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NCT Number: NCT06515106

Antibody-mediated LGI1 Encephalitis: Symptoms, Biomarkers, and Mechanisms of the Chronic Phase of the Disease

The encephalitis mediated by antibodies against Leucine-rich, glioma inactivated 1 protein (anti-LGI1 encephalitis) predominantly affects men (M:F, 6:4) and mostly older than 60 years. The disease has two distinct clinical phases: The acute phase in which the majority of patients develop severe short-term memory deficits (unable to remember events or experiences that occurred a few minutes earlier). This memory impairment can be preceded or accompanied by one or more of the following: hyponatremia (60% of patients), a highly distinctive type of seizures called facio-brachial dystonic seizures (~40% of patients), along with confusion, irritability and other types of focal seizures or less frequently, generalized seizures. In addition, many patients at this stage have symptoms of REM sleep behavior disorder. In this stage, the CSF may show pleocytosis or mild increase of proteins, the EEG is usually abnormal, and in ~60% of the patients the MRI shows typical increased FLAIR signal in medial temporal lobes (11). There is a clinical sub-phenotype (~13% of patients) in which the disease presents as a rapidly progressive cognitive decline without the indicated FLAIR MRI changes. About 70% of patients improve rapidly with corticosteroids and immunotherapy (eg, intravenous immunoglobulins and/or plasma exchange), but the improvement is often partial. After the acute phase, there is a chronic or residual phase which represents the interval from improvement of initial symptoms until the disease is considered no longer active and the remaining symptoms are thought to be irreversible. This chronic phase may take several months (it has been less well studied), and is characterized by the absence of CSF pleocytosis and inflammatory MRI changes (albeit this may show residual hippocampal atrophy), and very low or undetectable titers of serum antibodies. Most patients are unable to return to their job or previous activities due to residual (irreversible) memory or cognitive deficits accompanied by signs of moderate brain atrophy. In addition, we and others have shown that about 27-35% of patients have relapsing symptoms after improving from the acute phase (. Although acute symptomatic seizures (facio-brachial dystonic and others) occur in ~90% of patients during the acute phase of the disease, less than 10% of patients develop chronic epilepsy often associated with hippocampal sclerosis. Therefore, the prevailing concept on this disease suggests a syndrome and clinical course in which the acute phase shows rapid, albeit partial, response to immunotherapy, and the symptoms of the chronic phase represent a burnout or irreversible process, in which the disease is no longer active, and the potential improvement of remaining symptoms is uncertain.

Here investigators postulate that a better knowledge of this stage will improve treatment decisions and outcome.

In Aim 1, the post-acute stage will be clinically characterized.

In Aim 2, the impact of cognitive rehabilitation will be assessed.

In Aim 3, a mouse model of anti-LGI1 encephalitis will be used to determine the underlying mechanisms and treatment of the postacute stage.

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Key information

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

Hospital Clínic de Barcelona

Barcelona, Catalonia, 08036, Spain

Location status: Recruiting

Location contact

Amaia Muñoz, MD

SUB_INVESTIGATOR

Elianet Fonseca, MD

SUB_INVESTIGATOR

Eugenia Martínez-Hernández, MD, PhD

SUB_INVESTIGATOR

Josep Dalmau, MD, PhD

CONTACT

[email protected]

+34 93 227 1738

Josep Dalmau, MD, PhD

PRINCIPAL_INVESTIGATOR

Laia Prades, MS

SUB_INVESTIGATOR

Lorena Rami, PhD

PRINCIPAL_INVESTIGATOR

Mar Guasp, MD, PhD

SUB_INVESTIGATOR

Thais Armanguè, MD, PhD

SUB_INVESTIGATOR

Victor Patricio, MS

CONTACT

[email protected]

+34 93 227 1738

Víctor Patricio, MS

SUB_INVESTIGATOR

Who can participate

Healthy volunteers accepted: No

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

Inclusion criteria

  • Patients with Antibody-mediated LGI-1 encephalitis in the post-acute stage of the disease;
  • Patients has been discharged from hospital (acute phase).

