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NCT Number: NCT06146062

Effects of Intravascular Administration of Mesenchymal Stromal Cells Derived from Wharton's Jelly of the Umbilical Cord on Systemic Immunomodulation and Neuroinflammation After Traumatic Brain Injury.

Traumatic brain injuries (TBI) are one of the leading causes of death and disability worldwide. These patients are burdened by physical, cognitive, and psychosocial deficits, leading to an important economic impact for society. Treatments for TBI patients are limited and none has been shown to provide prolonged and long-term neuroprotective or neurorestorative effects. TBI related disability is linked to the severity of the initial injury but also to the following neuroinflammatory response which may persist long after the initial injury.

Moreover, a growing body of evidence suggests a link between TBI-induced neuro-inflammation and neurodegenerative post traumatic disorders. Consequently, new therapies triggering immunomodulation and promoting neurological recovery are the subject of major research efforts.

In this context, mesenchymal cell-based therapies are currently investigated to treat various neurological disorders due to their ability to modulate neuroinflammation and to promote simultaneous neurogenesis, angiogenesis, and neuroprotection.

Clinical trials using intravenous MSC have been conducted for various pathologies, all these studies showing a good safety profile.

The hypothesis of the study is that intravenous repeated treatment with MSC derived from Wharton's Jelly of the umbilical cord may be associated with a significant decrease of post-TBI neuroinflammation and improvement of neuroclinical status.

The main objective of the study is to evaluate the effect of iterative IV injections of MSC on post-traumatic neuroinflammation measured in corpus callosum by PET-MRI at 6 months in severe brain injured patients unresponsive to simple verbal commands 5 days after sedation discontinuation.

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Key information

Age range

18 year–50 year

Sex eligibility

All sexes

Study type

Interventional

Phase

Phase 2

Primary location

Hôpital National d'Instruction des Armées Percy, Clamart, France

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About this study

Traumatic brain injuries (TBI) are one of the leading causes of death and disability worldwide. These patients are burdened by physical, cognitive, and psychosocial deficits, leading to an important economic impact for society. Treatments for TBI patients are limited and none has been shown to provide prolonged and long-term neuroprotective or neurorestorative effects. TBI related disability is linked to the severity of the initial injury but also to the following neuroinflammatory response which may persist long after the initial injury.

Moreover, a growing body of evidence suggests a link between TBI-induced neuro-inflammation and neurodegenerative post traumatic disorders. Consequently, new therapies triggering immunomodulation and promoting neurological recovery are the subject of major research efforts.

In this context, mesenchymal cell-based therapies are currently investigated to treat various neurological disorders due to their ability to modulate neuroinflammation and to promote simultaneous neurogenesis, angiogenesis, and neuroprotection. Indeed, several experimental studies have reported that human umbilical cord-derived mesenchymal stromal cells (MSC) have the ability to improve neurological outcomes and recovery in cerebral injury animal models, including TBI.

Clinical trials using intravenous MSC have been conducted for various pathologies, all these studies showing a good safety profile. In TBI, small clinical trials using different modalities for administration of mesenchymal cells are available but none about MSC derived from Wharton's Jelly of the umbilical cord.

The hypothesis of the study is that intravenous repeated treatment with MSC derived from Wharton's Jelly of the umbilical cord may be associated with a significant decrease of post-TBI neuroinflammation and improvement of neuroclinical status.

The main objective of the study is to evaluate the effect of iterative IV injections of MSC on post-traumatic neuroinflammation measured in corpus callosum by PET-MRI at 6 months in severe brain injured patients unresponsive to simple verbal commands 5 days after sedation discontinuation.

Who can participate

Healthy volunteers accepted: Yes

Only the study team can determine whether someone qualifies for participation.

20 healthy volunteers will be included for MRI normalization Volunteer eligibility criteria

Inclusion criteria

  • Age 18-50 years
  • ASA 1 classification (healthy patient)

Exclusion criteria

  • Lack of written consent
  • Neurological history likely to alter the image (epilepsy, transient ischaemic attack, meningitis, head trauma)
  • Vulnerable person according to article L1121-6 of the CSP
  • Protected adult person
  • No affiliation to a social security regime
  • Pregnancy
  • Contraindication for MRI and PET-MRI
  • patients with Pacemaker and defibrillator
  • MR-incompatible prosthetic heart valve
  • Metallic intraocular, intra cerebral or intra medullary foreign bodies
  • Implantable neurostimulation systems
  • Cochlear implants/ear implant
  • Metallic fragments such as bullets, shotgun pellets, and metal shrapnel
  • Cerebral artery aneurysm clips
  • Ventriculo peritoneal shunt with metallic component generating significant artefacts on the MR sequence
  • Catheters with metallic components (Swan-Ganz catheter)
  • Patient unable to remain supine and motionless during the duration of the examination

