The diazapyridinophane scaffold is established as a viable first-generation platform for blood–brain barrier (BBB)–permeable Mn2+ MRI contrast agents and both the bifunctional chelators and their Mn2+ complexes exhibit appreciable affinity for Aβ aggregates.
Abstract
Alzheimer's disease (AD) is a progressive neurodegenerative disorder whose prevalence is rising with the aging of the global population. Among the proposed pathological hallmarks, the beta-amyloid (Aβ) peptide aggregates and soluble Aβ oligomers are established biomarkers and remain valuable diagnostic targets. While positron emission tomography (PET) imaging agents dominate AD diagnostic imaging, there are no FDA-approved MRI agents for AD. Herein, we report five bifunctional chelators built on the 2,11-diaza[3.3](2,6)pyridinophane framework, and which were evaluated as chelators for Mn2+-based MRI contrast agents. Based on in vitro studies, including thermodynamic stability and kinetic inertness measurements, T1 relaxivity and 17O transverse relaxivity measurements to extract hydration numbers and water-exchange parameters, we obtained a clear structure–activity correlation for the corresponding bifunctional chelators: anionic picolinate and acetate arms increase thermodynamic stability and kinetic inertness, while the benzothiazolyl-phenol arm accelerates water exchange. Importantly, a high hydration number alone is insufficient, as a rapid water exchange is also needed for an appreciable contrast. Moreover, we show both the bifunctional chelators and their Mn2+ complexes exhibit appreciable affinity for Aβ aggregates, both in vitro and in 5xFAD mouse brain sections. [Mn(TE-8)], the most kinetically inert complex with favorable relaxivity, log D, and Aβ affinity, was advanced to in vivo MRI studies. Unlike MnCl2, which accumulates non-specifically, [Mn(TE-8)] cleared through renal and hepatobiliary routes and produced measurable brain contrast enhancement. Together, these results establish the diazapyridinophane scaffold as a viable first-generation platform for blood–brain barrier (BBB)–permeable Mn2+ MRI contrast agents.
Evidence highlights BZT as one of the most promising privileged scaffolds for integrating early diagnosis, disease monitoring, and disease-modifying intervention within a unified molecular framework for neurodegenerative disorders.
Nitin Kumar, Izhar Khan, Jyoti Singh et al.· RSC Medicinal Chemistry· 1 citation
Alzheimer's disease (AD) is a progressive neurodegenerative disorder characterized by pathological aggregation of amyloid-β (Aβ) and tau proteins, representing two major hallmarks of disease progression. Targeting both aggregation pathways simultaneously offers a promising therapeutic strategy. Building upon our previo...
Bhanuranjan Das, Anurag T. K. Baidya, Deepak Chouhan et al.· European journal of medicina...· 0 citations
Neurodegenerative diseases (NDDs) are characterized by overlapping clinical phenotypes and heterogeneous proteinopathies, which pose substantial challenges for early and accurate diagnosis. Molecular imaging with radiopharmaceuticals has revolutionized the field by enabling the in vivo visualization of disease-specific...
Yan Zhou, Han-Yi Fang, Xiao-Li Lan et al.· The Innovation Drug Discover...· 0 citations
Amyloid-β (Aβ), a 39-43-amino-acid peptide, is closely associated with the pathogenesis of Alzheimer's disease (AD) and undergoes abnormal aggregation that contributes to disease progression. Therefore, rapid and accurate Aβ detection is essential for early AD diagnosis and therapeutic monitoring. Biosensors have emerg...
Yi-Qing Tan, Qing-Xiang Zhang, Yu Fu et al.· The chemical record· 0 citations
Alzheimer’s disease (AD) is a progressive neurodegenerative condition with complex causes. Despite extensive research, effective disease-modifying treatment options remain limited. Recent studies have indicated that hydrogen molecule (H2) possesses therapeutic potential for AD, and it is of vital importance to enhanc...