- ICH GCP
- Registr klinických studií v USA
- Klinická studie NCT07585149
Generating Intervals of Reference FFor Early Life Brain Biomarkers. (GIRAFFE)
Přehled studie
Postavení
Detailní popis
With highly sensitive immunoassays becoming more accessible and widely available, there has not only been an urgent call for blood-derived biomarkers for neurological insult/disease, but there has also been a major increase in the number of potential biomarkers being discovered. Neuro-specific biomarkers are being widely used in adult medicine to track neurodegenerative disorders or acquired traumatic brain injury, with information available for both physiological and pathological levels, but little is known about normal physiological levels in the neonatal population. In fact, the most common type of acquired brain injury is perinatal. Perinatal insults leading to lifelong disability make up 44% of all state claims, but currently prediction of outcome remains difficult in the early neonatal period. Before the full potential of neuro-specific biomarkers can be utilised in neonatal populations for the prediction of outcome, a better understanding of physiological levels for neuro-specific biomarkers needs to be elucidated. Many current methods of analysis for neuro-specific biomarkers involve labour-intensive wet lab work conducted by highly skilled personnel. With recent advancements in main-line clinical chemistry analysers, neuro-specific biomarkers are set to become more available for routine measurement in clinical care.
From the limited literature available on homeostatic neuro-specific biomarker levels in paediatric populations, there have already been documented differences between those observed in adulthood. For this study we will focus on those neuro-specific biomarkers which are most promising for the translation into clinical care; GFAP and Tau and specific MicroRNA (miRNA) which have shown potential for the early diagnosis of Hypoxic Ischemic Encephalopathy (HIE) and poor neurodevelopmental outcomes.
GFAP is a protein associated with astrocyte cells in the brain. It plays a pivotal role in providing structural support to astrocytes and the blood-brain barrier. In physiological conditions, the expression of GFAP outside of the Central Nervous System (CNS) does not occur. This neuro-specific property of GFAP has enabled it to become a prime candidate biomarker for the detection of insult or disease within the CNS.
GFAP has become a popular biomarker for the screening of adults for mild Traumatic Brain Injury (mTBI) since the Food and Drug Administration (FDA) approval of the Abbott i-STAT TBI Plasma test. The i-STAT TBI Plasma test provides a point-of-care device for measuring GFAP and Ubiquitin Carboxy-terminal Hydrolase-L1 (UCH-L1) for screening adults presenting with mTBI for Computed Tomography (CT) scans. Elevations in GFAP levels in adults with mTBI have been shown to correlate well with abnormal CT findings. Using the Abbott i-STAT TBI Plasma test, the GFAP cut-off levels for determining if further investigation, such as head CT, is needed, for adult mTBI are 30 pg/mL. The reference interval determined by Abbott for an adult population ranging from 18 to 79 years of age is 2-51 pg/mL.
Limited literature is available on how physiological paediatric GFAP levels differ from those in an adult. However, from the available literature, clear differences are being documented between normal paediatric and adult GFAP levels. One study investigated the changes in GFAP levels in relation to age and included a population with ages ranging from 3 to 79 years. Cooper et al. demonstrated three distinct reference intervals for age. They determined that physiological levels of GFAP differ between the following age ranges: 3 - < 10 years, 10 - < 60 years, and 60 - < 80 years. Their results detail that an approximate 7% decrease is observed in GFAP levels per year between the ages of 3 and 20. This is followed by a 2% yearly increase in normal physiological GFAP levels between the ages of 20 and 60. With final physiological increases of 3% per year observed in adults >60 years of age. A study conducted by Mannix et al. observed that 100% of healthy children under the age of 3.5 years have a GFAP level greater than that of the cut-off level determined. The study only included n = 18 participants under the age of 3.5 years, with the youngest participant being 3 months old. A sub-study conducted by Puravet et al, in France determined a reference interval for GFAP serum levels using the Abbott i-STAT TBI platform. Their study included children younger than 6 months up to the age of 16 years. They demonstrated that in healthy control children <6 months old, the mean concentration of GFAP was 96.3 ng/L. This is approximately three times more than the cut-off level determined by Abbott for the investigations of mTBI. It is also much higher than the derived reference interval for the adult population. For children <6 months, the 95th percentile observed in the study conducted by Puravet et al. was 197.57 ng/L. It should be noted that this study also had a very limited number of children <6 months old, n = 18. In comparison, as mentioned, the 95th percentile for the adult population derived by Abbott was 51 pg/mL.