Exclusion criteria

  • Inability to obtain informed consent;
  • Inability to travel to the center.

Treatment and study plan

Remote cognitive rehabilitation program

Behavioral

Behavioral: Remote cognitive rehabilitation program Remote cognitive rehabilitation program will be performed through an online validated platform (Guttmann NeuroPersonalTrainer: https://gnpt.es/) run by the psychologists team. This is a Sanitary Product with CE certification (Sanitary Product RPS/430/2014; International Patent [PCT/ES2008/00677]) and here will be used within its approved indications. The rehabilitation program will increase in difficulty and decrease in frequency during the first year of follow-up (V1-V3).

Primary outcomes

  1. Age

    Time frame: 12 months

    Age measured in years

  2. Gender

    Time frame: 12 months

    Male or female

  3. Handedness

    Time frame: 12 months

    Right- or Left-handed

  4. General medical history

    Time frame: 12 months

    Description of the most important issues compiled in the general medical history of the participant

  5. Allergies

    Time frame: 12 months

    List of allergies of each participant

  6. Symptoms related to anti-LGI1 encephalitis

    Time frame: 12 months

    Detailed description of symptoms experienced before, during and after the post-acute phase of anti-LGI1 encephalitis.

  7. Treatments

    Time frame: 12 months

    All treatments in which the participant is being involved.

  8. Functional status

    Time frame: 12 months

    Functional status according to Modified Rankin Scale (mRS).

    Modified Rankin Scale:

    • Range: from 0 points (no symptoms) to 6 points (dead).
  9. Intelligence Quotient

    Time frame: 12 months

    Estimated through General Ability Index (GAI; from Weschler Adult Intelligence Scale - IV (WAIS-IV).

    This index is obtained through Verbal Comprehension Index (VCI) and Perceptual Reasoning Index (PRI).

    Range of GAI: from 40 to 160. Higher is better. Range of VCI: from 50 to 150. Higher is better. Range of PRI: from 50 to 150. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  10. Verbal working memory

    Time frame: 12 months

    Verbal Working Memory: Working Memory Index (WMI) from WAIS-IV.

    • Range of WMI: from 50 to 150. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  11. Phonological loop

    Time frame: 12 months

    Assessed by Forward order span of Digit span subtest from WAIS-IV.

    • Range: from 0 to 9

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  12. Visual working memory

    Time frame: 12 months

    Visual Working Memory: Spatial location subtest from Weschler Memory Scale - IV (WMS-IV).

    • Range of Spatial Location subtest: from 0 to 32. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  13. Verbal learning

    Time frame: 12 months

    Assessed by:

    Adults: España - Complutense Auditory-Verbal Learning Test (Test de Aprendizaje Verbal España - Complutense; TAVEC

    • Total learning: range: from 0 to 80. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  14. Proactive interference verbal memory

    Time frame: 12 months

    Assessed by:

    Adults: España - Complutense Auditory-Verbal Learning Test (Test de Aprendizaje Verbal España - Complutense; TAVEC).

    • Interference list: range: 0 to 15. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  15. Short-term verbal memory

    Time frame: 12 months

    Assessed by:

    Adults: España - Complutense Auditory-Verbal Learning Test (Test de Aprendizaje Verbal España - Complutense; TAVEC).

    • Short-term memory free recall: range: 0 to 15. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  16. Long-term verbal memory

    Time frame: 12 months

    Assessed by:

    Adults: España - Complutense Auditory-Verbal Learning Test (Test de Aprendizaje Verbal España - Complutense; TAVEC):

    • Long-term memory free recall: range: 0 to 15. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  17. Verbal recognition memory

    Time frame: 12 months

    Assessed by:

    Adults: España - Complutense Auditory-Verbal Learning Test (Test de Aprendizaje Verbal España - Complutense; TAVEC).

