The positron emission tomography ligand DAA1106 binds with high affinity to activated microglia in human neurological

Sriram Venneti1, Guoji Wang, Jason Nguyen

  • 1Department of Pathology, University of Pittsburgh School of Medicine, and Presbyterian University Hospital, Neuropathology Division, Pittsburgh, Pennsylvania 15213, USA.

Insights

New imaging agent DAA1106 shows higher affinity for activated microglia than PK11195 in neurological diseases. This improved binding may enhance in vivo detection of neuroinflammation for better diagnosis and treatment.

Area of Science:

  • Neuroscience
  • Medical Imaging
  • Pharmacology

Background:

  • Chronic microglial activation is key in neurological disorders, necessitating in vivo imaging for neuroinflammation detection.
  • Current imaging agent PK11195 has limitations in distinguishing activated microglia from astrocytes and sensitivity for mild inflammation.

Purpose of the Study:

  • To compare the binding affinity of a novel ligand, DAA1106, against PK11195 for activated microglia in human neurological diseases.
  • To evaluate DAA1106's potential for improved in vivo imaging of neuroinflammation.

Main Methods:

  • Radioligand binding assays using [3H](R)-PK11195 and [3H]DAA1106 on postmortem brain tissues.
  • Comparison of binding affinities (KD values) and correlation with immunohistochemistry for activated microglia.
  • Inclusion of tissues from patients with cerebral infarcts, ALS, Alzheimer's, FTD, and MS (n=10 each).

Main Results:

  • DAA1106 demonstrated significantly higher binding affinity (lower KD) than PK11195 across all studied neurological diseases.
  • Specific binding of both DAA1106 and PK11195 correlated with the presence of activated microglia.
  • DAA1106 exhibits superior binding characteristics compared to PK11195.

Conclusions:

  • Peripheral benzodiazepine receptor ligands primarily label activated microglia in human neurological disorders.
  • DAA1106 shows potential as a superior radiotracer for positron emission tomography (PET) imaging of neuroinflammation due to its enhanced binding properties.

Related Concept Videos