From the limited available literature, it is clear that age specific normative ranges for GFAP are required. GFAP appears to exhibit a U-shaped curve with respect to age. Higher physiological levels are seen in infancy and childhood, with plateaus observed in adolescence and adulthood. Followed by physiological increases in later adulthood. As mentioned, in adult mTBI, elevations of GFAP levels indicate injury to the brain and CNS. In neonates, elevations in GFAP levels have also been demonstrated to be associated with brain abnormalities such as white matter lesions and injury to the basal ganglia and cortex. GFAP has been proposed as an early biomarker for the prediction of abnormal neurodevelopmental outcomes such as cerebral palsy, with elevations of GFAP concentrations correlating with poor neuropsychomotor outcomes.
With GFAP becoming a biomarker of interest for the early prediction of abnormal neurodevelopmental outcomes, the need for a physiological reference interval for the neonatal population is of growing importance. A reference interval for the neonatal population may further our understanding of physiological GFAP levels in early life. This may provide a foundation for the accurate interpretation of GFAP elevations in neonatal brain injury, aiding in the development of biomarker-based screening tools for early diagnosis and intervention.
Tau is a microtubule-associated protein critical for regulating neuronal functions. Its roles encompass stabilising microtubules, modulating synaptic plasticity, and facilitating axonal transport processes. Tau can also undergo many post-translational modifications, including phosphorylation. Tau protein is released when neuronal damage occurs and a strong relationship between brain injury and the measurement of Tau outside of the CNS exists in a number of conditions. Tau is well known and documented for its use in Alzheimer's research, which has a primary focus on adult and ageing populations. However, evidence is emerging that it may be a useful biomarker for mTBI and for the prediction of neurodevelopmental outcome in neonates who have suffered a brain injury at birth.
There is limited literature available on the physiological levels of Tau in early life. One study by Stukas et al examined the relationship between serum total Tau and age. They reported that serum total Tau decreases with age. Their study highlighted that there are three significant age partitions for physiological Tau: 1 - < 4 years, 4 - < 16 years, and 16 - < 19 years. This was the largest study encountered in the literature, with a total of n = 416 participants composing the control group for the establishment of the reference intervals. Another study examined the physiological levels of phosphorylated Tau-181 and determined that age-specific reference ranges were also needed for this phosphorylated derivative of Tau. They determined that there are significant differences in normative pTau-181 levels for the age groups: 3 - < 12, 12- 60, and 60 - < 80.
In addition to protein-based biomarkers, MicroRNAs (miRNAs) have emerged as promising candidates for the early detection of brain injury and prediction of neurodevelopmental outcomes. miRNAs are small endogenous RNA molecules that are released into the extracellular space. They regulate translation in eukaryotic cells at the post-transcriptional level. Through binding their target messenger RNA (mRNA) sites, they can induce translational repression or degradation. They are detectable at very small concentrations, and several miRNAs are involved in normal brain development. Our group has previously demonstrated that altered miRNA expression is present in the umbilical cord blood of neonates with Perinatal Asphyxia or HIE, two conditions known to increase the risk of poor neurodevelopmental outcomes. However, little is currently known about the physiological expression profiles of miRNA in healthy term neonates. Establishing normative comparison data for miRNA expression in this population is therefore essential to enable their clinical utility in distinguishing pathological changes from normal biological variation.
The vast majority of the current published work on paediatric neuro-specific biomarker concentrations contains much smaller sample numbers than what is recommended for the development of a reference interval. Some studies discussed only have a population size of n = 18 when the Clinical and Laboratory Standards Institute (CLSI) guidelines call for a minimum of n = 120 for the development of a reference interval. The youngest participant in the studies discussed was 3 months, meaning there is a present gap in the knowledge surrounding normal neuro-specific biomarker levels in neonates, limiting their translation into clinical care.