68 severe TBI patients with the following inclusion and exclusion criteria will be included"

Patient Inclusion criteria

  • Age 18-50 years
  • Severe TBI defined by:
  • Glasgow score <12 within the 48 first hours,
  • Brain traumatic lesion on CT scan,
  • Need for intracranial pressure monitoring
  • No other significant organ trauma (AIS <2)
  • Unresponsive to verbal commands 5 days after sedation discontinuation, for whom, after usual clinical and paraclinical evaluation there has been no decision to interrupt active therapies within 10 days after sedation discontinuation
  • Written consent signed by the close relative

Patient Exclusion criteria

  • History of disease or treatment impairing current or previous year immunity function ( hematologic disease (leukemia, myeloma), viral disease affecting immunity (like HIV), immunological treatment (corticoid, anti rejection medication, anti TNFα, chemotherapy)
  • History of severe neurological or psychiatric disease likely to alter neurological assessment
  • HTAP > grade III OMS/WHO
  • Ongoing uncontrolled infection with organ failure (septic shock, ARDS) including those due to severe COVID-19
  • Platelets <100 G/L or <100000/μL, Hb <8 g/dL, lymphocytes count <1.5 G/L or 1500 μL , neutrophils count < 2.5G/L or <2500/μL, , creatinin > 100 μmol/L
  • Liver function abnormalities (bilirubin> 2.5mg / dL or transaminases> 5x the ULN). Patients with Gilbert's disease are eligible if liver tests are normal excluding bilirubinemia
  • Known HIV seropositivity
  • Neoplasia ongoing or treated in the 3 years before screening
  • Bone marrow transplant recipient
  • History of transfusion reaction or hypersensitivity
  • Pregnancy
  • Contraindication for MRI and PET-MRI:
  • Patient with Pacemaker and defibrillator
  • MR-incompatible prosthetic heart valve o Metallic intraocular, intra cerebral or intra medullary foreign bodies
  • Implantable neurostimulation systems o Cochlear implants/ ear implant
  • Metallic fragments such as bullets, shotgun pellets, and metal shrapnel
  • Cerebral artery aneurysm clips
  • Ventriculo peritoneal shunt with metallic component generating significant artefacts on the MR sequence
  • Catheters with metallic components (Swan-Ganz catheter)
  • Patient unable to remain supine and motionless during the duration of the examination
  • Participation in another interventional clinical trial of an investigational therapy within 30 days of consent
  • No affiliation to a social security regime
  • Vulnerable person according to article L1121-6 of the CSP
  • Protected adult person

Treatment and study plan

Mesenchymal Stromal Cells (MSC)

Drug

3 injections one week apart

Placebo

Drug

3 injections one week apart

Primary outcomes

  1. effect of iterative IV injections of WJ-UC-MSC on post-traumatic neuroinflammation

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in corpus callosum (Region of Interest, ROI) measured by dynamic PET-MRI

