Human glial fibrillary acidic protein,GFAP ELISA Kit

SKU:BHE10502497
Overview
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Quantitative ELISA kit for measuring human glial fibrillary acidic protein (GFAP) in serum, plasma, and tissue homogenates to support neuroscience studies. Sensitivity 0.156 ng/mL, detection range 0.625 ng/mL–40 ng/mL, typical assay time 1–5 h.
Target GFAP
Species Homo sapiens (Human)
Sample Type(s) serum, plasma, tissue homogenates
Assay Type Sandwich ELISA (quantitative)
Sensitivity 0.156 ng/mL
Detection Range 0.625 ng/mL-40 ng/mL
Assay Time 1-5h
Options selector
Catalog no. Size
CSB-E08601h-96T 96 T
CSB-E08601h-96TX5 96 T×5
CSB-E08601h-96TX10 96 T×10
Available Options

Select from the available variant options shown for this product. Availability and lead time can vary by option.

  • Options: Size (96 T, 96 T×10, 96 T×5).
  • Lead time: options listed as "In Stock at Manufacturer" typically ship in 5–7 business days; other statuses may take longer.
  • Storage: refer to the product datasheet for storage and handling.
  • Sales terms and conditions: Please review prior to ordering.
Field Specification
Mfr No CSB-E08601h
Alternative Names GFAP ELISA Kit; GFAP Epsilon ELISA Kit; GFAP_HUMAN ELISA Kit; GFAPdelta ELISA Kit; GFAPepsilon ELISA Kit; Glial fibrillary acidic protein ELISA Kit; Intermediate filament protein ELISA Kit
Assay Time
  • 1-5h
Assay Type
  • Sandwich ELISA (quantitative)
Detection Range 0.625 ng/mL-40 ng/mL
Detection Wavelength 450 nm
Product Type
  • ELISA Kits
Reactivity
  • Human
Sample Type(s) serum, plasma, tissue homogenates
Sensitivity 0.156 ng/mL
Species Homo sapiens (Human)
Target GFAP
UniProt # P14136

Background

glial fibrillary acidic protein (GFAP) is a biological molecule commonly studied in neuroscience research. It is commonly used as a molecular readout in mechanistic and biomarker-focused studies.

UniProt: P14136

Biological context

Researchers often monitor glial fibrillary acidic protein in serum, plasma, and tissue homogenates to better understand themes such as neuronal signaling and synaptic function, neuroinflammation, and neurodegeneration models. In many model systems, measured levels can shift with physiology, experimental perturbation, or disease-associated changes, making careful biological interpretation important.

Interpreting changes in measured levels

Depending on sample matrix and study design, increases or decreases in glial fibrillary acidic protein may reflect differences in expression, secretion, turnover, or compartmentalization rather than a single mechanism. Interpretation is typically strengthened by evaluating related molecules (for example, synaptic proteins, neurotrophic factors, and neuroinflammatory markers) and by keeping pre-analytical variables consistent across groups.

Nomenclature

In publications and databases, glial fibrillary acidic protein may also appear under names such as GFAP and GFAP Epsilon. When comparing studies, confirm that the reported analyte refers to the same molecule and species context.

Why ELISA data are widely used

ELISA is a common approach for quantitative measurement of proteins and biomarkers in complex samples, enabling comparisons across experimental groups and time points. When integrating results with other readouts, consider species biology, sample type, and the broader pathway context that glial fibrillary acidic protein participates in.

Can’t Find What You’re Looking For? We can help you source the best match or customize an ELISA solution for your study. Options may include alternative target synonyms, different species reactivity, sample type/matrix compatibility (serum/plasma/lysate/supernatant), assay format (sandwich/competitive), sensitivity/range, detection chemistry (colorimetric/fluorescent/chemiluminescent), plate format (pre-coated/uncoated, strips vs full plate), and bulk or custom packaging. Click Talk to a Scientist to submit a request form, email us at support@biohippo.com, or explore our Research Services for additional support. Our team will be in contact with you shortly.

Effects of APT20TTMG, a modulator of the U1 snRNP complex, in glioblastoma models

CB Quinta de Souza Leal,Medical Oncology,2025

The activation of complement C5a-C5aR1 axis in astrocytes facilitates the neuropathogenesis due to EV-A71 infection by upregulating CXCL1

P Zhu, W Ji, D Li, F Wang, T Sun, H Yang,Journal of Virology,2024

Incremental Metabolic Benefits from Cryoablation for Paroxysmal Atrial Fibrillation: Insights from Metabolomic Profiling

J Wang,/,2024

Higher serum PGE2 is a predicative biomarker for postoperative delirium following elective orthopedic surgery in elderly patients

M Mao,BMC geriatrics,2022

The Potential Role of Lung-Protective Ventilation in Preventing Postoperative Delirium in Elderly Patients Undergoing Prone Spinal Surgery: A Preliminary Study

J Wang,Med Sci Monit.,2020

Diagnostic value of serum glial fibrillary acidic protein and S100B serum levels in emergency medicine patients with traumatic versus nontraumatic intracerebral hemorrhage

Aydin I, et al,Nigerian journal of clinical practice,2018

Diagnostic value of serum glial fibrillary acidic protein and S100B serum levels in emergency medicine patients with traumatic versus nontraumatic intracerebral hemorrhage

Aydin I, et al,Nigerian journal of clinical practice,2018

Glial fibrillary acidic protein as a prognosticMarker of acute ischemic stroke

Liu G.et al,Hum Exp Toxicol,2018

Tethered cord syndrome - a study of the short term effects of surgical detethering onMarkers of neuronal injury and electrophysiologic parameters

Maurya VP.et al,World Neurosurg.,2016

The use of serum glial fibrillary acidic protein test as a promising tool for intracerebral hemorrhage diagnosis in Chinese patients and prediction of the short-term functional outcomes.

Xiong L. et al,Neurol Sci,2015

The role of S100B protein, neuron-specific enolase, and glial fibrillary acidic protein in the evaluation of hypoxic brain injury in acute carbon monoxide poisoning

Akdemir H et al,Hum Exp Toxicol,2014

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