    • Word-list Recognition: range: 0 to 15. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  18. Verbal discrimination memory

    Time frame: 12 months

    Assessed by:

    Adults: España - Complutense Auditory-Verbal Learning Test (Test de Aprendizaje Verbal España - Complutense; TAVEC)

    Discrimination index of word-list: False positives + omissions of recognition between 44 total words to recognize. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  19. Verbal retention memory

    Time frame: 12 months

    Assessed by:

    Adults: España - Complutense Auditory-Verbal Learning Test (Test de Aprendizaje Verbal España - Complutense; TAVEC); or Infants: España - Complutense Auditory-Verbal Learning Test for Children (Test de Aprendizaje Verbal España - Complutense Infantil; TAVECI)

    • Retention index: percentatge of Long-term memory free recall between Short-term memory free recall. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  20. Immediate visual memory

    Time frame: 12 months

    Assessed by: Brief Visuospatial Memory Test - Revised (BVMT-R)

    • Immediate visual memory: range: from 0 to 36. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  21. Delayed visual memory

    Time frame: 12 months

    Assessed by: Brief Visuospatial Memory Test - Revised (BVMT-R)

    • Delayed visual memory: range: from 0 to 12. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  22. Visual retention memory

    Time frame: 12 months

    Assessed by: Brief Visuospatial Memory Test - Revised (BVMT-R)

    • Retention index: percentatge of Long-term memory free recall between the Higher punctuation at Trial 2 or 3. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  23. Visual recognition memory

    Time frame: 12 months

    Assessed by: Brief Visuospatial Memory Test - Revised (BVMT-R)

    • Figure Recognition: range: from 0 to 6. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  24. Visual discrimination memory

    Time frame: 12 months

    Assessed by: Brief Visuospatial Memory Test - Revised (BVMT-R)

    • Discrimination index: figure recognized minus false positives. Range: from -6 to 6. Higher is better.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  25. Processing speed

    Time frame: 12 months

    Symbol Search subtest (WAIS-IV)

    • Total (correct answers less incorrect answers): from 0 to 60

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  26. TMT-A

    Time frame: 12 months

    Trail Making Test part A (TMT-A):

    • Time in seconds: from 0 to infinity.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  27. Naming

    Time frame: 12 months

    Assessed by: Boston Naming Test (BNT)

    • Total correct: from 0 to 60

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  28. Naming with cues

    Time frame: 12 months

    Assessed by: Boston Naming Test (BNT)

    • Total correct with phonemic cue: from 0 to 60
  29. Latency in naming

    Time frame: 12 months

    Assessed by: Boston Naming Test (BNT)

    • Time to complete test in seconds
  30. Semantic fluency

    Time frame: 12 months

    Number of name of animals recalled in 1 minute: range: from 0 to infinity.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  31. Phonemic fluency

    Time frame: 12 months

    Number of words started by letter "M" recalled in 1 minute:

    • Range: from 0 to infinity.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  32. Visuospatial skills

    Time frame: 12 months

    Number location subtest of the Visual-Object Spatial and Perceptual battery.

    • Range: from 0 to 10

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  33. Symbolic gesture right hand - order

    Time frame: 12 months

    Symbolic gesture right hand - order subtest from Test Barcelona - Revised

    • Range: from 0 to 10

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  34. Symbolic gesture left hand - order

    Time frame: 12 months

    Symbolic gesture left hand - order subtest from Test Barcelona - Revised

    • Range: from 0 to 10

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  35. Symbolic gesture right hand - imitation

    Time frame: 12 months

    Symbolic gesture right hand - imitation subtest from Test Barcelona

    • Range: from 0 to 10

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  36. Symbolic gesture left hand - imitation

    Time frame: 12 months

    Symbolic gesture left hand - imitation subtest from Test Barcelona - Revised

    • Range: from 0 to 10

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  37. Bilateral ideomotor praxis - imitation

    Time frame: 12 months

    Bilateral ideomotor praxis imitation subtest from Test Barcelona

    • Range: from 0 to 10

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  38. Stroop test - word subtest

    Time frame: 12 months

    • Words: words read in 45 seconds

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  39. Stroop test - color subtest

    Time frame: 12 months

    • Colour: colours distinguished in 45 seconds.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  40. Stroop test - word-color subtest

    Time frame: 12 months

    • Word-colour: colours distinguished in 45 seconds.