Typ studie
Zápis (Odhadovaný)
Kontakty a umístění
Studijní kontakt
- Jméno: Conor L Vaughan, BSc, MSc
- Telefonní číslo: +353876068018
- E-mail: conor.vaughan@ucc.ie
Studijní záloha kontaktů
- Jméno: Deirdre M Murray, PhD
- E-mail: d.murray@ucc.ie
Studijní místa
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Cork, Irsko, T12 DC4C
- Nábor
- Department of Paediatric and Child Health
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Kontakt:
- Deirdre M Murray, MD PhD
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Kritéria účasti
Kritéria způsobilosti
Věk způsobilý ke studiu
- Dítě
Přijímá zdravé dobrovolníky
Metoda odběru vzorků
Studijní populace
Popis
Inclusion Criteria:
- Term neonate (≥37 weeks)
- Planned routine venous blood drawn within one week of life
- Relevant demographic/clinical information available, including gestational age, day of life, birth weight, sex, race, mode of delivery, and 5-minute Apgar score
- Informed parental consent obtained prior to any study procedures
Exclusion Criteria:
- Pre-term neonates <37 weeks
- Any clinical evidence of neurological/ CNS abnormalities.
- NICU admission
- Any neonates with Suspected or culture-positive sepsis or meningitis Any known inborn errors of metabolism (IEM). Any known chromosomal abnormalities or any apparent congenital abnormalities
- When the relevant demographic/clinical information is not available.
Studijní plán
Jak je studie koncipována?
Detaily designu
Kohorty a intervence
Skupina / kohorta |
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Term Neonate
Term neonate >37 weeks gestational age, with planned venipuncture within their first week of life.
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Co je měření studie?
Primární výstupní opatření
Měření výsledku |
Popis opatření |
Časové okno |
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Neurospecific Reference Interval
Časové okno: Birth to 1 week
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To examine the underlying normative neuro-specific protein profiles of term neonates.
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Birth to 1 week
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Spolupracovníci a vyšetřovatelé
Sponzor
Spolupracovníci
Vyšetřovatelé
- Vrchní vyšetřovatel: Deirdre M Murray, PhD, INFANT Research Centre, University College Cork
Publikace a užitečné odkazy
Obecné publikace
- Bazarian JJ, Biberthaler P, Welch RD, Lewis LM, Barzo P, Bogner-Flatz V, Gunnar Brolinson P, Buki A, Chen JY, Christenson RH, Hack D, Huff JS, Johar S, Jordan JD, Leidel BA, Lindner T, Ludington E, Okonkwo DO, Ornato J, Peacock WF, Schmidt K, Tyndall JA, Vossough A, Jagoda AS. Serum GFAP and UCH-L1 for prediction of absence of intracranial injuries on head CT (ALERT-TBI): a multicentre observational study. Lancet Neurol. 2018 Sep;17(9):782-789. doi: 10.1016/S1474-4422(18)30231-X. Epub 2018 Jul 24.
- O'Sullivan MP, Looney AM, Moloney GM, Finder M, Hallberg B, Clarke G, Boylan GB, Murray DM. Validation of Altered Umbilical Cord Blood MicroRNA Expression in Neonatal Hypoxic-Ischemic Encephalopathy. JAMA Neurol. 2019 Mar 1;76(3):333-341. doi: 10.1001/jamaneurol.2018.4182.
- Dakroub F, Kobeissy F, Mondello S, Yang Z, Xu H, Sura L, Rossignol C, Albayram M, Rajderkar D, Wang K, Weiss MD. MicroRNAs as biomarkers of brain injury in neonatal encephalopathy: an observational cohort study. Sci Rep. 2024 Mar 19;14(1):6645. doi: 10.1038/s41598-024-57166-z.