Secondary outcomes

  1. radiological markers from PET-MRI_1

    Time frame: 6 months after the last injection

    The regional fractional anisotropy (FA) from DTI acquisition of PET-MRI

  2. radiological markers from PET-MRI_2

    Time frame: 6 months after the last injection

    The mean diffusibility (MD) from DTI acquisition of PET-MRI

  3. Treatment feasibility

    Time frame: at the third injection

    number of treatments administrated to the patient

  4. Neurological clinical Score M6

    Time frame: 6 months after the last injection

    Glasgow Outcome Scale-Extended

  5. Neurological clinical Score M12

    Time frame: 12 months after the last injection

    Glasgow Outcome Scale-Extended

  6. cognitive assessment M6

    Time frame: 6 months after the last injection

    MOCA scale

  7. cognitive assessment M12

    Time frame: 12 months after the last injection

    MOCA scale

  8. short term Tolerance D10

    Time frame: 10 days after the last injection

    Common Terminology Criteria for Adverse Events

  9. long term Tolerance M6

    Time frame: 6 months after the last injection

    Common Terminology Criteria for Adverse Events

  10. long term Tolerance M12

    Time frame: 6 months after the last injection

    Common Terminology Criteria for Adverse Events

  11. neuroinflammation of pericontusional

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in pericontusional

  12. neuroinflammation of grey matter

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in grey matter

  13. neuroinflammation of white matter

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in white matter

  14. neuroinflammation of frontal area

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in frontal area

  15. neuroinflammation of parietal area

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in parietal area

  16. neuroinflammation of occipital area

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in occipital area

  17. neuroinflammation of hippocampus

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in hippocampus,

  18. neuroinflammation of thalamus

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in thalamus,

  19. neuroinflammation of mesencephalus

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in mesencephalus

  20. neuroinflammation of cerebellum

    Time frame: 6 months after the last injection

    [18F]-DPA-714 Standard Uptake Value ratio (SUVr) in cerebellum

  21. Cytokine and chemokine levels in plasma

    Time frame: 6 months after the last injection

    Luminex magnetic beads technology

  22. PBMC profile

    Time frame: 6 months after the last injection

    High-dimensional characterization of immune reprogramming during the treatment by single-cell RNA-sequencing of PBMC.

  23. Transcriptomics and regulatory epigenomics of circulating monocytes and lymphocytes 1.

    Time frame: 6 months after the last injection

    H3K27ac

  24. Transcriptomics and regulatory epigenomics of circulating monocytes and lymphocytes 2.

    Time frame: 6 months after the last injection

    H3K4me3

  25. Transcriptomics and regulatory epigenomics of circulating monocytes and lymphocytes 3.

    Time frame: 6 months after the last injection

    ChIP-seq

  26. Transcriptomics and regulatory epigenomics of circulating monocytes and lymphocytes 4.

    Time frame: 6 months after the last injection

    ATAC-seq

  27. Genome-wide single-nucleotide polymorphism (SNP) genotype.

    Time frame: After 1 injection

    DNA sample

Other outcomes

  1. Analyze the pharmacokinetics and pharmacodynamics of CSM WJ-UC in humans 1

    Time frame: After 3rd injection 48 hours later

    NGS approach,

  2. Analyze the pharmacokinetics and pharmacodynamics of CSM WJ-UC in humans 2

    Time frame: After 3rd injection 48 hours later

    digital droplet (dd)-PCR approach,

  3. Deep phenotyping of the main immune effector cell populations humans, to identify the phenotypes involved in immunomodulation and alloimmunization induced by MSC administration. 1

    Time frame: After 3rd injection 48 hours later

    populations of immune effector cells, such as Tregs,

  4. Deep phenotyping of the main immune effector cell populations humans, to identify the phenotypes involved in immunomodulation and alloimmunization induced by MSC administration.2

    Time frame: After 3rd injection 48 hours later

    populations of immune effector cells, such as Teff,

  5. Deep phenotyping of the main immune effector cell populations humans, to identify the phenotypes involved in immunomodulation and alloimmunization induced by MSC administration.3

    Time frame: After 3rd injection 48 hours later

    populations of immune effector cells, such as NK cells,

  6. Deep phenotyping of the main immune effector cell populations humans, to identify the phenotypes involved in immunomodulation and alloimmunization induced by MSC administration. 4

    Time frame: After 3rd injection 48 hours later

    populations of immune effector cells, such as NKT,

  7. Deep phenotyping of the main immune effector cell populations humans, to identify the phenotypes involved in immunomodulation and alloimmunization induced by MSC administration. 5

    Time frame: After 3rd injection 48 hours later

    populations of immune effector cells, such as MAIT,

  8. Deep phenotyping of the main immune effector cell populations humans, to identify the phenotypes involved in immunomodulation and alloimmunization induced by MSC administration. 6

    Time frame: After 3rd injection 48 hours later

    populations of immune effector cells, such as DC

  9. Deep phenotyping of the main immune effector cell populations humans, to identify the phenotypes involved in immunomodulation and alloimmunization induced by MSC administration. 7

    Time frame: After 3rd injection 48 hours later

    populations of immune effector cells, such as monocytes

  10. Deep phenotyping of the main immune effector cell populations humans, to identify the phenotypes involved in immunomodulation and alloimmunization induced by MSC administration. 8

    Time frame: After 3rd injection 48 hours later

    populations of immune effector cells, such as B cells.

Study contacts

Contact information is provided by the study sponsor or research team.

Stéphanie Sigaut

CONTACT

[email protected]

140875009 ext. 33

Vincent Degos

CONTACT

[email protected]

142163761 ext. 33

Sponsors and collaborators

Lead sponsor

Assistance Publique - Hôpitaux de Paris

Other

Registry information

Acronym: TRAUMACELL

Important dates

Study start
2024
Primary completion
2027
Study completion
2028
First posted
Nov 24, 2023
Registry last updated
Oct 16, 2024

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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