    Raw scores were transformed into standard T-scores (mean 50 ± standard deviation [SD] 10) and a score below 35 (≤ 1.5 SD below normative mean, or the equivalent ≤9th percentile) was considered significantly decreased.

  41. Prensence of psychiatric symptoms or disorders

    Time frame: 12 months

    Number of participants with psychiatric symptoms/disorders following DSM-IV-TR guidelines (psychotic symptoms, symptoms of depression, symptoms of mania, global functioning).

  42. Sleep microstructure - Total study time

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Total sleep time: minutes
  43. Sleep microstructure - Total sleep time

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Total sleep time: minutes
  44. Sleep microstructure - Sleep efficiency

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Sleep efficiency: based on total study time and total sleep time
  45. Sleep microstructure - Time to sleep onset

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Time to sleep onset: minutes
  46. Sleep microstructure - Time in stage N1

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Time in stage N1: minutes
  47. Sleep microstructure - Time in stage N2

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Time in stage N2: minutes
  48. Sleep microstructure - Time in stage N3

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Time in stage N3: minutes
  49. Sleep microstructure - Time in stage R

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Time in stage R: minutes
  50. Sleep microstructure - First epoch of N1

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • First epoch of N1: minutes
  51. Sleep microstructure - First epoch of N2

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • First epoch of N2: minutes
  52. Sleep microstructure - First epoch of N3

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • First epoch of N3: minutes
  53. Sleep microstructure - First epoch of REM

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • First epoch of REM: minutes
  54. Sleep microstructure - REM/NREM time ratio

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • REM/NREM time ratio
  55. Sleep microstructure - Number of arousals

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Number of arousals (total)
  56. Sleep microstructure - Arousal Index

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Arousal Index
  57. Sleep microstructure - Confusional arousals

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Confusional arousals: Yes or No
  58. Sleep microstructure - Direct transition from N3 to W

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Direct transition from N3 to W: yes or no
  59. Sleep microstructure - Delta arousals

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Delta arousals: yes, no or unknown
  60. Sleep microstructure - Wake after sleep

    Time frame: 12 months

    It will be adapted to patient's sleep habits (~23:00 to 07:30) using a digital polygraph (Deltamed). This includes EEG in 43 scalp channels + 11 channels for electrooculography, electrocardiography, electromyography, and audiovisual recording (sampling rate 256 Hz). Sleep stages will be scored manually (AASM criteria) using 30-s epochs, with modifications depending on sleep alterations, as reported.

    Parameters:

    • Wake after sleep: hour
  61. Adherence to cognitive treatment - 6 months

    Time frame: 6 months

    Percentage of sessions performed in 6 months out of 48 (sessions performed out of 48 x 100)

  62. Adherence to cognitive treatment - 9 months

    Time frame: 9 months

    Percentage of sessions performed in 9 months (sessions performed out of 54 x 100)

  63. Adherence to cognitive treatment - 12 months

    Time frame: 12 months

    Percentage of sessions performed in 9 months out of 60 (sessions performed out of 60 x 100)

  64. Cardiovagal evaluation. (Composite autonomic scoring scale)

    Time frame: 12 months

    Continuous electrocardiogram heart rate changes during deep breathing and postural changes (beats per minute).Composite autonomic scoring scale minimun 0, maximum 3, higher scores mean a worse outcome.

  65. Valsava ratio

    Time frame: 12 months

    Continuous electrocardiogram heart rate changes during Valsalva manoeuvre (ratio).

  66. Sympathetic evaluation (Composite autonomic scoring scale)

    Time frame: 12 months

    Beat-to-beat blood pressure changes to isometric exercise, Valsalva manoeuvre and postural changes, (mmHg). Composite autonomic scoring scale minimun 0, maximum 4, higher scores mean a worse outcome

  67. Composite Autonomic Symptom Score (Compass-31)

    Time frame: 12 months

    Self-scoring Compass 31 autonomic assessment. Minimum 0, maximum 100, higher scores mean a worse outcome.