- Juul SE, Voldal E, Comstock BA, Massaro AN, Bammler TK, Mayock DE, Heagerty PJ, Wu YW, Numis AL; HEAL consortium. Association of High-Dose Erythropoietin With Circulating Biomarkers and Neurodevelopmental Outcomes Among Neonates With Hypoxic Ischemic Encephalopathy: A Secondary Analysis of the HEAL Randomized Clinical Trial. JAMA Netw Open. 2023 Jul 3;6(7):e2322131. doi: 10.1001/jamanetworkopen.2023.22131.
- Douglas-Escobar MV, Heaton SC, Bennett J, Young LJ, Glushakova O, Xu X, Barbeau DY, Rossignol C, Miller C, Old Crow AM, Hayes RL, Weiss MD. UCH-L1 and GFAP Serum Levels in Neonates with Hypoxic-Ischemic Encephalopathy: A Single Center Pilot Study. Front Neurol. 2014 Dec 19;5:273. doi: 10.3389/fneur.2014.00273. eCollection 2014.
- Ennen CS, Huisman TA, Savage WJ, Northington FJ, Jennings JM, Everett AD, Graham EM. Glial fibrillary acidic protein as a biomarker for neonatal hypoxic-ischemic encephalopathy treated with whole-body cooling. Am J Obstet Gynecol. 2011 Sep;205(3):251.e1-7. doi: 10.1016/j.ajog.2011.06.025. Epub 2011 Jun 15.
- Stukas S, Cooper J, Higgins V, Holmes D, Adeli K, Wellington CL. Pediatric reference intervals for serum neurofilament light and glial fibrillary acidic protein using the Canadian Laboratory Initiative on Pediatric Reference Intervals (CALIPER) cohort. Clin Chem Lab Med. 2023 Oct 27;62(4):698-705. doi: 10.1515/cclm-2023-0660. Print 2024 Mar 25.
- Puravet A, Oris C, Pereira B, Kahouadji S, Gonzalo P, Masson D, Durif J, Sarret C, Sapin V, Bouvier D. Serum GFAP and UCH-L1 for the identification of clinically important traumatic brain injury in children in France: a diagnostic accuracy substudy. Lancet Child Adolesc Health. 2025 Jan;9(1):47-56. doi: 10.1016/S2352-4642(24)00295-5. Epub 2024 Dec 2.
- Mannix R, Borglund E, Monashefsky A, Master C, Corwin D, Badawy M, Thomas DG, Reisner A. Age-Dependent Differences in Blood Levels of Glial Fibrillary Acidic Protein but Not Ubiquitin Carboxy-Terminal Hydrolase L1 in Children. Neurology. 2024 Aug 13;103(3):e209651. doi: 10.1212/WNL.0000000000209651. Epub 2024 Jul 10.
- Cooper JG, Stukas S, Ghodsi M, Ahmed N, Diaz-Arrastia R, Holmes DT, Wellington CL. Age specific reference intervals for plasma biomarkers of neurodegeneration and neurotrauma in a Canadian population. Clin Biochem. 2023 Nov;121-122:110680. doi: 10.1016/j.clinbiochem.2023.110680. Epub 2023 Oct 24.
- Rauchman SH, Pinkhasov A, Gulkarov S, Placantonakis DG, De Leon J, Reiss AB. Maximizing the Clinical Value of Blood-Based Biomarkers for Mild Traumatic Brain Injury. Diagnostics (Basel). 2023 Oct 28;13(21):3330. doi: 10.3390/diagnostics13213330.
- Yang Z, Wang KK. Glial fibrillary acidic protein: from intermediate filament assembly and gliosis to neurobiomarker. Trends Neurosci. 2015 Jun;38(6):364-74. doi: 10.1016/j.tins.2015.04.003. Epub 2015 May 11.
- Abdelhak A, Foschi M, Abu-Rumeileh S, Yue JK, D'Anna L, Huss A, Oeckl P, Ludolph AC, Kuhle J, Petzold A, Manley GT, Green AJ, Otto M, Tumani H. Blood GFAP as an emerging biomarker in brain and spinal cord disorders. Nat Rev Neurol. 2022 Mar;18(3):158-172. doi: 10.1038/s41582-021-00616-3. Epub 2022 Feb 3.
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