing molecular structures from the bloodstream. Ultimately, this project aims to establish a standardized protocol for this extracorporeal therapy and generate the evidence base required for its subsequent inclusion in national clinical guidelines

Interventions

DEVICEExtracorporeal therapy

Extracorporeal therapy - only in case of AKI - in HD/CVVHD format using standard polysulfone filters with a permeability of no more than 30 kDa

DEVICEExtracorporeal elimination of cfDNA using "Nucleocore"

Device: "Nucleocore" (NPO "Pokcard") Extracorporeal cfDNA elimination will be performed according to the following protocol. Vascular access is established by inserting a 12 Fr, 200 mm catheter into the femoral vein. The procedures are conducted using the Spectra Optia system ("Exchange Set") with the following parameters: blood flow rate of 70-100 mL/min, plasma flow rate of 40-50 mL/min, and citrate anticoagulation (using a 4% sodium citrate solution) with an anticoagulant ratio of 1:20, in accordance with the Terumo "Plasmapheresis" procedure protocol. Monitoring of the patient's venous blood electrolytes and pH is performed hourly; hypocalcemia is managed via continuous infusion of a 10% calcium gluconate solution. Adsorption procedures for DNA-containing structures will be performed daily over two consecutive days, processing two total plasma volumes per session.

Sponsors

Sergey Savko
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
SINGLE (Outcomes Assessor)

Eligibility

Sex/Gender
ALL
Age
18 Years to 65 Years
Healthy volunteers
No

Inclusion criteria

* The age of patients is 18-65 years, * Septic shock (Sepsis-3 criteria) with dependence on vasopressor and/ or sympathomimetic therapy (norepinephrine - more than 0.05 mcg / kg/min, adrenaline - more than 0.05 mcg / kg/min), persisting after correction of hypovolemia. * concentration of cfDNA in the bloodstream is greater than its prognostically unfavorable level, determined by the fluorimetric method, or the presence of predictors of a prognostically unfavorable level of cfDNA: the concentration of mixed venous blood lactate is more than 1.9 mmol/l, the number of SOFA scores is more than 7

Exclusion criteria

* Clinical death after the onset of sepsis; * An untreated surgical infection site; * History of transfusion-related acute lung injury; * Allergy to heparin, GIT in the anamnesis; * Uncontrolled bleeding or a high risk of its occurrence, * The presence of cardiovascular events within the last 2 months: AMI, stroke, PE, Severe congestive CHF; * Severe chronic congestive heart failure; * End-stage CKD; * Chronic use of immunosuppressive therapy; * HIV infection, Constant use of immunosuppressive therapy, severe granulocytopenia (WBC less than 500 cells /mm3), * Development of acute cardiovascular insufficiency characterized by hypotension (BP system. less than 60 mmHg) and/or bradycardia (heart rate less than 40 min -1), refractory to adrenaline (bolus of more than 100 micrograms or infusion of more than 300 mcg/kg/min).

Design outcomes

Primary

MeasureTime frameDescription
cfDNA following the completion of extracorporeal therapyat baseline and 72 hours post-hemosorptionCirculating cell-free DNA (cfDNA) levels in septic shock, measured via a fluorometric method (cobas® cfDNA Sample Preparation Kit), which enables the quantification of chromatin-containing molecular structures in the bloodstream
Rate of septic shock resolution by Day 7Up to Day 7The percentage of participants presenting with successful cessation of all vasopressor support (norepinephrine) maintained for at least 24 consecutive hours without recurrence of shock, evaluated up to day 7.

Secondary

MeasureTime frameDescription
28-day mortality rateDay 28The percentage of participants who died from any cause within 28 days following the allocation/procedure
Duration of ICU stayUp to 28 days (or through hospital discharge)Total number of days from the date of ICU admission to the date of ICU discharge or death
Number of ventilator-free daysUp to 28 daysThe number of days alive and free from mechanical ventilation (both invasive and non-invasive) within the first 28 days. If a participant dies within 28 days, the number of ventilator-free days is recorded as 0
Number of renal replacement therapy (RRT)-free daysUp to 28 daysThe number of days alive and free from acute renal replacement therapy/dialysis within the first 28 days
SOFA scoreat baseline, 24, 48, and 72 hours post-hemosorptionValue of indicators on the Sequential Organ Failure Assessment (SOFA) Score. Each organ system received a score ranging from 0 (normal) to 4 (most abnormal), with a minimum SOFA score of 0 and a maximum SOFA score of 24. The change of SOFA score from baseline (hour 0) at the initiation of hemoperfusion to 24, 48, and 72 hours post-treatment initiation.
Changes in oxygenation indexat baseline, 24, 48, and 72 hours post-hemosorptionThe change in value of oxygenation index (Pa02 / Fi02) from baseline (hour 0) at the initiation of hemoperfusion to 24, 48, and 72 hours post-treatment initiation
Change from baseline in Vasoactive-Inotropic Score (VIS)Baseline, 24, 48, and 72 hours post-hemosorptionEvaluation of cardiovascular stability and the intensity of hemodynamic support using the Vasoactive-Inotropic Score (VIS)
Change from baseline in inflammatory and tissue injury biomarkersBaseline, 24, 48, and 72 hours post-hemosorption.Evaluation of the time course of serum inflammatory and tissue damage markers, including Interleukin-6 (IL-6), C-reactive protein (CRP), procalcitonin (PCT), ferritin, and lactate dehydrogenase (LDH)
Change from baseline in hematological parametersBaseline, 24, 48, and 72 hours post-hemosorptionEvaluation of total white blood cell (WBC) count, differential leukocyte count via manual microscopic examination (including absolute counts and percentages of neutrophils, lymphocytes, and monocytes), and systemic inflammatory response indexes including the neutrophil-to-lymphocyte ratio (NLR)
Change from baseline in bilirubin levelsBaseline, 24, 48, and 72 hours post-hemosorptionMonitoring of hepatic excretory function and pigment metabolism via total bilirubin, direct bilirubin, and indirect bilirubin concentrations
Change from baseline in blood lactate levelsBaseline, 24, 48, and 72 hours post-hemosorptionAssessment of tissue perfusion and metabolic status through serial blood lactate measurements
Change from baseline in coagulation parameters and thromboelastography (TEG) indicesBaseline, 24, 48, and 72 hours post-hemosorptionAssessment of the plasma coagulation profile, including activated partial thromboplastin time (aPTT), international normalized ratio (INR), fibrinogen levels, plasma D-dimer concentrations, and antithrombin III (AT-III) activity, alongside the viscoelastic properties of whole blood measured via thromboelastography (TEG) parameters (reaction time \[R\], clot kinetics \[K\], alpha angle, and maximum amplitude \[MA\])
Change from baseline in renal function parametersBaseline, 24, 48, and 72 hours post-hemosorptionEvaluation of renal excretory function via serial measurements of serum creatinine, blood urea

Countries

Russia

Contacts

CONTACTSergey Savko
d.t.d.savko@gmail.com89635156233
CONTACTNikolai Krotenko, Cand. of Sci. (Med.)
npkrotenko@gmail.com

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Jul 16, 2026