  68. Electromyography (EMG)

    Time frame: 12 months

    Needle recording electrode will be inserted into different muscles (orbicularis oris, extensor indicis propius, tibialis anterior).Presence of abnormal discharges will be recorded (0 none to 4 maximum).

  69. Brainstem reflex

    Time frame: 12 months

    Trigeminal blink reflex, mediated by trigemino-facial ponto-medullary -circuits will be assessed. Surface recording electrodes will be attached over the orbicularis oculi in both sides with active electrode over the middle part of the lower eyelid and the reference at the lateral cantus of the eye . Stimulating electrodes will be placed over the supraorbital nerve. Ipsilateral (R1, R2) and contralateral responses (R2c) latencies measured in ms will be analyzed

  70. MRI

    Time frame: 12 months

    It will be conducted on a 3 Tesla Prisma scanner using a 32-channel head coil. Scanning takes ~50 min including 3D T1-weighted in sagittal plane; T2*axial EPI; axial diffusion weighted EPI; 3D sagittal FLAIR; resting state functional MRI and glutamate and H2O univoxel spectroscopy in dorsolateral prefrontal cortex and hippocampus. There is no contrast used for the MRI scans

    Outcome for MRI is normal or abnormal. Investigators will review all MRI sequences and determine if the MRI is abnormal and then describe the abnormality or abnormalities seen.

  71. EEG: normalcy

    Time frame: 12 months

    It will include standard clinical EEG protocol (43 channels, 512 Hz18) (primary variables), and EEG reactivations of memories prior to new trials (secondary variables) while participants perform WM tasks, which will be synchronized with the task software in a laptop. The memory content from alpha power across electrodes will be related to the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Performances of the subjects produces a reactivation of memory prior to new trials while participants perform working memory tasks, and relate the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    • Normalcy: yes or no.
  72. EEG: time awake

    Time frame: 12 months

    It will include standard clinical EEG protocol (43 channels, 512 Hz18) (primary variables), and EEG reactivations of memories prior to new trials (secondary variables) while participants perform WM tasks, which will be synchronized with the task software in a laptop. The memory content from alpha power across electrodes will be related to the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Performances of the subjects produces a reactivation of memory prior to new trials while participants perform working memory tasks, and relate the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Parameters:

    • Time awake: percentage
  73. EEG: time in drowsiness

    Time frame: 12 months

    It will include standard clinical EEG protocol (43 channels, 512 Hz18) (primary variables), and EEG reactivations of memories prior to new trials (secondary variables) while participants perform WM tasks, which will be synchronized with the task software in a laptop. The memory content from alpha power across electrodes will be related to the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Performances of the subjects produces a reactivation of memory prior to new trials while participants perform working memory tasks, and relate the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Parameters:

    • Time in drowsiness: percentage
  74. EEG: time asleep

    Time frame: 12 months

    It will include standard clinical EEG protocol (43 channels, 512 Hz18) (primary variables), and EEG reactivations of memories prior to new trials (secondary variables) while participants perform WM tasks, which will be synchronized with the task software in a laptop. The memory content from alpha power across electrodes will be related to the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Performances of the subjects produces a reactivation of memory prior to new trials while participants perform working memory tasks, and relate the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Parameters:

    • Time asleep: percentage
  75. EEG: epileptiform activity

    Time frame: 12 months

    It will include standard clinical EEG protocol (43 channels, 512 Hz18) (primary variables), and EEG reactivations of memories prior to new trials (secondary variables) while participants perform WM tasks, which will be synchronized with the task software in a laptop. The memory content from alpha power across electrodes will be related to the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Performances of the subjects produces a reactivation of memory prior to new trials while participants perform working memory tasks, and relate the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Parameters:

    • Epileptiform activity: yes or no
  76. EEG: seizures

    Time frame: 12 months

    It will include standard clinical EEG protocol (43 channels, 512 Hz18) (primary variables), and EEG reactivations of memories prior to new trials (secondary variables) while participants perform WM tasks, which will be synchronized with the task software in a laptop. The memory content from alpha power across electrodes will be related to the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Performances of the subjects produces a reactivation of memory prior to new trials while participants perform working memory tasks, and relate the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Parameters:

    • Seizures: yes or no
  77. EEG: slowing

    Time frame: 12 months

    It will include standard clinical EEG protocol (43 channels, 512 Hz18) (primary variables), and EEG reactivations of memories prior to new trials (secondary variables) while participants perform WM tasks, which will be synchronized with the task software in a laptop. The memory content from alpha power across electrodes will be related to the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Performances of the subjects produces a reactivation of memory prior to new trials while participants perform working memory tasks, and relate the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Parameters:

    • EEG slowing: yes or no
  78. EEG: Changes with Intermittent Light Stimulation

    Time frame: 12 months

    It will include standard clinical EEG protocol (43 channels, 512 Hz18) (primary variables), and EEG reactivations of memories prior to new trials (secondary variables) while participants perform WM tasks, which will be synchronized with the task software in a laptop. The memory content from alpha power across electrodes will be related to the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Performances of the subjects produces a reactivation of memory prior to new trials while participants perform working memory tasks, and relate the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Parameters:

    • Changes with Intermittent Light Stimulation: yes or no
  79. EEG: Changes with hyperventilation

    Time frame: 12 months

    It will include standard clinical EEG protocol (43 channels, 512 Hz18) (primary variables), and EEG reactivations of memories prior to new trials (secondary variables) while participants perform WM tasks, which will be synchronized with the task software in a laptop. The memory content from alpha power across electrodes will be related to the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Performances of the subjects produces a reactivation of memory prior to new trials while participants perform working memory tasks, and relate the decoding accuracy in different task periods to disease treatment and recovery and to behavioral parameters (WM precision, serial biases).

    Parameters:

    • Changes with hyperventilation: yes or no

Secondary outcomes

  1. LGI-1 antibodies

    Time frame: 12 months

    Determined with brain tissue immunohistochemistry and cell - based assays

  2. HLA genotyping

    Time frame: 12 months

    performed by standard techniques based on DNA - PCR and polymorphism identification by reverse hybridization with specific probes and fluorescence labelling of hybridized fragments (PCR - SSOP) (Immucor GTI Diagnostics Inc.Waukesha USA) in combination with genomic DNA sequencing by Sanger methodology (PCRSBT).

  3. Immune/inflammatory signaling-target gene expression pathways

    Time frame: 12 months

    RNA/NanoString analysis of targeted gene expression related to activation/function of B cells, T cells, microglia, and other interleukin/ chemokine signaling. Whole blood/CSF will be collected using PAXgene® Blood RNA tubes (Qiagen) shipped to the centers. Total RNA will be extracted using PAXgene® Blood RNA Kit (Qiagen). RNA samples are quantified using Qubit 2.0 Fluorometer (Life Technologies) and RNA integrity is determined with Agilent 2100 Bioanalyzer (Agilent Technologies). Expression levels of 44 genes related to immunological pathways and cytokines (Annex,Table) will be measured with the nCounter® Digital Analyzer (NanoString), as reported (Armangue et al., Mol Genet Metab 2017;122:134-9). Twenty healthy participants will serve as controls (single evaluation).

  4. NfL levels

    Time frame: 12 months

    determined in serum and CSF using the SiMoA Quanterix technique, as reported (Guasp et al., Neurology 2022;98:e1489 - 98). Age-and sex-matched healthy participants from previous studies will serve as controls.

Study contacts

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

Josep Dalmau, MD,PhD

CONTACT

[email protected]

34 93 227 1738

Sponsors and collaborators

Lead sponsor

Fundacion Clinic per a la Recerca Biomédica

Other

Registry information

Important dates

Study start
2023
Primary completion
2026
Study completion
2026
First posted
Jul 23, 2024
Registry last updated
Jul 23, 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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